US20150337816A1 - Eccentric roundel structure for compressing diaphragm pump with multiple effects - Google Patents
Eccentric roundel structure for compressing diaphragm pump with multiple effects Download PDFInfo
- Publication number
- US20150337816A1 US20150337816A1 US14/699,373 US201514699373A US2015337816A1 US 20150337816 A1 US20150337816 A1 US 20150337816A1 US 201514699373 A US201514699373 A US 201514699373A US 2015337816 A1 US2015337816 A1 US 2015337816A1
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- Prior art keywords
- eccentric
- roundel
- mount
- piston
- eccentric roundel
- 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.)
- Abandoned
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- 239000012528 membrane Substances 0.000 claims description 70
- 238000005086 pumping Methods 0.000 claims description 23
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 claims description 14
- 238000005192 partition Methods 0.000 claims description 4
- 239000013013 elastic material Substances 0.000 claims description 2
- 238000007789 sealing Methods 0.000 claims 1
- 230000008901 benefit Effects 0.000 description 8
- 238000006073 displacement reaction Methods 0.000 description 7
- 238000007906 compression Methods 0.000 description 6
- 238000004519 manufacturing process Methods 0.000 description 5
- 239000000314 lubricant Substances 0.000 description 4
- 230000002035 prolonged effect Effects 0.000 description 4
- 238000001223 reverse osmosis Methods 0.000 description 4
- 230000032683 aging Effects 0.000 description 3
- 230000003292 diminished effect Effects 0.000 description 3
- 238000000746 purification Methods 0.000 description 3
- 238000006243 chemical reaction Methods 0.000 description 2
- 238000004891 communication Methods 0.000 description 2
- 238000003780 insertion Methods 0.000 description 2
- 230000037431 insertion Effects 0.000 description 2
- 239000008399 tap water Substances 0.000 description 2
- 235000020679 tap water Nutrition 0.000 description 2
- 230000008878 coupling Effects 0.000 description 1
- 238000010168 coupling process Methods 0.000 description 1
- 238000005859 coupling reaction Methods 0.000 description 1
- 230000003247 decreasing effect Effects 0.000 description 1
- 230000013011 mating Effects 0.000 description 1
- 238000000926 separation method Methods 0.000 description 1
- 238000004904 shortening Methods 0.000 description 1
- 230000002459 sustained effect Effects 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B43/00—Machines, pumps, or pumping installations having flexible working members
- F04B43/02—Machines, pumps, or pumping installations having flexible working members having plate-like flexible members, e.g. diaphragms
- F04B43/04—Pumps having electric drive
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B23/00—Pumping installations or systems
- F04B23/04—Combinations of two or more pumps
- F04B23/06—Combinations of two or more pumps the pumps being all of reciprocating positive-displacement type
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B17/00—Pumps characterised by combination with, or adaptation to, specific driving engines or motors
- F04B17/03—Pumps characterised by combination with, or adaptation to, specific driving engines or motors driven by electric motors
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B3/00—Machines or pumps with pistons coacting within one cylinder, e.g. multi-stage
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B43/00—Machines, pumps, or pumping installations having flexible working members
- F04B43/0009—Special features
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B43/00—Machines, pumps, or pumping installations having flexible working members
- F04B43/0009—Special features
- F04B43/0045—Special features with a number of independent working chambers which are actuated successively by one mechanism
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B43/00—Machines, pumps, or pumping installations having flexible working members
- F04B43/0009—Special features
- F04B43/0054—Special features particularities of the flexible members
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B53/00—Component parts, details or accessories not provided for in, or of interest apart from, groups F04B1/00 - F04B23/00 or F04B39/00 - F04B47/00
- F04B53/10—Valves; Arrangement of valves
- F04B53/12—Valves; Arrangement of valves arranged in or on pistons
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B53/00—Component parts, details or accessories not provided for in, or of interest apart from, groups F04B1/00 - F04B23/00 or F04B39/00 - F04B47/00
- F04B53/14—Pistons, piston-rods or piston-rod connections
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B53/00—Component parts, details or accessories not provided for in, or of interest apart from, groups F04B1/00 - F04B23/00 or F04B39/00 - F04B47/00
- F04B53/16—Casings; Cylinders; Cylinder liners or heads; Fluid connections
Definitions
- the present invention relates to an eccentric roundel structure for a compressing diaphragm pump used in a reverse osmosis (RO) purification system, and particularly to a compressing diaphragm pump with a sloped top ring that can eliminate the oblique pulling and squeezing phenomena of the pump so that the service lifespan of the compressing diaphragm pump and the durability of key components therein are prolonged.
- RO reverse osmosis
- a brushed motor 10 with an output shaft 11 includes a motor upper chassis 30 , a wobble plate with an integral protruding cam-lobed shaft 40 , an eccentric roundel mount 50 , a pump head body 60 , a diaphragm membrane 70 , three pumping pistons 80 , a piston valvular assembly 90 and a pump head cover 20 .
- the motor upper chassis 30 includes a bearing 31 through which an output shaft 11 of the motor 10 extends.
- the motor upper chassis 30 also includes an upper annular rib ring 32 with several fastening bores 33 evenly and circumferentially disposed in a rim of the upper annular rib ring 32
- the wobble plate 40 includes a shaft coupling hole 41 through which the corresponding motor output shaft 11 of the motor 10 extends.
- the eccentric roundel mount 50 includes a central bearing 51 at the bottom thereof for receiving the corresponding wobble plate 40 .
- Three tubular eccentric roundels 52 are evenly and circumferentially disposed on the eccentric roundel mount 50 .
- Each tubular eccentric roundel 52 has a horizontal top face 53 , a female-threaded bore 54 and an annular positioning groove 55 formed in the top face thereof, as well as a rounded shoulder 57 created at the intersection of the horizontal top face 53 and a vertical flank 56 .
- the pump head body 60 covers the upper annular rib ring 32 of the motor upper chassis 30 to encompass the wobble plate 40 and eccentric roundel mount 50 therein, and includes three operating holes 61 evenly and circumferentially disposed therein.
- Each operating hole 61 has an inner diameter that is slightly bigger than the outer diameter of the corresponding tubular eccentric roundel 52 in the eccentric roundel mount 50 for receiving each corresponding tubular eccentric roundel 52 respectively, a lower annular flange 62 formed thereunder for mating with corresponding upper annular rib ring 32 of the motor upper chassis 30 , and several fastening bores 63 evenly disposed around a circumference of the pump head body 60 .
- the diaphragm membrane 70 which is extrusion-molded from a semi-rigid elastic material and placed on the pump head body 60 , includes a pair of parallel rims, including outer raised rim 71 and inner raised rim 72 , as well as three evenly spaced radial raised partition ribs 73 arranged such that each end of the radial raised partition ribs 73 connects with the inner raised rim 72 , thereby forming three equivalent piston acting zones 74 partitioned by the radial raised partition ribs 73 .
- Each piston acting zone 74 has an acting zone hole 75 created therein in correspondence with a respective female-threaded bore 54 in the tubular eccentric roundel 52 of the eccentric roundel mount 50 , and an annular positioning protrusion 76 for each acting zone hole 75 is formed at the bottom side of the diaphragm membrane 70 (as shown in FIGS. 8 and 9 ).
- Each pumping piston 80 is respectively disposed in a respective one of the corresponding piston acting zones 74 of the diaphragm membrane 70 and has a tiered hole 81 extending therethrough.
- Piston valvular assembly 90 covers the diaphragm membrane 70 and includes a downwardly extending raised rim 91 for insertion between the outer raised rim 71 and inner raised rim 72 in the diaphragm membrane 70 , and a central dish-shaped round outlet mount 92 having a central positioning bore 93 with three equivalent sectors, each of which contains multiple evenly circumferentially-located outlet ports 95 .
- the piston valvular assembly 90 also includes a T-shaped plastic anti-backflow valve 94 with a central positioning shank, and three circumferentially-adjacent inlet mounts 96 .
- Each of the circumferentially-adjacent inlet mounts 96 includes multiple evenly circumferentially-located inlet ports 97 and an inverted central piston disk 98 respectively so that each piston disk 98 serves as a valve for each corresponding group of multiple inlet ports 97 .
- the central positioning shank of the plastic anti-backflow valve 94 mates with the central positioning bore 93 of the central outlet mount 92 such that multiple outlet ports 95 in the central round outlet mount 92 are in communication with the three inlet mounts 96 .
- a hermetically sealed preliminary-compression chamber 26 is formed between each inlet mount 96 and a corresponding piston acting zone 74 in the diaphragm membrane 70 upon insertion of the downwardly extending raised rim 91 into the gap ring between the outer raised rim 71 and inner raised rim 72 of diaphragm membrane 70 , such that one end of each preliminary-compressing chamber 26 is in communication with each of the corresponding inlet ports 97 (as shown in the enlarged portion of FIG. 10 ).
- the pump head cover 20 which covers the pump head body 60 to encompass the piston valvular assembly 90 , pumping piston 80 and diaphragm membrane 70 therein, includes a water inlet orifice 21 , a water outlet orifice 22 , and several fastening bores 23 .
- a tiered rim 24 and an annular rib ring 25 are disposed in the bottom inside of the pump head cover 20 such that the outer rim for the assembly of diaphragm membrane 70 and piston valvular assembly 90 can be hermetically attached to the tiered rim 24 (as shown in the enlarged portion of FIG. 11 ).
- a high-compression chamber 27 is formed between the cavity formed by the inside wall of the annular rib ring 25 and the central outlet mount 92 of the piston valvular assembly 90 when the bottom of the annular rib ring 25 closely covers the rim of the central outlet mount 92 (as shown in FIG. 10 ).
- FIGS. 11 and 12 are illustrative figures for the operation of the conventional compressing diaphragm pump of FIGS. 1-10 .
- the wobble plate 40 is driven to rotate by the motor output shaft 11 so that the three tubular eccentric roundels 52 on the eccentric roundel mount 50 constantly move in a sequential up-and-down reciprocal stroke.
- the three pumping pistons 80 and three piston acting zones 74 in the diaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of the three tubular eccentric roundels 52 to move in an up-and-down displacement.
- the squeezing phenomenon occurs because, among all of the distributed components of the rebounding force Fs, the maximum component force is exerted at the contacting bottom position P of the diaphragm membrane 70 with the rounded shoulder 57 of the horizontal top face 53 in the tubular eccentric roundel 52 so that the squeezing phenomenon at the bottom position P is also maximum, as shown in FIG. 18 .
- each bottom position P of the piston acting zone 74 of the diaphragm membrane 70 suffers from the squeezing phenomenon at a frequency of four times per second. Under such circumstances, the bottom position P of the diaphragm membrane 70 is always the first broken place for the entire conventional compressing diaphragm pump, which is an essential cause of not only shortening the service lifespan but also terminating the normal function of the conventional compressing diaphragm pump.
- An objective of the present invention is to provide a compressing diaphragm pump, in which the eccentric roundel structure is a cylindrical or inverted frustoconical eccentric roundel disposed in an eccentric roundel mount, the cylindrical or inverted frustoconical eccentric roundel including an annular positioning groove, a vertical or frustoconical flank, and an annular top surface portion that is inclined relative to horizontal to form a sloped top ring between the annular positioning groove and the vertical flank.
- the sloped top ring By means of the sloped top ring, the high-frequency oblique pulling and squeezing phenomena that occurs in a conventional tubular eccentric roundel are completely eliminated because the sloped top ring flatly attaches to the bottom area of a corresponding piston acting zone of the diaphragm membrane.
- Yet another objective of the present invention is to provide an eccentric roundel for a compressing diaphragm pump, in which the eccentric roundel structure is a cylindrical or inverted frustoconical eccentric roundel disposed on an eccentric roundel mount, the eccentric roundel including an annular positioning groove, a vertical or frustoconical flank, and a sloped top ring formed between the annular positioning groove and the vertical or frustoconical flank.
- FIG. 1 is a perspective assembled view of a conventional compressing diaphragm pump.
- FIG. 2 is a perspective exploded view of a conventional compressing diaphragm pump.
- FIG. 3 is a perspective view of an eccentric roundel mount for the conventional compressing diaphragm pump.
- FIG. 4 is a cross sectional view taken against the section line 4 - 4 from previous FIG. 3 .
- FIG. 5 is a top view of a pump head body for the conventional compressing diaphragm pump.
- FIG. 6 is a cross sectional view taken against the section line 6 - 6 from previous FIG. 5 .
- FIG. 7 is a perspective view of a diaphragm membrane for the conventional compressing diaphragm pump.
- FIG. 8 is a cross sectional view taken against the section line 8 - 8 from previous FIG. 7 .
- FIG. 9 is a bottom view of a diaphragm membrane for the conventional compressing diaphragm pump.
- FIG. 10 is a cross sectional view taken against the section line 10 - 10 from previous FIG. 1 .
- FIG. 11 is a first operation illustrative view of a conventional compressing diaphragm pump.
- FIG. 12 is a second operation illustrative view of a conventional compressing diaphragm pump.
- FIG. 13 is a third operation illustrative view of a conventional compressing diaphragm pump.
- FIG. 14 is a partially enlarged view taken from circled-portion-a of previous FIG. 13 .
- FIG. 15 is a perspective exploded view of a first exemplary embodiment of the present invention.
- FIG. 16 is a perspective view of an eccentric roundel mount in the first exemplary embodiment of the present invention.
- FIG. 17 is a cross sectional view taken against the section line 17 - 17 from previous FIG. 16 .
- FIG. 18 is an assembled cross sectional view of the first exemplary embodiment of the present invention.
- FIG. 19 is an operation illustrative view of the first exemplary embodiment of the present invention.
- FIG. 20 is a partially enlarged view taken from circled-portion-a of previous FIG. 19 .
- FIG. 21 is an illustrative view showing a comparison between the eccentric cylindrical roundel acting on the diaphragm membrane of the conventional compressing diaphragm pump and that of the first exemplary embodiment of the present invention.
- FIG. 22 is a perspective view for eccentric roundel mount in the second exemplary embodiment of the present invention.
- FIG. 23 is a cross sectional view taken against the section line 23 - 23 from previous FIG. 22 .
- FIG. 24 is an assembled cross sectional view for the second exemplary embodiment of the present invention.
- FIG. 25 is an operation illustrative view of the second exemplary embodiment of the present invention.
- FIG. 26 is a partially enlarged view taken from circled-portion-a of previous FIG. 25 .
- FIG. 27 is an illustrative view showing a comparison between the eccentric cylindrical roundel acting on the diaphragm membrane for the conventional compressing diaphragm pump and for the present invention in the second exemplary embodiment of the present invention.
- FIG. 28 is a perspective exploded view for the third exemplary embodiment of the present invention.
- FIG. 29 is a cross sectional view taken against the section line 29 - 29 from previous FIG. 28 .
- FIG. 30 is a perspective assembled view for the third exemplary embodiment of the present invention.
- FIG. 31 is a cross sectional view taken against the section line 31 - 31 from previous FIG. 30 .
- FIG. 32 is an assembled cross sectional view for the third exemplary embodiment of the present invention.
- FIG. 33 is an operation illustrative view for the third exemplary embodiment of the present invention.
- FIG. 34 is a partially enlarged view taken from circled-portion-a of previous FIG. 33 .
- FIG. 35 is an illustrative view showing a comparison between the eccentric cylindrical roundel acting on the diaphragm membrane for the conventional compressing diaphragm pump and for the present invention in the third exemplary embodiment of the present invention.
- FIGS. 15 through 18 are illustrative figures of an eccentric roundel structure for compressing diaphragm pump according to a first exemplary embodiment of the present invention.
- the eccentric roundel structure is a cylindrical eccentric roundel 52 that is mounted on the eccentric roundel mount 50 .
- the cylindrical eccentric roundel includes an annular top surface portion that is inclined relative to horizontal to form a sloped top ring 58 between the annular positioning groove 55 and a vertical flank 56 , the sloped top ring 58 replacing the conventional rounded shoulder 57 in each tubular eccentric roundel 52 of the eccentric roundel mount 50 .
- FIGS. 19 through 21 are illustrative figures for the operation of the eccentric roundel structure for compressing diaphragm pump” in the first exemplary embodiment of the present invention.
- the wobble plate 40 is driven to rotate by the motor output shaft 11 so that the three cylindrical eccentric roundels 52 on the eccentric roundel mount 50 constantly move in a sequential up-and-down reciprocal stroke.
- the three piston acting zones 74 in the diaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of three cylindrical eccentric roundels 52 to move in up-and-down displacement.
- the distribution of components of the rebounding force Fs is more linear because the sloped top ring 58 therein flatly attaches to the bottom area of the piston acting zone 74 for the diaphragm membrane 70 , so that the oblique pulling action is almost eliminated due to reduction in the squeezing phenomenon 1920 .
- the rebounding force Fs is inversely proportional to the contact area so that the magnitudes of the distributed components of the rebounding force Fs for the cylindrical eccentric roundels 52 of the present invention, as shown in FIG. 20 , are substantially less than the magnitudes of the distributed components of the rebounding force Fs for the conventional tubular eccentric roundel 52 shown in FIG. 14 .
- the improved distribution linearity and decreased magnitudes of the rebounding force components Fs are the result of forming the sloped top ring 58 between the annular positioning groove 55 and the vertical flank 56 in the eccentric roundel mount 50 , and in turn provides at least the following advantages.
- the improved force component distribution eliminates susceptibility to breakage of the diaphragm membrane 70 caused by the high frequency squeezing phenomena, that occurs in the conventional arrangement as a result of the rounded shoulder 57 in the otherwise horizontal top face 53 of the tubular eccentric roundel 52 .
- Test results carried out on a prototype of the present invention are as follows.
- FIGS. 22 through 24 are illustrative figures of an eccentric roundel structure for compressing diaphragm pump in the second exemplary embodiment of the present invention
- the eccentric roundel structure is an inverted frustoconical eccentric roundel 502 , again provided on an eccentric roundel mount 500 .
- the frustoconical eccentric roundel 502 includes an integral inverted frustoconical flank 506 and a sloped top ring 508 such that the outer diameter of the frustoconical eccentric roundel 502 is enlarged but still smaller than the inner diameter of the operating hole 61 in the pump head body 60 , the sloped top ring 508 extending between an annular positioning groove 505 and the inverted frustoconical flank 506 .
- FIGS. 25 through 27 are illustrative figures showing the modified operation of the eccentric roundel structure for compressing diaphragm pump in the second exemplary embodiment of the present invention.
- the wobble plate 40 is driven to rotate by the motor output shaft 11 so that the three frustoconical eccentric roundels 502 on the eccentric roundel mount 500 constantly move in a sequential up-and-down reciprocal stroke.
- the three piston acting zones 74 in the diaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of the three frustoconical eccentric roundels 502 to move in up-and-down displacement.
- the inclusion of the sloped top ring 508 in the eccentric roundel mount 500 eliminates breakage of the diaphragm membrane 70 caused by the high frequency squeezing phenomena and also causes the rebounding force Fs of the diaphragm membrane 70 caused by the acting force F to be tremendously reduced. Meanwhile, by means of the inverted frustoconical flank 506 , the possibility of collision between the frustoconical eccentric roundel 502 and the operating hole 61 in the pump head body 60 is eliminated even though the outer diameter of the frustoconical eccentric roundel 502 is enlarged.
- the rebounding force Fs is inversely proportional to the contact area.
- the contact area of the sloped top ring 508 with the bottom side of the diaphragm membrane 70 is increased (as indicated by ring A shown in FIG. 27 ) so that all distributed components of the rebounding force Fs for the inverted frustoconical eccentric roundels 502 of the present invention are further reduced.
- the inverted frustoconical eccentric roundel 502 of this embodiment of the present invention therefore provides at least some of the following benefits:
- the durability of the diaphragm membrane 70 for sustaining the high frequency pumping action is substantially increased as a result of the inverted frustoconical eccentric roundel 502 .
- the service lifespan of the compressing diaphragm pump is further prolonged because all distributed components of the rebounding force Fs for the inverted frustoconical eccentric roundels 502 of the present invention are reduced.
- FIGS. 28 through 31 are illustrative figures of eccentric roundel structure for compressing diaphragm pump in the third exemplary embodiment of the present invention, in which the eccentric roundel structure is a combinational eccentric roundel 502 in an eccentric roundel mount 500 .
- the combinational eccentric roundel 502 includes a roundel mount 511 and an inverted frustoconical roundel yoke 521 in detachable separation such that the outer diameter of the frustoconical roundel yoke 521 is enlarged but still smaller than the inner diameter of the operating hole 61 in the pump head body 60 .
- the roundel mount 511 has two layers that include a bottom-layer base with a positioning crescent surface 512 facing inwardly and a top-layer protruding cylinder 513 with a central female-threaded bore 514 .
- the inverted frustoconical roundel yoke 521 is sleeved over the corresponding roundel mount 511 and includes an upper bore 523 , a middle bore 524 and a lower bore 525 stacked as a three-layered integral hollow structure, as well as an inverted frustoconical flank 522 and a sloped top ring 526 extending from the upper bore 523 to the inverted frustoconical flank 522 such that the bore diameter of the upper bore 523 is bigger than the outer diameter of the protruding cylinder 513 .
- the bore diameter of the middle bore 524 is approximately equal to the outer diameter of the protruding cylinder 513 , such that the bore diameter of the lower bore 525 is approximately equal to the outer diameter of the bottom-layer base in the roundel mount 511 , and such that the crescent engages a corresponding surface of the lower bore to prevent relative rotation of the roundel yoke 521 and the corresponding roundel mount 511 .
- a positioning annular groove 515 is formed between the protruding cylinder 513 and the inside wall of the upper bore 523 when the frustoconical roundel yoke 521 is sleeved over the roundel mounts 511 (as shown in FIGS. 30 and 31 ).
- FIGS. 32 and 35 illustrate the manner in which the eccentric roundel structure for compressing diaphragm pump third exemplary embodiment of the present invention is assembled.
- the frustoconical roundel yoke 521 is fitted over the roundel mounts 511 .
- each fastening screw 1 is inserted through a corresponding tiered hole 81 of the pumping piston 80 and each corresponding acting zone hole 75 in the piston acting zones 74 of the diaphragm membrane 70 , and then the fastening screw 1 is securely screwed into the three corresponding female-threaded bores 514 in the three roundel mounts 511 of the eccentric roundel mount 500 to firmly assembly the diaphragm membrane 70 and three pumping pistons 80 (as shown in FIG. 32 ).
- FIGS. 33 and 34 illustrate the operation of the eccentric roundel structure for compressing diaphragm pump of the third exemplary embodiment of the present invention.
- the wobble plate 40 is driven to rotate by the motor output shaft 11 so that three combinational eccentric roundels 502 on the eccentric roundel mount 50 constantly move in a sequential up-and-down reciprocal stroke.
- the three piston acting zones 74 in the diaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of the three combinational eccentric roundels 502 to move in up-and-down displacement.
- the combinational eccentric roundel 502 in the present invention moves in an up stroke to displace the piston acting zone 74 upwardly, the acting force F will obliquely pull the partial portion between the corresponding annular positioning protrusion 76 and the outer raised rim 71 of the diaphragm membrane 70 .
- the inclusion of the sloped top ring 526 in the inverted frustoconical roundel yoke 521 of the eccentric roundel mount 500 eliminates susceptibility to breakage of the diaphragm membrane 70 caused by the high frequency squeezing phenomena (as shown in FIGS. 33 and 34 ) and also causes the rebounding force Fs of the diaphragm membrane 70 caused by the acting force F to be tremendously reduced (as shown in FIG. 34 ).
- the rebounding force Fs is inversely proportional to the contact area.
- the contact area of the sloped top ring 508 with the bottom side of the diaphragm membrane 70 is increased (as indicated by ring A shown in FIG. 35 ) so that all distributed components of the rebounding force Fs for the inverted frustoconical roundel yoke 521 of the present invention are further reduced.
- roundel mount 511 and eccentric roundel mount 500 are fabricated together as an integral body.
- the frustoconical roundel yoke 521 is independently fabricated as a separate entity.
- the contrivance of the combinational eccentric roundel 502 not only meets the requirement of mass production but also reduces the overall manufacturing cost.
- the eccentric roundel 502 with frustoconical roundel yoke 521 of the present invention provides at least some of the following benefits:
- the durability of the diaphragm membrane 70 for sustaining the high frequency pumping action is substantially increased by including the inverted frustoconical roundel yoke 521 .
- the service lifespan of the compressing diaphragm pump is further prolonged because all distributed components of the rebounding force Fs for the inverted frustoconical roundel yoke 521 of the present invention are further reduced.
- the illustrated embodiments of the invention provide a cylindrical eccentric roundel 52 , an inverted frustoconical eccentric roundel 502 , or combinational eccentric roundel 502 that, among other advantages, increases the service lifespan of the diaphragm membrane 70 so that the service lifespan of the compressing diaphragm pump can be doubled.
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- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Reciprocating Pumps (AREA)
Abstract
A cylindrical or inverted frustoconical eccentric roundel structure for a compressing diaphragm pump includes an annular positioning groove, a vertical or frustoconical flank and a sloped top ring extending between the annular positioning groove and the vertical or inverted frustoconical flank. By providing the sloped top ring, the oblique high frequency pulling and squeezing phenomenon that occurs in a conventional tubular eccentric roundel is completely eliminated.
Description
- This application claims the benefit of provisional U.S. Patent Application No. 62/000,630, filed May 20, 2014, and incorporated herein by reference.
- The present invention relates to an eccentric roundel structure for a compressing diaphragm pump used in a reverse osmosis (RO) purification system, and particularly to a compressing diaphragm pump with a sloped top ring that can eliminate the oblique pulling and squeezing phenomena of the pump so that the service lifespan of the compressing diaphragm pump and the durability of key components therein are prolonged.
- Conventional compressing diaphragm pumps of the type commonly used with reverse osmosis (RO) purifier or RO water purification systems are disclosed in U.S. Pat. Nos. 4,396,357, 4,610,605, 5,476,367, 5,571,000, 5,615,597, 5,649,812, 5,706,715, 5,791,882 and 5,816,133. An example of such a conventional compressing diaphragm pump is shown in
FIGS. 1 through 10 , and includes a brushedmotor 10 with anoutput shaft 11, a motorupper chassis 30, a wobble plate with an integral protruding cam-lobed shaft 40, aneccentric roundel mount 50, apump head body 60, adiaphragm membrane 70, threepumping pistons 80, apiston valvular assembly 90 and apump head cover 20. - The motor
upper chassis 30 includes abearing 31 through which anoutput shaft 11 of themotor 10 extends. The motorupper chassis 30 also includes an upperannular rib ring 32 withseveral fastening bores 33 evenly and circumferentially disposed in a rim of the upperannular rib ring 32 - The
wobble plate 40 includes ashaft coupling hole 41 through which the correspondingmotor output shaft 11 of themotor 10 extends. - The
eccentric roundel mount 50 includes a central bearing 51 at the bottom thereof for receiving thecorresponding wobble plate 40. Three tubulareccentric roundels 52 are evenly and circumferentially disposed on theeccentric roundel mount 50. Each tubulareccentric roundel 52 has a horizontaltop face 53, a female-threadedbore 54 and anannular positioning groove 55 formed in the top face thereof, as well as arounded shoulder 57 created at the intersection of the horizontaltop face 53 and avertical flank 56. - The
pump head body 60 covers the upperannular rib ring 32 of the motorupper chassis 30 to encompass thewobble plate 40 andeccentric roundel mount 50 therein, and includes threeoperating holes 61 evenly and circumferentially disposed therein. Eachoperating hole 61 has an inner diameter that is slightly bigger than the outer diameter of the corresponding tubulareccentric roundel 52 in theeccentric roundel mount 50 for receiving each corresponding tubulareccentric roundel 52 respectively, a lowerannular flange 62 formed thereunder for mating with corresponding upperannular rib ring 32 of the motorupper chassis 30, andseveral fastening bores 63 evenly disposed around a circumference of thepump head body 60. - The
diaphragm membrane 70, which is extrusion-molded from a semi-rigid elastic material and placed on thepump head body 60, includes a pair of parallel rims, including outer raisedrim 71 and inner raisedrim 72, as well as three evenly spaced radial raisedpartition ribs 73 arranged such that each end of the radial raisedpartition ribs 73 connects with the inner raisedrim 72, thereby forming three equivalentpiston acting zones 74 partitioned by the radial raisedpartition ribs 73. Eachpiston acting zone 74 has anacting zone hole 75 created therein in correspondence with a respective female-threadedbore 54 in the tubulareccentric roundel 52 of theeccentric roundel mount 50, and anannular positioning protrusion 76 for eachacting zone hole 75 is formed at the bottom side of the diaphragm membrane 70 (as shown inFIGS. 8 and 9 ). - Each
pumping piston 80 is respectively disposed in a respective one of the correspondingpiston acting zones 74 of thediaphragm membrane 70 and has atiered hole 81 extending therethrough. After each of theannular positioning protrusions 76 in thediaphragm membrane 70 has been inserted into a correspondingannular positioning groove 55 in the tubulareccentric roundel 52 of theeccentric roundel mount 50,respective fastening screws 1 are inserted through thetiered hole 81 of eachpumping piston 80 and theacting zone hole 75 of each correspondingpiston acting zone 74 in thediaphragm membrane 70, so that thediaphragm membrane 70 and threepumping pistons 80 can be securely screwed into female-threadedbores 54 of the corresponding three tubulareccentric roundels 52 on the eccentric roundel mount 50 (as can be seen in the enlarged portion ofFIG. 10 ). - Piston
valvular assembly 90 covers thediaphragm membrane 70 and includes a downwardly extending raisedrim 91 for insertion between the outer raisedrim 71 and inner raisedrim 72 in thediaphragm membrane 70, and a central dish-shapedround outlet mount 92 having a central positioning bore 93 with three equivalent sectors, each of which contains multiple evenly circumferentially-locatedoutlet ports 95. Thepiston valvular assembly 90 also includes a T-shaped plasticanti-backflow valve 94 with a central positioning shank, and three circumferentially-adjacent inlet mounts 96. Each of the circumferentially-adjacent inlet mounts 96 includes multiple evenly circumferentially-locatedinlet ports 97 and an invertedcentral piston disk 98 respectively so that eachpiston disk 98 serves as a valve for each corresponding group ofmultiple inlet ports 97. The central positioning shank of the plasticanti-backflow valve 94 mates with the central positioning bore 93 of thecentral outlet mount 92 such thatmultiple outlet ports 95 in the centralround outlet mount 92 are in communication with the threeinlet mounts 96. Finally, a hermetically sealed preliminary-compression chamber 26 is formed between eachinlet mount 96 and a correspondingpiston acting zone 74 in thediaphragm membrane 70 upon insertion of the downwardly extending raisedrim 91 into the gap ring between the outer raisedrim 71 and inner raisedrim 72 ofdiaphragm membrane 70, such that one end of each preliminary-compressing chamber 26 is in communication with each of the corresponding inlet ports 97 (as shown in the enlarged portion ofFIG. 10 ). - The
pump head cover 20, which covers thepump head body 60 to encompass thepiston valvular assembly 90,pumping piston 80 anddiaphragm membrane 70 therein, includes awater inlet orifice 21, awater outlet orifice 22, andseveral fastening bores 23. Atiered rim 24 and anannular rib ring 25 are disposed in the bottom inside of thepump head cover 20 such that the outer rim for the assembly ofdiaphragm membrane 70 andpiston valvular assembly 90 can be hermetically attached to the tiered rim 24 (as shown in the enlarged portion ofFIG. 11 ). A high-compression chamber 27 is formed between the cavity formed by the inside wall of theannular rib ring 25 and thecentral outlet mount 92 of thepiston valvular assembly 90 when the bottom of theannular rib ring 25 closely covers the rim of the central outlet mount 92 (as shown inFIG. 10 ). - By running each
fastening bolt 2 through a corresponding fastening bore 23 ofpump head cover 20 and a corresponding fastening bore 63 in thepump head body 60, and then putting anut 3 onto eachfastening bolt 2 to securely screw thepump head cover 20 to thepump head body 60 via thecorresponding fastening bores 33 in the motorupper chassis 30, the whole assembly of the compressing diaphragm pump is finished (as shown inFIGS. 1 and 10 ). - Please refer to
FIGS. 11 and 12 , which are illustrative figures for the operation of the conventional compressing diaphragm pump ofFIGS. 1-10 . - Firstly, when the
motor 10 is powered on, thewobble plate 40 is driven to rotate by themotor output shaft 11 so that the three tubulareccentric roundels 52 on theeccentric roundel mount 50 constantly move in a sequential up-and-down reciprocal stroke. - Secondly, in the meantime, the three
pumping pistons 80 and threepiston acting zones 74 in thediaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of the three tubulareccentric roundels 52 to move in an up-and-down displacement. - Thirdly, when the tubular
eccentric roundel 52 moves in a down stroke, causingpumping piston 80 andpiston acting zone 74 to be displaced downwardly, thepiston disk 98 in thepiston valvular assembly 90 is pushed into an open status so that tap water W can flow into the preliminary-compression chamber 26 viawater inlet orifice 21 in thepump head cover 20 andinlet ports 97 in the piston valvular assembly 90 (as indicated by the arrowhead extending from W in the enlarged view ofFIG. 11 ); - Fourthly, when the tubular
eccentric roundel 52 moves in an up stroke, causingpumping piston 80 andpiston acting zone 74 to be displaced upwardly, thepiston disk 96 in thepiston valvular assembly 90 is pulled into a closed status to compress the tap water W in the preliminary-compression chamber 26 and increase the water pressure therein up to a range of 80 psi-100 psi. The resulting pressurized water Wp causes the plasticanti-backflow valve 94 in thepiston valvular assembly 90 to be pushed to an open status. - Fifthly, when the plastic
anti-backflow valve 94 in thepiston valvular assembly 90 is pushed to an open status, the pressurized water Wp in the preliminary-compression chamber 26 is directed into high-compression chamber 27 via the group ofoutlet ports 95 for the corresponding sector in thecentral outlet mount 92, and then expelled out of thewater outlet orifice 22 in the pump head cover 20 (as indicated by arrowhead W in the enlarged portion ofFIG. 12 ). - Finally, the sequential iterative action for each group of
outlet ports 95 for the three sectors incentral outlet mount 92 causes the pressurized water Wp to be constantly discharged out of the conventional compressing diaphragm pump to be further RO-filtered by the RO-cartridge so that the final filtered pressurized water Wp can be used in the reverse osmosis water purification system. - Referring to
FIGS. 13 and 14 , a serious vibration-related drawback has long existed in the conventional compressing diaphragm pump. As described previously, when themotor 10 is powered on, thewobble plate 40 is driven to rotate by themotor output shaft 11 so that the three tubulareccentric roundels 52 on theeccentric roundel mount 50 constantly move in a sequential up-and-down reciprocal stroke, and the threepiston acting zones 74 in thediaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of the three tubulareccentric roundels 52 to move in up-and-down displacement so that a force F constantly acts on the bottom side of eachpiston acting zone 74. - Meanwhile a corresponding plurality of rebounding forces Fs are created in reaction to the acting force F exerted on the bottom side of
diaphragm membrane 70, with different components distributed over the entire bottom area of each correspondingpiston acting zone 74 in thediaphragm membrane 70, as shown inFIG. 14 , so that a squeezing phenomenon caused by the rebounding force Fs occurs on a section of thediaphragm membrane 70. - The squeezing phenomenon occurs because, among all of the distributed components of the rebounding force Fs, the maximum component force is exerted at the contacting bottom position P of the
diaphragm membrane 70 with therounded shoulder 57 of the horizontaltop face 53 in the tubulareccentric roundel 52 so that the squeezing phenomenon at the bottom position P is also maximum, as shown inFIG. 18 . - With the rotational speed for the
motor output shaft 11 of themotor 10 reaching a range of 700-1200 rpm, each bottom position P of thepiston acting zone 74 of thediaphragm membrane 70 suffers from the squeezing phenomenon at a frequency of four times per second. Under such circumstances, the bottom position P of thediaphragm membrane 70 is always the first broken place for the entire conventional compressing diaphragm pump, which is an essential cause of not only shortening the service lifespan but also terminating the normal function of the conventional compressing diaphragm pump. - Therefore, how to substantially reduce the drawbacks associated with the squeezing phenomenon caused by the constant application of force F to the bottom side of each
piston acting zone 74 of thediaphragm membrane 70 as a result of the movement of the tubulareccentric roundel 52 has also become an urgent and critical issue. - An objective of the present invention is to provide a compressing diaphragm pump, in which the eccentric roundel structure is a cylindrical or inverted frustoconical eccentric roundel disposed in an eccentric roundel mount, the cylindrical or inverted frustoconical eccentric roundel including an annular positioning groove, a vertical or frustoconical flank, and an annular top surface portion that is inclined relative to horizontal to form a sloped top ring between the annular positioning groove and the vertical flank.
- By means of the sloped top ring, the high-frequency oblique pulling and squeezing phenomena that occurs in a conventional tubular eccentric roundel are completely eliminated because the sloped top ring flatly attaches to the bottom area of a corresponding piston acting zone of the diaphragm membrane.
- Thus, not only is the durability of the diaphragm membrane enhanced to better withstand the sustained high-frequency pumping action of the eccentric roundels, but the service lifespan of the diaphragm membrane is also greatly prolonged.
- Yet another objective of the present invention is to provide an eccentric roundel for a compressing diaphragm pump, in which the eccentric roundel structure is a cylindrical or inverted frustoconical eccentric roundel disposed on an eccentric roundel mount, the eccentric roundel including an annular positioning groove, a vertical or frustoconical flank, and a sloped top ring formed between the annular positioning groove and the vertical or frustoconical flank.
- Again, by means of the sloped top ring, all distributed components of the rebounding force for the cylindrical eccentric roundels that are generated in reaction to the acting force caused by the pumping action are substantially reduced because the sloped top ring flatly attaches to the bottom area of the corresponding piston acting zone for the diaphragm membrane.
- In achieving the above-described objectives, which are not intended to limit the scope of the invention, at least the following benefits are obtained:
- 1. The durability of the diaphragm membrane for sustaining the high-frequency pumping action of the cylindrical or inverted frustoconical eccentric roundels is substantially enhanced.
- 2. The power consumption of the compressing diaphragm pump is tremendously diminished due to less current being wasted as a result of the above-described high-frequency squeezing phenomena.
- 3. The working temperature of the compressing diaphragm pump is tremendously reduced due to less power consumption.
- 4. The annoying noise of the bearings that results from aged lubricant in the compressing diaphragm pump, which is expeditiously accelerated by the high working temperature, is mostly eliminated.
-
FIG. 1 is a perspective assembled view of a conventional compressing diaphragm pump. -
FIG. 2 is a perspective exploded view of a conventional compressing diaphragm pump. -
FIG. 3 is a perspective view of an eccentric roundel mount for the conventional compressing diaphragm pump. -
FIG. 4 is a cross sectional view taken against the section line 4-4 from previousFIG. 3 . -
FIG. 5 is a top view of a pump head body for the conventional compressing diaphragm pump. -
FIG. 6 is a cross sectional view taken against the section line 6-6 from previousFIG. 5 . -
FIG. 7 is a perspective view of a diaphragm membrane for the conventional compressing diaphragm pump. -
FIG. 8 is a cross sectional view taken against the section line 8-8 from previousFIG. 7 . -
FIG. 9 is a bottom view of a diaphragm membrane for the conventional compressing diaphragm pump. -
FIG. 10 is a cross sectional view taken against the section line 10-10 from previousFIG. 1 . -
FIG. 11 is a first operation illustrative view of a conventional compressing diaphragm pump. -
FIG. 12 is a second operation illustrative view of a conventional compressing diaphragm pump. -
FIG. 13 is a third operation illustrative view of a conventional compressing diaphragm pump. -
FIG. 14 is a partially enlarged view taken from circled-portion-a of previousFIG. 13 . -
FIG. 15 is a perspective exploded view of a first exemplary embodiment of the present invention. -
FIG. 16 is a perspective view of an eccentric roundel mount in the first exemplary embodiment of the present invention. -
FIG. 17 is a cross sectional view taken against the section line 17-17 from previousFIG. 16 . -
FIG. 18 is an assembled cross sectional view of the first exemplary embodiment of the present invention. -
FIG. 19 is an operation illustrative view of the first exemplary embodiment of the present invention. -
FIG. 20 is a partially enlarged view taken from circled-portion-a of previousFIG. 19 . -
FIG. 21 is an illustrative view showing a comparison between the eccentric cylindrical roundel acting on the diaphragm membrane of the conventional compressing diaphragm pump and that of the first exemplary embodiment of the present invention. -
FIG. 22 is a perspective view for eccentric roundel mount in the second exemplary embodiment of the present invention. -
FIG. 23 is a cross sectional view taken against the section line 23-23 from previousFIG. 22 . -
FIG. 24 is an assembled cross sectional view for the second exemplary embodiment of the present invention. -
FIG. 25 is an operation illustrative view of the second exemplary embodiment of the present invention. -
FIG. 26 is a partially enlarged view taken from circled-portion-a of previousFIG. 25 . -
FIG. 27 is an illustrative view showing a comparison between the eccentric cylindrical roundel acting on the diaphragm membrane for the conventional compressing diaphragm pump and for the present invention in the second exemplary embodiment of the present invention. -
FIG. 28 is a perspective exploded view for the third exemplary embodiment of the present invention. -
FIG. 29 is a cross sectional view taken against the section line 29-29 from previousFIG. 28 . -
FIG. 30 is a perspective assembled view for the third exemplary embodiment of the present invention. -
FIG. 31 is a cross sectional view taken against the section line 31-31 from previousFIG. 30 . -
FIG. 32 is an assembled cross sectional view for the third exemplary embodiment of the present invention. -
FIG. 33 is an operation illustrative view for the third exemplary embodiment of the present invention. -
FIG. 34 is a partially enlarged view taken from circled-portion-a of previousFIG. 33 . -
FIG. 35 is an illustrative view showing a comparison between the eccentric cylindrical roundel acting on the diaphragm membrane for the conventional compressing diaphragm pump and for the present invention in the third exemplary embodiment of the present invention. -
FIGS. 15 through 18 are illustrative figures of an eccentric roundel structure for compressing diaphragm pump according to a first exemplary embodiment of the present invention. - The eccentric roundel structure is a cylindrical
eccentric roundel 52 that is mounted on theeccentric roundel mount 50. The cylindrical eccentric roundel includes an annular top surface portion that is inclined relative to horizontal to form a slopedtop ring 58 between theannular positioning groove 55 and avertical flank 56, the slopedtop ring 58 replacing the conventionalrounded shoulder 57 in each tubulareccentric roundel 52 of theeccentric roundel mount 50. -
FIGS. 19 through 21 are illustrative figures for the operation of the eccentric roundel structure for compressing diaphragm pump” in the first exemplary embodiment of the present invention. - Firstly, when the
motor 10 is powered on, thewobble plate 40 is driven to rotate by themotor output shaft 11 so that the three cylindricaleccentric roundels 52 on theeccentric roundel mount 50 constantly move in a sequential up-and-down reciprocal stroke. - Secondly, the three
piston acting zones 74 in thediaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of three cylindricaleccentric roundels 52 to move in up-and-down displacement. - Thirdly, when the tubular eccentric roundel or cylindrical
eccentric roundel 52 moves in an up stroke with thepiston acting zone 74 in an upward displacement, an acting force F will obliquely pull on the partial portion between the correspondingannular positioning protrusion 76 and outer raisedrim 71 of thediaphragm membrane 70. - 1420 By comparing the operation of the conventional tubular
eccentric roundels 52 shown inFIG. 14 and the cylindricaleccentric roundels 52 of the present invention, as illustrated inFIG. 20 , at least the following two differences are evident: - In the case of conventional tubular
eccentric roundel 52 shown inFIG. 14 , the maximum among all of the distributed components Fs of the rebounding force is the component force exerted at the contacting bottom position P of thediaphragm membrane 70, which is located at an edge of therounded shoulder 57 on a horizontaltop face 53 of tubulareccentric roundel 52, so that the “squeezing phenomenon” at point P is also maximum 4. With such nonlinear distribution of the “squeezing phenomena,” the obliquely pulling action becomes severe. In contrast, in the case of cylindricaleccentric roundels 52 as illustrated inFIG. 20 , the distribution of components of the rebounding force Fs is more linear because the slopedtop ring 58 therein flatly attaches to the bottom area of thepiston acting zone 74 for thediaphragm membrane 70, so that the oblique pulling action is almost eliminated due to reduction in the squeezing phenomenon 1920. - Moreover, under the same acting force F, the rebounding force Fs is inversely proportional to the contact area so that the magnitudes of the distributed components of the rebounding force Fs for the cylindrical
eccentric roundels 52 of the present invention, as shown inFIG. 20 , are substantially less than the magnitudes of the distributed components of the rebounding force Fs for the conventional tubulareccentric roundel 52 shown inFIG. 14 . - The improved distribution linearity and decreased magnitudes of the rebounding force components Fs are the result of forming the sloped
top ring 58 between theannular positioning groove 55 and thevertical flank 56 in theeccentric roundel mount 50, and in turn provides at least the following advantages. First, the improved force component distribution eliminates susceptibility to breakage of thediaphragm membrane 70 caused by the high frequency squeezing phenomena, that occurs in the conventional arrangement as a result of therounded shoulder 57 in the otherwise horizontaltop face 53 of the tubulareccentric roundel 52. Second, because of decrease in magnitude of the rebounding force components, the overall rebounding force Fs of thediaphragm membrane 70 caused by the acting force F during sequential up-and-down displacement of the threepiston acting zones 74 in thediaphragm membrane 70 driven by the up-and-down reciprocal stroke of the three tubular eccentric roundels or cylindricaleccentric roundels 52 is tremendously reduced. - These advantages result in the following practical benefits:
- 1. The durability of the
diaphragm membrane 70 for sustaining the high frequency pumping action of the cylindricaleccentric roundels 52 is substantially enhanced. - 2. The power consumption of the compressing diaphragm pump is tremendously diminished due to less current being wasted as a result of the squeezing phenomena at high frequencies.
- 3. The working temperature of the compressing diaphragm pump is tremendously reduced due to the decrease in power consumption.
- 4. The undesirable bearing noise caused by aging of the lubricant in the compressing diaphragm pump, which is normally accelerated by the high working temperature, is mostly eliminated.
- Test results carried out on a prototype of the present invention are as follows.
- A. The service lifespan of the tested
diaphragm membrane 70 was more than doubled. - B. The reduction in electric current consumption exceeded 1 ampere.
- C. The working temperature was reduced by over 15 degrees Celsius.
- D. The smoothness of the bearing was improved.
- Please refer to
FIGS. 22 through 24 , which are illustrative figures of an eccentric roundel structure for compressing diaphragm pump in the second exemplary embodiment of the present invention, The eccentric roundel structure is an inverted frustoconicaleccentric roundel 502, again provided on aneccentric roundel mount 500. - The frustoconical
eccentric roundel 502 includes an integral invertedfrustoconical flank 506 and a slopedtop ring 508 such that the outer diameter of the frustoconicaleccentric roundel 502 is enlarged but still smaller than the inner diameter of theoperating hole 61 in thepump head body 60, the slopedtop ring 508 extending between anannular positioning groove 505 and the invertedfrustoconical flank 506. -
FIGS. 25 through 27 are illustrative figures showing the modified operation of the eccentric roundel structure for compressing diaphragm pump in the second exemplary embodiment of the present invention. - Firstly, when the
motor 10 is powered on, thewobble plate 40 is driven to rotate by themotor output shaft 11 so that the three frustoconicaleccentric roundels 502 on theeccentric roundel mount 500 constantly move in a sequential up-and-down reciprocal stroke. - Secondly, the three
piston acting zones 74 in thediaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of the three frustoconicaleccentric roundels 502 to move in up-and-down displacement. - Thirdly, when one of the frustoconical
eccentric roundels 502 in the present invention moves in an up stroke so that the correspondingpiston acting zone 74 is displaced upwardly, the acting force F will obliquely pull the partial portion between the correspondingannular positioning protrusion 76 and outer raisedrim 71 of thediaphragm membrane 70. - Consequently, the inclusion of the sloped
top ring 508 in theeccentric roundel mount 500 eliminates breakage of thediaphragm membrane 70 caused by the high frequency squeezing phenomena and also causes the rebounding force Fs of thediaphragm membrane 70 caused by the acting force F to be tremendously reduced. Meanwhile, by means of the invertedfrustoconical flank 506, the possibility of collision between the frustoconicaleccentric roundel 502 and theoperating hole 61 in thepump head body 60 is eliminated even though the outer diameter of the frustoconicaleccentric roundel 502 is enlarged. - Moreover, under the same acting force F, the rebounding force Fs is inversely proportional to the contact area. By means of the enlarged outer diameter of the inverted frustoconical
eccentric roundel 502, the contact area of the slopedtop ring 508 with the bottom side of thediaphragm membrane 70 is increased (as indicated by ring A shown inFIG. 27 ) so that all distributed components of the rebounding force Fs for the inverted frustoconicaleccentric roundels 502 of the present invention are further reduced. - The inverted frustoconical
eccentric roundel 502 of this embodiment of the present invention therefore provides at least some of the following benefits: - 1. The durability of the
diaphragm membrane 70 for sustaining the high frequency pumping action is substantially increased as a result of the inverted frustoconicaleccentric roundel 502. - 2. The power consumption of the compressing diaphragm pump is tremendously diminished due to less current being wasted as a result of the high frequency squeezing phenomena.
- 3. The working temperature of the compressing diaphragm pump is tremendously reduced due to less power consumption.
- 4. The undesirable bearing noise resulting from aged lubricant in the compressing diaphragm pump, which is exacerbated by accelerated aging due to a high working temperature, is mostly eliminated.
- 5. The service lifespan of the compressing diaphragm pump is further prolonged because all distributed components of the rebounding force Fs for the inverted frustoconical
eccentric roundels 502 of the present invention are reduced. -
FIGS. 28 through 31 are illustrative figures of eccentric roundel structure for compressing diaphragm pump in the third exemplary embodiment of the present invention, in which the eccentric roundel structure is a combinationaleccentric roundel 502 in aneccentric roundel mount 500. The combinationaleccentric roundel 502 includes aroundel mount 511 and an invertedfrustoconical roundel yoke 521 in detachable separation such that the outer diameter of thefrustoconical roundel yoke 521 is enlarged but still smaller than the inner diameter of theoperating hole 61 in thepump head body 60. In this embodiment, theroundel mount 511 has two layers that include a bottom-layer base with apositioning crescent surface 512 facing inwardly and a top-layer protruding cylinder 513 with a central female-threadedbore 514. The invertedfrustoconical roundel yoke 521 is sleeved over the correspondingroundel mount 511 and includes anupper bore 523, amiddle bore 524 and alower bore 525 stacked as a three-layered integral hollow structure, as well as an invertedfrustoconical flank 522 and a slopedtop ring 526 extending from theupper bore 523 to the invertedfrustoconical flank 522 such that the bore diameter of theupper bore 523 is bigger than the outer diameter of the protrudingcylinder 513. The bore diameter of themiddle bore 524 is approximately equal to the outer diameter of the protrudingcylinder 513, such that the bore diameter of thelower bore 525 is approximately equal to the outer diameter of the bottom-layer base in theroundel mount 511, and such that the crescent engages a corresponding surface of the lower bore to prevent relative rotation of theroundel yoke 521 and thecorresponding roundel mount 511. A positioningannular groove 515 is formed between the protrudingcylinder 513 and the inside wall of theupper bore 523 when thefrustoconical roundel yoke 521 is sleeved over the roundel mounts 511 (as shown inFIGS. 30 and 31 ). -
FIGS. 32 and 35 illustrate the manner in which the eccentric roundel structure for compressing diaphragm pump third exemplary embodiment of the present invention is assembled. - Firstly, the
frustoconical roundel yoke 521 is fitted over the roundel mounts 511. - Secondly, all three
annular positioning protrusions 76 of thediaphragm membrane 70 are inserted into three corresponding positioningannular grooves 515 in the three combinationaleccentric roundels 502 of theeccentric roundel mount 500. - Finally, each
fastening screw 1 is inserted through a correspondingtiered hole 81 of thepumping piston 80 and each corresponding actingzone hole 75 in thepiston acting zones 74 of thediaphragm membrane 70, and then thefastening screw 1 is securely screwed into the three corresponding female-threadedbores 514 in the three roundel mounts 511 of theeccentric roundel mount 500 to firmly assembly thediaphragm membrane 70 and three pumping pistons 80 (as shown inFIG. 32 ). -
FIGS. 33 and 34 illustrate the operation of the eccentric roundel structure for compressing diaphragm pump of the third exemplary embodiment of the present invention. - Firstly, when the
motor 10 is powered on, thewobble plate 40 is driven to rotate by themotor output shaft 11 so that three combinationaleccentric roundels 502 on theeccentric roundel mount 50 constantly move in a sequential up-and-down reciprocal stroke. - Secondly, the three
piston acting zones 74 in thediaphragm membrane 70 are sequentially driven by the up-and-down reciprocal stroke of the three combinationaleccentric roundels 502 to move in up-and-down displacement. - Thirdly, when the combinational
eccentric roundel 502 in the present invention moves in an up stroke to displace thepiston acting zone 74 upwardly, the acting force F will obliquely pull the partial portion between the correspondingannular positioning protrusion 76 and the outer raisedrim 71 of thediaphragm membrane 70. - Consequently, the inclusion of the sloped
top ring 526 in the invertedfrustoconical roundel yoke 521 of theeccentric roundel mount 500 eliminates susceptibility to breakage of thediaphragm membrane 70 caused by the high frequency squeezing phenomena (as shown inFIGS. 33 and 34 ) and also causes the rebounding force Fs of thediaphragm membrane 70 caused by the acting force F to be tremendously reduced (as shown inFIG. 34 ). - Moreover, under the same acting force F, the rebounding force Fs is inversely proportional to the contact area. By means of the enlarged outer diameter of the inverted
frustoconical roundel yoke 521, the contact area of the slopedtop ring 508 with the bottom side of thediaphragm membrane 70 is increased (as indicated by ring A shown inFIG. 35 ) so that all distributed components of the rebounding force Fs for the invertedfrustoconical roundel yoke 521 of the present invention are further reduced. - The fabrication of the eccentric roundel structure for compressing diaphragm pump of the third exemplary embodiment of the present invention is as follows:
- Firstly, the
roundel mount 511 andeccentric roundel mount 500 are fabricated together as an integral body. - Secondly, the
frustoconical roundel yoke 521 is independently fabricated as a separate entity. - Finally, the
frustoconical roundel yoke 521 and the integral body of theroundel mount 511 are assembled witheccentric roundel mount 500 to become a united entity and form the assembledeccentric roundel 502 best shown inFIGS. 108 and 109 . - Thereby, the contrivance of the combinational
eccentric roundel 502 not only meets the requirement of mass production but also reduces the overall manufacturing cost. - The
eccentric roundel 502 withfrustoconical roundel yoke 521 of the present invention provides at least some of the following benefits: - 1. The durability of the
diaphragm membrane 70 for sustaining the high frequency pumping action is substantially increased by including the invertedfrustoconical roundel yoke 521. - 2. The power consumption of the compressing diaphragm pump is tremendously reduced due to less current being wasted as a result of the high frequency squeezing phenomena.
- 3. The working temperature of the compressing diaphragm pump is tremendously reduced due to the reduction in power consumption.
- 4. The undesired bearing noise resulting from temperature-accelerated aging of the lubricant in the compressing diaphragm pump is mostly eliminated.
- 5. The service lifespan of the compressing diaphragm pump is further prolonged because all distributed components of the rebounding force Fs for the inverted
frustoconical roundel yoke 521 of the present invention are further reduced. - 6. The manufacturing cost of the compressing diaphragm pump is reduced because the present invention is suitable for mass production.
- The illustrated embodiments of the invention provide a cylindrical
eccentric roundel 52, an inverted frustoconicaleccentric roundel 502, or combinationaleccentric roundel 502 that, among other advantages, increases the service lifespan of thediaphragm membrane 70 so that the service lifespan of the compressing diaphragm pump can be doubled.
Claims (12)
1. An eccentric roundel structure for a compressing diaphragm pump, said roundel structure including a roundel mount situated on a lower side of a pump head body and a plurality of eccentric roundels mounted on the roundel mount to extend through a corresponding plurality of operating holes in the pump head body, said compressing diaphragm pump having a motor with a motor housing to which the pump head body is fixed, a diaphragm membrane fixed to the eccentric roundels through the operating holes and situated on an upper side of the pump head body, and a plurality pumping pistons arranged to be moved in a pumping action upon movement of the diaphragm membrane, the roundel mount engaging a wobble plate such that rotation of the wobble plate by the motor causes the roundel mount to wobble, resulting in sequential up and down movement of the eccentric roundels, the sequential up and down movement of the eccentric roundels causing sequential, reciprocating movement the plurality of pumping pistons and of a plurality of piston acting zones in the diaphragm member, and the diaphragm membrane further including a plurality of annular downwardly-projecting positioning protrusions each arranged to be inserted into a respective annular positioning groove in a top surface of each of said eccentric roundels, wherein:
a section of the top surface of each eccentric roundel is inclined relative to horizontal to form a sloped top ring between a respective said annular positioning groove and a vertical or inverted frustoconical flank of the respective eccentric roundel.
2. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 1 , wherein said eccentric roundel mount includes a central bearing for receiving an integral cam-lobed shaft of the wobble plate to enable said sequential up and down movement of the eccentric roundels in response to rotation of the wobble plate by the motor.
3. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 1 , wherein:
said pump head body is secured to the motor housing to encompass the wobble plate and eccentric roundel mount therein;
said diaphragm membrane is made of a semi-rigid elastic material and placed on the pump head body, said diaphragm membrane including at least one raised rim as well as a plurality of evenly spaced radial raised partition ribs connected with the at least one raised brim to form said piston acting zones, and
each piston acting zone has an acting zone hole formed therein at a position corresponding to a position of a fastening bore in a respective one of the eccentric roundels, and each pumping piston has a tiered hole such that a fastening member extends through the tiered hole, through the acting zone hole of each corresponding piston acting zone in the diaphragm membrane, and into a respective fastening hole in a respective one of the eccentric roundels to secure the diaphragm membrane and each of the pumping pistons to the corresponding eccentric roundels in the eccentric roundel mount.
4. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 3 , wherein said compressing diaphragm pump further includes:
a piston valvular assembly that covers the diaphragm membrane and is peripherally secured to the diaphragm membrane by sealing engagement, the piston valvular assembly including a central outlet mount having a central positioning bore and a plurality of equivalent sectors, each of which contains multiple evenly circumferentially-located outlet ports, a T-shaped plastic anti-backflow valve with a central positioning shank, and a plurality of circumferential inlet mounts, each of each of the inlet mounts including multiple evenly circumferentially-located inlet ports and an inverted central piston disk mounted to the respective inlet mount so that each piston disk serves as a valve for each corresponding group of multiple inlet ports, wherein the central positioning shank of the plastic anti-backflow valve mates with the central positioning bore of the central outlet mount such that said multiple outlet ports in the central round outlet mount communicate with the plurality of inlet mounts, and a hermetic preliminary water-pressurizing chamber is formed in each inlet mount and corresponding piston acting zone in the diaphragm membrane upon the diaphragm membrane being peripherally secured to the piston valvular assembly such that one end of each of the preliminary water-pressuring chamber is communicable with each corresponding one of said inlet ports; and
a pump head cover, which covers the pump head body to encompass the piston valvular assembly, pumping pistons and diaphragm membrane therein, includes a water inlet orifice, and a water outlet orifice, said pump head cover being hermetically attached to the assembly of diaphragm membrane and piston valvular assembly to form a high-pressured water chamber between a cavity formed by an inside wall of an annular rib ring and the central outlet mount of the piston valvular assembly.
5. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 1 , wherein each said eccentric roundel is a cylindrical eccentric roundel.
6. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 1 , wherein each said eccentric roundel is an inverted frustoconical eccentric roundel, and wherein a largest diameter of the inverted frustoconical eccentric roundel is smaller than an inner diameter of a corresponding one of said operating holes in the pump head body.
7. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 6 , wherein said inverted frustoconical eccentric roundels each includes a mounting portion fixed to the roundel mount and a separable inverted frustoconical roundel yoke mounted on the roundel mount to form a two-layered eccentric roundel structure.
8. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 7 , wherein the mounting portion of each of the inverted frustoconical eccentric roundels is integrally fabricated with the roundel mount, and the inverted frustoconical roundel yokes are separately fabricated.
9. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 6 , wherein a mounting portion of each of the inverted frustoconical eccentric roundels includes a base with an inwardly-facing positioning surface and a cylinder with a central female-threaded bore extending upwardly from the base, and wherein each of the inverted frustoconical yokes includes an upper bore, a middle bore, and a lower bore, wherein a diameter of the middle bore is approximately equal to a diameter of the mounting portion cylinder, a diameter of the upper bore is larger than the diameter of the mounting portion cylinder, and a diameter of the lower bore is approximately equal to a diameter of the mounting portion base, said lower bore being fitted over the base, said middle bore being sleeved over the cylinder, and said annular positioning groove being defined by a space between said cylinder and an inner wall of said upper bore.
10. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 1 , wherein a respective number of said eccentric roundels, said operating holes in said pump head body, said piston acting zones, and said pumping pistons is three.
11. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 1 , wherein said motor is a brushed motor.
12. An eccentric roundel structure for a compressing diaphragm pump as claimed in claim 1 , wherein said motor is a brushless motor.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US14/699,373 US20150337816A1 (en) | 2014-05-20 | 2015-04-29 | Eccentric roundel structure for compressing diaphragm pump with multiple effects |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201462000630P | 2014-05-20 | 2014-05-20 | |
| US14/699,373 US20150337816A1 (en) | 2014-05-20 | 2015-04-29 | Eccentric roundel structure for compressing diaphragm pump with multiple effects |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| US20150337816A1 true US20150337816A1 (en) | 2015-11-26 |
Family
ID=54554521
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US14/699,373 Abandoned US20150337816A1 (en) | 2014-05-20 | 2015-04-29 | Eccentric roundel structure for compressing diaphragm pump with multiple effects |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US20150337816A1 (en) |
| EP (1) | EP3146211A4 (en) |
| WO (1) | WO2015179087A1 (en) |
Cited By (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20190136846A1 (en) * | 2017-11-03 | 2019-05-09 | Xiamen Koge Micro Tech Co., Ltd. | Valve head structure for diaphragm pump and diaphragm pump having same |
| CN113482892A (en) * | 2020-09-27 | 2021-10-08 | 深圳华星恒泰泵阀有限公司 | Diaphragm water pump with controllable displacement |
| CN116412108A (en) * | 2021-12-29 | 2023-07-11 | 佛山市顺德区美的洗涤电器制造有限公司 | Valve core assembly, diaphragm pump and water purifier |
| US20240044329A1 (en) * | 2022-08-08 | 2024-02-08 | Mabuchi Motor Oken Co., Ltd. | Diaphragm pump |
| WO2024259062A3 (en) * | 2023-06-14 | 2025-04-10 | Flow Control LLC | Diaphragm pump housing having direct inlet channels to each chamber |
| US12359658B1 (en) * | 2021-09-02 | 2025-07-15 | Psg Germany Gmbh | Diaphragm pumping |
| US12523212B2 (en) | 2021-11-08 | 2026-01-13 | Foshan Shunde Midea Washing Appliances Manufacturing Co., Ltd. | Support mechanism, valve core assembly, booster pump, and water purifier |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| ES2987486T3 (en) * | 2016-11-23 | 2024-11-15 | Psg Germany Gmbh | Diaphragm pump |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4915018A (en) * | 1988-09-13 | 1990-04-10 | American Standard Inc. | Diaphragm piston assembly |
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| US2748606A (en) * | 1951-11-30 | 1956-06-05 | Cornelius Co | Mechanical movement |
| DE3233853A1 (en) * | 1982-09-11 | 1984-03-15 | Erich 7812 Bad Krozingen Becker | PUMP WITH PISTON AND SLIDING SEAL |
| DE3838141C2 (en) * | 1988-11-10 | 1998-12-24 | Knf Neuberger Gmbh | Diaphragm pump |
| DE3928949A1 (en) * | 1989-08-31 | 1991-03-14 | Wagner Gmbh J | DIAPHRAGM PUMP |
| FR2689014B1 (en) * | 1992-03-24 | 1994-06-03 | Aguettant Lab | MEDICAL LIQUID PERFUSION PUMP. |
| DE4328559C5 (en) * | 1993-08-25 | 2004-11-25 | Knf-Neuberger Gmbh | Diaphragm pump with at least two membranes |
| US5476367A (en) * | 1994-07-07 | 1995-12-19 | Shurflo Pump Manufacturing Co. | Booster pump with sealing gasket including inlet and outlet check valves |
| US6276907B1 (en) * | 1999-08-12 | 2001-08-21 | Wagner Spray Tech Corporation | Hydraulically driven diaphragm pump |
| JP4114639B2 (en) * | 2004-06-01 | 2008-07-09 | 株式会社豊田自動織機 | Diaphragm type pump |
| DE102005039237A1 (en) * | 2005-08-19 | 2007-02-22 | Prominent Dosiertechnik Gmbh | motor-driven metering |
| US7887304B2 (en) * | 2005-11-08 | 2011-02-15 | Ying Lin Cai | Method and structure of preventing water from leakage for the pressurized pump of diaphragm type |
| DE102008035592B4 (en) * | 2008-07-31 | 2014-10-30 | Almatec Maschinenbau Gmbh | diaphragm pump |
| US20100068082A1 (en) * | 2008-09-17 | 2010-03-18 | Ying Lin Cai | Leakage-Proof Contrivance for Upper Hood of Diaphragm Pump |
-
2015
- 2015-04-29 US US14/699,373 patent/US20150337816A1/en not_active Abandoned
- 2015-04-29 EP EP15796445.3A patent/EP3146211A4/en not_active Withdrawn
- 2015-04-29 WO PCT/US2015/028137 patent/WO2015179087A1/en not_active Ceased
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4915018A (en) * | 1988-09-13 | 1990-04-10 | American Standard Inc. | Diaphragm piston assembly |
Cited By (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20190136846A1 (en) * | 2017-11-03 | 2019-05-09 | Xiamen Koge Micro Tech Co., Ltd. | Valve head structure for diaphragm pump and diaphragm pump having same |
| US10859080B2 (en) * | 2017-11-03 | 2020-12-08 | Xiamen Koge Micro Tech Co., Ltd. | Valve head structure for diaphragm pump and diaphragm pump having same |
| CN113482892A (en) * | 2020-09-27 | 2021-10-08 | 深圳华星恒泰泵阀有限公司 | Diaphragm water pump with controllable displacement |
| US12359658B1 (en) * | 2021-09-02 | 2025-07-15 | Psg Germany Gmbh | Diaphragm pumping |
| US12523212B2 (en) | 2021-11-08 | 2026-01-13 | Foshan Shunde Midea Washing Appliances Manufacturing Co., Ltd. | Support mechanism, valve core assembly, booster pump, and water purifier |
| CN116412108A (en) * | 2021-12-29 | 2023-07-11 | 佛山市顺德区美的洗涤电器制造有限公司 | Valve core assembly, diaphragm pump and water purifier |
| US20240044329A1 (en) * | 2022-08-08 | 2024-02-08 | Mabuchi Motor Oken Co., Ltd. | Diaphragm pump |
| US12535066B2 (en) * | 2022-08-08 | 2026-01-27 | Mabuchi Motor Oken Co., Ltd. | Diaphragm pump |
| WO2024259062A3 (en) * | 2023-06-14 | 2025-04-10 | Flow Control LLC | Diaphragm pump housing having direct inlet channels to each chamber |
Also Published As
| Publication number | Publication date |
|---|---|
| EP3146211A4 (en) | 2018-02-14 |
| EP3146211A1 (en) | 2017-03-29 |
| WO2015179087A1 (en) | 2015-11-26 |
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Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |