CONTROL SYSTEM FOR SPOOL VALVE AVOIDING MECHANICAL STRESSES
20200292097 ยท 2020-09-17
Assignee
Inventors
Cpc classification
F16K31/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/1262
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/8663
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
F15B13/0402
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K31/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid pressure controlled spool valve minimizes abrasion or sticking caused by a tilted orientation of a pressure plate forcing lands of a spool shaft to abrade or stick internally facing surfaces of a cylindrical barrel supporting the spool shaft. A permanent magnet is mounted on the pressure plate. A round head composed of a ferromagnetic material is formed on an end of a spool shaft and configured to be magnetically attracted to the permanent magnet. A magnetic attraction force vector produced on the round head of the spool shaft remains coaxial with an axis of the spool shaft, when the pressure plate and the magnet are tilted with respect to the axis of the spool shaft.
Claims
1. A spool valve control, comprising: a housing including a first chamber for receiving a control fluid and a second chamber for supporting a spool shaft having an axis, the spool shaft configured to move along the axis; a flexible membrane separating the first and second chambers, configured to form a flexible barrier to the control fluid in the first chamber; a pressure plate in the second chamber against which the flexible membrane presses in response to changes in pressure of the control fluid; a permanent magnet mounted on the pressure plate in the second chamber; and a round head formed on an end of the spool shaft and composed of a ferromagnetic material, configured to be magnetically attracted to the permanent magnet; wherein a magnetic attraction force vector produced on the round head of the spool shaft by the permanent magnet, remains coaxial with the axis of the shaft, when the pressure plate and the magnet are tilted with respect to the axis of the spool shaft.
2. The spool valve control of claim 1, wherein the attraction force vector produced on the round head of the spool shaft, remains coaxial with the axis of the shaft, when the pressure of the control fluid is reduced in the first chamber.
3. The spool valve control of claim 1, wherein a force vector produced on the round head of the spool shaft when the pressure of the control fluid is increased in the first chamber, pushing the magnet against the round head of the spool shaft, remains coaxial with the axis of the spool shaft.
4. The spool valve control of claim 1, wherein the round head formed on the end of the spool shaft is composed of an alloy of iron, cobalt or nickel.
5. The spool valve control of claim 1, wherein the permanent magnet is composed of an alloy of neodymium, iron and boron.
6. The spool valve control of claim 1, wherein the composition of the material for the magnet and the composition for the material of the round head maximizes their hardness and resistance to abrasion or sticking due to their surfaces contacting when the pressure of the control fluid is increased in the first chamber.
7. The spool valve control of claim 1, wherein the round head is contoured to have a hemispherical surface, to minimize any component of force transverse to the axis of the spool shaft when the surface of the magnet pushes against the surface of the round head of the spool shaft.
8. The spool valve control of claim 1, wherein abrasion or sticking is minimized that is caused by a tilted orientation of the pressure plate forcing lands of the spool shaft to cause abrasion of internally facing surfaces of a cylindrical barrel supporting the spool shaft in the housing.
9. In a spool valve including a flexible membrane separating a control fluid chamber and an interior chamber, and a pressure plate in the interior chamber against which the flexible membrane presses in response to changes in pressure of control fluid in the control fluid chamber, a spool valve control, comprising: a permanent magnet mounted on the pressure plate in the interior chamber; and a round head formed on an end of a spool shaft in the interior chamber, the round head composed of a ferromagnetic material, configured to be magnetically attracted to the permanent magnet; wherein a magnetic attraction force vector produced on the round head of the spool shaft by the permanent magnet, remains coaxial with an axis of the spool shaft, when the pressure plate and the magnet are tilted with respect to the axis of the spool shaft.
10. The spool valve control of claim 9, wherein the attraction force vector produced on the round head of the spool shaft, remains coaxial with the axis of the shaft, when the pressure of the control fluid is reduced in the first chamber.
11. The spool valve control of claim 9, wherein a force vector produced on the round head of the spool shaft when the pressure of the control fluid is increased in the first chamber, pushing the magnet against the round head of the spool shaft, remains coaxial with the axis of the spool shaft.
12. The spool valve control of claim 9, wherein the round head formed on the end of the spool shaft is composed of an alloy of iron, cobalt or nickel.
13. The spool valve control of claim 9, wherein the permanent magnet is composed of an alloy of neodymium, iron and boron.
14. The spool valve control of claim 9, wherein the composition of the material for the magnet and the composition for the material of the round head maximizes their hardness and resistance to abrasion or sticking due to their surfaces contacting when the pressure of the control fluid is increased in the first chamber.
15. The spool valve control of claim 9, wherein the round head is contoured to have a hemispherical surface, to minimize any component of force transverse to the axis of the spool shaft when the surface of the magnet pushes against the surface of the round head of the spool shaft.
16. The spool valve control of claim 9, wherein abrasion or sticking is minimized that is caused by a tilted orientation of the pressure plate forcing lands of the spool shaft to cause abrasion of internally facing surfaces of a cylindrical barrel supporting the spool shaft in the housing.
Description
DESCRIPTION OF THE FIGURES
[0007]
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0016]
[0017] As the control fluid pressure signal 105 is increased in the control fluid chamber 122, the flexible membrane expands into the second chamber, pressing on and moving the pressure plate farther into the second chamber, sliding the spool shaft 125 to connect the port Y2 to the supply port S and to connect the port Y1 to the exhaust port. Working fluid from the supply system 104 flows through the interconnected supply port S and port Y2 to the port 108 of the double acting hydraulic actuator 106, pushing the piston 112 in the downward direction shown in the figure. Working fluid returned from the port 110 of the double acting hydraulic actuator 106, flows through the interconnected port Y1 and exhaust port supply of the spool valve 100.
[0018]
[0019] The round head 132 formed on the end of the spool shaft 125 may be composed of a ferromagnetic material, such as an alloy of iron, cobalt or nickel. The permanent magnet 130 may be composed of an alloy of neodymium, iron and boron. The round head 132 is configured to be magnetically attracted to the permanent magnet 130. In accordance with the invention, a magnetic attraction force vector produced on the round head 132 of the spool shaft 125 remains coaxial with the axis of the spool shaft 125, when the pressure plate 128 and the magnet 130 are tilted with respect to the axis of the spool shaft 125. The attraction force vector produced on the round head 132 of the spool shaft 125 remains coaxial with the axis of the spool shaft 125, when the pressure of the control fluid 105 is reduced in the control fluid chamber 122, to minimize abrasion or sticking in the cylindrical barrel of the spool valve 100 caused by a tilted orientation of the pressure plate 128.
[0020] Moreover, a force vector produced on the round head 132 of the spool shaft 125 when the pressure of the control fluid 105 is increased in the control fluid chamber 122, pushing the surface of the magnet 130 against the surface of the round head 132 of the spool shaft 125, remains coaxial with the axis of the spool shaft 125, to minimize abrasion or sticking in the cylindrical barrel of the spool valve 100 caused by a tilted orientation of the pressure plate 128. The composition of the material for the magnet 130 and the composition for the material of the round head 132 may be chosen to maximize their hardness and resistance to abrasion or sticking due to their contacting surfaces when the pressure of the control fluid 105 is increased in the control fluid chamber 122. The round head 132 may be contoured to have a hemispherical surface, to minimize any component of force transverse to the axis of the spool shaft 125 when the surface of the magnet 130 pushes against the surface of the round head 132 of the spool shaft 125.
[0021] The figure shows a coil spring 140 located in the interior, second chamber 124, which maintains a spring force against the pressure plate 128 directed against the flexible membrane 126. The figure shows a bushing 142 positioned around the spool shaft 125 to support the spool shaft in the cylindrical barrel of the housing 102. The figure shows seals 144 positioned between the ports Y1, Y2, S, E1 and E2 between the bushing 142 and the cylindrical barrel of the housing 102.
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] Although specific example embodiments of the invention have been disclosed, persons of skill in the art will appreciate that changes may be made to the details described for the specific example embodiments, without departing from the spirit and the scope of the invention.