Servo driving pilot-type solenoid valve

Information

  • Patent Grant
  • 6325102
  • Patent Number
    6,325,102
  • Date Filed
    Friday, April 7, 2000
    25 years ago
  • Date Issued
    Tuesday, December 4, 2001
    23 years ago
Abstract
A pilot-type solenoid valve capable of driving a valve member by increasing a pilot fluid pressure from a pilot valve and reliably switching valve member. The pilot-type solenoid valve includes a main valve portion having a valve member capable of sliding in a valve hole to which ports P, A, B, EA and EB in a valve body are opened, a pilot driving mechanism for applying a pilot fluid pressure to a pushing member which pushes one end of the valve member, and a returning mechanism for applying a returning force to the valve member. The pushing member includes a first piston for applying the pilot fluid pressure, and a second piston which is pushed by the first piston and which pushes the valve member. A shaft of the first piston passes through a partition wall in a sealing manner and abuts against the second piston. The shaft is provided therein with a guide hole for guiding the pilot fluid pressure to a pressure chamber of the second piston.
Description




TECHNICAL FIELD




The present invention relates to a servo driving pilot-type solenoid valve for driving a valve member by increasing an operation force by a pilot fluid pressure output from a pilot valve.




PRIOR ART




According to a pilot-type solenoid valve disclosed in Japanese Patent Application Laid-open No.H11-2357, for driving a spool valve, the spool valve is provided at its one end with a first piston to which a pilot pressure is always applied, and is provided at the other end with second and third pistons. Pilot pressure is individually applied to the second and third pistons so that both the pistons drive a spool. If the supply of the pilot pressure is stopped, the spool valve is returned by the pilot pressure which is always applied to the first piston. A responsibility of a reciprocating motion of the spool is stabilized by these pistons, and an outer appearance of the valve is thinned.




According to the pilot-type solenoid valve of such a structure, a supply/discharge path of the pilot pressure applied to each of the pistons from the pilot valve is complicated, there is no compatibility with components of general pilot-type solenoid valves and therefore, it is difficult to provide a product inexpensively.




DISCLOSURE OF THE INVENTION




The present invention has been accomplished to solve the above problem, and a technical object of the invention is to provide a servo driving pilot-type solenoid valve for driving a valve member by increasing an operation force by a pilot fluid pressure output from a pilot valve so that valve member can reliably be switched.




Another technical object of the invention is to provide a servo driving pilot-type solenoid valve in which a valve member can be driven by piston even with a low pressure, thereby increasing a driving pressure range.




Still another technical object of the invention is to provide a servo driving pilot-type solenoid valve in which compatibility with components of general pilot-type solenoid valve is increased, and the servo driving pilot-type solenoid valve is reduced in size like the general pilot-type solenoid valve.




To achieve the above objects, a servo driving pilot-type type solenoid valve of the present invention comprises: a main valve portion including a plurality of ports, a valve hole which is in communication with the ports, and a flow path switching valve member slidably inserted into the valve hole; a pilot driving mechanism including a pushing member disposed in one end of the valve member, and a pilot valve for supplying a pilot fluid to the pushing member, the pilot driving mechanism switching the valve member by the pushing member which is operated by effect of a pilot fluid pressure; and a returning mechanism for applying a returning force caused by a fluid pressure or a spring to the other end of the valve member, wherein the pushing member in the pilot driving mechanism comprises a first piston operated by the pilot fluid pressure from the pilot valve, and a second piston having substantially the same diameter as that of the first piston and operated by the pilot fluid pressure and a pushing force by the first piston, the first piston includes a shaft which air-tightly passes through a partition wall which divides both the pistons from each other and whose tip end abuts against the second piston, and a guide hole passing through the first piston and its shaft for guiding the pilot fluid pressure to a driving side pressure chamber of the second piston, and the second piston is disposed such that the second piston abuts against one end of the valve member and is operated by the operation force of the pilot fluid pressure introduced from the guide hole into a pressure chamber and by a pushing force of the first piston, thereby pushing the valve member.




In the above servo driving pilot-type solenoid valve, first and second interposition blocks can be disposed such as to be connected to each other between the pilot valve and a valve body of the main valve portion, a cylinder portion on which the first piston slides can be provided in the first interposition block located closer to the pilot valve, and the second interposition block located closer to the valve body can be provided with the partition wall through which the shaft of the first piston passes, and with a cylinder portion on which the second piston slides.




Further, an interposition block can be provided between the pilot valve and a valve body of the main valve portion, the interposition block can be provided therein with a cylinder portion on which the first piston slides and a partition wall through which the shaft of the first piston passes, and an end of the valve body of the main valve portion closer to the pilot valve can be formed with a cylinder portion on which the second piston slides.




The servo driving pilot-type solenoid valve of the above-described structure includes, as the pilot driving mechanism for pushing the valve member by the pushing member to switch the valve member, the first piston for applying the pilot fluid pressure from the pilot valve, and the second piston which is pushed by the first piston and which is also pushed by the pilot fluid pressure to push the valve member. Therefore, a force by the pilot fluid pressure output from the pilot valve is increased by these piston and the valve member can be driven, the valve member can reliably be switched and at the same time, the valve member can be driven by piston even with a low pressure, thereby increasing a driving pressure range.




In the above servo driving pilot-type solenoid valve, the first and second interposition blocks are superposed on each other between the pilot valve and the valve body, the cylinder portions on which the first and second pistons slide are provided in these interposition blocks, the pilot fluid pressure is introduced into the driving side pressure chamber of the first piston from the pilot valve, and the pilot fluid pressure is introduced into the driving side pressure chamber of the second piston through the first piston and the guide hole in its shaft. With this structure, it is possible to use components common to general pilot-type solenoid valve except the first and second interposition blocks superposed on each other between the pilot valve and the valve body as well as the first and second pistons and the like. The flow paths of the pilot valve are also common and therefore, the compatibility of the components is increased and the products can be produced inexpensively. Further, the servo driving pilot-type solenoid valve can be reduced in size like general pilot-type solenoid valve.




Further, in the above servo driving pilot-type solenoid valve, a single interposition block is provided between the pilot valve and a valve body of the main valve portion, the interposition block is provided therein with a cylinder portion on which the first piston slides, and the end of the valve body closer to the pilot valve is formed with a cylinder portion on which the second piston slides. With this structure also, compatibility with components of general pilot-type solenoid valve can be increased, and the servo driving pilot-type solenoid valve can be reduced in size like the general pilot-type solenoid valve.











BRIEF DESCRIPTION OF THE DRAWINGS




FIG.


1


and

FIG. 1A

are sectional views showing a structure of a first embodiment of a servo driving pilot-type solenoid valve according to the present invention; and





FIG. 2

is a sectional view showing a structure of a second embodiment of a servo driving pilot-type solenoid valve according to the invention.











DETAILED DESCRIPTION





FIGS. 1 and 1A

shows a structure of a first embodiment of a servo driving pilot-type solenoid valve according to the present invention. The servo driving pilot-type solenoid valve of the first embodiment comprises a main valve portion


1


for switching a main fluid such as compressed air, a pilot driving mechanism


2


for switching the main valve portion


1


by controlling a pilot fluid, and a returning mechanism


3


for returning the main valve portion


1


.




The main valve portion


1


includes a valve body


10


. A supply port P, output ports A and B, discharge port EA and EB, and a valve hole


11


to which these ports are opened are formed in the valve body


10


. A spool-type flow path switching member


12


is axially slidably inserted into the valve hole


11


. The output ports A and B output through a pipe joint


15


provided on the valve body


10


, but the present invention should not be limited to this structure.




The pilot driving mechanism


2


includes one pilot valve


20


of solenoid driving type, and applies the pilot fluid pressure from the pilot valve


20


to a pushing member


21


which pushes one end of the valve member


12


to switch the valve member


12


. On the other hand, the returning mechanism


3


applies a returning force by a fluid pressure to the other end of the valve member


12


independently of the pilot driving mechanism


2


. Therefore, the valve member


12


is switched by the pilot driving mechanism


2


and the returning mechanism


3


such that the valve member


12


occupies either one of two switching position at opposite ends of the valve hole


11


. That is, this pilot-type solenoid valve is formed as a single solenoid valve, and a flowing direction of a fluid flowing between the ports is switched.




In the above pilot driving mechanism


2


, first and second interposition blocks


22


and


23


are disposed between the pilot valve


20


and the valve body


10


of the main valve portion


1


such that the blocks


22


and


23


are superposed on each other. In one of the interposition blocks (first interposition block


22


) located closer to the pilot valve


20


, a cylinder portion


25


in which a first piston


26


slides is provided on the same axis as that of the valve hole


11


. In the second interposition block


23


located closer to the valve body


10


, a cylinder portion


30


in which a second piston


31


slides is provided on the same axis as that of the valve hole


11


. These two pistons


26


and


31


constitute the above-described pushing member


21


, and have the same diameters. The second interposition block


23


is provided with a partition wall


28


through which a shaft


27


of the first piston


26


passes. It is preferable that a diameter of the shaft


27


is equal to or smaller than ½ of a diameter of the first piston


26


.




In the pilot valve


20


, a portion of a main fluid from the supply port P is supplied to a supply port ps through a pilot supply path


35


which passes through the valve body


10


, the second interposition block


23


and the first interposition block


22


. The fluid from the supply port ps is output to an output port pa by the passage of electric current through the solenoid, and the fluid of the output port pa is discharged out through a discharge flow path


36


from a discharge port pe by cutting the electric current through the solenoid. A manual operating element


38


provided on the first interposition block


22


switches the pilot flow path by its pushing pressure for bringing the pilot supply path


35


into direct communication with a driving pressure chamber


40


of the piston


26


. The pilot supply path


35


is brought into communication of the supply port ps of the pilot valve


20


through a fitting hole


39


of the manual operating element


38


, and a flow path for bringing the output port pa into communication with the driving pressure chamber


40


is also formed such as to pass a portion of the fitting hole


39


separated from the pilot supply path


35


.




A driving side pressure chamber


40


formed in one side of the first piston


26


inserted into the cylinder portion


25


in the first interposition block


22


is connected to the output port pa in the pilot valve


20


as described above, and the pilot fluid pressure from the pilot valve


20


is applied to a pressure receiving surface closer to the pressure chamber


40


. A chamber defined at the opposite side from the first piston


26


is in communication with the discharge flow path


36


. The shaft


27


provided on the first piston


26


air-tightly passes through a partition wall


28


provided in the second interposition block


23


via a seal


41


, a tip end of the shaft


27


abuts against the second piston


31


, and a guide hole


43


for guiding the pilot fluid pressure in the pressure chamber


40


into the driving side pressure chamber


44


of the second piston


31


is formed in the first piston


26


and its shaft


27


. The seal


41


is provided around the shaft


27


in the illustrated embodiment, the seal


41


may be provided around a cylindrical portion extending inward of the partition wall


28


of the first interposition block


22


.




On the other hand, the second piston


31


inserted into the cylinder portion


30


in the second interposition block


23


is pushed by the shaft


27


of the first piston


26


, and the second piston


31


itself also receives effect of the pilot fluid pressure introduced into the driving side pressure chamber


44


from the guide hole


43


, and with these force, a pushing force for switching is applied to the valve member


12


through a pushing portion


32


projecting toward the valve member


12


. A chamber formed in the cylinder portion


30


in the second interposition block


23


defined by the second piston


31


on the opposite side from the pressure chamber


44


is also in communication with the discharge flow path


36


. A through hole


45


is formed in the center of the valve member


12


for bringing opposite ends of the valve member


12


into communication with the discharge flow path


36


through the chamber, so that a driving force by the fluid pressure is not generated in the valve member


12


itself.




In the returning mechanism


3


, a returning pressure chamber


47


is formed in an end block


46


at the opposite end from the side in which the pilot driving mechanism


2


in the valve body


10


is provided, so that a returning force by the fluid pressure supplied to the returning pressure chamber


47


is always applied to the valve member


12


through a returning piston


48


independently of the pilot driving mechanism


2


. For supplying the fluid pressure to the returning pressure chamber


47


, a portion of the main fluid is supplied to the returning pressure chamber


47


from the supply port P in the valve body


10


through a fluid flow path


50


passing through the valve body


10


.




It is preferable that a diameter of the returning piston


48


is set to 1/{square root over ( )}2 of that of the second piston


31


or an approximate value.




In addition to or in replace of the returning force by the above-described fluid pressure, a spring interposed between the end block


46


and the returning piston


48


can be used. In this case, a biasing force thereof is set in accordance with the above-described manner.




In the servo driving pilot-type solenoid valve having the above structure, if the pilot fluid pressure is supplied to the driving side pressure chamber


40


of the first piston


26


in the first interposition block


22


from the output port pa by driving the pilot valve


20


, the first piston


26


is pushed by the fluid pressure and at the same time, since its fluid pressure is guided into the driving side pressure chamber


44


of the second piston


31


in the second interposition block


23


through the guide hole


43


in the shaft


27


, the second piston


31


is also pushed by the fluid pressure. A force applied to the first piston


26


in this case is based on a pilot fluid pressure applied to an area obtained by subtracting a cross-sectional area of the shaft


27


from the total area of the pressure receiving surface closer to the driving side pressure chamber


40


. A force directly applied from the pilot fluid pressure to the second piston


31


is based on a pilot fluid pressure applied to the total area of the pressure receiving surface of the second piston


31


closer to the driving side pressure chamber


44


. If the supply of electric current to the pilot valve


20


is stopped, and the supply of pilot fluid pressure to the pressure chamber


40


is released, the valve member


12


is returned by a returning force based on the fluid pressure of the returning pressure chamber


47


.




Since the shaft


27


of the first piston


26


abuts against the second piston


31


, the first piston


26


pushes the second piston


31


through the shaft


27


. Therefore, the sum of forces applied to the first piston


26


and the second piston


31


is applied to the valve member


12


so that the valve member


12


is driven by cooperation effect of the first and second pistons. As a result, the valve member


12


is pushed toward the end block


46


against the returning force by the fluid pressure always introduced into the returning pressure chamber


47


in the returning mechanism


3


. By reducing the diameter of the shaft


27


to ½ or smaller of that of the first piston


26


, the driving force is not to be lower than at least one and a half times of a case in which a single piston is provided.




When the first piston


26


and the second piston


31


are driven, the moving amounts of the first piston


26


and the second piston


31


can be set equal to each other, but the moving amounts need not to be the same, and strokes of both the pistons can be set appropriately, for example, after the first piston


26


may start moving, a tip end of the shaft


27


may abut against the second piston


31


and then, the shaft


27


may start pushing the second piston


31


.




Therefore, a force by the pilot fluid pressure output from the pilot valve


20


can be increased by the first and second pistons to drive the valve member, switching of the valve member is reliably carried out, the valve member can be driven by the piston even if the pressure of the fluid is low and thus, it is possible to increase the driving pressure range.




In the pilot-type solenoid valve in the above embodiment, the first and second interposition blocks


22


and


23


are superposed on each other between the pilot valve


20


and the valve body


10


, and the cylinder portions


25


and


30


on which the first and second pistons


26


and


31


slide are provided in these interposition blocks. The pilot-type solenoid valve of such a structure can use components common to general pilot-type solenoid valve except the first and second interposition blocks superposed between the pilot valve


20


and the valve body


10


, as well as the first and second pistons and the like. The flow paths of the pilot valve are also common and therefore, the compatibility of the components is increased and the products can be produced inexpensively. Further, the servo driving pilot-type solenoid valve can be reduced in size like general pilot-type solenoid valve.




When this servo driving pilot-type solenoid valve is used as a general pilot-type solenoid valve, the second interposition block


23


is removed together with the second piston


31


, the first piston


26


is replaced by a piston of the general pilot valve, and the first interposition block


22


is connected to the valve body.





FIG. 2

shows a second embodiment of a servo driving pilot-type solenoid valve of the present invention. The pilot-type solenoid valve of the second embodiment exhibits substantially the same function as that of the pilot-type solenoid valve of the first embodiment. Main differences are structure of the pilot valve, structure and disposition of the interposition block, an insertion position of the second piston, and structure of the returning mechanism


3


. Therefore, only the differences will be explained below, and explanation of substantially the same structure and operation as those of the first embodiment will be omitted.




According to a pilot valve


70


of the pilot-type solenoid valve of the second embodiment, a portion of a main fluid is supplied from the supply port P of the main valve portion


1


to the supply port ps through a pilot supply path


64


passing through a valve body


60


and an interposition block


63


. When electric current is supplied to a solenoid


71


, a fluid is output from the supply port ps to the output port pa, and when the supply of electric current to the solenoid


71


is stopped, the fluid of the output port pa is discharged outside from the discharge port pe through a discharge flow path


65


. A manual operating element


67


is provided in a body of the pilot valve


70


itself, and a movable core


72


in which a valve body of the pilot valve


70


is incorporated is pushed by pushing pressure of the manual operating element


67


, thereby switching the flow paths.




A single interposition block


63


is provided between the pilot valve


70


and the valve body


60


, a cylinder portion


74


on which a first piston


75


slides is provided in the interposition block


63


, and a partition wall


66


through which a shaft


76


of the first piston


75


passes is provided. Further, a cylinder portion


80


on which the second piton


81


slides is formed in the valve body


60


closer to the pilot valve. The second embodiment is the same as the first embodiment in that the shaft


76


formed with a guide hole


77


of the first piston


75


passes through the partition wall


66


, and a tip end of the shaft


76


abuts against the second piston


81


.




In the returning mechanism


3


in the second embodiment, like the first embodiment, a returning pressure chamber


87


is formed in an end block


85


in the valve body


60


, and a portion of a main fluid is supplied from the supply port P through the fluid flow path


69


. A returning force by the fluid pressure supplied to the returning pressure chamber


87


is directly applied to the valve member


62


and in addition to this, a biasing force of a spring


88


interposed between the valve member


62


and the end block


85


is also applied to the valve member


62


.




In the second embodiment, if the interposition block


63


is removed and the valve body


60


and the pilot valve


70


are directly connected to each other, this solenoid valve can be used as a general pilot-type solenoid valve. Therefore, as in the first embodiment, the compatibility with general pilot-type solenoid valves is increased, and the servo driving pilot-type solenoid valve can be reduced in size like general pilot-type solenoid valve.




According to the servo driving pilot-type solenoid valve of the present invention described above in detail, it is possible to obtain a servo driving pilot-type solenoid valve for driving a valve member by increasing a pilot fluid pressure output from a pilot valve so that valve member can reliably be switched. Therefore, a valve member can be driven even with a low pressure, thereby increasing a driving pressure range.




Further, according to the above-described servo driving pilot-type solenoid valve, compatibility with components of general pilot-type solenoid valve is increased, and the servo driving pilot-type solenoid valve can be reduced in size like the general pilot-type solenoid valve.



Claims
  • 1. A servo driving pilot-type solenoid valve, comprising:a main valve portion including a plurality of ports, a valve hole which is in communication with said ports, and a flow path switching valve member slidably inserted into said valve hole; a pilot driving mechanism including a pushing member disposed in one end of said valve member, and a pilot valve for supplying a pilot fluid to said pushing member, said pilot driving mechanism switching said valve member by said pushing member which is operated by a pilot fluid pressure; and a returning mechanism for applying a returning force caused by at least one of a fluid pressure and a spring to the other end of said valve member, wherein, said pushing member in said pilot driving mechanism comprises, a first piston operated by the pilot fluid pressure from said pilot valve, and a second piston having substantially the same diameter as that of said first piston and operated by the pilot fluid pressure and a pushing force by said first piston, said first piston includes a shaft which air-tightly passes through a partition wall which divides both said pistons from each other and whose tip end abuts against said second piston, and a guide hole passing through said first piston and said first piston's shaft for guiding said pilot fluid pressure to a driving side pressure chamber of said second piston and, said second piston abuts against one end of said valve member and is operated by the operation force of the pilot fluid pressure introduced from said guide hole into a pressure chamber and by a pushing force of said first piston, thereby pushing said valve member.
  • 2. A servo driving pilot-type solenoid valve according to claim 1, wherein first and second interposition blocks are connected to each other between said pilot valve and a valve body of said main valve portion,a cylinder portion on which said first piston slides is provided in said first interposition block located closer to said pilot valve, and said second interposition block located closer to said valve body is provided with said partition wall through which said shaft of said first piston passes, and with a cylinder portion on which said second piston slides.
  • 3. A servo driving pilot-type solenoid valve according to claim 1, wherein one interposition block is provided between said pilot valve and a valve body of said main valve portion,said interposition block is provided therein with a cylinder portion on which said first piston slides and a partition wall through which said shaft of said first piston passes, and an end of said valve body of said main valve portion closer to said pilot valve is formed with a cylinder portion on which said second piston slides.
Priority Claims (1)
Number Date Country Kind
11-120046 Apr 1999 JP
Foreign Referenced Citations (1)
Number Date Country
11-2357 Jan 1999 JP