The present invention relates to an air cylinder, a head cover, and a rod cover.
Conventionally, a shock absorbing mechanism has been used in which a cushioning material made of a soft resin such as rubber or urethane or the like, or an oil damper or the like is attached to an end part of an air cylinder, to thereby cushion an impact at a stroke end. However, such a shock absorbing mechanism that mechanically mitigates shocks in the cylinder is limited in terms of the number of operations it can perform, and requires regular maintenance.
In order to resolve such incompatibility, in JP 5578502 B2, a speed controller (flow rate controller) is disclosed in which, by throttling the exhaust air that is discharged from the air cylinder in the vicinity of a stroke end, an operating speed of the air cylinder is reduced.
However, such a conventional flow rate controller is an external component that is connected to ports of the air cylinder, which increases the number of component parts of the drive device of the air cylinder, and the device configuration of the drive device becomes complex. Further, the structure thereof is complicated, and a problem arises in that, when attempting to form the head cover and the rod cover integrally with the air cylinder, machining becomes difficult, and productivity is reduced.
The present invention has the object of providing an air cylinder, a head cover, and a rod cover, which enable the device configuration of a drive device to be simplified, and which are superior in terms of productivity.
One aspect of the present invention is an air cylinder, comprising a cylinder tube in which a cylinder chamber is formed, a head cover configured to close one end of the cylinder tube, a rod cover configured to close another end of the cylinder tube, a piston configured to slide in the cylinder chamber, a piston rod having one end connected to the piston, a port provided in each of the head cover and the rod cover, and a flow rate controller incorporated into at least one of the head cover or the rod cover, wherein the flow rate controller includes a first flow path configured to allow communication between the port and the cylinder chamber, a first flow rate adjustment part disposed in the first flow path, a second flow path disposed in parallel with the first flow path, a second flow rate adjustment part disposed in the second flow path, a pilot check valve disposed in series with the second flow rate adjustment part in the second flow path, and a third flow rate adjustment part configured to supply and discharge pilot air to and from the pilot check valve, and wherein, depending on a pressure of the pilot air, the pilot check valve switches between a state allowing passage of exhaust air discharged from the cylinder chamber, and a state preventing the passage of the exhaust air.
Another aspect of the present invention is a head cover for an air cylinder that covers a head side end part of a cylinder tube, the head cover comprising, a port, a first flow path configured to communicate with the port and a cylinder chamber of the air cylinder, a first flow rate adjustment part disposed in the first flow path, a second flow path disposed in parallel with the first flow path, a second flow rate adjustment part disposed in the second flow path, a pilot check valve disposed in the second flow path, and connected in series with the second flow rate adjustment part, and a third flow rate adjustment part configured to supply and discharge pilot air to and from the pilot check valve, wherein, depending on a pressure of the pilot air, the pilot check valve switches between a state allowing passage of exhaust air discharged from the cylinder chamber, and a state preventing the passage of the exhaust air.
Another further aspect of the present invention is a rod cover for an air cylinder that covers a rod side end part of a cylinder tube, the rod cover comprising, a port, a first flow path configured to communicate with the port and a cylinder chamber of the air cylinder, a first flow rate adjustment part disposed in the first flow path, a second flow path disposed in parallel with the first flow path, a second flow rate adjustment part disposed in the second flow path, a pilot check valve disposed in the second flow path, and connected in series with the second flow rate adjustment part, and a third flow rate adjustment part configured to supply and discharge pilot air to and from the pilot check valve, wherein, depending on a pressure of the pilot air, the pilot check valve switches between a state allowing passage of exhaust air discharged from the cylinder chamber, and a state preventing the passage of the exhaust air.
In accordance with the air cylinder, the head cover, and the rod cover according to the above-described aspects, the device configuration of the drive device can be simplified, and because the structure thereof is simplified, productivity is superior.
Hereinafter, a preferred embodiment of the present invention will be presented and described in detail below with reference to the accompanying drawings.
As shown in
As shown in
The head side flow rate controller 24 includes a first flow path 26 connecting the head side port 14a and the cylinder chamber 12c, and a second flow path 30 disposed in parallel with the first flow path 26. A first flow rate adjustment part 28 is provided in the first flow path 26. The first flow rate adjustment part 28 is made up of a throttle valve that variably throttles the flow rate of air passing through the first flow path 26, and by primarily throttling the flow rate of exhaust air, suppresses an operating speed of the piston 18 in the vicinity of the stroke end.
A second flow rate adjustment part 32, and a pilot check valve 38 are provided in the second flow path 30. The second flow rate adjustment part 32 is a throttle valve, and can variably adjust the flow rate of air passing through the second flow path 30. The pilot check valve 38 is a check valve through which the passage of exhaust air is switched depending on the pressure of the pilot air, and includes an inlet 38a, an outlet 38b, and a pilot port 38c. The inlet 38a is connected to the head side port 14a side of the second flow path 30, and the outlet 38b is connected to the cylinder chamber 12c side of the second flow path 30. When the pressure of the pilot air falls below a predetermined value, the pilot check valve 38 operates as a check valve that allows air to pass from the inlet 38a toward the outlet 38b, while preventing the passage of air in the opposite direction. Further, when the pressure of the pilot air becomes greater than or equal to the predetermined value, the pilot check valve 38 allows the air to pass in both directions from the inlet 38a toward the outlet 38b, and vice versa.
The flow rate controller 24 further includes a third flow path 34 connecting the head side port 14a and the cylinder chamber 12c, and a pilot air flow path 40 connecting the head side port 14a and the pilot port 38c of the pilot check valve 38. A check valve 36 is disposed in the third flow path 34. The check valve 36 is connected in a direction that allows passage of air flowing from the head side port 14a toward the cylinder chamber 12c, while preventing the passage of air in the opposite direction. The third flow path 34 and the check valve 36 allow high pressure air to pass freely toward the cylinder chamber 12c. The third flow path 34 and the check valve 36 need not necessarily be provided independently as shown in the drawings, but may be an integrated member with the throttle valve of the first flow rate adjustment part 28 or the throttle valve of the second flow rate adjustment part 32, in the form of a check valve equipped throttle valve.
A third flow rate adjustment part 42, which is capable of variably adjusting the flow rate of the pilot air supplied to and discharged from the pilot check valve 38, is provided in the pilot air flow path 40. The third flow rate adjustment part 42 includes a throttle valve 42a, and a check valve 42b which is connected in parallel with the throttle valve 42a. The check valve 42b is connected in a direction that allows air to pass from the head side port 14a toward the pilot check valve 38, while preventing the passage of air in the opposite direction, and quickly supplies the pilot air to the pilot check valve 38. The throttle valve 42a is capable of variably adjusting the flow rate of the pilot air discharged through the pilot air flow path 40, and determines a timing at which the operation of the pilot check valve 38 is switched. The third flow rate adjustment part 42 can be configured in the form of a check valve equipped throttle valve in which the throttle valve 42a and the check valve 42b are integrated.
The head side flow rate controller 24 is configured in the manner described above. On the other hand, since the rod side flow rate controller 24A is configured in substantially the same manner as the head side flow rate controller 24, constituent elements thereof which are the same as those of the head side flow rate controller 24 are designated by the same reference numerals, and detailed description thereof is omitted. However, the constituent elements of the rod side flow rate controller 24A are indicated by appending the letter “A” at the end of each of the reference numerals, in order to distinguish them from the constituent elements of the head side flow rate controller 24.
Hereinafter, a description will be given concerning a specific configuration of the head cover 14 and the rod cover 16 in which the flow rate controllers 24 and 24A are incorporated.
As shown in
As shown in
As shown in
Ends of the first flow path 26A, a second flow path 30A, a third flow path 34A, and a pilot air flow path 40A open, respectively, at the rod side port 16a. As shown in
As shown in
As shown in
As shown in
As shown in
The intermediate portion 66 is formed with an inner diameter that is smaller than that of the piston chamber 65 and the check valve accommodating portion 67, and includes, at a boundary portion between the intermediate portion 66 and the check valve accommodating portion 67, a reduced diameter portion 66a formed by reducing the diameter of the intermediate portion 66. A pilot piston 76 is arranged in the piston chamber 65 and the intermediate portion 66. The pilot piston 76 includes a piston member 76a that slides inside the piston chamber 65. The piston member 76a partitions the piston chamber 65 into a portion communicating with the pilot air flow path 40A and a portion communicating with the air vent hole 62, and receives the pressure of the pilot air from the pilot air flow path 40A to generate a driving force in a rightward direction as shown in the drawing. When the pressure of the pilot air increases, the pilot piston 76 projects toward the inner end surface 60c side as shown in
As shown in
A valve element 70, a supporting body 72 that supports the valve element 70, and a return spring 74 that biases the valve element 70 are provided in the check valve accommodating portion 67. The supporting body 72 is fitted into an end part of the check valve accommodating portion 67 on the inner end surface 60c side. A cylindrical shaft hole 72a is provided in a central portion of the supporting body 72, and a shaft portion 70a of the valve element 70 is inserted into the shaft hole 72a. Further, an opening 72b is provided on an outer circumferential portion of the supporting body 72, and an inner side of the check valve accommodating portion 67 and the rod side pressure chamber 12b are capable of communicating through the opening 72b. The valve element 70 includes a closing portion 70b which is a portion thereof that faces the reduced diameter portion 66a and is enlarged in diameter in a disk-like shape, and the shaft portion 70a extends from the closing portion 70b toward the supporting body 72 side. The closing portion 70b is biased by the return spring 74 toward the reduced diameter portion 66a side, and the closing portion 70b covers and closes the reduced diameter portion 66a.
In a state in which the pressure of the pilot air is not acting, as shown in the drawing, the pilot piston 76 of the pilot check valve 38A is biased toward the cap 80 side by the elastic force of the return spring 74. In such a state, when the high pressure air flows in from the intermediate portion 66, since the closing portion 70b is pressed by the high pressure air, the valve element 70 is separated away from the reduced diameter portion 66a and then allows passage of the air flowing toward the rod side pressure chamber 12b through the second flow path 30A. On the other hand, when the pressure of the exhaust air in the rod side pressure chamber 12b increases, the closing portion 70b is biased toward the reduced diameter portion 66a side, and therefore, the valve element 70 prevents the exhaust air from passing.
Further, as shown in
The rod cover 16 is configured in the manner described above, and hereinafter, a description will be given concerning the head cover 14. As shown in
As shown in
As shown in
As shown in
The air cylinder 10, the head cover 14, and the rod cover 16 according to the present embodiment are configured in the manner described above. Hereinafter, a description will be given concerning operations and actions thereof.
As shown in
As shown by the arrow A, the high pressure air from the high pressure air supply source 52 flows from the head side port 14a to the head side flow rate controller 24. In the head side flow rate controller 24, the high pressure air flows to the head side pressure chamber 12a through the first flow path 26, the second flow path 30, and the third flow path 34. In this case, as shown by the arrow A, the high pressure air is supplied to the head side pressure chamber 12a in a free flowing manner through the third flow path 34 and the check valve 36, without passing through the throttle valve.
Further, the pilot air is supplied from the pilot port 38c of the pilot check valve 38 through the pilot air flow path 40 and the check valve 42b of the third flow rate adjustment part 42. Consequently, as shown in
Accompanying the operating stroke of the piston 18, as shown by the arrow B, the exhaust air from the rod side pressure chamber 12b is discharged through the rod side flow rate controller 24A. Since the check valve 36A does not allow the exhaust air to pass, as shown by the arrow B1, the exhaust air is discharged through the first flow path 26A, and as shown by the arrow B2, the exhaust air is discharged through the second flow path 30A. Until the middle of the operating stroke, the pilot check valve 38A of the second flow path 30A maintains the pressure of the pilot air that was accumulated in the piston chamber 65 in the previous return stroke. Therefore, as shown in
Further, in the operating stroke, as shown by the arrow C2, the pilot air of the pilot check valve 38A gradually flows out through the pilot air flow path 40A and the third flow rate adjustment part 42A. Accompanying outward flowing of the pilot air, the pressure of the pilot air in the pilot check valve 38A gradually decreases.
Then, at a predetermined timing when the piston 18 approaches the stroke end, the pilot piston 76 of the pilot check valve 38A returns to the initial position as shown in
Thereafter, the operation switching valve 56 is switched from the first position to the second position, whereby the high pressure air supply source 52 is connected to the rod side port 16a, the exhaust port 54 is connected to the head side port 14a, and a return stroke is initiated. The operations in the return stroke simply involve a switching of places in the operating stroke between the head side flow rate controller 24 and the rod side flow rate controller 24A, and since the operations in the return stroke and the operations in the operating stroke are substantially the same, a description of such operations will be omitted.
The air cylinder 10, the head cover 14, and the rod cover 16 of the present embodiment realize the following advantageous effects.
The air cylinder 10 according to the present embodiment is equipped with the cylinder tube 12 in which the cylinder chamber 12c is formed, the head cover 14 that closes one end of the cylinder tube 12, the rod cover 16 that closes the other end of the cylinder tube 12, the piston 18 that slides in the cylinder chamber 12c, the piston rod 20 having one end connected to the piston 18, the ports 14a and 16a provided respectively in the head cover 14 and the rod cover 16, and the flow rate controller 24 incorporated into at least one of the head cover 14 or the rod cover 16, wherein the flow rate controller 24 includes the first flow paths 26 and 26A that allow communication between the ports 14a and 16a and the cylinder chamber 12c, the first flow rate adjustment parts 28 and 28A disposed in the first flow paths 26 and 26A, the second flow paths 30 and 30A disposed in parallel with the first flow paths 26 and 26A, the second flow rate adjustment parts 32 and 32A disposed in the second flow paths 30 and 30A, the pilot check valves 38 and 38A disposed in series with the second flow rate adjustment parts 32 and 32A in the second flow paths 30 and 30A, and the third flow rate adjustment parts 42 and 42A that supply and discharge pilot air to and from the pilot check valves 38 and 38A, and wherein, depending on the pressure of the pilot air, the pilot check valves 38 and 38A switch between a state allowing passage of the exhaust air discharged from the cylinder chamber 12c, and a state preventing the passage of the exhaust air.
According to the above-described configuration, since the pilot check valves 38 and 38A, which are of a simple structure, are used in order to switch the control flow of the exhaust air, a switching valve in which a shuttle valve or a three-way valve is used becomes unnecessary, and the internal structure is simplified. Further, since constituent members, for which precision is required, such as sleeves and spools that constitute a shuttle valve or a three-way valve are rendered unnecessary, grinding or polishing and surface treatment requiring a number of production steps are rendered unnecessary, and manufacturing can be carried out at a low cost.
The above-described air cylinder 10 may further comprise the check valves 36 and 36A that are disposed in parallel with the first flow rate adjustment parts 28 and 28A, and allow passage of air flowing from the ports 14a and 16a toward the cylinder chamber 12c. In accordance with such a configuration, the high pressure air can be supplied to the cylinder chamber 12c in a free flowing manner, and the air cylinder 10 can be operated at high speed.
In the above-described air cylinder 10, the third flow rate adjustment parts 42 and 42A may be equipped with the throttle valve 42a, and the check valve 42b that is disposed in parallel with the throttle valve 42a and allows passage of air flowing toward the pilot port 38c.
The head cover 14 according to the present embodiment is the head cover 14 for the air cylinder 10 that covers a head side end part of the cylinder tube 12, the head cover comprising the head side port 14a, the first flow path 26 that communicates with the head side port 14a and the cylinder chamber 12c of the air cylinder 10, the first flow rate adjustment part 28 disposed in the first flow path 26, the second flow path 30 disposed in parallel with the first flow path 26, the second flow rate adjustment part 32 disposed in the second flow path 30, the pilot check valve 38 disposed in the second flow path 30, and connected in series with the second flow rate adjustment part 32, and the third flow rate adjustment part 42 that supplies and discharges the pilot air to and from the pilot check valve 38, wherein, depending on the pressure of the pilot air, the pilot check valve 38 switches between a state allowing passage of the exhaust air discharged from the cylinder chamber 12c, and a state preventing the passage of the exhaust air.
The rod cover 16 according to the present embodiment is the rod cover 16 for the air cylinder 10 that covers a rod side end part of the cylinder tube 12, the rod cover comprising the rod side port 16a, the first flow path 26A that communicates with the rod side port 16a and the cylinder chamber 12c of the air cylinder 10, the first flow rate adjustment part 28A disposed in the first flow path 26A, the second flow path 30A disposed in parallel with the first flow path 26A, the second flow rate adjustment part 32A disposed in the second flow path 30A, the pilot check valve 38A disposed in the second flow path 30A, and connected in series with the second flow rate adjustment part 32A, and the third flow rate adjustment part 42A that supplies and discharges the pilot air to and from the pilot check valve 38A, wherein, depending on the pressure of the pilot air, the pilot check valve 38A switches between a state allowing passage of the exhaust air discharged from the cylinder chamber 12c, and a state preventing the passage of the exhaust air.
According to the head cover 14 and the rod cover 16 described above, since the pilot check valves 38 and 38A, which are of a simple structure, are used in order to switch the control flow of the exhaust air, a switching valve in which a shuttle valve or a three-way valve is used becomes unnecessary, the internal structure is simplified, and manufacturing can be carried out at a low cost.
Although a description of a preferred embodiment of the present invention has been presented above, it should be understood that the present invention is not limited to the above-described embodiment, and various changes and modifications may be made within a range that does not deviate from the essence and gist of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
2019-162900 | Sep 2019 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2020/029599 | 8/3/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2021/044780 | 3/11/2021 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3202060 | Grotness | Aug 1965 | A |
3430540 | Linz | Mar 1969 | A |
6131610 | Morisako | Oct 2000 | A |
6745789 | Christiani | Jun 2004 | B2 |
20040112208 | Kot, II | Jun 2004 | A1 |
Number | Date | Country |
---|---|---|
52-21399 | Feb 1977 | JP |
2002-130213 | May 2002 | JP |
2009-115242 | May 2009 | JP |
5578502 | Aug 2014 | JP |
Entry |
---|
International Search Report dated Oct. 13, 2020 in PCT/JP2020/029599 filed Aug. 3, 2020, 3 pages. |
Extended European Search Report dated Jul. 7, 2023, in corresponding European Patent Application No. 20860012.2, 8 pages. |
Number | Date | Country | |
---|---|---|---|
20220349426 A1 | Nov 2022 | US |