[go: up one dir, main page]

US2442751A - Variable transformer - Google Patents

Variable transformer Download PDF

Info

Publication number
US2442751A
US2442751A US674414A US67441446A US2442751A US 2442751 A US2442751 A US 2442751A US 674414 A US674414 A US 674414A US 67441446 A US67441446 A US 67441446A US 2442751 A US2442751 A US 2442751A
Authority
US
United States
Prior art keywords
transformer
windings
rotor
primary
pole pieces
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.)
Expired - Lifetime
Application number
US674414A
Inventor
Jerome G Abbott
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Individual filed Critical Individual
Priority to US674414A priority Critical patent/US2442751A/en
Application granted granted Critical
Publication of US2442751A publication Critical patent/US2442751A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F29/00Variable transformers or inductances not covered by group H01F21/00
    • H01F29/08Variable transformers or inductances not covered by group H01F21/00 with core, coil, winding, or shield movable to offset variation of voltage or phase shift, e.g. induction regulators
    • H01F29/10Variable transformers or inductances not covered by group H01F21/00 with core, coil, winding, or shield movable to offset variation of voltage or phase shift, e.g. induction regulators having movable part of magnetic circuit

Definitions

  • the invention relates to variable transformers and particularly to transformers wherein the inductive coupling between the primary and the secondary windings thereof is determined by means of a magnetic 'path of variable reluctance.
  • a stator having a pluralit of longitudinally disposed pole pieces and at least one set of primary and secondary windings positioned on adjacent pole pieces of said stator.
  • a rotor is mounted along the axis of said stator to intercept the magnetic path of said primary and secondary windings, longitudinal air gap channel formed in the surface thereof. Rotation of said rotor will vary the coupling between the primary and secondary transformer windings from a maximum value to a minimum value, the nature of the variation being determined by the shape of the air gap channel formed in the rotor.
  • a transformer designed for polyphase operation at least two sets of primary and secondary windings are positioned on adjacent pole pieces, a free pole piece being disposed between each pair of pole pieces bearing transformer windings.
  • Figure 2 is a view in elevation showing a second operlating condition 01 the device shown in Figure Figure 3 is an interrupted longitudinal view along line 2-3 of Figure 1.
  • a laminated, cylindrical transformer stator core Iii having a length that is several times greater than the outside diameter.
  • a laminated rotor l2 of substantially the same length as the stator i0, is rotatably mounted along the axis of the stator core ill by means of a shaft I4.
  • the stator core l0 and the rotor I2 are formed of a non-magnetic, permeable material, such as silicon steel.
  • the stator core i0 is divided longitudinally into three sets of wire bearing pole pieces i6 by means of wire cells 18, a free pole piece 20 occuring between each set of wire bearing pole pieces.
  • the wire cells 18 extend longitudinally along the core l0 arallel to the axis thereof and open inwardly toward the rotor 12.
  • the double size cells l8 are necessarily larger than the single size cells since they must receive both one side of the primary transformer winding 22 and one side of the secondary transformer winding 24. Both the single and double cells l8 are sufficiently large to permit passage therethrough of a cooling medium after the transformer windings 22, 24 are in place.
  • each wire bearing pole piece l6 are substantially parallel along the greater part of their radial lengths. but are flanged-transversely apart toward their innermost ends to constrain windings 22 and 24 in place about pole pieces 18.
  • the length of the stator core in is several times greater than its diameter, the length of. conductor lying in the cells 18 is great compared to the length of conductor positioned about the ends of the pole pieces l8.
  • Each set of wire bearing pole pieces l8, bearing a primary winding 22 and a secondary winding 24, constitutes a single transformer. Windings 22, 24 are brought out to a panel board (not shown).
  • the device may be used as a. single phase transformer or may be used as a multiple-phase transformer in star or delta electrical arrangement.
  • the rotor i2 is dinally formed'air provided with three longitugap channels 26 spaced 120 apart about the surface of therotor.
  • the channels 26 are of substantially the same width as the innermost faces of the free poles 20, the radial depth of the channels being slight as compared to the width.
  • a variable transformer comprising 9, stator having a pluralit of longitudinally disposed pole pieces, at least two sets of primary and secondary transformer windings, the primary and secondary windings of each set being positioned on adjacent pole pieces, afree pole piece disposed be tween each pair of pole pieces bearing transformer windings, a rotor positioned along the axis of said stator and included in the magnetic path of each set of primary and secondary transformer windings, said rotor having at least two longitudinally formed air gap channels disposed along the surface thereof, said channels being spaced to oppose said free pole pieces whereby rotation of said rotor will displace said channels from a position opposite said free pole piece to a position opposite said transformer windings.
  • a variable transformer comprising a stator having a plurality of longitudinally formed pole pieces, the length of said stator being several times the diameter of said stator, at least two sets of primary and secondary transformer windings,
  • the channels 26 would be non-equiangularly disposed.
  • variable transformer that may be easily cooled, that may be operated single phase or polyphase, and that may be varied without displacement of the position of the windings themselves.
  • the flux linkage may be varied over a wide range, since the flux linkage is dependent upon the angular displacement of the rotor 24 from a position of maximum linkage.
  • the attenuation may be either linear or nonlinear; and depending upon the angular position of the channels with respect 'to each other, each phase may be attenuated uniformly or non-uniformly.
  • transformer disclosed herein is well adapted to be hermetically sealed. Sealing may be accomplished in any well known manner, such as by the use of the gasket and bell cap arrangement commonly used to seal hermetically electric motors and generators.
  • bearing pole pieces a wire cell occurring betweeneach pole piece, said wire cells being of sufficient width to receive said windings and to form wind cells adjacent said windings, a rotor positioned along the axis of said stator and included in the magnetic path of each set of primary and secondary transformer windings, said rotor having at least two longitudinally formed air gap channels disposed along the surface thereof, said channels being spaced to oppose said free pole pieces Whereby rotation of said rotor will displace said channels from a position opposite said free pole pieces to a position opposite said transformer windings.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Coils Of Transformers For General Uses (AREA)

Description

J. G. ABBOTT 7 2,442,751
VARIABLE TRANSFORMER June 8, 1948.
2 Sheets-Sheet 1 Filed June 5. 1946 Qwuvwkw JEROME G. ABBOTT Patented June 8, 1948 UNITED STATES PATENT OFFICE 4 Claims.
amended The invention described herein may be manuf actured and used by or for the Government for governmental purposes, without the payment to me of any royalty thereon.
The invention relates to variable transformers and particularly to transformers wherein the inductive coupling between the primary and the secondary windings thereof is determined by means of a magnetic 'path of variable reluctance.
It is an object of the invention to provide a transformer wherein the flux linkage between primary and secondary windings is varied by means of a magnetic path of variable reluctance. It is a further object of the invention to provide a means to vary simultaneously the reluctance of the magnetic paths of a polyphase transformer.
It is also an object of the invention to provide a transformer wherein maximum flux linkage may be achieved by the use of a minimum length of conductor in the primary and secondary windings thereof.
It is a further object of the invention to provide a transformer that shall be rugged, durable and easily fabricated.
It is a further object of the invention to provide a transformer that may readily be maintained at a constant operating temperature.
It is a further object of the invention to provide a transformer that is well adapted to be hermetically sealed.
These objects, together with other objects and advantages of the invention which will be apparent to one skilled in the art, are achieved in one embodiment of the invention by means of a stator having a pluralit of longitudinally disposed pole pieces and at least one set of primary and secondary windings positioned on adjacent pole pieces of said stator. A rotor is mounted along the axis of said stator to intercept the magnetic path of said primary and secondary windings, longitudinal air gap channel formed in the surface thereof. Rotation of said rotor will vary the coupling between the primary and secondary transformer windings from a maximum value to a minimum value, the nature of the variation being determined by the shape of the air gap channel formed in the rotor. In a transformer designed for polyphase operation, at least two sets of primary and secondary windings are positioned on adjacent pole pieces, a free pole piece being disposed between each pair of pole pieces bearing transformer windings.
For a better understanding of the invention, reference is made to the following specification of the rotor being provided with at least one 'iormed between the pole April 3i), 1928; 370 G. 757) one embodiment thereof, the said specification to be read in connection with the accompanying drawings, in which Figure 1 is a view in elevation of a device embodying the invention,
Figure 2 is a view in elevation showing a second operlating condition 01 the device shown in Figure Figure 3 is an interrupted longitudinal view along line 2-3 of Figure 1.
Referring to the drawings, there is shown a laminated, cylindrical transformer stator core Iii having a length that is several times greater than the outside diameter. A laminated rotor l2, of substantially the same length as the stator i0, is rotatably mounted along the axis of the stator core ill by means of a shaft I4. The stator core l0 and the rotor I2 are formed of a non-magnetic, permeable material, such as silicon steel.
The stator core i0 is divided longitudinally into three sets of wire bearing pole pieces i6 by means of wire cells 18, a free pole piece 20 occuring between each set of wire bearing pole pieces. The wire cells 18 extend longitudinally along the core l0 arallel to the axis thereof and open inwardly toward the rotor 12.
Each set of wire bearing pole pieces it bears a primary transformer winding 22 and a secondary transformer winding 24. The wire cells i8, defining the sides of the free pole pieces 20, ar of single size as compared to the double size cells pieces it of each set of wire bearing pole pieces. The double size cells l8 are necessarily larger than the single size cells since they must receive both one side of the primary transformer winding 22 and one side of the secondary transformer winding 24. Both the single and double cells l8 are sufficiently large to permit passage therethrough of a cooling medium after the transformer windings 22, 24 are in place.
The wire cells it defining each wire bearing pole piece l6 are substantially parallel along the greater part of their radial lengths. but are flanged-transversely apart toward their innermost ends to constrain windings 22 and 24 in place about pole pieces 18.
Since the length of the stator core in is several times greater than its diameter, the length of. conductor lying in the cells 18 is great compared to the length of conductor positioned about the ends of the pole pieces l8.
Each set of wire bearing pole pieces l8, bearing a primary winding 22 and a secondary winding 24, constitutes a single transformer. Windings 22, 24 are brought out to a panel board (not shown).
It will be apparent that the device may be used as a. single phase transformer or may be used as a multiple-phase transformer in star or delta electrical arrangement. The rotor i2 is dinally formed'air provided with three longitugap channels 26 spaced 120 apart about the surface of therotor. The channels 26 are of substantially the same width as the innermost faces of the free poles 20, the radial depth of the channels being slight as compared to the width.
It will be seen that maximum flux linkage between primary windings 22 and secondary winding 24 will be attained when the rotor is in the position shown in Figure 1. There the air gap channels 26 are positioned opposite the free poles '20 and lines of magnetic force generated by windings 22 and 24 readil pass through the low reluctance path furnished by the rotor.
Referring now to Figure 2, wherein the rotor I 2 has been displaced through a counterclockwise angle of approximately 40 degrees, it will be seen that the flux path is now one of maximum reluctance since the channel 26 provides an air gap in the flux path between the primary winding 22 and the secondary winding 24. Further, it will be seen that flux generated by primary winding 22 is now free to escape throughthe free pole 20, whereas formerly it was constrained from escaping counterclockwise due to th positioning of the air gap channel 26 opposite the free pole 20. Thus at this position there is a minimum of flux linkage and correspondingly a minimum of energy transference.
It will be seen that displacement of rotor 24 results in equal and simultaneous attenuation for each set of windings l6, l8, since the channels 26 are equiangularly displaced. In the event that it is desired to provide non-uniform energy transference for the for polyphase operation,
.many modifications and changes may be made in the preferred embodiment disclosed herein. For example, the transformer core and the variable reluctance path stead of being circularly arranged. It is therefore' intended that the full scope of the invention be defined by the appended claims.
What is claimed is:
l. A variable transformer comprising 9, stator having a pluralit of longitudinally disposed pole pieces, at least two sets of primary and secondary transformer windings, the primary and secondary windings of each set being positioned on adjacent pole pieces, afree pole piece disposed be tween each pair of pole pieces bearing transformer windings, a rotor positioned along the axis of said stator and included in the magnetic path of each set of primary and secondary transformer windings, said rotor having at least two longitudinally formed air gap channels disposed along the surface thereof, said channels being spaced to oppose said free pole pieces whereby rotation of said rotor will displace said channels from a position opposite said free pole piece to a position opposite said transformer windings.
2. The device according to claim 1, wherein said channels are shaped to provide a linear variation of coupling with respect to rotational displacement of said rotor.
3. The device according to claim 1, wherein said channels are shaped to provide a non-linear variation of coupling with respect to rotational displacement of said rotor.
4. A variable transformer comprising a stator having a plurality of longitudinally formed pole pieces, the length of said stator being several times the diameter of said stator, at least two sets of primary and secondary transformer windings,
1 the primary and secondary windings of each set various sets of windings, the channels 26 would be non-equiangularly disposed.
There has thus been provided a variable transformer that may be easily cooled, that may be operated single phase or polyphase, and that may be varied without displacement of the position of the windings themselves. The flux linkage may be varied over a wide range, since the flux linkage is dependent upon the angular displacement of the rotor 24 from a position of maximum linkage. Depending upon the shape of the channels 28, the attenuation may be either linear or nonlinear; and depending upon the angular position of the channels with respect 'to each other, each phase may be attenuated uniformly or non-uniformly.
It will be apparent that the transformer disclosed herein is well adapted to be hermetically sealed. Sealing may be accomplished in any well known manner, such as by the use of the gasket and bell cap arrangement commonly used to seal hermetically electric motors and generators.
There has thus been disclosed a novel type of variable transformer. It will be apparent that bearing pole pieces, a wire cell occurring betweeneach pole piece, said wire cells being of sufficient width to receive said windings and to form wind cells adjacent said windings, a rotor positioned along the axis of said stator and included in the magnetic path of each set of primary and secondary transformer windings, said rotor having at least two longitudinally formed air gap channels disposed along the surface thereof, said channels being spaced to oppose said free pole pieces Whereby rotation of said rotor will displace said channels from a position opposite said free pole pieces to a position opposite said transformer windings.
JEROME G. ABBOTT.
REFERENCES CITED The following references are of record in the file of this patent:
may be linearly arranged, in-
US674414A 1946-06-05 1946-06-05 Variable transformer Expired - Lifetime US2442751A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US674414A US2442751A (en) 1946-06-05 1946-06-05 Variable transformer

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US674414A US2442751A (en) 1946-06-05 1946-06-05 Variable transformer

Publications (1)

Publication Number Publication Date
US2442751A true US2442751A (en) 1948-06-08

Family

ID=24706503

Family Applications (1)

Application Number Title Priority Date Filing Date
US674414A Expired - Lifetime US2442751A (en) 1946-06-05 1946-06-05 Variable transformer

Country Status (1)

Country Link
US (1) US2442751A (en)

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2600546A (en) * 1949-01-03 1952-06-17 Bendix Aviat Corp Inductance type pick-off
US2883633A (en) * 1956-10-02 1959-04-21 Ultradyne Inc Variable-reluctance position transducer
US3112474A (en) * 1958-04-25 1963-11-26 Burroughs Corp Magnetic signal distribution system
US3123785A (en) * 1964-03-03 Moller
US4517471A (en) * 1981-07-29 1985-05-14 Anton Piller Gmbh & Co. Kg Rotary converter machine for direct transfer of electric energy by flux linkage between windings on a stator pack
US4672347A (en) * 1985-07-01 1987-06-09 The Charles Stark Draper Laboratory, Inc. Multi-speed resolver using ferrite stator and rotor structures
US20170154718A1 (en) * 2015-11-30 2017-06-01 Fanuc Corporation Multi-phase reactor capable of obtaining constant inductance for each phase
US20180068783A1 (en) * 2016-09-08 2018-03-08 Fanuc Corporation Reactor including first end plate and second end plate
DE102017130206B4 (en) 2016-12-21 2024-06-20 Fanuc Corporation Multiphase transformer

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1716553A (en) * 1926-07-10 1929-06-11 Ray P Higbee Transformer

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1716553A (en) * 1926-07-10 1929-06-11 Ray P Higbee Transformer

Cited By (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3123785A (en) * 1964-03-03 Moller
US2600546A (en) * 1949-01-03 1952-06-17 Bendix Aviat Corp Inductance type pick-off
US2883633A (en) * 1956-10-02 1959-04-21 Ultradyne Inc Variable-reluctance position transducer
US3112474A (en) * 1958-04-25 1963-11-26 Burroughs Corp Magnetic signal distribution system
US4517471A (en) * 1981-07-29 1985-05-14 Anton Piller Gmbh & Co. Kg Rotary converter machine for direct transfer of electric energy by flux linkage between windings on a stator pack
US4672347A (en) * 1985-07-01 1987-06-09 The Charles Stark Draper Laboratory, Inc. Multi-speed resolver using ferrite stator and rotor structures
US20170154718A1 (en) * 2015-11-30 2017-06-01 Fanuc Corporation Multi-phase reactor capable of obtaining constant inductance for each phase
US10373753B2 (en) * 2015-11-30 2019-08-06 Fanuc Corporation Multi-phase reactor capable of obtaining constant inductance for each phase
DE102016122564B4 (en) 2015-11-30 2022-06-02 Fanuc Corporation MULTI-PHASE INDUCTOR CAPABLE OF OBTAINING A CONSTANT INDUCTANCE FOR EVERY PHASE
US20180068783A1 (en) * 2016-09-08 2018-03-08 Fanuc Corporation Reactor including first end plate and second end plate
US10490339B2 (en) * 2016-09-08 2019-11-26 Fanuc Corporation Reactor including first end plate and second end plate
DE102017130206B4 (en) 2016-12-21 2024-06-20 Fanuc Corporation Multiphase transformer
US12211640B2 (en) 2016-12-21 2025-01-28 Fanuc Corporation Multi-phase transformer

Similar Documents

Publication Publication Date Title
US2981855A (en) Synchronous motor
US2442751A (en) Variable transformer
US2767368A (en) Dynamoelectric control
US2836743A (en) Permanent magnet rotor
US3274526A (en) Insulating core transformers
US3590293A (en) Dynamoelectric machine having a stationary assembly of the permanent magnet type
US3169204A (en) Axial air gap machines
US3204167A (en) Electric motor winding arrangement
GB1247344A (en) Dynamo-electric machines
GB974730A (en) Improvements in or relating to salient-pole-rotor electrical machines
US3283188A (en) Coil construction
GB837546A (en) Improvements in and relating to dynamo-electric machines
US3466483A (en) Sintered rotor for an electric motor
US2608682A (en) Electromagnetic resolver
GB1096177A (en) High power synchronous electric machines
US2675494A (en) Adjustable pole pitch dynamoelectric machinery
US3453466A (en) Synchro generator having two stationary windings coupled by skewed rotor
US3413501A (en) Electric motors
US2774896A (en) Electrical machine, the magnetic circuit of which comprises one or more permanent magnets
US2596711A (en) Electromagnetic apparatus
US1794717A (en) Magnetic modulator
US3459981A (en) Shaded pole synchronous motor
US2107872A (en) Dynamo-electric machine
US3358165A (en) Three-phase electric motors
US3052806A (en) Electric motors and stators therefor