Electromagnetic valve
11536389 · 2022-12-27
Assignee
Inventors
Cpc classification
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2027/1854
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2027/185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B27/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2027/1859
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0603
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B27/1804
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2027/1827
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0693
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electromagnetic valve has a valve housing; a valve body disposed inside the valve housing and movable in a reciprocating manner; an urging member configured to urge the valve body in one direction; and a drive device which is connected to the valve housing and applies a drive force to the valve body. A drive rod of the drive device includes a guide portion which faces an inner peripheral surface of a fixed iron core such that a movement of the drive rod is guided in an axial direction and a groove portion which is recessed in an inward radial direction from the guide portion and the groove portion is continuously formed from an inside of the valve housing to an inside of a movable iron core.
Claims
1. A capacity control valve comprising: a valve housing provided with a suction port, a discharge port and a control port communicating with a suction chamber, a discharge chamber and a control chamber of a variable displacement compressor, respectively; a valve body which is disposed inside the valve housing so as to be movable in a reciprocating manner; an urging member configured to urge the valve body in one direction; and a drive device which is connected to the valve housing and is configured to apply a drive force to the valve body, wherein the drive device includes a sleeve of which one end portion is closed, a cylindrical fixed iron core of which at least a part is disposed inside the sleeve, a movable iron core which is disposed inside the one end portion of the sleeve and which has an inner space, a drive rod which is disposed inside the fixed iron core so as to be movable in a reciprocating manner and of which a first end is connected to the valve body and a second end is connected to the movable iron core, and a coil portion configured to apply an electromagnetic drive force to the movable iron core, wherein the valve body is formed in a cylindrical shape, having an inner space configured to communicate the suction port and is connected to the drive rod in a state in which the drive rod is inserted to an inside of the valve body, wherein the drive rod includes a guide portion which faces an inner peripheral surface of the fixed iron core such that a movement of the drive rod is guided in an axial direction and a groove portion which is recessed in an inward radial direction from the guide portion, wherein the groove portion is continuously formed from an inside of the valve housing to an inside of the movable iron core, and the inner space of the valve body is configured to communicate with the suction port and the inner space of the movable iron core through the groove portion.
2. The capacity control valve according to claim 1, wherein the drive rod is fixed to the movable iron core in a state in which the guide portion is in contact with an inner peripheral surface of the movable iron core.
3. The capacity control valve according to claim 1, wherein a cross-section of the movable iron core is formed in a round cylindrical shape.
4. The capacity control valve according to claim 1, further comprising: a valve seat member configured to apply an urging force to the valve body in a direction resisting the drive force, and includes a valve seat surface engageable with the valve body.
5. The capacity control valve according to claim 2, wherein a cross-section of the movable iron core is formed in a round cylindrical shape.
6. The capacity control valve according to claim 2, further comprising: a valve seat member configured to apply an urging force to the valve body in a direction resisting the drive force, and includes a valve seat surface engageable with the valve body.
7. The capacity control valve according to claim 3, further comprising: a valve seat member configured to apply an urging force to the valve body in a direction resisting the drive force, and includes a valve seat surface engageable with the valve body.
8. The capacity control valve according to claim 5, further comprising: a valve seat member configured to apply an urging force to the valve body in a direction resisting the drive force, and includes a valve seat surface engageable with the valve body.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DESCRIPTION OF EMBODIMENTS
(11) A mode for implementing an electromagnetic valve according to the present invention will be described with reference to embodiments.
Embodiments
(12) An electromagnetic valve according to an embodiment of the present invention will be described with reference to
(13) A variable displacement compressor M that employs an electromagnetic valve according to the embodiment of the present invention includes, as illustrated in
(14) Further, in the variable displacement compressor M, the discharge chamber 2 and the suction chamber 3 are connected to an external refrigerating/cooling circuit. Furthermore, the refrigerating/cooling circuit mentioned herein has a configuration in which a condenser C, an expansion valve EV, and an evaporator E are sequentially arranged and constitutes a main part of an air conditioning system.
(15) Further, the variable displacement compressor M is provided with a communication passage 9 which allows the control chamber 4 and the suction chamber 3 to communicate with each other and the communication passage 9 is provided with a fixed orifice 9a which adjusts the pressure in the suction chamber 3 and the control chamber 4 in equilibrium.
(16) Further, the variable displacement compressor M includes a driven pulley 8 which is connected to a V-belt (not illustrated) outside the casing 1, a rotation shaft 8a which is rotatably provided to protrude from the inside of the control chamber 4 toward the outside of the casing 1 and fixed to the driven pulley 8, a swash plate 8b which is connected to the rotation shaft 8a in an eccentric state by a hinge mechanism 8e, a plurality of pistons 8c which are fitted so as to be respectively movable in a reciprocating manner in the respective cylinders 4a, a plurality of connection members 8d which connect the smash plate Sb to the respective pistons 8c, and a spring 8f which is inserted through the rotation shaft 8a.
(17) An inclination angle of the swash plate 8b is changeable in response to a control pressure Pc. This is because the inclination angle of the swash plate 8b is limited by the stroke width of the plurality of pistons 8c since the stroke width of the plurality of pistons 8c is changed by the control pressure Pc corresponding to a pressure inside the control chamber 4 although a force is always applied to the swash plate 8b due to the spring 8f and the hinge mechanism 8e. For that reason, although the inclination angle of the swash plate 8b becomes smaller as the control pressure Pc becomes higher, the inclination angle is limited by the hinge mechanism 8e when the control pressure becomes a certain pressure or more, so that the swash plate 8b is substantially perpendicular (a state in which the swash plate is slightly inclined rather than the perpendicular state) to the rotation shaft 8a. Furthermore, although the inclination angle of the swash plate 8b becomes larger as the control pressure Pc becomes lower, the inclination angle is limited by the hinge mechanism 8e when the control pressure becomes a certain pressure or less, so that the angle at that time becomes a maximum inclination angle.
(18) Furthermore, when the swash plate 8b is substantially perpendicular to the rotation shaft 8a, the stroke amount of the piston 8c is minimized, the pressure applied to the fluid by the cylinder 4a and the piston 8c is minimized, and the cooling capacity of the air conditioning system is minimized. Meanwhile, when the swash plate 8b is at the maximum inclination angle, the stroke width of the piston 8c is maximized, the pressure applied to the fluid by the cylinder 4a and the piston 8c is maximized, and the cooling capacity of the air conditioning system is maximized. Here, the fluid is a mixture of a refrigerant gas and a small amount of a lubricating oil.
(19) Further, the variable displacement compressor M adjusts the discharge amount by adjusting the electromagnetic force of the capacity control valve V by, for example, duty control and adjusting the control pressure Pc inside the control chamber 4. Specifically, when a current energizing a coil 87 of the capacity control valve V is adjusted, the opening degree of a first valve portion 52 and a second valve portion 53 to be described later is adjusted, and the amount of the fluid flowing into the control chamber 4 or flowing out of the control chamber 4 is adjusted, so that the control pressure Pc is adjusted. By this adjustment, the variable displacement compressor M changes the stroke amount of the plurality of pistons 8c.
(20) The capacity control valve V includes, as illustrated in
(21) Furthermore, for convenience of description below, the cross-sectional views of the capacity control valve V illustrated in
(22) The drive device 80 is a so-called solenoid including a casing 81 which is connected to the valve housing 10, a cylindrical sleeve 82 of which one end portion is closed, a cylindrical fixed iron core 83 which is disposed inside the casing 81 and the sleeve 82, a drive rod 84 which is disposed so as to be movable in a reciprocating manner inside the fixed iron core 83 and of which a first end at one side is connected to the valve body 50, a movable iron core 85 which is fixed to a second end, at the other side, of the drive rod 84, a coil spring 86 which urges the movable iron core 85 in a direction of opening the first valve portion 52, an exciting coil 87 which is wound around the outside of the sleeve 82 through a bobbin, and the like.
(23) The fixed iron core 83 is formed of a rigid body that is a magnetic material such as iron or silicon steel. One end of the fixed iron core 83 is provided with an annular flange portion 83a which extends from the sleeve 82 toward the other end in the axial direction in the outer radial direction, the flange portion 83a is fitted into an aperture 11 of a valve housing 10 to be described later, and a large diameter surface 83g of the flange portion 83a is fixed while being in close contact with an inner peripheral surface 11a of the aperture 11.
(24) The valve housing 10 is formed in a substantially cylindrical shape, one end of the valve housing 10 is provided with an aperture 17 into which a partition adjustment member 16 to be described later is press-inserted, the inner periphery of the valve housing 10 is provided with a small-diameter guide surface 15 which is in slidable contact with the valve body 50 to be described later, and the other end of the valve body 10 is provided with the aperture 11 having a concave shape in cross-section to which the drive device 80 is assembled and fixed.
(25) Further, the valve housing 10 includes communication passages 12a, 12b, and 14a which serve as the discharge side passage, communication passages 13a and 14a which serve as the suction side passage along with an inner space 55 of the valve body 50, a first valve chamber 20 which is formed in the course of the discharge side passage, a second valve chamber 30 which is formed in the course of the suction side passage, and a third valve chamber 40 (a pressure chamber) which is formed on the side opposite to the second valve chamber 30 with respect to the first valve chamber 20. That is, the communication passage 14a and the third valve chamber 40 are formed so as to serve as a part of the discharge side passage and the suction side passage.
(26) The valve body 50 includes a main valve body 56, a first valve portion 52 which is formed from a sub-valve body 57 and is provided in an end portion on the side of the fixed iron core 83 in the main valve body 56, a second valve portion 53 which is provided in an opposite end portion of the first valve portion 52, a third valve portion 54 which is provided in the sub-valve body 57 connected to the main valve body 56 by the retrofitting to the side opposite to the second valve portion 53 with respect to the first valve portion 52, and the like. Furthermore, since the sub-valve body 57 is connected to the main valve body 56, the sub-valve body moves together with the main valve body 56. Furthermore, the valve portions constitute valves while engaging with seat surfaces (or valve seat surfaces), respectively.
(27) Further, the valve body 50 is formed in a substantially cylindrical shape having the inner space 55 penetrating from the second valve portion 53 to the third valve portion 54 in the axial direction and serving as the suction side passage.
(28) Further, the valve body 50 can close the discharge side passage in such a manner that the first valve portion 52 is engaged with a first seat surface 12c formed in the edge portion of the communication passage 12b of the first valve chamber 20 and can close the suction side passage in such a manner that the second valve portion 53 is engaged with a second seat surface 83b formed in the end portion of the fixed iron core 83 in the second valve chamber 30.
(29) The sub-valve body 57 includes the third valve portion 54 which is formed in a substantially cylindrical shape and is formed in a divergent shape toward the pressure sensitive body 60 and the third valve portion 54 includes an annular engagement surface 54c which faces an adapter 70 to be described later at the outer peripheral edge thereof.
(30) The pressure sensitive body 60 (i.e., the valve seat member) includes a bellows 61, the adapter 70, and the like, one end of the bellows 61 is fixed to the partition adjustment member 16, and the adapter 70 is held by the other end (the free end) thereof. The adapter 70 is formed in a substantially U-shape in cross-sectional view such that a third seat surface 70c having an annular shape is provided in the front end thereof so as to sit on and separate from the engagement surface 54c of the third valve portion 54 while facing the engagement surface. A hole portion 70a is formed in the adapter 70 in the radial direction and the inner space 55 of the valve body 50 communicates with the third valve chamber 40 through the hole portion 70a.
(31) The pressure sensitive body 60 is disposed in the third valve chamber 40, has a structure that urges the first valve portion 52 in an opening direction by the extension (expansion) of the bellows 61 when an ambient pressure becomes a predetermined pressure or more, and is operated to separate the third seat surface 70c of the adapter 70 from the engagement surface 54c of the third valve portion 54 by the contraction of the bellows 61.
(32) Further, the partition adjustment member 16 constitutes a part of the valve housing 10 and defines the third valve chamber 40 to be described later, can adjust the pressure inside the third valve chamber 40 by appropriately changing a position in which the partition adjustment member 16 is press-inserted into the aperture 17, and can adjust the sensitivity of the pressure sensitive body 60 to be described later.
(33) As illustrated in
(34) As illustrated it
(35) As illustrated in
(36) As illustrated in
(37) The movable iron core 85 is formed in a cylindrical shape having a through-hole 85a opening to both ends in the axial direction and the second end 84b of the drive rod 84 is fixed to one aperture 85c in an inserted state.
(38) As illustrated in
(39) The configuration of the capacity control valve V has been described so far. Here, each of a state in which the capacity control valve V is not energized (hereinafter, sometimes referred to as “non-energized state” not illustrated) and a state in which the capacity control valve V is energized (hereinafter, sometimes referred to as “energized state” illustrated in
(40) When the capacity control valve V is in the non-energized state, the valve body 50 is pressed toward the drive device 80 by the pressure sensitive body 60 and the second valve portion 53 is engaged with the second seat surface 83b of the fixed iron core 83 so that the communication passages 13a and 14a corresponding to the suction side passage are closed. Meanwhile, the first valve portion 52 separates from the first seat surface 12c formed in the edge portion of the communication passage 12b and the communication passages 12a and 12b and the communication passage 14a corresponding to the discharge side passage communicate with each other.
(41) In the non-energized state, the fluid inside the discharge chamber 2 flows from the discharge chamber 2 into the control chamber 4 (see
(42) When the variable displacement compressor M is activated while the discharge pressure Pd, the suction pressure Ps, and the control pressure Pc are equalized, the control pressure Pc at this time is much higher than the control pressure Pc in a continuous driving state. For this reason, the swash plate 8b is substantially perpendicular to the rotation shaft 8a and the stroke of the piston 8c is minimized. Further, the variable displacement compressor M starts the energization of the capacity control valve V in accordance with the activation thereof.
(43) The capacity control valve V is excited by the energization of the coil 87 of the drive device 80 so that a magnetic force is generated. When the magnetic force exceeds the pressing force of the pressure sensitive body 60 and the coil spring 86 of the drive device 80, the movable iron core 85 is attracted to the fixed iron core 83 receiving the magnetic force, the drive rod 84 having the second end connected to the movable iron core 85 is driven, and the valve body 50 connected to the first end of the drive rod 84 is moved toward the pressure sensitive body 60 as illustrated in
(44) Further, in the non-energized state, the movable iron core 85, the drive rod 84, and the valve body 50 are moved toward the sleeve 82 by the pressing force of the pressure sensitive body 60 and the coil spring 86. In the non-energized state, the second valve portion 53 is engaged with the second seat surface 83b of the fixed iron core 83 and the communication passages 13a and 14a corresponding to the suction side passage are interrupted so that a passage connecting the suction chamber 3 and the control chamber 4 is closed.
(45) As illustrated in
(46) The space on the side of the movable iron core 85 in the sleeve 82 includes a space S6 between the movable iron core 85 and the fixed iron core 83, the space S2 between the through-hole 85a of the movable iron core 85 and the groove portion 91 of the drive rod 84, the space S5 (see
(47) When the movable iron core 85 moves toward the fixed iron core 83, the volume of the space S6 decreases, the fluid of the space S6 flows into the space S7 through the space S2, the space S5, and the space S4 and a part of the fluid is also moved toward the space S3.
(48) Meanwhile, when the movable iron core 85 moves away from the fixed iron core 83, the volume of the space S7 decreases, the fluid of the space S7 flows into the space S6 through the space S4, the space S2, and the space S5, and a part of the fluid is also moved toward the space S3.
(49) Further, when the fluid flows from the valve body 50, a part of the fluid flows into the space S6 through the space S3 and the rest flows into the space S7 through the space S2, the space S5, and the space S4.
(50) In this way, since the inflow and the outflow of the fluid are performed between the space S6 and the space S7 through the space S4, the pressure of the fluid on the side of the movable iron core 85 can follow a change in pressure of the fluid on the side of the valve housing 10, a pressure therebetween can be decreased, and the capacity control valve V can be operated according to the designed performance. Further, since the drive rod 84 may be provided with the groove portion 91, the structure is simpler and easier to thereby obtain excellent processability as compared with a case in which the movable iron core as an iron block is machined, for example, a case in which the outer surface of the movable iron core is cut into a substantially D-shaped cross section or a through-hole penetrating in the radial direction of the movable iron core is machined.
(51) When the energized state of the coil 87 is switched to the non-energized state thereof, the fluid is moved or discharged from the space S7 to the space S6, the suction chamber 3, and the control chamber 4 through a passage formed by the communication passage 13a, the hole portion 70a, the space S3, the space S5, and the space S2 in accordance with the movement of the movable iron core 85. In this way, since the inflow and the outflow of the fluid are performed in the space on the side of the movable iron core 85, the suction chamber 3, and the control chamber 4, the pressure of the fluid on the side of the movable iron core 85 can follow a change in pressure of the fluid on the side of the valve housing 10, a pressure difference therebetween can be decreased, and the capacity control valve V can be operated with the designed performance.
(52) The bellows 61 has a structure that contracts when an ambient pressure becomes a predetermined pressure or more. In the structure of the embodiment, if the pressure inside the third valve chamber 40, that is, the control pressure Pc increases to a predetermined pressure or more when the capacity control valve V is energized at the time of driving the variable displacement compressor M after the compressor is left for a long time, the bellows 61 contracts, the third seat surface 70c of the adapter 70 separates from the engagement surface 54c of the third valve portion 54, the inner space 55 of the valve body 50 communicates with the third valve chamber 40, and the fluid of the third valve chamber 40 is promptly discharged to the suction chamber 3 through the second valve portion 53 as indicated by a black arrow illustrated in
(53) Then, when the control pressure Pc decreases in accordance with the movement of the fluid so that the pressure inside the third valve chamber 40 also decreases and the pressure inside the third valve chamber 40 is lower than the urging force of the bellows 61, the bellows 61 presses the adapter 70 toward the third valve portion 54. Then, as illustrated in
(54) In the space S3, since the groove portion 91 is formed with a predetermined depth and linearly communicates with the inside of the movable iron core 85, the resistance of the fluid is small, the fluid can flow from the space on the side of the valve housing 10 to the space S4 on the side of the movable iron core 85 through the space S3 in a short time, the pressure of the fluid on the side of the movable iron core 85 promptly follows a change in pressure of the fluid on the side of the valve housing 10, a pressure difference therebetween can be decreased, and the capacity control valve V can be operated with the set performance even at the activation thereof.
(55) Further, since the fluid flowing to the space S4 flows into each of the space S6 between the movable iron core 85 and the fixed iron core 83 and the space S7 between the movable iron core 85 and the closed end surface 82a of the sleeve 82, the pressures of both of the space S6 and the space S7 of the movable iron core 85 are promptly balanced. Accordingly, the movable iron core 85 substantially does not receive an urging force toward the non-energized state from the fluid and the driving of the drive device 80 is stabilized.
(56) Further, since the curved surface 93 formed in the drive rod 84 faces the inner peripheral surface 83c of the fixed iron core 83 with a small gap interposed therebetween and serves as a guide portion guided by the inner peripheral surface 83c when coming into contact with the inner peripheral surface 83c of the fixed iron core 83, the center axis of the drive rod 84 in the movement direction is guaranteed. Accordingly, the drive rod can be accurately operated in a reciprocating manner and the strength of the drive rod 84 is high.
(57) Further, since the movable iron core 85 is formed in a cylindrical shape opening in the axial direction and the groove portion 91 of the drive rod 84 communicates with the inner space of the movable iron core 85, the fluid resistances inside the spaces (S2, S4, S5, S6, S7) on the side of the movable iron core 85 are small and the fluid can promptly flow from the space on the side of the valve housing 10 to the spaces (S2, S4, S5, S6, S7) on the side of the movable iron core 85 through the through-hole 85a of the movable iron core 85. Further, when the energized state is switched to the non-energized state as indicated by a white arrow in
(58) Further, since the groove portion 91 of the drive rod 84 communicates with the inner space of the movable iron core 85 and the cross-section without a passage such as a groove formed on the outer peripheral surface side is a substantially round cylindrical shape, the reciprocating movement of the movable iron core 85 is high and the cost involved with machining is low. Further, when the lubricating oil mixed with the refrigerant gas accumulates in the space S7, the movable iron core 85 can discharge the lubricating oil toward a space on a side of the valve body 50 through the space S4, and the space S3.
(59) Further, as described above, since the drive rod 84 is press-inserted and fixed in a state in which the curved surface 93 is in contact with the inner peripheral surface 85b of the movable iron core 85, the fixing strength between the drive rod 84 and the movable iron core 85 can be increased, the space between the groove portion 91 of the drive rod 84 and the inner peripheral surface 85b of the movable iron core 85 can be secured without using a particular fixing member or the like, and the groove portion 91 of the drive rod 84 can communicate with the inner space of the movable iron core 85.
(60) Further, as described above, since the drive rod 84 is press-inserted and fixed in a state in which the curved surface 93 is in contact with the inner peripheral surface 56d of the valve body 50, the fixing strength between the valve body 50 and the movable iron core 85 can be increased, the space S1 between the groove portion 91 of the drive rod 84 and the inner peripheral surface 56d of the valve body 50 can be secured without using a particular fixing member or the like, and the groove portion 91 of the drive rod 84 can communicate with the inner space 55 of the valve body 50.
(61) Further, since the space S1 formed between the groove portion 91 of the drive rod 84 and the inner peripheral surface 56d of the valve body 50 is formed along the axial direction of the valve body 50 and the drive rod 84, the fluid moving inside the inner space 55 of the valve body 50 in the axial direction can discharge an excess fluid with respect to a pressure necessary for the control chamber 4 to the outside (the third valve chamber 40) on the side of the drive rod 84 in the valve body 50 by a small fluid resistance.
(62) Although the embodiment of the present invention has been described with reference to the drawings, the detailed configuration is not limited to the embodiment and modifications and additions within the scope of the present invention are included in the present invention.
(63) For example, although it has been described such that the second seat surface 83b on which the second valve portion 53 sits is formed in the end portion of the fixed iron core 83 blocking one end of the valve housing 10, the present invention is not limited thereto. That is, the second seat surface may be formed separately from the valve housing 10 and the fixed iron core 83.
(64) Further, although it has been described such that the communication passages 12a and 13a are equally distributed at two positions of the valve housing 10, the present invention is not limited thereto. For example, each of them may be formed only at the same side of the valve housing 10 and may be formed at a plurality of positions of the valve housing 10 in the circumferential direction as long as the structure strength is allowed.
(65) Further, although it has been described such that the groove portion 91 is equally disposed at four positions of the outer periphery of the drive rod 84, the present invention is not limited thereto. For example, as illustrated in
(66) Further, a configuration including the groove portion 91, the flat surface 92, and the curved surface 93 is not limited to the shape of the outer periphery of the drive rod 84. For example, as illustrated in
(67) Further, as illustrated in
(68) Further, the groove portion is not limited to a curved surface illustrated in
(69) Further, a through-hole which communicates the inner space 55 of the valve body 50 with the third valve chamber 40 may be provided in the valve body 50 separately from the groove portion 91 communicating the inner space 55 of the valve body 50 with the third valve chamber 40.
(70) Further, the position of the communication passage communicating with each of the discharge chamber 2, the suction chamber 3, and the control chamber 4 in the capacity control valve V is not limited to the above-described configuration and can be appropriately changed in response to the position of the discharge chamber 2, the suction chamber 3, and the control chamber 4 of the installed variable displacement compressor M.
(71) Further, an example in which the capacity control valve V is the electromagnetic valve has been described, but other electromagnetic valves may be used as long as the drive rod is disposed inside the fixed iron core.
REFERENCE SIGNS LIST
(72) 2 Discharge chamber
(73) 3 Suction chamber
(74) 4 Control chamber
(75) 4a Cylinder
(76) 8a Rotation shaft
(77) 8b Swash plate
(78) 8c Piston
(79) 9 Communication passage
(80) 10 Valve housing
(81) 20 First valve chamber
(82) 30 Second valve chamber
(83) 40 Third valve chamber
(84) 50 Valve body
(85) 55 Valve body inner space
(86) 56 Main valve body
(87) 57 Sub-valve body
(88) 60 Pressure sensitive body (urging member)
(89) 61 Bellows
(90) 80 Drive device
(91) 82 Sleeve
(92) 83 Fixed iron core
(93) 83c Fixed iron core inner peripheral surface
(94) 84 Drive rod
(95) 85 Movable iron core
(96) 85b Inner peripheral surface
(97) 86 Coil spring (urging member)
(98) 87 Coil
(99) 91 Groove portion
(100) 92 Flat surface
(101) 93 Curved surface (guide portion)
(102) M Variable displacement compressor
(103) S1 to S7 Space
(104) V Capacity control valve (electromagnetic valve)