US20160309613A1 - Storage Unit Combining Module Capable of Loading Several Storage Units, Storage Unit Moving Suit and Related Server Apparatus Having Several Storage Unit Combining Modules - Google Patents
Storage Unit Combining Module Capable of Loading Several Storage Units, Storage Unit Moving Suit and Related Server Apparatus Having Several Storage Unit Combining Modules Download PDFInfo
- Publication number
- US20160309613A1 US20160309613A1 US14/841,716 US201514841716A US2016309613A1 US 20160309613 A1 US20160309613 A1 US 20160309613A1 US 201514841716 A US201514841716 A US 201514841716A US 2016309613 A1 US2016309613 A1 US 2016309613A1
- Authority
- US
- United States
- Prior art keywords
- storage unit
- positioning zone
- inserting direction
- section
- connector
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Images
Classifications
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F1/00—Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
- G06F1/16—Constructional details or arrangements
- G06F1/18—Packaging or power distribution
- G06F1/183—Internal mounting support structures, e.g. for printed circuit boards, internal connecting means
- G06F1/187—Mounting of fixed and removable disk drives
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/14—Mounting supporting structure in casing or on frame or rack
- H05K7/1485—Servers; Data center rooms, e.g. 19-inch computer racks
- H05K7/1488—Cabinets therefor, e.g. chassis or racks or mechanical interfaces between blades and support structures
- H05K7/1492—Cabinets therefor, e.g. chassis or racks or mechanical interfaces between blades and support structures having electrical distribution arrangements, e.g. power supply or data communications
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/14—Mounting supporting structure in casing or on frame or rack
- H05K7/1485—Servers; Data center rooms, e.g. 19-inch computer racks
- H05K7/1488—Cabinets therefor, e.g. chassis or racks or mechanical interfaces between blades and support structures
- H05K7/1489—Cabinets therefor, e.g. chassis or racks or mechanical interfaces between blades and support structures characterized by the mounting of blades therein, e.g. brackets, rails, trays
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/18—Construction of rack or frame
- H05K7/183—Construction of rack or frame support rails therefor
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/20—Modifications to facilitate cooling, ventilating, or heating
- H05K7/20709—Modifications to facilitate cooling, ventilating, or heating for server racks or cabinets; for data centers, e.g. 19-inch computer racks
- H05K7/20718—Forced ventilation of a gaseous coolant
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/20—Modifications to facilitate cooling, ventilating, or heating
- H05K7/20709—Modifications to facilitate cooling, ventilating, or heating for server racks or cabinets; for data centers, e.g. 19-inch computer racks
- H05K7/20718—Forced ventilation of a gaseous coolant
- H05K7/20727—Forced ventilation of a gaseous coolant within server blades for removing heat from heat source
Definitions
- the present invention relates to a server apparatus capable of loading a plurality of storage units, and more particularly, to a storage unit combining module Capable of loading a plurality of storage units, and a storage unit moving suit and a related server apparatus having a plurality of storage unit combining modules.
- a conventional 4U tower-typed server apparatus only loads thirty-two hard disk units within the apparent surface area of the server apparatus due to universal constraint of the housing.
- the housing of the 4U server apparatus includes eight frames disposed close to each other, and each frame can load four hard disk units arranged in parallel.
- the 4U server apparatus has four hard disk backboards respectively disposed on the same plane on a rear of the frame, and each hard disk backboard covers scope of two frames.
- Eight hard disk connectors are disposed on an outer surface of the hard disk backboard side by side, to vertically connect with the adjacent eight hard disk units at most.
- a vent hole is formed on position of the hard disk backboard between the adjacent hard disk connectors for heat dissipation.
- a power connector and a signal connector are disposed on an inner surface of the hard disk backboard.
- the signal connector can be connected to a RAID card for establishing connection between the hard disk backboard and the RAID card, and further can be connected to a mainboard by the cable.
- the power connector is connected to the mainboard by the cable.
- Shortcomings of the conventional 4U tower-typed server apparatus is that the hard disk units are arranged in the frame side by side to expose the same edges of the whole hard disk units through the front of the frame, the user can watch all the hard disk units in a front view and conveniently remove or insert one or more hard disk units into the frames, so that an amount of the hard disk unit is constrained by the apparent surface area of the server apparatus.
- circuit allocation space on the hard disk backboard is decreased because of the vent holes, and electronic components are difficult to lay on the hard disk backboard in double-sided product process to detour the vent holes. Therefore, the hard disk backboard of the conventional 4U tower-typed server apparatus is applied to load eight hard disk units, and has drawbacks of huge volume, difficult product process, expensive cost and inconvenient repair and replacement.
- the present invention provides a storage unit combining module Capable of loading a plurality of storage units, and a storage unit moving suit and a related server apparatus having a plurality of storage unit combining modules for solving above drawbacks.
- a storage unit combining module capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit.
- the storage unit combining module includes a base and a circuit backboard.
- the base includes a first positioning zone, a second positioning zone and a third positioning zone and defines a first inserting direction and a second inserting direction crossed each other. Stretching directions of the first positioning zone and the second positioning zone are parallel to the first inserting direction, and the first positioning zone is neighbored with the second positioning zone in the second inserting direction. A stretching direction of the third positioning zone is parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction.
- the circuit backboard is disposed on the base.
- the circuit backboard includes a first section and a second section connected to each other.
- the first section is located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretches toward a direction opposite to the second inserting direction.
- the second section stretches toward the first inserting direction and is neighbored with a side of the third positioning zone.
- the circuit backboard includes a first connector disposed on a position of the first section neighbored with and facing the first positioning zone, a second connector disposed on a position of the first section neighbored with and facing the second positioning zone, a third connector disposed on a position of the second section neighbored with and facing the third positioning zone, and a signal adapter for connecting with a pass-through interface card.
- the first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone
- the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone
- the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
- a storage unit moving suit includes a carrying frame, a pass-through interface card and at least one storage unit combining module.
- the carrying frame has an accommodating space.
- the pass-through interface card is disposed on a side of the carrying frame.
- the at least one storage unit combining module is disposed inside the accommodating space of the carrying frame and capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit.
- the at least one storage unit combining module includes a base and a circuit backboard.
- the base includes a first positioning zone, a second positioning zone and a third positioning zone and defines a first inserting direction and a second inserting direction crossed each other.
- Stretching directions of the first positioning zone and the second positioning zone are parallel to the first inserting direction, and the first positioning zone is neighbored with the second positioning zone in the second inserting direction.
- a stretching direction of the third positioning zone is parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction.
- the circuit backboard is disposed on the base.
- the circuit backboard includes a first section and a second section connected to each other.
- the first section is located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretches toward a direction opposite to the second inserting direction.
- the second section stretches toward the first inserting direction and is neighbored with a side of the third positioning zone.
- the circuit backboard includes a first connector disposed on a position of the first section neighbored with and facing the first positioning zone, a second connector disposed on a position of the first section neighbored with and facing the second positioning zone, a third connector disposed on a position of the second section neighbored with and facing the third positioning zone, and a signal adapter for connecting with a pass-through interface card.
- the first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone
- the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone
- the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
- a server apparatus includes a housing, a mainboard and at least one storage unit moving suit.
- the mainboard is disposed inside the housing.
- the at least one storage unit moving suit is loaded inside the housing and capable of being pulled or pushed relative to the housing.
- the at least one storage unit moving suit includes a carrying frame, a pass-through interface card and at least one storage unit combining module.
- the carrying frame has an accommodating space.
- the pass-through interface card is disposed on a side of the carrying frame.
- the at least one storage unit combining module is disposed inside the accommodating space of the carrying frame and capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit.
- the at least one storage unit combining module includes a base and a circuit backboard.
- the base includes a first positioning zone, a second positioning zone and a third positioning zone and defines a first inserting direction and a second inserting direction crossed each other. Stretching directions of the first positioning zone and the second positioning zone are parallel to the first inserting direction, and the first positioning zone is neighbored with the second positioning zone in the second inserting direction. A stretching direction of the third positioning zone is parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction.
- the circuit backboard is disposed on the base.
- the circuit backboard includes a first section and a second section connected to each other.
- the first section is located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretches toward a direction opposite to the second inserting direction.
- the second section stretches toward the first inserting direction and is neighbored with a side of the third positioning zone.
- the circuit backboard includes a first connector disposed on a position of the first section neighbored with and facing the first positioning zone, a second connector disposed on a position of the first section neighbored with and facing the second positioning zone, a third connector disposed on a position of the second section neighbored with and facing the third positioning zone, and a signal adapter for connecting with a pass-through interface card.
- the first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone
- the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone
- the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
- the storage unit combining module and the related storage unit moving suit of the present invention can increase the loading amounts of the storage unit while volume of the server apparatus is unvaried.
- the circuit backboard of the storage unit combining module does not have the vent holes to increase circuit allocation space on the circuit backboard.
- the hard disk connector, the power connector and the signal connector are not disposed on two surfaces of the circuit backboard, and the single-sided product process can be applied to effectively economize manufacture cost of the circuit backboard.
- the storage unit moving suit is connected to the mainboard by the flexible cable, so the storage unit moving suit can be pulled out and pushed into the housing for replacement of the storage units while the server apparatus is in normal operation.
- Each storage unit combining module is matched with three storage units, and a quantity of the hard disks within the server apparatus can be highly changeable for customized demand.
- FIG. 1 and FIG. 2 respectively are diagrams of a server apparatus with storage unit moving suits in different operational modes according to an embodiment of the present invention.
- FIG. 3 is a diagram of the server apparatus without the storage unit moving suit according to the embodiment of the present invention.
- FIG. 4 and FIG. 5 respectively are diagrams of the storage unit moving suit with storage unit combining modules in different views according to the embodiment of the present invention.
- FIG. 6 and FIG. 7 respectively are diagrams of the storage unit moving suit without the storage unit combining module in different views according to the embodiment of the present invention.
- FIG. 8 is a diagram of the storage unit combining module with storage units according to the embodiment of the present invention.
- FIG. 9 is a diagram of the storage unit combining module without the storage unit according to the embodiment of the present invention.
- FIG. 10 is a diagram of the storage unit with a storing component according to the embodiment of the present invention.
- FIG. 11 is a diagram of the storage unit without the storing component according to the embodiment of the present invention.
- FIG. 1 and FIG. 2 respectively are diagrams of a server apparatus 10 with several storage unit moving suits 20 in different operational modes according to an embodiment of the present invention.
- FIG. 3 is a diagram of the server apparatus 10 without the storage unit moving suit 20 according to the embodiment of the present invention.
- the server apparatus 10 includes a housing 12 , a mainboard 14 , a heat dissipating module 16 and a bridging frame 18 .
- the mainboard 14 is disposed on a rear of the housing 12
- the bridging frame 18 is disposed on a front of the housing 12
- the heat dissipating module 16 is located between the mainboard 14 and the bridging frame 18 .
- the bridging frame 18 can be disposed on the rear of the housing 12 to locate the mainboard 14 between the heat dissipating module 16 and the bridging frame 18 .
- a plurality of storage unit moving suits 20 can be simultaneously loaded inside the bridging frame 18 , and the embodiment installs two storage unit moving suits 20 , but not limited to, inside the bridging frame 18 .
- a gap between the bridging frame 18 and the housing 12 can be utilized to dispose a datum reading module 22 , such as an optical disk drive.
- the heat dissipating module 16 includes a plurality of fan units 24 respectively aligning with the storage unit moving suits 20 and/or the mainboard 14 , to dissipate heat generated from the storage unit moving suits 20 and the mainboard 14 by cooling airflow of the heat dissipating module 16 .
- the server apparatus 10 further includes a pass-through interface card and a slide rail structure 28 , and the pass-through interface card is a RAID (redundant array of independent disks) card 32 .
- the slide rail structure 28 is disposed between the bridging frame 18 and storage unit moving suit 20 (which is loaded inside a carrying frame 30 shown in FIG. 4 to FIG. 7 ), and the storage unit moving suit 20 can move relative to the bridging frame 18 by the slide rail structure 28 to pull out or to push the storage unit moving suit 20 into the housing 12 .
- the RAID card 32 is disposed on the storage unit moving suit 20 (which can be shown in FIG. 4 to FIG. 7 ), and can move along the slide rail structure 28 with a movement of the storage unit moving suit 20 .
- the RAID card 32 is disposed on a back of the storage unit moving suit 20 ; however, in another embodiment, the RAID card 32 can be disposed on a bottom of the storage unit moving suit 20 , which means position of the RAID card 32 is varied according to position of a signal adapter 72 of the storage unit combining module 34 , as shown in FIG. 8 .
- the RAID card 32 is electrically connected to the mainboard 14 via a flexible cable 88 .
- the flexible cable 88 preferably detours the heat dissipating module 16 , and two ends of the flexible cable 88 can be electrically connected to the mainboard 14 and the RAID card 32 .
- the storage unit moving suit 20 can be arbitrarily pulled out of the housing 12 (or out of the bridging frame 18 ) for repair of inner components (such as replacing the hard disk) while the server apparatus 10 is in normal operation
- FIG. 4 and FIG. 5 respectively are diagrams of the storage unit moving suit 20 with the storage unit combining module 34 in different views according to the embodiment of the present invention.
- FIG. 6 and FIG. 7 respectively are diagrams of the storage unit moving suit 20 without the storage unit combining module 34 in different views according to the embodiment of the present invention.
- the storage unit moving suit 20 includes a carrying frame 30 and the RAID card 32 .
- the carrying frame 30 includes a plurality of guiding slots 36 , a bottom slab 38 , two lateral slabs 40 and two blocking slabs 42 .
- the lateral slabs 40 are symmetrically connected to sides of the bottom slab 38 to form a U-shaped accommodating space 90 .
- the blocking slabs 42 are respectively crossed between the lateral slabs 40 , such as covering a top and a rear of the accommodating space 90 , to prevent the storage unit combining module 34 from being separated from the accommodating space 90 .
- the plurality of guiding slots 36 is disposed on the bottom slab 38 and/or the top blocking slab 42 (disposed on the top of the accommodating space 90 ).
- the storage unit combining module 34 is slidably disposed inside the carrying frame 30 by the guiding slots 36 .
- a plurality of heat dissipating holes 44 can be respectively formed on the blocking slabs 42 and/or the bottom slab 38 .
- the storage unit combining module 34 can move from a front opening of the carrying frame 30 into the carrying frame 30 via the guiding slot 36 while the top blocking slab 42 is assembled with the two lateral slabs 40 , so as to connect the storage unit combining module 34 with the RAID card 32 . Further, the storage unit combining module 34 can move down from a top opening of the carrying frame 30 to set into the carrying frame 30 while the accommodating space 90 is not sealed, and then the top blocking slab 42 is assembled with the two lateral slabs 40 after the storage unit combining module 34 aligns with the corresponding guiding slot 36 to connect with the RAID card 32 .
- the heat dissipating holes 44 formed on the carrying frame 30 respectively align with the storage units 54 , and heat generated by each storage unit 54 (which can be shown in FIG. 8 to FIG. 11 ) of the storage unit combining module 34 can be effectively dissipated through the heat dissipating holes 44 for preferred heat dissipation efficiency.
- top blocking slab 42 is substantially parallel to the bottom slab 38 , and dimensions of the top blocking slab 42 is smaller than dimensions of the bottom slab 38 .
- the storage units 54 (which can be shown in FIG. 8 to FIG. 11 ) of the storage unit combining module 34 can be moved into or out of the storage unit moving suit 20 in different assembling/disassembling directions through the front opening 301 and the top opening 302 of the carrying frame 30
- the RAID card 32 is disposed on a rear of the carrying frame 30 , such as the rear of the accommodating space 90 .
- a plurality of sockets 46 is disposed on a surface of the RAID card 32 facing the carrying frame 30 for connecting with the signal adapter 72 (which can be shown in FIG. 8 and FIG. 9 ) of the storage unit combining module 34 , and an amount of the socket 46 corresponds to an amount of the storage unit combining module 34 .
- the RAID card 32 has eight sockets 46 , but not limited to, and the storage unit moving suit 20 can load eight storage unit combining modules 34 accordingly.
- a power connector 48 and a signal connector 50 are disposed on the other surface of the RAID card 32 opposite to the carrying frame 30 .
- the power connector 48 and the signal connector 50 are electrically connected to the mainboard 14 by the flexible cable 88 .
- the carrying frame 30 further includes a handling component 52 disposed on a front of the carrying frame 30 . A user can grasp the handling component 52 to move the storage unit moving suit 20 relative to the bridging frame 18 along the slide rail structure 28 , so as to pull the storage unit moving suit 20 out or to push the storage unit moving suit 20 into the housing 12 .
- FIG. 8 is a diagram of the storage unit combining module 34 with the storage unit 54 according to the embodiment of the present invention.
- FIG. 9 is a diagram of the storage unit combining module 34 without the storage unit 54 according to the embodiment of the present invention.
- FIG. 10 is a diagram of the storage unit 54 with a storing component 84 according to the embodiment of the present invention.
- FIG. 11 is a diagram of the storage unit 54 without the storing component 84 according to the embodiment of the present invention.
- each storage unit combining module 34 can load three storage units 54 , such as the first storage unit 54 A, the second storage unit 54 B and the third storage unit 54 C.
- the storage unit combining module 34 includes a base 56 , a circuit backboard 58 and the signal adapter 72 .
- the base 56 includes a first positioning zone 60 , a second positioning zone 62 , a third positioning zone 64 and an open zone 66 , and defines a first inserting direction X and a second inserting direction Y crossed each other.
- the first inserting direction X is preferably perpendicular to the second inserting direction Y. As shown in FIG.
- stretching directions of the first positioning zone 60 and the second positioning zone 62 are parallel to the first inserting direction X, and the first positioning zone 60 is neighbored with the second positioning zone 62 in the second inserting direction Y, so that the first positioning zone 60 and the second positioning zone 62 are respectively located on an upper position and a lower position.
- a stretching direction of the third positioning zone 64 is parallel to the second inserting direction Y and neighbored with the first positioning zone 60 and the second positioning zone 62 in the first inserting direction X, so the third positioning zone 64 is located on rear of the first positioning zone 60 and the second positioning zone 62 , and the stretching direction of the third positioning zone is perpendicular to the stretching directions of the first positioning zone 60 and the second positioning zone 62 .
- the open zone 66 is neighbored with the third positioning zone 64 .
- the first positioning zone 60 , the second positioning zone 62 and the third positioning zone 64 respectively are dotted patterns marked by arrows shown in FIG. 9 .
- a long side of the positioning zone represents the lateral side
- a short side of the positioning zone represents the edge side.
- the rear edge side indicates a lower reach (such like a connecting position) of each positioning zone according to the inserting direction
- the front edge side indicates an upper reach (such like an entering position) of each positioning zone according to the inserting direction.
- the circuit backboard 58 is disposed on the base 56 .
- the circuit backboard 58 is mainly composed on a first section 68 and a second section 70 bent from each other. Two sides of the first section 68 respectively face the right lateral side 641 of the third positioning zone 64 and the rear edge sides 602 , 622 of the first positioning zone 60 and the second positioning zone 62 . A side of the second section 70 faces the rear edge side 624 (which is different from the right lateral side 641 ) of the third positioning zone 64 . A distal end of the second section 70 is located within the open zone 66 .
- the signal adapter 72 is disposed on the open zone 66 and electrically connected to the second section 70 for connecting with the corresponding socket 46 of the RAID card 32 .
- the RAID card 32 can be parallel to the bottom slab 38 and the signal adapter 72 moves downward to insert into the corresponding socket 46 of the RAID card 32 .
- a length of the first section 68 may be shorter than a length of the second section 70 , so that the circuit backboard 58 can be a L-shaped slab component, the first section 68 is a long section of the L-shaped slab component (the circuit backboard 58 ), and the second section 70 is a short section of the L-shaped slab component (the circuit backboard 58 ).
- the circuit backboard 58 further includes a first connector 74 , a second connector 76 and a third connector 78 .
- the first connector 74 is disposed on a position of the first section 68 facing the first positioning zone 60 .
- the second connector 76 is disposed on a position of the first section 68 facing the second positioning zone 62 .
- the third connector 78 is disposed on a position of the second section 70 facing the third positioning zone 64 .
- the first connector 74 , the second connector 76 and the third connector 78 respectively are mid-mount connectors.
- the base 56 further can include a plurality of constraining components 80 respectively disposed on two opposite lateral sides of the first positioning zone 60 , the second positioning zone 62 and the third positioning zone 64 .
- the constraining components 80 of the position zones 60 , 62 , 64 are utilized to constrain a movement of the related storage units 54 , which means the first storage unit 54 A, the second storage unit 54 B and the third storage unit 54 C can be slidably assembled with or disassembled from the base 56 through the first positioning zone 60 , the second positioning zone 62 and the third positioning zone 64 in the first inserting direction X and the second inserting direction Y, respectively.
- the first storage unit 54 A and the second storage unit 54 B are assembled with the first positioning zone 60 and the second positioning zone 62 in the first inserting direction X, and respectively connected to the first connector 74 and the second connector 76 .
- the third storage unit 54 C is assembled with the third positioning zone 64 in the second inserting direction Y different from the first inserting direction X, and connected to the third connector 78 accordingly.
- the first inserting direction X is substantially perpendicular to the second inserting direction Y.
- the stretching direction of the first section 68 can be substantially parallel to the second inserting direction Y
- the stretching direction of the second section 70 can be substantially parallel to the first inserting direction X.
- the storage unit 54 may include a supporting component 82 , a storing component 84 and a detaching component 86 .
- the storing component 84 can be a 2.5-inch hard disk, but not limited to, fixed on the supporting component 82 .
- the detaching component 86 is disposed on an end of the supporting component 82 . While the storage unit 54 slides into the base 56 via the constraining component 80 , the detaching component 86 can be engaged with the base 56 to constrain a relative movement between the supporting component 82 and the constraining component 80 , so as to prevent the storage unit 54 from being disassembled from the base 56 .
- the detaching component 86 can be activated to unlock connection modes of the rear connectors 74 , 76 , 78 , so as to disassemble the storage unit 54 from the positioning zone of the base 56 .
- the first storage unit 54 A and the second storage unit 54 B can be pulled out of the carrying frame 30 through the front opening 301
- the third storage unit 54 C can be pulled out of the carrying frame 30 through the top opening 302 for conveniently replacing the storing component 84 , as shown in FIG. 4 to FIG. 7 .
- the housing 12 of the server apparatus 10 preferably can be universal standard, so that two storage unit moving suits 20 are loaded inside the bridging frame 18 , and eight storage unit combining modules 34 are disposed inside each storage unit moving suit 20 .
- the storage unit moving suit 20 is electrically connected to the mainboard 14 by the flexible cable 88 , and the storage unit moving suit 20 can be pulled out of the bridging frame 18 via the slide rail structure 28 while the server apparatus 10 is in normal operation.
- the storage unit combining modules 34 are vertically disposed inside the storage unit moving suit 20 side by side. A gap is formed between the adjacent storage unit combining modules 34 for passing through the cooling airflow.
- the heat dissipating holes 44 on the carrying frame 30 respectively align with the storage units 54 of the storage unit combining modules 34 for preferred heat dissipation efficiency, and the storage unit combining module 34 of the present invention does not form vent holes on the circuit backboard 58 in the present invention.
- the base 56 of the storage unit combining module 34 are divided into the first positioning zone 60 , the second positioning zone 62 and the third positioning zone 64 , and the L-shaped circuit backboard 58 is located between the first positioning zone 60 , the second positioning zone 62 and the third positioning zone 64 .
- the first storage unit 54 A and the second storage unit 54 B can be transversely inserted into the first positioning zone 60 and the second positioning zone 62 in the first inserting direction X
- the third storage unit 54 C can be vertically inserted into the third positioning zone 64 in the second inserting direction Y
- first storage unit 54 A, the second storage unit 54 B and the third storage unit 54 C are respectively connected with the first connector 74 , the second connector 76 and the third connector 78 of the L-shaped circuit backboard 58 to establish connection of the mainboard 14 via the RAID card 32 ; therefore, the storage unit combining module 34 can dispose the third storage unit 54 C on redundant space between the bridging frame 18 and the heat dissipating module 16 .
- each of the bridging frames 18 can load two storage unit moving suits 20
- each of the storage unit moving suits 20 can load eight storage unit combining modules 34
- each of the storage unit combining modules 34 can load three storage units 54 , so that the storage unit moving suit 20 has twenty-four storage units 54 at most and the server apparatus 10 can simultaneously have forty-eight storage units 54 .
- the present invention increases loading amounts of the storage unit 54 without changing volume and specification of the server apparatus 10 .
- the present invention is not limited to the above-mentioned embodiment that the bridging frames 18 has two storage unit moving suits 20 and the storage unit moving suit 20 has eight storage unit combining modules 34 , and further can be applied to the server apparatus with one or more than two storage unit moving suits, or applied to the server apparatus that includes the single storage unit moving suit having the storage unit combining module with other numeral.
- the storage unit combining module and the related storage unit moving suit of the present invention can increase the loading amounts of the storage unit while volume of the server apparatus is unvaried.
- the circuit backboard of the storage unit combining module does not have the vent holes to increase circuit allocation space on the circuit backboard.
- the hard disk connector, the power connector and the signal connector are not disposed on two surfaces of the circuit backboard, and the single-sided product process can be applied to effectively economize manufacture cost of the circuit backboard.
- the storage unit moving suit is connected to the mainboard by the flexible cable, so the storage unit moving suit can be pulled out and pushed into the housing for replacement of the storage units while the server apparatus is in normal operation.
- Each storage unit combining module is matched with three storage units, and a quantity of the hard disks within the server apparatus can be highly changeable for customized demand.
Landscapes
- Engineering & Computer Science (AREA)
- Computer Hardware Design (AREA)
- General Engineering & Computer Science (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Physics & Mathematics (AREA)
- Theoretical Computer Science (AREA)
- Thermal Sciences (AREA)
- Power Engineering (AREA)
- Human Computer Interaction (AREA)
- General Physics & Mathematics (AREA)
- Mounting Of Printed Circuit Boards And The Like (AREA)
- Cooling Or The Like Of Electrical Apparatus (AREA)
Abstract
A storage unit combining module capable of loading a plurality of storage units, and a storage unit moving suit having several storage unit combining modules and a related server apparatus are disclosed. The storage unit combining module includes a base, a circuit backboard and a signal adapter. The base has several positioning zones and an open zone. The circuit backboard includes a first section and a second section bent from each other. The circuit backboard further includes a plurality of connectors respectively disposed on the corresponding positioning zones. The signal adapter is disposed on the open zone and electrically connected to the second section. Two storage units are respectively loaded into two positioning zones on a right side of the base in a first inserting direction, and one storage unit is further loaded into a single positioning zone on a left side of the base in a second inserting direction.
Description
- 1. Field of the Invention
- The present invention relates to a server apparatus capable of loading a plurality of storage units, and more particularly, to a storage unit combining module Capable of loading a plurality of storage units, and a storage unit moving suit and a related server apparatus having a plurality of storage unit combining modules.
- 2. Description of the Prior Art
- A conventional 4U tower-typed server apparatus only loads thirty-two hard disk units within the apparent surface area of the server apparatus due to universal constraint of the housing. The housing of the 4U server apparatus includes eight frames disposed close to each other, and each frame can load four hard disk units arranged in parallel. The 4U server apparatus has four hard disk backboards respectively disposed on the same plane on a rear of the frame, and each hard disk backboard covers scope of two frames. Eight hard disk connectors are disposed on an outer surface of the hard disk backboard side by side, to vertically connect with the adjacent eight hard disk units at most. A vent hole is formed on position of the hard disk backboard between the adjacent hard disk connectors for heat dissipation. A power connector and a signal connector are disposed on an inner surface of the hard disk backboard. The signal connector can be connected to a RAID card for establishing connection between the hard disk backboard and the RAID card, and further can be connected to a mainboard by the cable. The power connector is connected to the mainboard by the cable.
- Shortcomings of the conventional 4U tower-typed server apparatus is that the hard disk units are arranged in the frame side by side to expose the same edges of the whole hard disk units through the front of the frame, the user can watch all the hard disk units in a front view and conveniently remove or insert one or more hard disk units into the frames, so that an amount of the hard disk unit is constrained by the apparent surface area of the server apparatus. Moreover, circuit allocation space on the hard disk backboard is decreased because of the vent holes, and electronic components are difficult to lay on the hard disk backboard in double-sided product process to detour the vent holes. Therefore, the hard disk backboard of the conventional 4U tower-typed server apparatus is applied to load eight hard disk units, and has drawbacks of huge volume, difficult product process, expensive cost and inconvenient repair and replacement.
- The present invention provides a storage unit combining module Capable of loading a plurality of storage units, and a storage unit moving suit and a related server apparatus having a plurality of storage unit combining modules for solving above drawbacks.
- According to the claimed invention, a storage unit combining module capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit is disclosed. The storage unit combining module includes a base and a circuit backboard. The base includes a first positioning zone, a second positioning zone and a third positioning zone and defines a first inserting direction and a second inserting direction crossed each other. Stretching directions of the first positioning zone and the second positioning zone are parallel to the first inserting direction, and the first positioning zone is neighbored with the second positioning zone in the second inserting direction. A stretching direction of the third positioning zone is parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction. The circuit backboard is disposed on the base. The circuit backboard includes a first section and a second section connected to each other. The first section is located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretches toward a direction opposite to the second inserting direction. The second section stretches toward the first inserting direction and is neighbored with a side of the third positioning zone. The circuit backboard includes a first connector disposed on a position of the first section neighbored with and facing the first positioning zone, a second connector disposed on a position of the first section neighbored with and facing the second positioning zone, a third connector disposed on a position of the second section neighbored with and facing the third positioning zone, and a signal adapter for connecting with a pass-through interface card. The first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone, the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone, and the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
- According to the claimed invention, a storage unit moving suit includes a carrying frame, a pass-through interface card and at least one storage unit combining module. The carrying frame has an accommodating space. The pass-through interface card is disposed on a side of the carrying frame. The at least one storage unit combining module is disposed inside the accommodating space of the carrying frame and capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit. The at least one storage unit combining module includes a base and a circuit backboard. The base includes a first positioning zone, a second positioning zone and a third positioning zone and defines a first inserting direction and a second inserting direction crossed each other. Stretching directions of the first positioning zone and the second positioning zone are parallel to the first inserting direction, and the first positioning zone is neighbored with the second positioning zone in the second inserting direction. A stretching direction of the third positioning zone is parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction. The circuit backboard is disposed on the base. The circuit backboard includes a first section and a second section connected to each other. The first section is located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretches toward a direction opposite to the second inserting direction. The second section stretches toward the first inserting direction and is neighbored with a side of the third positioning zone. The circuit backboard includes a first connector disposed on a position of the first section neighbored with and facing the first positioning zone, a second connector disposed on a position of the first section neighbored with and facing the second positioning zone, a third connector disposed on a position of the second section neighbored with and facing the third positioning zone, and a signal adapter for connecting with a pass-through interface card. The first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone, the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone, and the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
- According to the claimed invention, a server apparatus includes a housing, a mainboard and at least one storage unit moving suit. The mainboard is disposed inside the housing. The at least one storage unit moving suit is loaded inside the housing and capable of being pulled or pushed relative to the housing. The at least one storage unit moving suit includes a carrying frame, a pass-through interface card and at least one storage unit combining module. The carrying frame has an accommodating space. The pass-through interface card is disposed on a side of the carrying frame. The at least one storage unit combining module is disposed inside the accommodating space of the carrying frame and capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit. The at least one storage unit combining module includes a base and a circuit backboard. The base includes a first positioning zone, a second positioning zone and a third positioning zone and defines a first inserting direction and a second inserting direction crossed each other. Stretching directions of the first positioning zone and the second positioning zone are parallel to the first inserting direction, and the first positioning zone is neighbored with the second positioning zone in the second inserting direction. A stretching direction of the third positioning zone is parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction. The circuit backboard is disposed on the base. The circuit backboard includes a first section and a second section connected to each other. The first section is located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretches toward a direction opposite to the second inserting direction. The second section stretches toward the first inserting direction and is neighbored with a side of the third positioning zone. The circuit backboard includes a first connector disposed on a position of the first section neighbored with and facing the first positioning zone, a second connector disposed on a position of the first section neighbored with and facing the second positioning zone, a third connector disposed on a position of the second section neighbored with and facing the third positioning zone, and a signal adapter for connecting with a pass-through interface card. The first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone, the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone, and the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
- The storage unit combining module and the related storage unit moving suit of the present invention can increase the loading amounts of the storage unit while volume of the server apparatus is unvaried. The circuit backboard of the storage unit combining module does not have the vent holes to increase circuit allocation space on the circuit backboard. The hard disk connector, the power connector and the signal connector are not disposed on two surfaces of the circuit backboard, and the single-sided product process can be applied to effectively economize manufacture cost of the circuit backboard. The storage unit moving suit is connected to the mainboard by the flexible cable, so the storage unit moving suit can be pulled out and pushed into the housing for replacement of the storage units while the server apparatus is in normal operation. Each storage unit combining module is matched with three storage units, and a quantity of the hard disks within the server apparatus can be highly changeable for customized demand.
- These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
-
FIG. 1 andFIG. 2 respectively are diagrams of a server apparatus with storage unit moving suits in different operational modes according to an embodiment of the present invention. -
FIG. 3 is a diagram of the server apparatus without the storage unit moving suit according to the embodiment of the present invention. -
FIG. 4 andFIG. 5 respectively are diagrams of the storage unit moving suit with storage unit combining modules in different views according to the embodiment of the present invention. -
FIG. 6 andFIG. 7 respectively are diagrams of the storage unit moving suit without the storage unit combining module in different views according to the embodiment of the present invention. -
FIG. 8 is a diagram of the storage unit combining module with storage units according to the embodiment of the present invention. -
FIG. 9 is a diagram of the storage unit combining module without the storage unit according to the embodiment of the present invention. -
FIG. 10 is a diagram of the storage unit with a storing component according to the embodiment of the present invention. -
FIG. 11 is a diagram of the storage unit without the storing component according to the embodiment of the present invention. - Please refer to
FIG. 1 toFIG. 3 .FIG. 1 andFIG. 2 respectively are diagrams of aserver apparatus 10 with several storageunit moving suits 20 in different operational modes according to an embodiment of the present invention.FIG. 3 is a diagram of theserver apparatus 10 without the storageunit moving suit 20 according to the embodiment of the present invention. Theserver apparatus 10 includes ahousing 12, amainboard 14, aheat dissipating module 16 and abridging frame 18. Themainboard 14 is disposed on a rear of thehousing 12, the bridgingframe 18 is disposed on a front of thehousing 12, and theheat dissipating module 16 is located between themainboard 14 and the bridgingframe 18. Further, the bridgingframe 18 can be disposed on the rear of thehousing 12 to locate themainboard 14 between theheat dissipating module 16 and the bridgingframe 18. A plurality of storageunit moving suits 20 can be simultaneously loaded inside the bridgingframe 18, and the embodiment installs two storageunit moving suits 20, but not limited to, inside the bridgingframe 18. A gap between the bridgingframe 18 and thehousing 12 can be utilized to dispose adatum reading module 22, such as an optical disk drive. Theheat dissipating module 16 includes a plurality offan units 24 respectively aligning with the storageunit moving suits 20 and/or themainboard 14, to dissipate heat generated from the storageunit moving suits 20 and themainboard 14 by cooling airflow of theheat dissipating module 16. - The
server apparatus 10 further includes a pass-through interface card and aslide rail structure 28, and the pass-through interface card is a RAID (redundant array of independent disks)card 32. Theslide rail structure 28 is disposed between the bridgingframe 18 and storage unit moving suit 20 (which is loaded inside a carryingframe 30 shown inFIG. 4 toFIG. 7 ), and the storageunit moving suit 20 can move relative to thebridging frame 18 by theslide rail structure 28 to pull out or to push the storageunit moving suit 20 into thehousing 12. TheRAID card 32 is disposed on the storage unit moving suit 20 (which can be shown inFIG. 4 toFIG. 7 ), and can move along theslide rail structure 28 with a movement of the storageunit moving suit 20. In the embodiment of the present invention, theRAID card 32 is disposed on a back of the storageunit moving suit 20; however, in another embodiment, theRAID card 32 can be disposed on a bottom of the storageunit moving suit 20, which means position of theRAID card 32 is varied according to position of asignal adapter 72 of the storageunit combining module 34, as shown inFIG. 8 . In addition, theRAID card 32 is electrically connected to themainboard 14 via aflexible cable 88. Theflexible cable 88 preferably detours theheat dissipating module 16, and two ends of theflexible cable 88 can be electrically connected to themainboard 14 and theRAID card 32. Due to deflection and stretchability of theflexible cable 88, the storageunit moving suit 20 can be arbitrarily pulled out of the housing 12 (or out of the bridging frame 18) for repair of inner components (such as replacing the hard disk) while theserver apparatus 10 is in normal operation - Please refer to
FIG. 1 toFIG. 7 .FIG. 4 andFIG. 5 respectively are diagrams of the storageunit moving suit 20 with the storageunit combining module 34 in different views according to the embodiment of the present invention.FIG. 6 andFIG. 7 respectively are diagrams of the storageunit moving suit 20 without the storageunit combining module 34 in different views according to the embodiment of the present invention. The storageunit moving suit 20 includes a carryingframe 30 and theRAID card 32. The carryingframe 30 includes a plurality of guidingslots 36, abottom slab 38, twolateral slabs 40 and two blockingslabs 42. Thelateral slabs 40 are symmetrically connected to sides of thebottom slab 38 to form a U-shaped accommodating space 90. The blockingslabs 42 are respectively crossed between thelateral slabs 40, such as covering a top and a rear of the accommodating space 90, to prevent the storageunit combining module 34 from being separated from the accommodating space 90. The plurality of guidingslots 36 is disposed on thebottom slab 38 and/or the top blocking slab 42 (disposed on the top of the accommodating space 90). The storageunit combining module 34 is slidably disposed inside the carryingframe 30 by the guidingslots 36. A plurality ofheat dissipating holes 44 can be respectively formed on the blockingslabs 42 and/or thebottom slab 38. - In the embodiment, the storage
unit combining module 34 can move from a front opening of the carryingframe 30 into the carryingframe 30 via the guidingslot 36 while thetop blocking slab 42 is assembled with the twolateral slabs 40, so as to connect the storageunit combining module 34 with theRAID card 32. Further, the storageunit combining module 34 can move down from a top opening of the carryingframe 30 to set into the carryingframe 30 while the accommodating space 90 is not sealed, and then thetop blocking slab 42 is assembled with the twolateral slabs 40 after the storageunit combining module 34 aligns with the corresponding guidingslot 36 to connect with theRAID card 32. Theheat dissipating holes 44 formed on the carryingframe 30 respectively align with thestorage units 54, and heat generated by each storage unit 54 (which can be shown inFIG. 8 toFIG. 11 ) of the storageunit combining module 34 can be effectively dissipated through theheat dissipating holes 44 for preferred heat dissipation efficiency. - Besides, the
top blocking slab 42 is substantially parallel to thebottom slab 38, and dimensions of thetop blocking slab 42 is smaller than dimensions of thebottom slab 38. The storage units 54 (which can be shown inFIG. 8 toFIG. 11 ) of the storageunit combining module 34 can be moved into or out of the storageunit moving suit 20 in different assembling/disassembling directions through thefront opening 301 and thetop opening 302 of the carryingframe 30 - The
RAID card 32 is disposed on a rear of the carryingframe 30, such as the rear of the accommodating space 90. A plurality ofsockets 46 is disposed on a surface of theRAID card 32 facing the carryingframe 30 for connecting with the signal adapter 72 (which can be shown inFIG. 8 andFIG. 9 ) of the storageunit combining module 34, and an amount of thesocket 46 corresponds to an amount of the storageunit combining module 34. In the embodiment, theRAID card 32 has eightsockets 46, but not limited to, and the storageunit moving suit 20 can load eight storageunit combining modules 34 accordingly. Apower connector 48 and asignal connector 50 are disposed on the other surface of theRAID card 32 opposite to the carryingframe 30. Thepower connector 48 and thesignal connector 50 are electrically connected to themainboard 14 by theflexible cable 88. The carryingframe 30 further includes ahandling component 52 disposed on a front of the carryingframe 30. A user can grasp thehandling component 52 to move the storageunit moving suit 20 relative to thebridging frame 18 along theslide rail structure 28, so as to pull the storageunit moving suit 20 out or to push the storageunit moving suit 20 into thehousing 12. - Please refer to
FIG. 1 toFIG. 11 .FIG. 8 is a diagram of the storageunit combining module 34 with thestorage unit 54 according to the embodiment of the present invention.FIG. 9 is a diagram of the storageunit combining module 34 without thestorage unit 54 according to the embodiment of the present invention.FIG. 10 is a diagram of thestorage unit 54 with astoring component 84 according to the embodiment of the present invention.FIG. 11 is a diagram of thestorage unit 54 without the storingcomponent 84 according to the embodiment of the present invention. In the embodiment, each storageunit combining module 34 can load threestorage units 54, such as thefirst storage unit 54A, thesecond storage unit 54B and thethird storage unit 54C. The storageunit combining module 34 includes abase 56, acircuit backboard 58 and thesignal adapter 72. Thebase 56 includes afirst positioning zone 60, asecond positioning zone 62, athird positioning zone 64 and anopen zone 66, and defines a first inserting direction X and a second inserting direction Y crossed each other. The first inserting direction X is preferably perpendicular to the second inserting direction Y. As shown inFIG. 9 , stretching directions of thefirst positioning zone 60 and thesecond positioning zone 62 are parallel to the first inserting direction X, and thefirst positioning zone 60 is neighbored with thesecond positioning zone 62 in the second inserting direction Y, so that thefirst positioning zone 60 and thesecond positioning zone 62 are respectively located on an upper position and a lower position. A stretching direction of thethird positioning zone 64 is parallel to the second inserting direction Y and neighbored with thefirst positioning zone 60 and thesecond positioning zone 62 in the first inserting direction X, so thethird positioning zone 64 is located on rear of thefirst positioning zone 60 and thesecond positioning zone 62, and the stretching direction of the third positioning zone is perpendicular to the stretching directions of thefirst positioning zone 60 and thesecond positioning zone 62. Theopen zone 66 is neighbored with thethird positioning zone 64. - The
first positioning zone 60, thesecond positioning zone 62 and thethird positioning zone 64 respectively are dotted patterns marked by arrows shown inFIG. 9 . A long side of the positioning zone represents the lateral side, and a short side of the positioning zone represents the edge side. It is to say, the rear edge side indicates a lower reach (such like a connecting position) of each positioning zone according to the inserting direction, and the front edge side indicates an upper reach (such like an entering position) of each positioning zone according to the inserting direction. - The circuit backboard 58 is disposed on the
base 56. The circuit backboard 58 is mainly composed on afirst section 68 and asecond section 70 bent from each other. Two sides of thefirst section 68 respectively face the rightlateral side 641 of thethird positioning zone 64 and the rear edge sides 602, 622 of thefirst positioning zone 60 and thesecond positioning zone 62. A side of thesecond section 70 faces the rear edge side 624 (which is different from the right lateral side 641) of thethird positioning zone 64. A distal end of thesecond section 70 is located within theopen zone 66. Thesignal adapter 72 is disposed on theopen zone 66 and electrically connected to thesecond section 70 for connecting with the correspondingsocket 46 of theRAID card 32. In another embodiment of the present invention, theRAID card 32 can be parallel to thebottom slab 38 and thesignal adapter 72 moves downward to insert into the correspondingsocket 46 of theRAID card 32. Generally, dimensions of thefirst positioning zone 60, thesecond positioning zone 62 and thethird positioning zone 64 are identical, a length of thefirst section 68 may be shorter than a length of thesecond section 70, so that the circuit backboard 58 can be a L-shaped slab component, thefirst section 68 is a long section of the L-shaped slab component (the circuit backboard 58), and thesecond section 70 is a short section of the L-shaped slab component (the circuit backboard 58). - The circuit backboard 58 further includes a
first connector 74, asecond connector 76 and athird connector 78. Thefirst connector 74 is disposed on a position of thefirst section 68 facing thefirst positioning zone 60. Thesecond connector 76 is disposed on a position of thefirst section 68 facing thesecond positioning zone 62. Thethird connector 78 is disposed on a position of thesecond section 70 facing thethird positioning zone 64. Thefirst connector 74, thesecond connector 76 and thethird connector 78 respectively are mid-mount connectors. The base 56 further can include a plurality of constrainingcomponents 80 respectively disposed on two opposite lateral sides of thefirst positioning zone 60, thesecond positioning zone 62 and thethird positioning zone 64. The constrainingcomponents 80 of the 60, 62, 64 are utilized to constrain a movement of theposition zones related storage units 54, which means thefirst storage unit 54A, thesecond storage unit 54B and thethird storage unit 54C can be slidably assembled with or disassembled from the base 56 through thefirst positioning zone 60, thesecond positioning zone 62 and thethird positioning zone 64 in the first inserting direction X and the second inserting direction Y, respectively. - As shown in
FIG. 8 andFIG. 9 , thefirst storage unit 54A and thesecond storage unit 54B are assembled with thefirst positioning zone 60 and thesecond positioning zone 62 in the first inserting direction X, and respectively connected to thefirst connector 74 and thesecond connector 76. Thethird storage unit 54C is assembled with thethird positioning zone 64 in the second inserting direction Y different from the first inserting direction X, and connected to thethird connector 78 accordingly. Thus, the first inserting direction X is substantially perpendicular to the second inserting direction Y. the stretching direction of thefirst section 68 can be substantially parallel to the second inserting direction Y, and the stretching direction of thesecond section 70 can be substantially parallel to the first inserting direction X. - As shown in
FIG. 10 andFIG. 11 , thestorage unit 54 may include a supportingcomponent 82, a storingcomponent 84 and adetaching component 86. The storingcomponent 84 can be a 2.5-inch hard disk, but not limited to, fixed on the supportingcomponent 82. The detachingcomponent 86 is disposed on an end of the supportingcomponent 82. While thestorage unit 54 slides into thebase 56 via the constrainingcomponent 80, the detachingcomponent 86 can be engaged with the base 56 to constrain a relative movement between the supportingcomponent 82 and the constrainingcomponent 80, so as to prevent thestorage unit 54 from being disassembled from thebase 56. For repair and/or replacement of thestorage unit 54, the detachingcomponent 86 can be activated to unlock connection modes of the 74, 76, 78, so as to disassemble therear connectors storage unit 54 from the positioning zone of thebase 56. For instance, thefirst storage unit 54A and thesecond storage unit 54B can be pulled out of the carryingframe 30 through thefront opening 301, and thethird storage unit 54C can be pulled out of the carryingframe 30 through thetop opening 302 for conveniently replacing the storingcomponent 84, as shown inFIG. 4 toFIG. 7 . - In conclusion, the
housing 12 of theserver apparatus 10 preferably can be universal standard, so that two storageunit moving suits 20 are loaded inside the bridgingframe 18, and eight storageunit combining modules 34 are disposed inside each storageunit moving suit 20. The storageunit moving suit 20 is electrically connected to themainboard 14 by theflexible cable 88, and the storageunit moving suit 20 can be pulled out of the bridgingframe 18 via theslide rail structure 28 while theserver apparatus 10 is in normal operation. The storageunit combining modules 34 are vertically disposed inside the storageunit moving suit 20 side by side. A gap is formed between the adjacent storageunit combining modules 34 for passing through the cooling airflow. Theheat dissipating holes 44 on the carryingframe 30 respectively align with thestorage units 54 of the storageunit combining modules 34 for preferred heat dissipation efficiency, and the storageunit combining module 34 of the present invention does not form vent holes on the circuit backboard 58 in the present invention. - For matching with the L-shaped circuit backboard 58 without the vent holes, the
base 56 of the storageunit combining module 34 are divided into thefirst positioning zone 60, thesecond positioning zone 62 and thethird positioning zone 64, and the L-shaped circuit backboard 58 is located between thefirst positioning zone 60, thesecond positioning zone 62 and thethird positioning zone 64. Thefirst storage unit 54A and thesecond storage unit 54B can be transversely inserted into thefirst positioning zone 60 and thesecond positioning zone 62 in the first inserting direction X, thethird storage unit 54C can be vertically inserted into thethird positioning zone 64 in the second inserting direction Y, andfirst storage unit 54A, thesecond storage unit 54B and thethird storage unit 54C are respectively connected with thefirst connector 74, thesecond connector 76 and thethird connector 78 of the L-shaped circuit backboard 58 to establish connection of themainboard 14 via theRAID card 32; therefore, the storageunit combining module 34 can dispose thethird storage unit 54C on redundant space between the bridgingframe 18 and theheat dissipating module 16. Because each of the bridging frames 18 can load two storageunit moving suits 20, each of the storageunit moving suits 20 can load eight storageunit combining modules 34, and each of the storageunit combining modules 34 can load threestorage units 54, so that the storageunit moving suit 20 has twenty-fourstorage units 54 at most and theserver apparatus 10 can simultaneously have forty-eightstorage units 54. The present invention increases loading amounts of thestorage unit 54 without changing volume and specification of theserver apparatus 10. The present invention is not limited to the above-mentioned embodiment that the bridging frames 18 has two storageunit moving suits 20 and the storageunit moving suit 20 has eight storageunit combining modules 34, and further can be applied to the server apparatus with one or more than two storage unit moving suits, or applied to the server apparatus that includes the single storage unit moving suit having the storage unit combining module with other numeral. - Comparing to the prior art, the storage unit combining module and the related storage unit moving suit of the present invention can increase the loading amounts of the storage unit while volume of the server apparatus is unvaried. The circuit backboard of the storage unit combining module does not have the vent holes to increase circuit allocation space on the circuit backboard. The hard disk connector, the power connector and the signal connector are not disposed on two surfaces of the circuit backboard, and the single-sided product process can be applied to effectively economize manufacture cost of the circuit backboard. The storage unit moving suit is connected to the mainboard by the flexible cable, so the storage unit moving suit can be pulled out and pushed into the housing for replacement of the storage units while the server apparatus is in normal operation. Each storage unit combining module is matched with three storage units, and a quantity of the hard disks within the server apparatus can be highly changeable for customized demand.
- Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Claims (34)
1. A storage unit combining module capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit, the storage unit combining module comprising:
a base, the base comprising a first positioning zone, a second positioning zone and a third positioning zone and defining a first inserting direction and a second inserting direction crossed each other, stretching directions of the first positioning zone and the second positioning zone being parallel to the first inserting direction and the first positioning zone being neighbored with the second positioning zone in the second inserting direction, a stretching direction of the third positioning zone being parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction; and
a circuit backboard disposed on the base, the circuit backboard comprising a first section and a second section connected to each other, the first section being located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretching toward a direction opposite to the second inserting direction, the second section stretching toward the first inserting direction and being neighbored with a side of the third positioning zone, the circuit backboard comprising:
a first connector disposed on a position of the first section neighbored with and facing the first positioning zone;
a second connector disposed on a position of the first section neighbored with and facing the second positioning zone;
a third connector disposed on a position of the second section neighbored with and facing the third positioning zone; and
a signal adapter for connecting with a pass-through interface card;
wherein, the first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone, the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone, and the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
2. The storage unit combining module of claim 1 , wherein the base comprises a plurality of constraining components respectively disposed on two opposite lateral sides of the first positioning zone, the second positioning zone and the third positioning zone, to constrain movements of the first storage unit, the second storage unit and the third storage unit except moving in the first inserting direction and the second inserting direction.
3. The storage unit combining module of claim 2 , wherein the first storage unit comprises a supporting component, a storing component and a detaching component, the storing component and the detaching component are disposed on the supporting component, the supporting component slides relative to the base via the constraining components and is engaged with the base by the detaching component to constrain a relative movement between the supporting component and the constraining components.
4. The storage unit combining module of claim 1 , wherein the circuit backboard is a L-shaped slab component, the first section is a long section of the L-shaped slab component, and the second section is a short section of the L-shaped slab component.
5. The storage unit combining module of claim 1 , wherein the first inserting direction is substantially perpendicular to the second inserting direction.
6. The storage unit combining module of claim 1 , wherein the first connector, the second connector and the third connected are mid-mount connectors.
7. A storage unit moving suit, comprising:
a carrying frame, having an accommodating space;
a pass-through interface card disposed on a side of the carrying frame; and
at least one storage unit combining module disposed inside the accommodating space of the carrying frame and capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit, the at least one storage unit combining module comprising:
a base, the base comprising a first positioning zone, a second positioning zone and a third positioning zone and defining a first inserting direction and a second inserting direction crossed each other, stretching directions of the first positioning zone and the second positioning zone being parallel to the first inserting direction and the first positioning zone being neighbored with the second positioning zone in the second inserting direction, a stretching direction of the third positioning zone being parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction; and
a circuit backboard disposed on the base, the circuit backboard comprising a first section and a second section connected to each other, the first section being located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretching toward a direction opposite to the second inserting direction, the second section stretching toward the first inserting direction and being neighbored with a side of the third positioning zone, the circuit backboard comprising:
a first connector disposed on a position of the first section neighbored with and facing the first positioning zone;
a second connector disposed on a position of the first section neighbored with and facing the second positioning zone;
a third connector disposed on a position of the second section neighbored with and facing the third positioning zone; and
a signal adapter for connecting with the pass-through interface card;
wherein, the first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone, the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone, and the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
8. The storage unit moving suit of claim 7 , wherein the base comprises a plurality of constraining components respectively disposed on two opposite lateral sides of the first positioning zone, the second positioning zone and the third positioning zone, to constrain movements of the first storage unit, the second storage unit and the third storage unit except moving in the first inserting direction and the second inserting direction.
9. The storage unit moving suit of claim 8 , wherein the first storage unit comprises a supporting component, a storing component and a detaching component, the storing component and the detaching component are disposed on the supporting component, the supporting component slides relative to the base via the constraining components and is engaged with the base by the detaching component to constrain a relative movement between the supporting component and the constraining components.
10. The storage unit moving suit of claim 7 , wherein the circuit backboard is a L-shaped slab component, the first section is a long section of the L-shaped slab component, and the second section is a short section of the L-shaped slab component.
11. The storage unit moving suit of claim 7 , wherein the first inserting direction is substantially perpendicular to the second inserting direction.
12. The storage unit moving suit of claim 7 , wherein the first connector, the second connector and the third connected are mid-mount connectors.
13. The storage unit moving suit of claim 7 , wherein the carrying frame comprises at least one guiding slot, the at least one storage unit combining module utilizes the at least one guiding slot to slidably dispose inside the accommodating space of the carrying frame.
14. The storage unit moving suit of claim 13 , wherein the carrying frame further comprises a bottom slab, two lateral slabs and two blocking slabs, the two lateral slabs are respectively connected to two sides of the bottom slab, the two blocking slabs are respectively crossed between the two lateral slabs, the at least one guiding slot is disposed on the bottom slab and/or one of the two blocking slabs.
15. The storage unit moving suit of claim 14 , wherein a plurality of heat dissipating holes is respectively formed on the two blocking slabs and/or the bottom slab.
16. The storage unit moving suit of claim 7 , wherein the carrying frame further comprises a handling component.
17. The storage unit moving suit of claim 7 , wherein a plurality of sockets is disposed on a surface of the pass-through interface card for connecting with the signal adapter, an amount of the socket corresponds to an amount of the storage unit combining module.
18. The storage unit moving suit of claim 7 , wherein the pass-through interface card is a RAID (redundant array of independent disks) card.
19. The storage unit moving suit of claim 7 , wherein the pass-through interface card further comprises a power connector and a signal connector electrically connected to a mainboard of a server apparatus via a flexible cable.
20. A server apparatus, comprising:
a housing;
a mainboard disposed inside the housing; and
at least one storage unit moving suit disposed inside the housing and capable of being pulled or pushed relative to the housing, the at least one storage unit moving suit comprising:
a carrying frame, having an accommodating space;
a pass-through interface card disposed on a side of the carrying frame; and
at least one storage unit combining module disposed inside the accommodating space of the carrying frame and capable of simultaneously loading a first storage unit, a second storage unit and a third storage unit, the at least one storage unit combining module comprising:
a base, the base comprising a first positioning zone, a second positioning zone and a third positioning zone and defining a first inserting direction and a second inserting direction crossed each other, stretching directions of the first positioning zone and the second positioning zone being parallel to the first inserting direction and the first positioning zone being neighbored with the second positioning zone in the second inserting direction, a stretching direction of the third positioning zone being parallel to the second inserting direction and neighbored with identical lateral sides of the first positioning zone and the second positioning zone in the first inserting direction; and
a circuit backboard disposed on the base, the circuit backboard comprising a first section and a second section connected to each other, the first section being located between the third positioning zone and the identical lateral sides of the first positioning zone and the second positioning zone and stretching toward a direction opposite to the second inserting direction, the second section stretching toward the first inserting direction and being neighbored with a side of the third positioning zone, the circuit backboard comprising:
a first connector disposed on a position of the first section neighbored with and facing the first positioning zone;
a second connector disposed on a position of the first section neighbored with and facing the second positioning zone;
a third connector disposed on a position of the second section neighbored with and facing the third positioning zone; and
a signal adapter for connecting with the pass-through interface card;
wherein, the first storage unit is adapted to connect with the first connector in the first inserting direction through the first positioning zone, the second storage unit is adapted to connect with the second connector in the first inserting direction through the second positioning zone, and the third storage unit is adapted to connect with the third connector in the second inserting direction through the third positioning zone.
21. The server apparatus of claim 20 , wherein the base comprises a plurality of constraining components respectively disposed on two opposite lateral sides of the first positioning zone, the second positioning zone and the third positioning zone, to constrain movements of the first storage unit, the second storage unit and the third storage unit except moving in the first inserting direction and the second inserting direction.
22. The server apparatus of claim 21 , wherein the first storage unit comprises a supporting component, a storing component and a detaching component, the storing component and the detaching component are disposed on the supporting component, the supporting component slides relative to the base via the constraining components and is engaged with the base by the detaching component to constrain a relative movement between the supporting component and the constraining components.
23. The server apparatus of claim 20 , wherein the circuit backboard is a L-shaped slab component, the first section is a long section of the L-shaped slab component, and the second section is a short section of the L-shaped slab component.
24. The server apparatus of claim 20 , wherein the first inserting direction is substantially perpendicular to the second inserting direction.
25. The server apparatus of claim 20 , wherein the first connector, the second connector and the third connected are mid-mount connectors.
26. The server apparatus of claim 20 , wherein the carrying frame comprises at least one guiding slot, the at least one storage unit combining module utilizes the at least one guiding slot to slidably dispose inside the accommodating space of the carrying frame.
27. The server apparatus of claim 26 , wherein the carrying frame further comprises a bottom slab, two lateral slabs and two blocking slabs, the two lateral slabs are respectively connected to two sides of the bottom slab, the two blocking slabs are respectively crossed between the two lateral slabs, the at least one guiding slot is disposed on the bottom slab and/or one of the two blocking slabs.
28. The server apparatus of claim 27 , wherein a plurality of heat dissipating holes is respectively formed on the two blocking slabs and/or the bottom slab.
29. The server apparatus of claim 20 , wherein the carrying frame further comprises a handling component.
30. The server apparatus of claim 20 , wherein a plurality of sockets is disposed on a surface of the pass-through interface card for connecting with the signal adapter, an amount of the socket corresponds to an amount of the storage unit combining module.
31. The server apparatus of claim 20 , wherein the pass-through interface card further comprises a power connector and a signal connector electrically connected to the mainboard via a flexible cable.
32. The server apparatus of claim 20 , wherein the pass-through interface card is a RAID (redundant array of independent disks) card.
33. The server apparatus of claim 20 , further comprising:
a bridging frame disposed inside the housing, a plurality of storage unit moving suits being detachably loaded inside the bridging frame.
34. The server apparatus of claim 33 , further comprising:
a slide rail structure disposed between the carrying frame and the bridging frame, the plurality of storage unit moving suits being pulled or pushed relative to the housing via the slide rail structure.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US15/942,590 USRE48588E1 (en) | 2015-04-16 | 2018-04-02 | Storage unit combining module capable of loading several storage units, storage unit moving suit and related server apparatus having several storage unit combining modules |
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| TW104112274A TWI590741B (en) | 2015-04-16 | 2015-04-16 | Storage unit combining module capable of loading several storage units, storage unit moving suit and related server apparatus having several storage unit combining modules |
| TW104112274A | 2015-04-16 | ||
| TW104112274 | 2015-04-16 |
Related Child Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US15/942,590 Reissue USRE48588E1 (en) | 2015-04-16 | 2018-04-02 | Storage unit combining module capable of loading several storage units, storage unit moving suit and related server apparatus having several storage unit combining modules |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| US9462726B1 US9462726B1 (en) | 2016-10-04 |
| US20160309613A1 true US20160309613A1 (en) | 2016-10-20 |
Family
ID=56996980
Family Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US14/841,716 Ceased US9462726B1 (en) | 2015-04-16 | 2015-09-01 | Storage unit combining module capable of loading several storage units, storage unit moving suit and related server apparatus having several storage unit combining modules |
| US15/942,590 Active USRE48588E1 (en) | 2015-04-16 | 2018-04-02 | Storage unit combining module capable of loading several storage units, storage unit moving suit and related server apparatus having several storage unit combining modules |
Family Applications After (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US15/942,590 Active USRE48588E1 (en) | 2015-04-16 | 2018-04-02 | Storage unit combining module capable of loading several storage units, storage unit moving suit and related server apparatus having several storage unit combining modules |
Country Status (3)
| Country | Link |
|---|---|
| US (2) | US9462726B1 (en) |
| CN (1) | CN106200764B (en) |
| TW (1) | TWI590741B (en) |
Families Citing this family (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10412851B2 (en) * | 2017-02-23 | 2019-09-10 | Quanta Computer Inc. | Inclined storage array for improved cooling |
| CN109244778B (en) * | 2018-09-11 | 2020-09-15 | 苏州卓诚钛设备有限公司 | Vertical adjustable signal switching device |
| CN112331240B (en) | 2019-08-05 | 2022-08-12 | 富联精密电子(天津)有限公司 | Storage system and storage module |
| TWI709842B (en) * | 2019-08-05 | 2020-11-11 | 鴻齡科技股份有限公司 | Storage system |
| TWM595869U (en) * | 2020-02-14 | 2020-05-21 | 立端科技股份有限公司 | Quick release adapter |
| JP7119053B2 (en) * | 2020-11-25 | 2022-08-16 | 株式会社東芝 | Storage unit and information processing equipment |
Family Cites Families (26)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR2704350B1 (en) * | 1993-04-22 | 1995-06-02 | Bull Sa | Physical structure of a mass memory subsystem. |
| US5764481A (en) * | 1996-10-23 | 1998-06-09 | Compaq Computer Corporation | Computer docking station with half-height bays and associated security system |
| US6078503A (en) * | 1997-06-30 | 2000-06-20 | Emc Corporation | Partitionable cabinet |
| KR100241596B1 (en) * | 1997-11-24 | 2000-02-01 | 윤종용 | A computer system for pursuing raid by using on-board scsi |
| US6459571B1 (en) * | 2000-06-15 | 2002-10-01 | Bull Hn Information Systems Inc. | Packaging system for mass memory units |
| US6535381B2 (en) * | 2001-03-22 | 2003-03-18 | Intel Corporation | Hot swap drawer assembly |
| US6618255B2 (en) * | 2002-02-05 | 2003-09-09 | Quantum Corporation | Quick release fastening system for storage devices |
| US20110090633A1 (en) * | 2002-09-23 | 2011-04-21 | Josef Rabinovitz | Modular sata data storage device assembly |
| US20040088482A1 (en) * | 2002-11-04 | 2004-05-06 | Tanzer Herbert J. | Systems for storing data |
| TWM246677U (en) * | 2003-12-05 | 2004-10-11 | Shuttle Inc | Arrangement of framework for host computer |
| US7362565B2 (en) * | 2004-09-21 | 2008-04-22 | Dot Hill Systems Corporation | Disk drive support system |
| US7196902B2 (en) * | 2005-01-31 | 2007-03-27 | Hitachi Global Storage Technologies B.V. | Disk drive coupling apparatus for rigidly coupling a disk drive to a chassis of a computer |
| US20060198095A1 (en) * | 2005-03-03 | 2006-09-07 | Lite-On It Corp. | Self-lock assembly of a disk drive and a chassis |
| US20070230109A1 (en) * | 2006-03-31 | 2007-10-04 | Spectra Logic Corporation | High density array system with active storage blades |
| US7566104B2 (en) * | 2006-05-08 | 2009-07-28 | Lian Li Industrial Co., Ltd. | Bi-directional side emplacing computer casing |
| US7724529B2 (en) * | 2007-03-30 | 2010-05-25 | Hitachi, Ltd. | Disk array system |
| FI124138B (en) * | 2008-04-21 | 2014-03-31 | Smartrac Ip Bv | A method of making a roll of web and a roll of web |
| CN102044279B (en) * | 2009-10-20 | 2014-12-03 | 南通奥普机械工程有限公司 | Hard disk fixing device |
| US9019708B2 (en) * | 2011-08-25 | 2015-04-28 | Lsi Corporation | Apparatus and systems having storage devices in a side accessible drive sled |
| CN103309418A (en) * | 2012-03-14 | 2013-09-18 | 鸿富锦精密工业(深圳)有限公司 | Electronic device |
| CN103677099A (en) * | 2012-09-18 | 2014-03-26 | 英业达科技有限公司 | Storage server rack system and storage server host computer |
| US9456515B2 (en) * | 2013-01-23 | 2016-09-27 | Seagate Technology Llc | Storage enclosure with independent storage device drawers |
| US9274548B2 (en) * | 2013-03-01 | 2016-03-01 | Seagate Technology Llc | Electronic apparatus comprising backplane and methods of assembling and disassembling |
| TWM479492U (en) * | 2013-12-18 | 2014-06-01 | Echostreams Innovative Solutions Llc | Server chassis |
| US9491885B2 (en) * | 2014-09-30 | 2016-11-08 | Seagate Technology Llc | Multiple drive sled in a storage array |
| TWI562710B (en) * | 2014-11-04 | 2016-12-11 | Quanta Comp Inc | Server device having one rack unit in height |
-
2015
- 2015-04-16 TW TW104112274A patent/TWI590741B/en active
- 2015-04-30 CN CN201510214686.9A patent/CN106200764B/en active Active
- 2015-09-01 US US14/841,716 patent/US9462726B1/en not_active Ceased
-
2018
- 2018-04-02 US US15/942,590 patent/USRE48588E1/en active Active
Also Published As
| Publication number | Publication date |
|---|---|
| CN106200764A (en) | 2016-12-07 |
| CN106200764B (en) | 2019-04-23 |
| US9462726B1 (en) | 2016-10-04 |
| USRE48588E1 (en) | 2021-06-08 |
| TWI590741B (en) | 2017-07-01 |
| TW201639436A (en) | 2016-11-01 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| USRE48588E1 (en) | Storage unit combining module capable of loading several storage units, storage unit moving suit and related server apparatus having several storage unit combining modules | |
| US7145776B2 (en) | Midplane-less data storage enclosure | |
| US7236361B2 (en) | Fan assembly for installing and removing fans individually and collectively | |
| CN107885283B (en) | Server device | |
| CN206097038U (en) | Fan module | |
| US8508928B2 (en) | Incorporation of multiple, 2.5-inch or smaller hard disk drives into a single drive carrier with a single midplane or baseboard connector | |
| US9746886B2 (en) | Solid state storage system | |
| US11856725B2 (en) | Device carriers | |
| US20130120927A1 (en) | Extractable storage apparatus for electronic devices and electronic equipment therewith | |
| TWI487469B (en) | Hard disk combination frame | |
| US20150181760A1 (en) | Axially aligned electronic chassis | |
| US10028401B2 (en) | Sidewall-accessible dense storage rack | |
| US10025357B2 (en) | Enclosure system for computing equipment | |
| CN112262359A (en) | SSD multiplier having structure in which multiple sized SSD memory cards are laminated in horizontal sliding manner and vibration-resistant characteristic | |
| CN110419149A (en) | Flexible installing electrical connector | |
| JP2004503890A (en) | Packaging system for single or multiple mass memory units with different form factors | |
| CN102012727A (en) | Dustproof computer case | |
| US20140273556A1 (en) | High-density multidirectional midplane | |
| US7145770B1 (en) | Method and apparatus of packaging disk drives in a data storage system | |
| KR20170006240A (en) | Ssd doubler | |
| US8199483B2 (en) | Optical disc drive retention assembly and electronic device utilizing the same | |
| US7675744B2 (en) | Air distribution system compatible with disparate data storage systems | |
| CN106020371A (en) | Data Accessor Fixing Mechanism | |
| KR20160010731A (en) | Apparatus for fixing connector of output terminal in power supply |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| AS | Assignment |
Owner name: WISTRON CORPORATION, TAIWAN Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:HUANG, PEI-LIN;LEE, KUEN-LIN;CHEN, YI-SHAN;AND OTHERS;REEL/FRAME:036463/0066 Effective date: 20150830 |
|
| STCF | Information on status: patent grant |
Free format text: PATENTED CASE |
|
| RF | Reissue application filed |
Effective date: 20180402 |
|
| MAFP | Maintenance fee payment |
Free format text: PAYMENT OF MAINTENANCE FEE, 4TH YEAR, LARGE ENTITY (ORIGINAL EVENT CODE: M1551); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY Year of fee payment: 4 |