1. Field of the Invention
The present invention is directed to a fluid powered actuator having a piston reciprocally positioned to move to three different positions. In particular, the present invention is directed to a fluid powered actuator having three positions which will accommodate out of axial shaft movement.
2. Prior Art
Various types of fluid actuators are utilized for moving various types of machinery from one position to another position. These actuators utilize fluid to force a piston within a bore to move a shaft and may be either hydraulic or pneumatic. In one type of actuator, fluid pressure is directed to either side of the piston within a fluid tight cylinder to move the piston between positions. Three position actuators have been known, such as Assignee's own actuator shown in U.S. Pat. No. 3,991,661.
Oftentimes these actuators are attached to the end of a hydraulic valve spool in order to raise or lower equipment such as a dump bed of a trailer or to extend or retrack a hydraulic cylinder on various types of equipment. When the fluid powered actuator is added to equipment, the shaft length of the actuator and the spool itself is extended. In the event that the piston shaft movement is even slightly out of axial in its movement, it will tend to bind and interfere with operation of the piston.
Accordingly, it is desirable to accommodate a fluid powered actuator having provision for accommodating out of axial shaft movement.
It is a further object and purpose of the present invention to provide a three position fluid powered actuator that will compensate for out of axial shaft movement.
It is a further object and purpose of the present invention to provide a fluid actuator that is adapted to move to multitude of selected positions.
It is a further object and purpose of the present invention to provide a fluid actuator comprised of readily available components that is simple to assemble and install.
The present invention provides a fluid powered actuator that will accommodate out of axial shaft movement. The fluid actuator includes a piston which is reciprocally positioned within a cylindrical chamber of a body of the actuator. The piston has a channel formed on its external circumferential surface with an O-ring or other seal mechanism residing therein to engage the interior wall of the cylindrical chamber and form a fluid tight seal therewith.
The piston includes an open end and a socket having a recess. Opposed to the open end of the piston is an axial opening.
A piston shaft has a first end passing through the axial opening and into the open socket of the piston. The first end of the piston shaft terminates in a shoulder having a larger diameter than the piston shaft.
The piston shaft has a second end opposed to the first end which passes through a spring chamber axially aligned with the cylindrical chamber of the body. Within the spring chamber, a compressor spring surrounds the piston shaft.
One end of the compression spring engages the first flange bushing while the opposite end of the compression spring engages a second flange bushing. The piston shaft and, accordingly, the piston will be capable of being moved from a position at rest where the spring is not in compression. The force of the compression spring will urge the piston back to a center position.
The cylindrical chamber forms a fluid tight chamber that may be pressurized. Fluid to the cylindrical chamber is delivered by one of two fluid passageways, a first fluid passageway and a second fluid passageway. If the piston shaft is out of axial alignment, the operation of the piston and the actuator will not be adversely affected.
The embodiments discussed herein are merely illustrative of specific manners in which to make and use the invention and are not to be interpreted as limiting the scope of the instant invention.
While the invention has been described with a certain degree of particularity, it is to be noted that many modifications may be made in the details of the invention's construction and the arrangement of its components without departing from the spirit and scope of this disclosure. It is understood that the invention is not limited to the embodiments set forth herein for purposes of exemplification.
Referring to the drawings in detail,
The fluid actuator includes a piston 14 which is reciprocally positioned within a cylindrical chamber 16 of a body 18 of the actuator 10. The piston 14 has a channel 20 formed on its external circumferential surface with an O-ring 22 or other seal mechanism residing therein. The O-ring 22 engages the interior wall of the cylindrical chamber 16 to form a fluid tight seal therewith.
The piston 14 and its components are shown in exploded view in FIG. 2. The piston includes an open end 24 and a socket 26 having a spherical recess. Opposed to the open end 24 of the piston is an axial opening 28.
A piston shaft 30 has a first end passing through the axial opening 28 and into the open socket 26 of the piston 14. The first end of the piston shaft 30 terminates in a shoulder 32 having a larger diameter than the piston shaft 30.
The piston shaft 30 has a second end opposed to the first end which passes through a spring chamber 34 which is axially aligned with the cylindrical chamber 16 in the body 18. Within the spring chamber 34, a compression spring 36 surrounds the piston shaft 30.
One end of the compression spring 36 engages a first flange bushing 40 while the opposite end of the compression spring engages a second flange bushing 42. The first flange bushing 40 engages with and is moved by shoulder 44 on the piston shaft. Likewise, second flange bushing 42 is engaged with and is moved by stop 46 on the piston shaft.
The piston shaft 30 and, accordingly, the piston 14 will be capable of being moved from a position at rest shown in
Returning to a consideration of the piston 14, a spherical ball 60 resides in the spherical recess in the socket 26. The ball 60 includes an axial opening which receives the piston shaft 30 therethrough. The spherical ball 60 is held in place within the socket by the shoulder 32 on the first end of the piston shaft. The shoulder and its piston shaft are retained within the socket by a circular keeper 62 and a spring retaining ring 64.
A seal mechanism is provided between the spherical ball 60 and the socket 26 and between the ball and the shaft. In the present embodiment, an O-ring 66 resides between the shaft and the axial opening in the ball and an O-ring 68 resides within a groove in the external surface of the ball which engages the socket 26. Accordingly, a fluid-tight seal is created so that pressurized fluid in the cylindrical chamber 16 will not move past the O-rings into the socket.
The cylindrical chamber forms a fluid tight chamber that may be pressurized. The cylindrical chamber 16 is separated from the spring chamber 34 by a seal ring 70 having an opening therethrough to receive the piston shaft.
Fluid to the cylindrical chamber is delivered via one of two fluid passageways, a first fluid passageway 72 and a second fluid passageway 74.
Fluid to the cylindrical chamber is delivered via one of two fluid passageways, a first fluid passageway 104 and a second fluid passageway 106.
The fluid actuator of the present invention is self contained and simple to assemble and install. The actuator does not have to be disassembled in order to install. Attachment of the actuator to the hydraulic valve spool may be accomplished with only a wrench, such as a hex wrench.
Whereas, the present invention has been described in relation to the drawings attached hereto, it should be understood that other and further modifications, apart from those shown or suggested herein, may be made within the spirit and scope of this invention.
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Number | Date | Country |
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2235961 | Mar 1991 | GB |