1. Technical Field
The present disclosure relates to cylinders, and particularly to a cylinder capable of sliding and rotating.
2. Description of Related Art
A push rod of a cylinder transports and positions a workpiece, and drives other devices. A cylinder may include a cylinder body defining a receiving chamber, a piston and a push rod received in the receiving chamber. The cylinder body may define two openings at opposite ends communicating with the receiving chamber. The piston may be movably received in the receiving chamber, one end of the push rod may be fixed to the piston, and the other end of the push rod may extend out of the cylinder body via one opening of the cylinder body. The push rod transports or positions a workpiece. However, the push rod is only capable of sliding back and forth, but when radial rotation is required, the above-described cylinder cannot meet such motion requirement.
Therefore, there is room for improvement in the art.
The components in the drawings are not necessarily drawn to scale, the emphasis instead placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring also to
The bottom cover 13 is received in one annular mounting groove 112 away from the fixing hole 119, and one sealing washer 16 is received in the annular mounting groove 112 below the bottom cover 13, such that one end of the cylinder body 11 is sealed by the bottom cover 13 and the sealing washer 16. A mounting groove 135 is defined axially in the bottom cover 13. The mounting groove 135 is stepped and ring-shaped. The top cover 15 is stepped, hollow, and substantially cylindrical. A shaft hole 152 is axially defined in a center portion of the top cover 15. An annular mounting groove 153 is defined in an inner wall of the top cover 15 at one end of the shaft hole 152. The annular mounting groove 153 is coaxial with the shaft hole 152, for receiving the guiding sleeve 50. A positioning hole 155 is defined in an outer wall of the end of the top cover 15 defining the annular mounting groove 153. The other end of the cylinder body 11 defining the fixing hole 119 is covered by the top cover 15 and the other sealing washer 16 in a similar manner. The fixing member 19 passes through the fixing hole 119 and the positioning hole 155, for fixing the top cover 15 to the cylinder body 11, such that the top cover 15 is fixed in the axial direction of the cylinder body 11. Each of the latching rings 17 is C-shaped, and latches in the annular latching groove 114. The bottom cover 13 and the top cover 15 are kept in place by the two latching rings 17, for preventing the bottom cover 13 and the top cover 15 from sliding out from the cylinder body 11. The two adjusting valves 18 communicate with the cylinder body 11, via the inlet 113 and the outlet 115, and with two gas sources to introduce gases into the cylinder body 11.
The cylinder rod 30 includes a rod body 31 and a flange portion 33 extending from one end of the rod body 31. The rod body 31 is substantially cylindrical. Opposite ends of the rod body 31 are hollow. A mounting hole 313 is defined in an end surface of rod body 31 adjacent to the flange portion 33 along an axial direction thereof. The mounting hole 313 is substantially circular. Two rotation grooves 315 are symmetrically defined in a middle portion of an outer wall of the rod body 31. Each rotation groove 315 is arcuate. In the illustrated embodiment, each rotation groove 315 extends through an angle of substantially 90 degrees along a circular path, such that the cylinder rod 30 is capable of peripheral rotation through 90 degrees relative to the piston assembly 40.
The piston assembly 40 includes a piston 41, two mounting rings 42, two rotation pins 43, and two sliding pins 45. The piston 41 is sleeved on the rod body 31 of the cylinder rod 30, and is movably assembled with the cylinder body 11 and the cylinder rod 30. The piston 41 is substantially cylindrical. An axial through hole 413 is defined in the piston 41. The piston 41 is sleeved on the rod body 31 via the through hole 413. Two connecting holes 415 are defined in an outer wall of the piston 41, corresponding to the two rotation grooves 315. Two axial sliding grooves 417 are defined in the outer wall of the piston 41, corresponding to the two connecting holes 117 defined in the cylinder body 11. Each axial sliding groove 417 is a slot. Two mounting rings 42 are sleeved on opposite ends of the piston 41, and resist against the inner wall of the cylinder body 11 in the receiving hole 111, respectively. The two rotation pins 43 pass through the two connecting holes 415, and then movably connect with the two rotation grooves 315, such that the cylinder rod 30 and the piston 41 are rotatably mounted together. The two sliding pins 45 pass through the two connecting holes 117, and then movably connect with the two axial sliding grooves 417, such that the piston 41 and the cylinder body 11 are slidably mounted together, and the piston 41 is capable of axial movement relative to the cylinder body 11.
The guiding sleeve 50 is hollow and cylindrical. The guiding sleeve 50 is sleeved on a distal end of the rod body 31 away from the flange portion 33, and is received in the mounting groove 153 defined in the top cover 15, such that the cylinder rod 30 is rotatably connected with the top cover 15.
The connection assembly 70 includes a sleeve 71, two stop bearings 73, a support ring 75, and a support cover 77. The sleeve 71 is received in the receiving hole 111 of the cylinder body 11 adjacent to the bottom cover 13, and is sleeved on the cylinder rod 30. In the illustrated embodiment, the sleeve 71 is hollow and substantially cylindrical, and includes a first end 711 and a second end 713 opposite to the first end 711. An inner diameter of the first end 711 is greater than that of the semi-sealed second end 713. The inner diameter of the first end 711 is substantially the same as a diameter of the rod body 31, and smaller than a diameter of the flange portion 33, such that the sleeve 71 is prevented from sliding out from the end of the cylinder rod 30 adjacent to the flange portion 33. One of the two stop bearings 73 is sleeved on the end of the cylinder rod 30 adjacent to the flange portion 33, and is positioned on the second end 713 of the sleeve 71. The support ring 75 is mounted in the sleeve 71, and resists against the flange portion 33 and one of the stop bearings 73. The support cover 77 is mounted in the first end 711 of the sleeve 71, and assembled with the bottom cover 13 and the other stop bearing 73. The other stop bearing 73 is received in the mounting groove 135. In the illustrated embodiment, the support cover 77 is a substantially circular plate. A circular receiving groove 773 is defined in an end surface of the support cover 77. A cylindrical protrusion 775 is formed in the other end surface of the support cover 77 opposite to the end surface of the support cover 77 defining the receiving groove 773. The receiving groove 773 and the protrusion 775 are formed on a center portion of the support cover 77.
The elastic member 90 is received in the cylinder body 11. One end of the elastic member 90 is inserted into the mounting hole 313 of the cylinder rod 30, and resists against the inner bottom wall of the cylinder rod 30 in the mounting hole 313. The other end of the elastic member 90 is inserted into the receiving groove 773 of the support cover 77, and resists against the bottom wall of the receiving groove 773. The elastic member 90 is a compression spring in the illustrated embodiment.
In assembly, the bottom cover 13 and the sealing washer 16 sleeved on the bottom cover 13 are mounted in the end of the cylinder body 11 away from the fixing hole 119, and the latching ring 17 is latched in the annular latching groove 114, such that the bottom cover 13 is fixed to one end of the cylinder body 11, sealing one end of the cylinder body 11. The support cover 77 and one of the stop bearings 73 are mounted in the cylinder body 11, and are rotatably connected to the bottom cover 13. The stop bearing 73 is received in the mounting groove 135 and sandwiched between the bottom cover 13 and the support cover 77. The connection assembly 70 and the elastic member 90 are mounted on the end of the rod body 31 adjacent to the flange portion 33; then the connection assembly 70, the elastic member 90, and the cylinder rod 30 are inserted axially into the cylinder body 11, and the end of the rod body 31 away from the flange portion 33 protrudes out from the cylinder body 11. The sleeve 71 is securely mounted in the receiving hole 111 and sleeved on the flange portion 33. The stop bearings 73 are oppositely mounted in the sleeve 71, one stop bearing 73 being adjacent to the first end 711 and the other stop bearing 73 adjacent to the semi-sealed second end 713. The stop bearing 73 adjacent to the second end 713 is sleeved on the flange portion 33, and is mounted with the support ring 75. The other stop bearing 73 and the support cover 77 are mounted in the first end 711 and rotatably connected with the bottom cover 13. The piston 41 is sleeved on the rod body 31 and received in the receiving hole 111, and the two mounting rings 42 sleeved on the piston 41 are received in the receiving hole 111. The two rotation pins 43 pass through the two connecting holes 415, and movably connect with the two rotation grooves 315, such that the cylinder rod 30 and the piston 41 are rotatably mounted together. The two sliding pins 45 pass through the two connecting holes 117, and movably connect with the two axial sliding grooves 417, such that the piston 41 and the cylinder body 11 are slidably mounted together, and the piston 41 is capable of sliding axially relative to the cylinder body 11. The top cover 15, the other sealing member 16 sleeved on the top cover 15, and the guiding sleeve 50 received in the mounting groove 153 are mounted in the other end of the cylinder body 11 away from the bottom cover 13, and are movably sleeved on the other end of the rod body 31 away from the flange portion 33. The other latching ring 17 is latched in the annular latching groove 114 to prevent the top cover 15 from sliding out from the cylinder body 11. Finally, the adjusting valves 18 are connected to the inlet 113 and the outlet 115 of the cylinder body 11, to complete the assembly of the cylinder 100.
Referring also to
The rotation grooves 315 are defined in the cylinder rod 30, and the piston 41 and the cylinder rod 30 are connected together via the rotation pins 43; and the sliding grooves 417 are defined in the piston 41, and the piston 41 and the cylinder body 11 are connected together via the sliding pins 45. Therefore, the piston 41 is capable of sliding axially relative to the cylinder body 11 and rotating around the axis relative to the cylinder rod 30. With such a simple structure, the cylinder 100 is capable of driving other devices which require rotational as well as lateral movement.
In other embodiments, the quantities of the connecting holes 117, the rotation grooves 315, the sliding grooves 417, and the connecting holes 415 can be changed as needed, such as one, or more than two. The quantities of the rotation pins 43 and the sliding pins 45 can change accordingly.
While various embodiments have been described and illustrated, the disclosure is not to be construed as being restricted thereto. Various modifications can be made to the embodiments by those skilled in the art without departing from the true spirit and scope of the disclosure as defined by the appended claims.
Number | Date | Country | Kind |
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201110450529.X | Dec 2011 | CN | national |