Electromagnetic actuator and hydraulic pressure adjustment mechanism
11398332 · 2022-07-26
Assignee
Inventors
- Shoji Ishikawa (Chiyoda-ku, JP)
- Toru Ogawa (Chiyoda-ku, JP)
- Kazumasa Ito (Chiyoda-ku, JP)
- Ryuichi TAKIGUCHI (Chiyoda-ku, JP)
Cpc classification
F16K31/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01F7/1615
ELECTRICITY
H02K33/02
ELECTRICITY
F15B13/0402
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/86622
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/0433
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01F2007/083
ELECTRICITY
Y10T137/86614
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F16K31/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
To obtain an electromagnetic actuator capable of improving a thrust force of a movable element. Provided is an electromagnetic actuator, including: a stator, which has a first surface at one end in an axial direction and a second surface at another end in the axial direction, and is made of a soft magnetic material having a tubular space formed in the axial direction; and a movable element, which is disposed in the tubular space, and is configured to move along the axial direction, wherein the stator includes: a coil; a core portion; and a protrusion portion, wherein the movable element includes a movable element core made of a soft magnetic material and a permanent magnet, and wherein at least one of a radially inner side and a radially outer side of the permanent magnet is covered by a movable element core.
Claims
1. An electromagnetic actuator, comprising: a stator, which has a first surface at one end in an axial direction and a second surface at another end in the axial direction, and is made of a first soft magnetic material having a tubular space formed in the axial direction; and a movable element, which is disposed in the tubular space, and is configured to move along the axial direction, wherein the stator includes: a coil, which is provided in the stator, and is configured to excite the stator; a core portion, which is arranged between the coil and the movable element, and extends from a first surface side of the stator towards a second surface side of the stator; and a protrusion portion, which is arranged between the coil and the movable element, and which protrudes from the second surface side of the stator towards the first surface side of the stator, wherein the movable element includes a movable element core made of a second soft magnetic material and a permanent magnet, and at least one of a radially inner side and a radially outer side of the permanent magnet is covered by the movable element core, wherein the permanent magnet of the movable element is magnetized so that a first magnetic flux, which is generated from the permanent magnet and flows from a second end surface of the permanent magnet through the movable element core to a first end surface of the permanent magnet opposite the second end surface without flowing through the stator, flows in the axial direction in a first direction opposite to a second direction of a second magnetic flux which is generated and flows, when the coil is energized, in the movable element core, through a portion of the movable element core located in a radial direction from the permanent magnet, and wherein, when the coil is energized, the movable element moves from a first position where the second end surface of the permanent magnet that faces the second surface side of the stator does not extend past an end surface of the core portion of the stator that also faces the second surface side of the stator, in the second direction to a second position where the second end surface of the permanent magnet extends past the end surface of the core portion of the stator.
2. The electromagnetic actuator according to claim 1, wherein the permanent magnet is annularly provided in the movable element core.
3. The electromagnetic actuator according to claim 1, wherein, when the coil is not energized, the second end surface of the permanent magnet is located where the second end surface of the permanent magnet does not extend past the end surface of the core portion of the stator.
4. The electromagnetic actuator according to claim 1, wherein a surface of the permanent magnet on an inner peripheral side is covered by the movable element core, and wherein an outer peripheral surface of the permanent magnet is exposed to an outside of the movable element and forms a part of an outer side surface of the movable element.
5. The electromagnetic actuator according to claim 1, wherein a surface of the permanent magnet on an outer peripheral side is covered by the movable element core, and wherein an inner peripheral surface of the permanent magnet is exposed to a hollow portion of the movable element and forms a part of an inner side surface of the movable element.
6. The electromagnetic actuator according to claim 1, wherein both end surfaces in the axial direction and inner and outer peripheral surfaces of the permanent magnet are covered by the movable element core.
7. The electromagnetic actuator according to claim 1, wherein the permanent magnet is divided into a plurality of segments, and is annularly provided in the movable element.
8. The electromagnetic actuator according to claim 1, wherein the first end surface of the permanent magnet on the first surface side of the stator in the axial direction, and inner and outer peripheral surfaces of the permanent magnet, are covered by the movable element core, and wherein the second end surface of the permanent magnet on the second surface side of the stator in the axial direction are covered by a drive shaft which is configured to move integrally with the movable element.
9. The electromagnetic actuator according to claim 4, wherein both of the first and second end surfaces of the permanent magnet in the axial direction are covered by the movable element core.
10. A hydraulic pressure adjustment mechanism, comprising: an electromagnetic actuator including: a stator, which has a first surface at one end in an axial direction and a second surface at another end in the axial direction, and is made of a first soft magnetic material having a tubular space formed in the axial direction; and a movable element, which is disposed in the tubular space, and is configured to move along the axial direction, wherein the stator has: a coil, which is provided in the stator, and is configured to excite the stator, a core portion, which is arranged between the coil and the movable element, and extends from a first surface side of the stator towards a second surface side of the stator, and a protrusion portion, which is arranged between the coil and the movable element and which protrudes from the second surface side of the stator towards the first surface side of the stator; a spool valve configured to reciprocate in a sleeve by the movable element of the electromagnetic actuator; and a plurality of ports, which are formed in the sleeve, and is configured to open and close along with a reciprocating motion of the spool valve, wherein the movable element includes a movable element core made of a second soft magnetic material and a permanent magnet and at least one of a radially inner side and a radially outer side of the permanent magnet is covered by the movable element core, wherein the permanent magnet of the movable element is magnetized so that first magnetic flux, which is generated from the permanent magnet and flows from a second end surface of the permanent magnet through the movable element core to a first end surface of the permanent magnet opposite the second end surface without flowing through the stator, flows in the axial direction in a first direction opposite to a second direction of a second magnetic flux which is generated and flows, when the coil is energized, in the movable element core, through a portion of the movable element core located in a radial direction from the permanent magnet, and, wherein, when the coil is energized, the movable element moves from a first position where the second end surface of the permanent magnet that faces the second surface side of the stator does not extend past an end surface of the core portion of the stator that also faces the second surface side of the stator, in the second direction to a second position where the second end surface of the permanent magnet extends past the end surface of the core portion of the stator.
11. The electromagnetic actuator according to claim 1, wherein the first soft magnetic material and the second soft magnetic material are the same soft magnetic material.
12. The electromagnetic actuator according to claim 1, wherein, in the axial direction, the permanent magnet is closer to a second end surface of the movable element core that faces the second surface side of the stator than the permanent magnet is to a first end surface of the movable element core opposite the second end surface of the movable element core.
13. The electromagnetic actuator according to claim 1, further comprising an annular gap between the protrusion portion and the end surface of the core portion that faces the second surface side of the stator.
14. The electromagnetic actuator according to claim 1, wherein the first magnetic flux and the second magnetic flux flow through the movable element core on a same side of the permanent magnet in the radial direction.
15. The electromagnetic actuator according to claim 1, wherein the second position both the first end surface and the second end surface of the permanent magnet extend past the end surface of the core portion of the stator.
16. The hydraulic pressure adjustment mechanism according to claim 10, wherein the permanent magnet is annularly provided in the movable element core.
17. The hydraulic pressure adjustment mechanism according to claim 10, wherein, when the coil is not energized, the second end surface of the permanent magnet is located at the first position where the second end surface of the permanent magnet does not extend past the end surface of the core portion of the stator.
18. The hydraulic pressure adjustment mechanism according to claim 10, wherein, in the axial direction, the permanent magnet is closer to a second end surface of the movable element core that faces the second surface side of the stator than the permanent magnet is to a first end surface of the movable element core opposite the second end surface of the movable element core.
19. The hydraulic pressure adjustment mechanism according to claim 10, wherein the electromagnetic actuator further includes an annular gap between the protrusion portion and the end surface of the core portion that faces the second surface side of the stator.
20. The hydraulic pressure adjustment mechanism according to claim 10, wherein the first magnetic flux and the second magnetic flux flow through the movable element core on a same side of the permanent magnet in the radial direction.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(22) Now, electromagnetic actuators according to embodiments of the present invention are described with reference to the drawings. In the description of the plurality of embodiments, components which are substantially the same as those of a first embodiment are denoted by the same reference symbols, and description thereof is omitted.
First Embodiment
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(24) The electromagnetic actuator 100 includes the stator 1 having a cylindrical space on an inner side thereof, the coil 2 disposed in the stator 1, and the movable element 3 configured to move in an axial direction in the cylindrical space defined on the inner side of the stator 1. The movable element 3 includes a movable element core 31 and the permanent magnet 32.
(25) In the following, for convenience of description, a surface of the stator 1 having a core portion 11 formed thereon (U in
(26) The stator 1 has a cylindrical shape. As described above, the stator 1 has a cylindrical space on an inner side thereof. The cylindrical space is defined by the core portion 11 and the protrusion portion 12 surrounding a periphery thereof. The core portion 11 extends from the upper surface side towards the lower surface side of the stator 1. The protrusion portion 12 extends from the lower surface side towards the upper surface side and is opposed to a lower end of the core portion 11. A gap having a constant distance is defined between the lower end of the core portion 11 and a distal end of the protrusion portion 12. The stator 1 is made of a magnetic material. A typical magnetic material is iron.
(27) The movable element 3 has a cylindrical shape, and has a cylindrical hollow portion on an inner side thereof. The movable element 3 is disposed in a cylindrical space defined on the inner side of the stator 1 so that axial directions of the movable element 3 and the stator 1 match each other. A lower end surface of the movable element 3, that is, a surface of the movable element 3 which is opposed to the lower surface of the stator 1 is coupled to the stator 1 by a spring 4 which is disposed on an inner peripheral side of the protrusion portion 12 formed on the lower surface of the stator 1. The cylindrical space of the stator 1 and the cylindrical hollow portion of the movable element 3 have a common center axis.
(28) The movable element 3 is held by an elastic force of the spring 4 in the cylindrical space on the inner side of the stator 1. The movable element 3 is made of a magnetic material. A typical magnetic material is iron. The magnetic material forming the movable element 3 may be the same material as the magnetic material of the stator 1 or may be a different magnetic material.
(29) In the electromagnetic actuator 100 according to the first embodiment, the spring 4 being a kind of an elastic member is used to couple the movable element 3 to the lower surface of the stator 1. However, the movable element 3 may be held in the cylindrical space of the stator 1 by holding means using hydraulic pressure or air pressure so as to be freely movable.
(30) The coil 2 is provided in the stator 1. A magnetic flux 21 generated through energization of the coil 2 is routed around in a path of the core portion 11 of the stator 1, the movable element core 31, and the protrusion portion 12 in the state order to form a magnetic circuit.
(31) As illustrated in
(32) The permanent magnet 32 is magnetized in a direction extending from the upper surface towards the lower surface. With this, as indicated by the broken line in
(33) As described above, the upper and lower end surfaces of the permanent magnet 32 are covered by the movable element core 31. Moreover, it is desired that an axial length L1 of the permanent magnet 32 correspond to such a distance that the magnetic material forming the movable element core 31 located on the inner peripheral side of the permanent magnet 32 is prevented from being magnetically saturated by the magnetic flux 22 generated by the permanent magnet 32 when the coil 2 is not energized. This is because, when the movable element core 31 is magnetically saturated by the magnetic flux 22, the amount of the magnetic flux 22 which flows from the movable element 3 towards the core portion 11 of the stator 1 increases, and a magnetic attraction force exerted in a direction opposite to the direction of the thrust force acts on the movable element 3, with the result that the thrust force is reduced. When the movable element core 31 is not magnetically saturated by the magnetic flux 22, the magnetic flux 22 flows mainly through the magnetic circuit formed in the movable element 3, and the amount of the magnetic flux 22 which flows towards the core portion 11 is reduced, thereby being capable of suppressing the reduction in thrust force.
(34) When the coil 2 is not energized, as illustrated in
(35) In the configuration of the electromagnetic actuator 100 according to the first embodiment, the annular permanent magnet 32 is divided into segments in a circumferential direction. After magnetization in a desired direction, the segments of the annular permanent magnet 32 are fitted and inserted from a radially outer side into an annular groove formed in the outer peripheral surface of the movable element core 31. Through use of an adhesive applied between the movable element core 31 and the permanent magnet 32, the permanent magnet 32 is integrally fixed to the movable element core 31.
(36) Now, description is made of an operation of the electromagnetic actuator 100. When the coil 2 is not energized, the movable element 3 is held by the elastic force of the spring 4 in the cylindrical space defined on the inner side of the stator 1 so that the lower end surface of the permanent magnet 32 is located above the lower end of the core portion 11 of the stator 1. The position illustrated in
(37) Next, description is made of a behavior of the movable element 3 when the coil 2 is energized. The magnetic flux 21 generated through energization of the coil 2 forms a magnetic circuit of a flow from the core portion 11 of the stator 1 to the protrusion portion 12 through the movable element core 31 of the movable element 3.
(38) When the coil 2 is energized, the magnetic flux 21 flowing through the stator 1 flows also into the movable element core 31, and the movable element 3 forms the magnetic circuit together with the stator 1. The magnetic flux 21 generates a magnetic attraction force between the stator 1 and the movable element core 31. Then, owning to a component acting in the axial direction in the magnetic attraction force which acts between the protrusion portion 12 of the stator 1 and the movable element core 31, a thrust force towards the lower surface of the stator 1 along the axial direction is generated in the movable element 3. When the thrust force of the movable element 3 in the axial direction is larger than a net force of a spring force, which is a reaction force of the thrust force, and a friction force, the movable element 3 moves towards the lower surface of the stator 1 along the axial direction.
(39) When the energization of the coil 2 is stopped, the magnetic flux 21 having been generated through the energization of the coil 2 is not generated. As a result, the magnetic attraction force generated by the magnetic flux 21 also does not act on the movable element 3. Therefore, the movable element 3 returns again by the elastic force of the spring 4 to the position given when the coil 2 is not energized. As described above, through the switching between the energization state and the non-energization state of the coil 2, the movable element 3 performs a reciprocating motion in the axial direction.
(40) In the related-art electromagnetic actuator, as described above, directions of the magnetic flux generated by the coil in the movable element and the magnetic flux generated from the permanent magnet are matched with each other. However, the following problem arises in this case.
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(42) Meanwhile, in the electromagnetic actuator 100 according to the first embodiment of the present invention, when the magnetic flux 21 is generated through the energization of the coil 2, the magnetic saturation occurs in the movable element core 31. A part of the movable element core 31 in which the magnetic saturation occurs most is a magnetic material portion which is present in the space of the movable element core 31 which is sandwiched between the same planes as the upper and lower end surfaces of the permanent magnet 32 in the axial direction. This is because the above-mentioned portion is a portion having a smallest sectional area of a cross section perpendicular to the axial direction in the movable element core 31.
(43) In the electromagnetic actuator 100 according to the first embodiment of the present invention, at least one of the radially inner side and the radially outer side of the permanent magnet 32 is covered by the movable element core 31. Moreover, in the electromagnetic actuator 100, as described above, the magnetic flux 21 flows in the axial direction in the space sandwiched between the same planes as the upper and lower end surfaces of the permanent magnet 32 of the movable element core 31, and a direction of the magnetic flux 21 is the same as the magnetization direction of the permanent magnet 32. As a result of adopting such configuration, in the space sandwiched between the same planes as the upper and lower surfaces of the permanent magnet 32 of the movable element core 31, directions of the magnetic flux 21 and the magnetic flux 22 are opposite to each other, and hence the magnetic flux 21 is cancelled out by the magnetic flux 22. As a result, the magnetic saturation in the movable element core 31 by the magnetic flux 21 is alleviated. Further, the magnetic flux 22 generated from the permanent magnet 32 flows mainly through the magnetic circuit formed in the movable element 3, and hence the magnetic attraction force generated by the magnetic flux 22 which acts between the movable element 3 and the core portion 11 of the stator 1 and between the movable element 3 and the protrusion portion 12 is significantly reduced. Therefore, the defect which has arisen in the related-art electromagnetic actuator, that is, the defect that the thrust force of the movable element 3 is reduced in a part of a stroke is avoided. As a result, the thrust force of the movable element 3 is improved.
(44) According to the electromagnetic actuator 100 of the first embodiment, when the coil 2 is not energized, only the magnetic flux 22 generated by the permanent magnet 32 flows in the movable element core 31, but the magnetic flux 22 flows mainly through the magnetic circuit formed in the movable element core 31 and substantially does not flow to the outside of the movable element core 31. Thus, the magnetic attraction force which acts between the movable element 3 and the protrusion portion 12 of the stator 1 and the magnetic attraction force which acts between the movable element 3 and the core portion 11 can be suppressed. Further, when the coil 2 is energized, the magnetic flux 22 generated by the permanent magnet 32 suppresses local saturation of the magnetic flux 21 generated by the coil 2, and hence the magnetic flux amount of the magnetic flux 21 can be increased. Moreover, the magnetic flux 22 of the permanent magnet 32 flows mainly in the movable element core 31, and hence the magnetic attraction force which acts in a direction opposite to the direction of the thrust force between the permanent magnet 32 and the core portion 11 can be suppressed. Therefore, the defect that the thrust force is reduced in a part of a stroke in the movable element 3 is avoided, thereby attaining an effect of improving the thrust force of the movable element in the overall operation of the electromagnetic actuator 100. As a result, when the coil 2 is not energized, the movable element 3 can be held through use of a stronger spring, thereby improving oscillation resistance of the electromagnetic actuator 100.
Second Embodiment
(45) Description is made of an electromagnetic actuator 200 according to a second embodiment of the present invention with reference to
(46) In
(47) With reference to
(48) In the configuration of the electromagnetic actuator 200 according to the second embodiment, for example, the permanent magnet 32 is arranged so as to be sandwiched by the movable element core 31 divided into two segments in the axial direction, and at least one of the radially inner side and the radially outer side of the permanent magnet 32 is covered by the movable element core 31. An example of a division part of the movable element core 31 is indicated by the broken lines in
(49) According to the electromagnetic actuator 200 of the second embodiment, in addition to the effect similar to that of the first embodiment, the following effect is attained. As the permanent magnet 32 is disposed on the inner peripheral side of the movable element 3, the permanent magnet 32 and the core portion 11 are further separated apart from each other as compared to the configuration of the electromagnetic actuator 100 according to the first embodiment. Thus, the amount of the magnetic flux 22 flowing into the core portion 11 is further reduced as compared to the electromagnetic actuator 100 according to the first embodiment, and hence the reduction in thrust force of the movable element 3 due to an action of the magnetic attraction force generated by the magnetic flux 22 between the movable element 3 and the core portion 11 can be further suppressed as compared to the electromagnetic actuator 100 according to the first embodiment.
Third Embodiment
(50) Description is made of an electromagnetic actuator 300 according to a third embodiment of the present invention with reference to
(51) In
(52) With reference to
(53) The broken lines in
(54) According to the electromagnetic actuator 300 of the third embodiment, in addition to the effect similar to that of the electromagnetic actuator 100 according to the first embodiment, the following effect is attained. The upper and lower end surfaces and the inner and outer peripheral surfaces of the permanent magnet 32, that is, all of the surfaces are covered by the movable element core 31, and hence the amount of the magnetic flux 22 flowing into the core portion 11 is further reduced as compared to the electromagnetic actuator 100 according to the first embodiment. Therefore, the reduction in thrust force of the movable element 3 due to an action of the magnetic attraction force generated by the magnetic flux 22 between the movable element 3 and the core portion 11 can be further suppressed. Moreover, as the entirety of the permanent magnet 32 is covered by the movable element core 31, even when cracking or chipping occurs in the permanent magnet 32, separation and dispersion of the permanent magnet 32 from the movable element 3 can be suppressed.
Fourth Embodiment
(55) Description is made of an electromagnetic actuator 400 according to a fourth embodiment of the present invention with reference to
(56) With reference to
(57) The plurality of segments of the permanent magnet 32 are inserted into the movable element core 31 and thereafter fixed to the movable element core 31 by, for example, an adhesive and a magnetic force of the permanent magnet 32. As a result, the movable element core 31 and the permanent magnet 32 are integrated.
(58) According to the electromagnetic actuator 400 of the fourth embodiment, in addition to the effect similar to that of the first embodiment, the following effect is attained. In the cross section taken along the line A-A, a ratio of a sectional area of the cross section perpendicular to the axial direction occupied by the permanent magnet 32 is reduced as compared to the electromagnetic actuator 100 according to the first embodiment, and a larger sectional area of the movable element core 31 can be secured. Thus, the magnetic saturation in the movable element core 31 is further alleviated. Therefore, the amount of the magnetic flux 21 is further increased, thereby improving the thrust force.
(59) With regard to the electromagnetic actuator 400 according to the fourth embodiment of the present invention, description is made with an example of a case in which the permanent magnet 32 is provided on the outer peripheral surface of the movable element core 31. However, as in the electromagnetic actuator 300 according to the second embodiment and the third embodiment, the permanent magnet 32 may be provided on the inner peripheral surface side of the movable element core 31 or inside the movable element core 31.
(60) With respect to a radial length R of the movable element 3 illustrated in
Fifth Embodiment
(61) Description is made of an electromagnetic actuator 500 according to a fifth embodiment of the present invention with reference to
(62) The permanent magnet 32 has a configuration in which an upper surface and an outer peripheral surface thereof are covered by the movable element core 31 and in which a lower surface thereof is covered by a drive shaft 501 which moves integrally with the movable element 3.
(63) After the permanent magnet 32 is inserted into the movable element core 31, the drive shaft 501 is inserted into the movable element core 31. Thus, the movable element core 31, the permanent magnet 32, and the drive shaft 501 are integrated. It is only required that the drive shaft 501 be inserted into the movable element core 31 so as to move integrally with the movable element 3, and it is not required that the drive shaft 501 be brought into direct contact with the lower surface of the permanent magnet 32.
(64) According to the electromagnetic actuator 500 of the fifth embodiment, in addition to the effect similar to that of the electromagnetic actuator 100 according to the first embodiment, the following effect is attained. As the upper surface and the outer peripheral surface of the permanent magnet 32 are covered by the movable element core 31, and the lower surface is covered by the drive shaft 501, even when cracking or chipping occurs in the permanent magnet 32, separation and dispersion of the permanent magnet 32 from the movable element 3 can be suppressed. Moreover, the permanent magnet 32 may be formed into, for example, a columnar shape, and is not required to be processed into a special shape, thereby being capable of reducing processing cost.
Sixth Embodiment
(65) As one example of application of the electromagnetic actuators according to the first to fifth embodiments, in
(66) With the hydraulic pressure adjustment mechanism 600 according to the sixth embodiment to which the electromagnetic actuators according to the first to fifth embodiments are applied, the effects described in the above-mentioned first to fifth embodiments are attained. Therefore, with the hydraulic pressure adjustment mechanism 600 according to the sixth embodiment, the amount of oil flowing through a flow passage can be precisely controlled.
(67) As the stator 1 and the movable element 3 for the electromagnetic actuators according to the first to fifth embodiments, those having a cylindrical shape are used. However, a center axis is provided even in a case of a shape other than the cylindrical shape, and hence the electromagnetic actuator according to the invention of the present application attains a similar effect. Moreover, as the movable element 3 for the electromagnetic actuator according to the first to fourth embodiments, the movable element 3 having a cylindrical hollow portion on an inner side thereof is used. However, a center axis is provided even in a case of a shape having no hollow portion, and hence the electromagnetic actuator according to the invention of the present application attains a similar effect.
(68) The present invention is not limited to the forms described in Embodiments 1 to 6, within the scope of claims, the embodiments can freely be combined, and each of the embodiments can appropriately be modified or omitted.
REFERENCE SIGNS LIST
(69) 1 stator 2 coil 3 movable element 4 spring 11 core portion 12 protrusion portion 21 magnetic flux generated through energization of coil 22 magnetic flux generated by the permanent magnet 30 center axis 31 movable element core 32 permanent magnet 100, 200, 300, 400, 500 electromagnetic actuator 501 drive shaft 600 hydraulic pressure adjustment mechanism 601 spool valve 602 sleeve 602a, 602b, 602c, 602d port