The present invention relates to a solenoid valve suitably applied for a hydraulic control such as for example a hydraulic device or so.
As for a conventional solenoid valve, for example, those having a part of shaft having a hollow pipe shape being fixed by introducing into a through hole formed at the plunger, and a part of the shaft moves inside the magnetic opposing portion which magnetically attracts the plunger, is proposed (refer to Patent document 1).
Also, in the conventional arts, in order to prevent the plunger and the magnetic opposing part from being connected, the technique to place the plate in between the shaft and the plunger, the technique to process the end face of the plunger, or the technique to bend a part of the shaft are proposed.
Patent document 1: JP Patent Application Laid Open 2009-30682
However, in the solenoid valve according to the conventional art has a structure wherein a part of a shaft is introduced into the through hole formed at the plunger, therefore it is necessary to carry out a mechanical processing which requires high accuracy such as the forming the through hole or so against the plunger. Also, even at the production of the shaft, when forming a non-metallic thin plate into an approximately pipe shape, the mechanical processing which requires high accuracy is necessary.
Therefore, the conventional solenoid valve had a problem in its production efficiency and the cost. This is because, if the mechanical processing of the plunger or the shaft are not sufficiently accurate, the shaft axis is shifted. Also, the technique of placing the plate in between the shaft and the plunger had a problem of which it took too much time to assemble, and as for the technique of providing the bending portion to the shaft had a problem in regards with the processing accuracy and the strength.
The present invention was attained by reflecting such problems, and its object is to provide a solenoid valve which is easily assembled and has excellent productivity by using the shaft and a plunger which can be easily produced and has only few mechanical processing required during the production of the parts.
In order to solve the above objects, the solenoid valve according to the present invention comprises;
a valve sleeve of cylindrical shape having an inner passage continuing in an axial direction,
a spool arranged in a movable manner along said axial direction in said inner passage of said valve sleeve,
a center post of cylindrical shape having a through hole connected with said inner passage of said valve sleeve and constituted from a magnetic material,
a plunger constituted from a magnetic material and arranged in a movable manner along said axial direction against said valve sleeve and said center post by placing said center post between said spool and said plunger in said axial direction,
a shaft constituted from a non-magnetic material comprising an axis part and a collar part, said axis part having one end being contacted with said spool and other end attached to an end face of said plunger and moving in said axial direction inside said through hole of said center post, and said collar part protruding out in a radial direction from said axial part so as to be formed as one body with said axis part and sandwiched between said plunger and said center post when said plunger closely approaches said center post, and
a case part having a coil generating a magnetic force transferring to said center post and housing said center post, said plunger and said shaft in inside
The solenoid valve according to the present invention comprises the shaft comprising the axial part and collar part that are made as one body with, the axial part moves inside the through hole of the center post, and the collar part protrudes out to the radial direction from the axial part and is sandwiched between the plunger and the center post. By using the shaft of which the collar part preventing the plunger and the center post from contacting made as one body with the axis body, the solenoid valve according to the present invention does not have to additionally assemble the members which prevents the plunger and the center post from contacting; thus it is easily assembled.
Also, as for the shaft, other end part of the axial part is attached to the end face of the plunger, thus it is not necessary to form a trough hole or so for attaching the shaft to the plunger. Also, as the shaft comprises the collar part, there is no need to form the projections or so to the plunger for preventing the magnetic bonding with the center post. Therefore, the plunger according to the present invention has only little mechanical processing necessary during the production, thus the production is easy.
Also, said shaft is preferably constituted by resin material. By constituting the shaft by the resin material, it becomes easy to mold a shape of which the collar part and the axial part are made as one body, thereby the mechanical processing necessary during the production is reduced thus the shaft can be produced easily.
Further, the outer peripheral shape cross section of said axial part in said shaft may comprise plurality of arc-shape portions arranged symmetrically around the center of said axial parts, and plurality of notch portions which connects said arc-shape portions.
In the axial parts having such outer peripheral shape cross section, the arc-shape portion slides against the inner wall of the through hole, and the space formed between the notch portion and inner wall of the though hole becomes an oil passage; therefore the transfer of the force and the stable movement in the axial direction can be realized by simple shape.
Also, said shaft may be molded by a cavity having a parting line positioned at said notch portion. When the shaft is produced by the molding, a burr may be generated at the parting line, however since the notch portion of the shaft becomes the oil passage without sliding against the inner wall of the through hole, thus even if the burr or the processing scar after the burr removal remains, it barely influence the movement of the shaft.
Also, said axial part of said shaft may comprise plurality of larger diameter part sliding against the inner wall of said through hole, and plurality of smaller diameter part arranged by both sides of said axial direction being placed between said larger diameter part, and the maximum diameter is smaller than said larger diameter part in the cross section shape.
Even if a large load is applied to the shaft or when the shaft is slightly bent, the shaft comprising the smaller diameter part and the larger diameter part can prevent the interference of the smooth movement to the axial direction caused by being caught inside the through hole. This is because the shaft comprising the smaller diameter part has larger allowable range of curvature in the through hole compared to the shaft having only the large diameter part.
As shown in
The valve main body 14 comprises a valve sleeve 20 of cylindrical shape having inner passage 22 continuing in Z axis direction, and a spool 30 arranged at the inner passage 22. At the peripheral wall of the valve sleeve 20, plurality of ports 24 connecting the inner passage 22 of the valve sleeve 20 to the outside are formed. The plurality of the ports 24 are constituted by a drain port, a control port, an input port and a feedback port or so, and a control fluid (for example, hydraulic oil or so) flows into the inner passage 22 via these ports 24 or flows out to other members from the inner passage 22.
The spool 30 is arranged at the inner passage 22 of the valve sleeve 20 in a movable manner along the Z axis direction. The spool 30 comprises plurality of lands 31 arranged along the axial direction. The land 31 has larger outer diameter than other member of spool 30, and the outer diameter of each land 31 is designed so that the spool 30 can receive an appropriate pressure from the control fluid. Also, the position of axial direction of each land 31 is designed so that each land 31 can appropriately control the opening amount of each port 24 together with the movement of the spool 30.
At the spool front end face 32 which is the end face of the front end side at the spool 30, a spring 18 housed inside the retainer 12 is contacted. The spring 18 is held between the spool 30 and the retainer 12 at both sides in the Z axis direction, thereby the spring force pressing the spool 30 towards the back end side is generated. The retainer 12 is fixed at the front end side of the valve sleeve 20 by crimp stop or so.
The material of the valve sleeve 20, the retainer 12, and the spool 30 are not particularly limited, however for example aluminum, iron, resin or so may be mentioned. Also, the valve sleeve 20, the retainer 12 and the spool 30 may be constituted by the magnetic material, or it may be constituted by non-magnetic material.
The solenoid part 16 comprises a center post 40, a plunger 50, a shaft 60 and a case 70 which houses these in the inside. The center post 40 comprises the through hole 42 connecting to the inner passage 22 of the valve sleeve 20, and has a cylindrical shape extending in the Z axis direction. Also, at the opening area of the back end side of the through hole 42, the step face 44 to which the collar part 68 of the shaft 60 contacts is formed.
The center post 40 is constituted by magnetic material such as iron or so, and it is magnetized by the magnetic force generated by a coil 75 of the case 70. Thereby, the center post 40 pulls the plunger 50 constituted by the magnetic material towards the center post 40 and this force is transferred to the spool 30 via the shaft 60 thereby it becomes a force (the electromagnetic force) of pressing the spool 30 to the front end side in the Z axis.
The plunger 50 is arranged at the back end side of the center post 40. That is, the plunger 50 is arranged in the movable manner in the axis direction by placing the center post 40 in the Z axis direction in between the spool 30 of the valve main body 14. The plunger 50 is constituted by the magnetic material such as iron or so, thus it is pulled towards the center post 40 magnetized by the magnetic force generated by the coil 75.
The shaft 60 is arranged between the plunger 50 and the spool 30, and transfers the pressing force caused by the electromagnetic force to the spool 30 from plunger 50. As shown in
As shown in
As shown in
The shaft 60 is constituted from the non-magnetic material such as the resin material, the austenite stainless material, and copper or so, however it is preferably constituted by the resin material. By constituting the shaft 60 by the resin material, the shaft 60 wherein the axis part 62 and the collar part 68 are made as one body can be easily produced by molding or so.
The case—70 shown in
The solenoid case 71 is a case of the solenoid part 16, and connects the solenoid part 16 and the valve main body 14. The lower plate 72 is a member for providing the center post 40, the bobbin 74 and the coil 75, and it is arranged at the front end side at the inside of the solenoid case 71. The side ring 77 is a member mainly for supporting the plunger 50, and it is arranged at the back end side from the center portion at the inside of the solenoid case 71. The bearing 73 is arranged in between the inner peripheral face of the side ring 77 and the outer peripheral face of the plunger 50, and it supports the plunger 50 against the case 70 in a movable manner in the axial direction. Note that, in between the center post 40, and the side ring 77 and the bearing 73, the spacer 76 is arranged.
The bobbin 74 and the coil 75 wind around the outer peripheral face of the bobbin 74 are arranged so that the bobbin 74 contacts with the outer peripheral face of the center post 40, the magnetic force generated by the coil 75 is efficiently transferred to the center post 40. The molded article 80 connects each member by arranged in the space of each member constituting the solenoid part 16, and also forms the connector for the external terminals connected to the terminal 79. When using the solenoid valve 10, the terminal 79 is connected with the external terminal thereby the electricity is supplied to the coil 75 via the terminal 79.
The end plate 78 is arranged at the back end of the case 70, and functions as the lid housing the plunger 50 or so at the front end side of the end plate 78. Also, at the end plate 78, the air hole is formed. The air hole allows the control fluid present at inside of the case 70 to flow when moving to the Z axis direction of the plunger 50.
As shown in
The maximum outer diameter D1 of the larger diameter part 64 is the length of the straight line connecting the two arc shape portions 64a passing through the center of the axis part 62 in
Also, as shown in
The position of the spool 30 shown in
Here, the collar part back end face 68b which is the end face at the back end side of the collar part 68 is attached against the plunger 50 so that it is brought into contact with the plunger front end face 52 of the plunger 50 as similar to the second end face 62b of the axis part 62. Therefore, under the condition shown in
As mentioned in the above, the solenoid valve 10 of
Also, the shaft 60 is attached to the plunger 50 by providing the second end face 62b of the axis part 62 to the plunger front end face 52 of the plunger 50 (refer to
As shown in
Also, as shown in
In the solenoid valve 10 shown in the above mentioned embodiment, as shown in
Number | Date | Country | Kind |
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2010-271522 | Dec 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2011/076715 | 11/18/2011 | WO | 00 | 12/13/2012 |