Torque motor
11114928 · 2021-09-07
Assignee
Inventors
Cpc classification
F16K31/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K26/00
ELECTRICITY
International classification
F16K31/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K26/00
ELECTRICITY
F15B13/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A pole piece for a torque motor includes two separate arcuate members and first and second diametrically opposed attachment portions formed as a single piece of material. Each arcuate member extends in opposite directions from the first attachment portion and following a generally circular path defining a perimeter of the pole piece and meeting each other at the second attachment portion. The arcuate members are devoid of any holes or apertures.
Claims
1. The method of constructing a torque motor, comprising: providing at least one pole piece formed from a single piece of material and at least partially by two arcuate members extending in opposite directions from a first attachment portion of the pole piece and following a generally circular path defining a perimeter of the pole piece, wherein a cross-section of the arcuate members are devoid of any holes or apertures and meet each other at a second attachment portion diametrically opposed from the first attachment portions of the pole piece, a top surface and a bottom surface of each arcuate member extends vertically and circumferentially away from the first attachment portion.
2. The method as claimed in claim 1, wherein the arcuate members have a substantially constant cross-sectional area along the generally circular path.
3. The method as claimed in claim 1, further comprising: providing a lower pole piece and an upper pole piece, wherein at least one of the lower pole piece and the upper pole piece consists of the at least one pole piece; and providing one or more permanent magnets extending between the lower pole piece and the upper pole piece, wherein the permanent magnets are configured to support the upper pole piece in use.
4. A pole piece for a torque motor, wherein the pole piece is a single piece of material formed at least partially by two separate arcuate members, each extending in opposite directions from a first attachment portion of the pole piece and following a generally circular path defining a perimeter of the pole piece, wherein a cross-section of the arcuate members are devoid of any holes or apertures and meet each other at a second attachment portion diametrically opposed from the first attachment portions, of the pole piece, a top surface and a bottom surface of each arcuate member extends vertically and circumferentially away from the first attachment portion.
5. The pole piece as claimed in claim 4, wherein the arcuate members have a substantially constant cross-sectional area along the generally circular path.
6. The pole piece as claimed in claim 4, wherein the arcuate members comprise a square cross-section along the generally circular path.
7. The pole piece as claimed in claim 4, wherein the arcuate members are symmetrically opposed to each other.
8. The pole piece as claimed in claim 4, wherein the first and second attachment portions each comprises a block of material from which each arcuate member extends.
9. The pole piece as claimed in claim 4, wherein an outer circumferential surface of the pole piece has a generally cylindrical profile.
10. An apparatus for a torque motor, comprising: a lower pole piece; an upper pole piece; and one or more permanent magnets extending between the lower pole piece and the upper pole piece, wherein the permanent magnets are configured to support the upper pole piece in use; wherein each of the lower pole piece and the upper pole piece is a pole piece is a single piece of material formed at least partially by two separate arcuate members, each extending in opposite directions from a first attachment portion of the pole piece and following a generally circular path defining a perimeter of the pole piece, wherein a cross-section of the arcuate members are devoid of any holes or apertures and meet each other at a second attachment portion diametrically opposed from the first attachment portions of the pole piece, a top surface and a bottom surface of each arcuate member extends vertically and circumferentially away from the first attachment portion.
11. The apparatus as claimed in claim 10, wherein the arcuate members have a substantially constant cross-sectional area along the generally circular path.
12. The apparatus as claimed in claim 10, wherein the upper pole piece is supported solely by the permanent magnets in use.
13. The apparatus a claimed in claim 10, in combination with an armature located between the lower pole piece and the upper pole piece to form a torque motor.
14. The apparatus as claimed in claim 13, wherein the armature extends along a longitudinal axis (A), and comprises opposed surfaces located at opposed ends of the armature along the longitudinal axis (A) thereof, wherein the opposed surfaces follow a curved profile corresponding to a curved profile of the lower pole piece and the upper pole piece.
15. The apparatus of claim 13, wherein the apparatus is in a servovalve.
16. The apparatus a claimed in claim 10, wherein the arcuate members comprise a square cross-section along the generally circular path.
17. The apparatus a claimed in claim 10, wherein the arcuate members are symmetrically opposed to each other.
18. The apparatus a claimed in claim 10, wherein each arcuate member extends vertically and circumferentially away from the first attachment portion.
19. The apparatus a claimed in claim 10, wherein an outer circumferential surface of the pole piece has a generally cylindrical profile.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Various embodiments will now be described, by way of example only, and with reference to the accompanying drawings in which:
(2)
(3)
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(6)
DETAILED DESCRIPTION
(7) Herewith will be described various embodiments of a in servovalve and torque motor, wherein the magnetic elements thereof have a structure designed to improve the magnetic flux through the various components, and in particular the magnetic elements of the servovalve and torque motor thereof.
(8)
(9) The servovalve 100 comprises a torque motor 110 that is configured to sit on a base 102 of the servovalve 100. The base 102 of the servovalve 100 contains the various hydraulic, pneumatic or other fluid ports, and as is known in the art the torque motor 110 controls the flow of fluid through the various ports. It should be noted that the torque motor 110 disclosed herein, and various components thereof are considered to be advantageous in their own right, and the broadest aspects of the present disclosure are not limited to the use of the torque motor 110 within the servovalve 100 as shown in
(10)
(11) The torque motor 110 comprises a lower pole piece 120 and an upper pole piece 130. The lower pole piece 120 and the upper pole piece 130 are substantially identical, although mirror images of each other. The lower pole piece 120 and the upper pole piece 130 have a substantially circular shape when viewed from above or below (see, e.g.,
(12) The arcuate members 122, 132 extend from a first of the attachment portions 124, 134 in opposite directions, then follow a substantially circular path such that they meet at a second of the attachment portions 124, 134, which is diametrically opposed to the first attachment portion 124, 134.
(13) Each arcuate member 122, 132 may be formed by three sections 122A-C, 132A-C, wherein a first section 122A, 132A connects to an attachment portion 124, 134 and extends vertically and circumferentially away from the attachment portion 124, 134 to the second section 122B, 132B, which extends circumferentially around the circular path, wherein the second section 122B, 132B then extends into a third section 122C, 132C that extends vertically and circumferentially towards the diametrically opposed attachment portion 124, 134.
(14) An outer circumferential surface 123, 133 of each pole piece 120, 130 has a generally cylindrical profile. For example, when viewed from above (see
(15) The torque motor 110 further comprises an armature 150 that is located between the lower pole piece 120 and the upper pole piece 130. The armature 150 extends along a longitudinal axis A thereof between one of the diametrically opposed locations and the other of the diametrically opposed locations.
(16) The torque motor 110 comprises a central, longitudinal axis X that is perpendicular to the longitudinal axis A of the armature 150.
(17) As discussed above and generally, each arcuate member 122, 132 of the pole pieces 120, 130 extends from a respective attachment portion 124, 134 at least partially in a vertical direction away from the armature 150 and around a circumferential path formed by the general shape of the pole piece 120, 130.
(18) In various embodiments, a cross-section of each arcuate member 122, 132 may be substantially constant along a longitudinal axis (Y) (see
(19) Similar effects may be achieved by reducing the variation in cross-sectional area, as opposed to keeping it exactly constant. As such, in various embodiments the cross section of the arcuate members 122, 132 along their longitudinal axis Y may not change by more than +/−20%, +/−10% or +/−5%.
(20) The torque motor 110 further comprises permanent magnets 140 located on opposed sides of the torque motor 110 and extending between respective arcuate members 122, 132 of the upper pole piece 130 and the lower pole piece 120. The permanent magnets 140 may be arcuate such that they follow the general profile of each arcuate member 122, 132 that they extend between.
(21) In various embodiments, the cross-section of each arcuate member 122, 132 may be substantially constant along its longitudinal axis Y and between its respective attachment portion 124, 134 and the point at which it meets a respective one of the permanent magnets 140, at which point the magnetic flux can dissipate into the permanent magnet 140.
(22) In the illustrated embodiment, a small undercut 129 is present at the point at which the arcuate member 122, 132 meets the permanent magnet 140. This is provided to facilitate positioning of the elements, but may not be present.
(23) As shown in
(24) The armature 150 may terminate at end surfaces 159, which end surfaces 159 are perpendicular to the longitudinal axis A of the armature 150. The end surfaces 159 may be curved, and may follow the outer circular or cylindrical contour of the torque motor 110, and specifically the contour of the upper and lower pole pieces 130, 120 as shown in
(25) The various features described in respect of the armature 150, for example the substantially constant cross-section along its longitudinal axis A, and the curved nature of the end surfaces 159 have been found to reduce magnetic flux losses in accordance with the overall aims of the present disclosure.
(26) The torque motor 110 further comprises one or more electromagnetic coils 170, which extend around a respective arm portion 152, 154 of the armature 150. As is known in the art, application of an electrical current to the electromagnetic coils 170 causes the armature 152 move. This, in turn, causes one or more components of the servovalve 100 to move and fluid within the base portion 102 of the servovalve 100 to be displaced, for example to actuate a component.
(27) Various embodiments of the present disclosure are aimed at providing a smooth magnetic circuit for the torque motor 110, which is designed to provide various technical effects due to the shape and construction of the various components of the torque motor 110.
(28) As shown in various finite element simulations (see, e.g.,
(29) Use of constant cross-section pieces, or sections of pieces as discussed above can lead to reduced saturation of magnetic flux, and increased magnetic torque. These technical effects mean that the angular stroke for the torque motor 110 may be higher compared to the conventional arrangements.
(30) The manufacturing cost of the components, in particular the upper and lower pole pieces 120, 130 may be decreased, due to the reduced need to, for example, drill through them, and the ability to injection mould the pieces.
(31) As will be appreciated from
(32) Although the present disclosure has been described with reference to various embodiments, it will be understood by those skilled in the art that various changes in form and detail may be made without departing from the scope of the invention as set forth in the accompanying claims.