SYSTEM AND METHOD FOR ADJUSTING AN AIR GAP IN A SERVOVALVE TORQUE MOTOR AND A NEW TYPE OF TORQUE MOTOR
20180138789 · 2018-05-17
Inventors
Cpc classification
F15B13/0438
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K26/00
ELECTRICITY
International classification
Abstract
An improved torque motor for use in a servovalve is described herein, comprising: first and second pole pieces, having a C-shaped cross-section comprising a ring shaped section extending in a first plane with first and second portions extending perpendicularly away from said plane and inwards towards an armature plate. The perpendicularly extending portions are detachable from and attachable to the ring-shaped section of the pole pieces to allow for easier calibration and adjustment of the air gaps between the pole pieces and the armature plate positioned there between.
Claims
1. A torque motor for use in a servovalve comprising: first and second pole pieces, first and second permanent magnets held between said pole pieces, an armature plate supported between said pole pieces; and first and second magnetic coils coupled to said armature; wherein each of said first and second pole pieces have a C-shaped cross-section comprising a ring-shaped section extending in a first plane with first and second portions extending perpendicularly away from said plane and towards said armature; and further wherein said perpendicularly extending portions (are detachable from and attachable to said ring-shaped section of said pole pieces.
2. The torque motor of claim 1 wherein said detachable/attachable portions are attached to said ring-shaped section via a screw or screws.
3. The torque motor of claim 1, wherein said detachable/attachable portions comprise a protrusion having a first shape and said ring-shaped section comprises a cut-out section of a corresponding shape, for connecting said detachable/attachable portions to said ring-shaped section.
4. The torque motor of claim 2, wherein said detachable/attachable portions comprise a protrusion having a first shape and said ring-shaped section comprises a cut-out section of a corresponding shape, for connecting said detachable/attachable portions to said ring-shaped section.
5. The torque motor of claim 1, wherein said detachable/attachable portions comprise a cut-out section having a first shape and said ring-shaped section comprises a protrusion of a corresponding shape, for connecting said detachable/attachable portions to said ring-shaped section.
6. The torque motor of claim 2, wherein said detachable/attachable portions comprise a cut-out section having a first shape and said ring-shaped section comprises a protrusion of a corresponding shape, for connecting said detachable/attachable portions to said ring-shaped section.
7. The torque motor of claim 3, wherein said detachable/attachable portions comprise a cut-out section having a first shape and said ring-shaped section comprises a protrusion of a corresponding shape, for connecting said detachable/attachable portions to said ring-shaped section.
8. The torque motor of claim 4, wherein said detachable/attachable portions comprise a cut-out section having a first shape and said ring-shaped section comprises a protrusion of a corresponding shape, for connecting said detachable/attachable portions to said ring-shaped section.
9. A method of calibrating the air gaps in a torque motor of a servovalve comprising: assembling said torque motor by providing first and second pole pieces, positioning first and second permanent magnets between said pole pieces, providing an armature plate supported between said pole pieces; and coupling first and second magnetic coils to said armature plate; wherein each of said first and second pole pieces have a C-shaped cross-section comprising a ring shaped section extending in a first plane with first and second portions extending perpendicularly away from said plane and towards said armature plate; and further wherein said perpendicularly extending portions are detachable from and attachable to said ring-shaped section of said pole pieces; said method of calibrating further comprising: measuring air gaps e.sub.1-e.sub.4 between said perpendicularly extending portions of the pole pieces and said armature plate; and detaching and removing said perpendicularly extending portions of the pole pieces; altering the dimensions of said perpendicularly extending portions of the pole pieces; and re-attaching said perpendicularly extending portions to said ring-shaped section.
10. The method of claim 9, wherein said step of re-attaching said perpendicularly extending portions to said ring-shaped section comprises attaching said detachable/attachable portions to said ring-shaped section via a screw or screws.
11. The method of claim 10, wherein said detachable/attachable portions comprise a protrusion having a first shape and said ring-shaped section comprises a cut-out section of a corresponding shape, and wherein said step of re-attaching said perpendicularly extending portions to said ring-shaped section comprises slotting said protrusion into said cut-out section.
12. The method of claim 9, wherein said detachable/attachable portions comprise a protrusion having a first shape and said ring-shaped section comprises a cut-out section of a corresponding shape, and wherein said step of re-attaching said perpendicularly extending portions to said ring-shaped section comprises slotting said protrusion into said cut-out section.
13. The method of claim 9, wherein said detachable/attachable portions comprise a cut-out section having a first shape and said ring-shaped section comprises a protrusion of a corresponding shape, and wherein said step of re-attaching said perpendicularly extending portions to said ring-shaped section comprises slotting said protrusion into said cut-out section.
14. The method of claim 10, wherein said detachable/attachable portions comprise a cut-out section having a first shape and said ring-shaped section comprises a protrusion of a corresponding shape, and wherein said step of re-attaching said perpendicularly extending portions to said ring-shaped section comprises slotting said protrusion into said cut-out section.
15. The method of claim 11, wherein said detachable/attachable portions comprise a cut-out section having a first shape and said ring-shaped section comprises a protrusion of a corresponding shape, and wherein said step of re-attaching said perpendicularly extending portions to said ring-shaped section comprises slotting said protrusion into said cut-out section.
16. The method of claim 12, wherein said detachable/attachable portions comprise a cut-out section having a first shape and said ring-shaped section comprises a protrusion of a corresponding shape, and wherein said step of re-attaching said perpendicularly extending portions to said ring-shaped section comprises slotting said protrusion into said cut-out section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026]
[0027]
[0028] As can be seen in
[0029] Examples of an improved system and method for adjusting the air gaps e1 to e4 in an assembled torque motor for a servovalve will now be described in detail with reference to the drawings. These examples overcome the disadvantages associated with current known techniques and systems as described above in the background of the invention.
[0030]
[0031] The first and second pole pieces 20, 20 (having a C-shaped cross section) again each comprise a ring shaped section 20a, 20b extending in a first plane with first 20c, 20e and second portions 20d, 20f (i.e. the top and bottom of the C shape) extending perpendicularly away from the plane in which the ring shaped section 20a, 20b extends. These first and second portions 20c-20f of each pole piece again extend perpendicularly away from the plane in the same direction as each other as is the case with the example shown in
[0032] The pole pieces 20, 20 of this example hold the magnets 30a, 30b between them, may be made of a soft magnetic material and have a similar or identical shape to each other. In the example shown in
[0033] As is described above, the torque motor 100 may further comprise a pair of coils 11a, 11b that are coupled to the armature 50 that is mounted at its center to a torsion beam (not shown as it is internal and cannot be seen). The armature 50 extends from a first end 51 to a second end 52 and the coils 11a, 11b may further have windings passing around the armature 50 at both ends 51, 52 of the armature 50.
[0034] The first 51 and second ends 52 of the armature 50 extend between the perpendicular portions 20c-20f of the pole pieces 20, 20 as shown in
[0035] Unlike in the known torque motors, such as that shown in
[0036] The entire pole piece 20, 20 is conductive including the ring-shaped section 20a, 20b, as well as the detachable/attachable portions which can be separated from the ring-shaped section 20a, 20b of each pole piece 20, 20.
[0037] The detachable, sections 20c-20f of the pole pieces may be attached so as to extend perpendicularly to the plane of the ring-shaped section 20a, 20b via differing means. One means may be the use of stock screws 41 to fix them to the ring section 20a, 20b. This method makes the assembly cheaper.
[0038] Additionally/alternatively, a shaped connection may be used, as is depicted in
[0039] Due to this unique detachable/attachable feature of the pole pieces described herein, a new method of calibrating the air gaps in a torque motor 100 of a servovalve may therefore comprise the steps of assembling the torque motor by providing first and second pole pieces 20, 20, positioning first and second permanent magnets 30a, 30b between the pole pieces 20, 20, providing an armature plate 50 supported between the pole pieces 20, 20; and coupling first and second magnetic coils 11a, 11b to the armature plate 50. As described above, each of the first and second pole pieces 20, 20 have a C-shaped cross-section comprising a ring shaped section 20a, 20b extending in a first plane with first 20c, 20e and second portions 20d, 20f extending perpendicularly away from that plane. The method further comprises assembling all of the components of the torque motor and then measuring the air gaps e1-e4 between the perpendicularly extending portions 20c-20f of the pole pieces and armature plate 50 as is normally done and as shown in
[0040] In some examples, the step of re-attaching the perpendicularly extending portions 20c-20f to the ring-shaped section 20a, 20b comprises attaching the detachable/attachable portions to the ring-shaped section via a screw or screws 41.
[0041] In some examples, the detachable/attachable portions 20c-20f may comprise a protrusion 21 having a first shape and the ring-shaped section 20a, 20b may comprises a cut-out section 22 of a corresponding shape, and the step of re-attaching the perpendicularly extending portions 2c-2f to the ring-shaped section 20a, 20b may comprise slotting the protrusion 21 into the cut-out section 22. This method of attachment may be used as an alternative to, or in addition to, the use of screws.
[0042] In some examples, the detachable/attachable portions 2c-2f comprise a cut-out section 23 having a first shape and the ring-shaped section 20a, 20b comprises a protrusion 24 of a corresponding shape, and the step of re-attaching the perpendicularly extending portions 20c-20f to the ring-shaped section 20a, 20b comprises slotting the protrusion 24 into the cut-out section 23. This method of attachment may also be used as an alternative to, or in addition to, the use of screws and/or the presence of the cut-out section being on the detachable portions as described above.
[0043] In contrast to the known torque motors, by providing pole pieces such as these wherein the perpendicularly extending portions 20c-20f are detachable/attachable/removable, the method of adjusting the air gap is greatly improved in terms of both ease and accuracy.
[0044] For example, the torque motor 100 may be assembled, the air gaps e1-e4 measured, and then the detachable portions 20c-20f of the pole pieces 20, 20 may be removed. The dimensions of those detachable portions 20c-20f can then be easily adjusted before being reinserted, fixed or slotted back into position within the assembled structure.
[0045] As described above, this can be achieved just by unscrewing a couple of screws 41 or by replacing elements. This also results in allowing the air gap to be very accurately formed and without creating the material or manufacturing (or indeed other unexpected) problems that are associated with known devices, as described above in the background section of the present application.
[0046] This new type of torque motor therefore provides an assembly that allows for a much easier process of calibration/adjustment. There are also lower requirements for the dimensions of the pole pieces used. The requirements for the armature and magnet heights are also lower. This is highly advantageous since the magnet height is one of the key features in the tolerance analysis when upper Air Gaps are calculated.
[0047] With regards to the armature, the current brazing process for the armature is complicated, because three elements (in this design: the Plate, the Torsion Bridge, and the Flapper) must be brazed with very high geometrical requirements. Additionally, with current methods, the armature must have additional machining operations performed after brazing to keep a few important dimensions. The new methods and devices described herein therefore also overcome these problems.
[0048] Another advantage to the examples described herein is that, since no additional processes such as WEDM, grinding or similar are required, there would be no change in the material properties (e.g. the conductivity, magnetic permeability etc.) of the soft magnetic material parts of the assembly
[0049] There is also no need to assemble, disassemble and measure the values of the air gaps for each process step, as all that is required is to assemble the motor and then remove the detachable/attachable portions and alter the air gaps via changing these detachable portions. This not only saves time but also reduces the costs of the whole servovalve.
[0050] Although slightly more parts are required (in that the detachable parts are manufactured separately to the ring shaped section). The manufacture of such parts is actually easier than manufacturing the C-shaped pole pieces in one piece.