Background of the Invention
1. Field of the Invention
This invention relates to control valves and, more particularly, to control valves which control the height of vehicles and the like.
2. Description of the Prior Art
One of the great advantages of air spring suspensions for motor vehicles is the fact that the air springs can be easily adjusted by the introduction of more air or by the exhaustion of some air from the spring to control the height of the vehicle frame and body with respect to the axle and the character of the ride of the vehicle. The adjustability of the air spring is particularly useful on vehicles like pick-up trucks where the load carried by the vehicle may vary greatly. In order to automatically control the height of the vehicle, air control valves have been operably connected to the air spring and an air compressor.
The control valve detects the level of the frame with respect to the axle. If the frame is too low, the control valve will allow the air compressor to supply air to the air spring to raise the frame. If the frame is too high the control valve will allow air within the air spring to escape. One such control valve is disclosed in U.S. Pat. No. 2,989,983 issued to Valentine on June 27, 1961. The Valentine patent discloses a control valve with a supply port entering into a first chamber. A disc is mounted at the bottom of the first chamber. Below the disc is a bore with a piston slidable mounted therein. The piston has a passage therethrough leading from the top end to the bottom end thereof. The bore also has a side passage leading to the air spring. When the frame is too high, the piston is lowered away from the disc allowing the passage to be in fluid connection with the bore. Air leaks into the passage through the piston to alleviate the excess air pressure within the air spring. When the frame is too low, the piston lifts the disc up allowing air from the air port to communicate with the passage to the air spring.
Another such control valve is disclosed in U.S. Pat. No. 4,064,910 issued to Weisenberger on Dec. 27, 1977. In the Weisenberger patent, instead of a disc, a conical valve closure member closes an end of a passage through the piston stem and also abuts the shoulders leading to the bore which houses the stem. The manner of operation is the same as that for the device described in the Valentine patent.
Summary of the Invention
According to the invention, a pneumatic control valve controls the flow of compressible fluid to and from a work station. The work station, in one embodiment, is an air spring mounted between an unsprung axle and a sprung frame and body of a motor vehicle. The control valve controls the amount of air passing to and from the air spring to control the height of the frame with respect to the axle.
The control valve has a cylinder with a first, second and third port therethrough. The first port is connected to a supply of compressible fluid preferably air from a compressor. The second port is connected to the air spring and the third port is an exhaust port.
Preferably, the first, second and third ports are mounted along the side wall of the cylinder. The second port is located near the top of the cylinder and the third port is situated between the first and second ports.
A piston is slidably mounted in the cylinder. The piston has a piston rod extending therefrom which extends through one end of the cylinder. In one embodiment, the piston rod extends from the bottom of the cylinder. In this embodiment, the piston rod is connected to the axle and the cylinder is operably connected to the frame of the vehicle.
The piston is moveable to a first position within the cylinders such that the first port is in communication with the second port and the piston seals the sides of the cylinder whereby the third port is sealed from the first and second ports. The piston is moveable to a second position which seals all three ports from fluid communication with each other. The piston is also moveable to a third position such that the third port is in fluid communication with the second port and the first port is sealed from the other two ports.
The piston has a passage therethrough which fluidly connects the second port with one of the first and third ports when the piston is in one of its respective first and third positions.
In one embodiment, the passage has a first outlet at the top surface of the piston and a second outlet on the side surface of the piston. Seals are circumferentially mounted about the side surface of the piston at its top end. In addition, seals are circumferentially mounted about the side surface of the piston above and below the second outlet. The seals are in abutting relationship with the side walls of the cylinder. The side surface of the piston is spaced from the side wall of the cylinder which creates a clearance therebetween in communication with the second outlet. When the piston is in its first position, the first port is in fluid communication with the clearance and second outlet so that air can pass through the passage in the piston, exit the first outlet and enter the air spring port to elevate the frame with respect to the axle.
The air spring is operably connected to both the cylinder and pistons such that as air moves into the air spring and raises the frame and body with respect to the axle, the piston moves to its second position. Further, when the piston is in its third position and air escapes through the exhaust, the escaping air from the air spring causes the frame and body to be lowered and moves the piston to its second position.
In this fashion, the control valve maintains the frame and body at a certain height with respect to the axle. Any deviations from the predetermined height are corrected by the introduction or exhaustion of air to or from the air spring.
Brief Description of the Drawings
Reference now will be made to the following drawings in which:
FIG. 1 is a side elevational view of one embodiment of the invention in its preferred setting.
FIG. 2 is an enlarged elevational and partially segmented view of the control valve shown in FIG. 1 in its second or neutral position.
FIG. 3 is an enlarged elevational and partially segmented view of the valve shown in its first or fill position.
FIG. 4 is an enlarged elevational and partially segmented view of the control valve in its third or exhaust position.
Description of the Preferred Embodiment
Referring particularly to FIG. 1, a control valve 10 has a cylinder 12 rigidly mounted by clamps 14 to a shock absorber cylinder 16 which is connected in a conventional fashion to a frame 18 of a motor vehicle. A control valve 10 has a downwardly extending piston rod 20 bolted to an axle 21 at flange 23. Piston rod 22, downwardly extending from shock absorber 16, is also bolted to axle 21 at flange 25. An air spring 24 is mounted between the frame 18 and axle 21. The air spring is supplied with air from a compressor (not shown) which is connected to one end of hose 27. Hose 27 has its other end connected to control valve 10. Control valve 10 is connected to an air spring 24 by hose 26.
The interior of control valve 10 is clearly shown in FIGS. 2 through 4. A piston rod 20 extends through the bottom 28 of cylinder 12. The piston rod 20 is connected to a piston 30. The piston 30 has a top surface 32. A passage 34 extends through the piston with one outlet 36 at the top surface 32 and the second outlet 38 on the side surface 40 of piston 30. The piston side surface 40 is spaced from the side wall 42 of cylinder 12 to form a clearance 44 therebetween. "O"-ring seals 46 and 48 are located above and below the second outlet 38. "0"-ring seals 50 and 52 are attached to the piston near the top surface 32.
The cylinder side wall 42 has a first port 54 operably connected to hose 27 as shown in FIG. 1 leading to the compressor (not shown). A second port 58 is connected to hose 26 which leads to the air spring 24. The second port 58 is located near the top end 60 of cylinder 12. The third port 62 is located on the side wall 42 between the first port 54 and the second port 58. The exhaust port 62 is open to the atmosphere.
Operation of the Control Valve
Referring to FIG. 3, when the piston is in its first or fill position, due to extra weight carried by the motor vehicle, the supply port 54 is located between seals 46 and 48. The exhaust port 62 is located between seals 48 and 50. The second port 58 is located above the top surface 32 of piston 30. Air from a compressor passes through port 54 into the clearance 44 between the seals 46 and 48 and then into outlet 38 through passage 34 and out through outlet 36 into the air spring port 58. As air passes through port 58 into the air spring 24, the air spring lifts frame 18 with respect to the axle 21 and piston 30 is moved downwardly with respect to the cylinder 12 toward a position shown in FIG. 2.
When the piston 30 is in the second or neutral position as shown in FIG. 2, the supply port is located between seals 48 and 50 on piston 30. Exhaust port 62 is located between seals 50 and 52. The air spring port 58 is still above the top surface 32. The outlet 38 is no longer aligned with the supply port 54 and both the supply port 54 and exhaust port 62 are sealed from the air spring port 58 and from each other.
When extra weight, which originally necessitates additional air introduced into the air spring 24, is removed from the vehicle, the pressure within air spring 24 forces the frame 18 to move upwardly away from the axle 21. When this upward movement of the frame occurs, the piston 30 moves further downward with respect to the cylinder 12 into a third or exhaust position as shown in FIG. 4. In the exhaust position, the supply port 54 is situated between seals 48 and 50. The supply port is effectively sealed from the outlet 38 and also sealed from both the air spring port 58 and exhaust port 62. The exhaust port is now located above seal 52 and above the top surface 32 of the piston 30 and is in fluid communication with the air spring port 58. Pressurized air from the air spring will flow through hose 26 and into the cylinder 12 and out through the exhaust port 62. As the air flows through exhaust port 62, the frame 18 will then move downwardly toward axle 21 and piston 30 will move upward with respect to cylinder 12 back to its second position as shown in FIG. 3.
In this fashion, a control valve controls the height of a frame above the axle to maintain a limited desired distance therebetween. The control valve automatically adjusts for changes in weight on a motor vehicle which would change the amount of air needed in air spring 24 to maintain the desired height. The control valve automatically shuts off the flow of air to and from the air spring when the desired level is reached. The piston and cylinder provide for a simple control valve with a minimum number of parts which can be easily manufactured.
Variations and modifications are possible within the scope of the foregoing disclosure and drawings without departing from the spirit of the invention which is defined by the appended claims.