Apparatus for actuating a hydraulic carrier rod of a rotary printing machine
11001052 ยท 2021-05-11
Assignee
Inventors
Cpc classification
B41P2227/21
PERFORMING OPERATIONS; TRANSPORTING
B41F27/105
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention is about a convenient way of fixing a sleeve over a mandrel in a press. The sleeve is attached by applying a hydraulic pressure into the mandrel which deforms itself and grips on the sleeve. The pressure is brought by a piston mounted on a screw inside the mandrel, which when tightened increases the pressure and grips the sleeve.
Claims
1. A hydraulic carrier rod of a rotary printing machine in combination with an apparatus for actuating the hydraulic carrier rod, the apparatus comprising a rotary drive for the carrier rod; an electronic control device for the rotary drive; and a removable bearing arrangement for supporting one end of the carrier rod, wherein the carrier rod has a hydraulic clamping system for clamping a cylinder sleeve pushed onto the carrier rod, the hydraulic clamping system has a rotatable actuating member at the one end of the carrier rod, the rotatable actuating member is mounted in the removable bearing arrangement and includes a coupling for a tool, the hydraulic clamping system includes a plurality of hydraulic bushes, each of the plurality of hydraulic bushes has an annular chamber within a circumferential wall of the carrier rod, the annular chamber is connected to a pressure chamber and fillable with a hydraulic fluid, the removable bearing arrangement includes a tool holder, the tool holder holds the tool axially movably and rotationally rigidly on the removable bearing arrangement, the electronic control device is configured to: control an axial extension movement of the tool holder and thereby to engage the tool with the coupling, and activate the rotary drive to thereby rotate the carrier rod relatively to the tool, and the electronic control device is further configured to: rotate the carrier rod to a defined angle relative to the rotatable actuating member held by the tool when clamping and/or relieving the hydraulic clamping system, and/or monitor a torque generated by the rotary drive and, when the clamping and/or the relieving the hydraulic clamping system, terminate rotation of the carrier rod as soon as the torque reaches a predetermined threshold value.
2. The apparatus of claim 1, wherein the tool holder comprises a pneumatic cylinder for extending and retracting the tool.
3. A hydraulic carrier rod of a rotary printing machine in combination with an apparatus for actuating the hydraulic carrier rod, the apparatus comprising a rotary drive for the carrier rod; an electronic control device for the rotary drive; and a removable bearing arrangement for supporting one end of the carrier rod, wherein the carrier rod has a hydraulic clamping system for clamping a cylinder sleeve pushed onto the carrier rod, the hydraulic clamping system has a rotatable actuating member at the one end of the carrier rod, the rotatable actuating member is mounted in the removable bearing arrangement and includes a coupling for a tool, the hydraulic clamping system includes a plurality of hydraulic bushes, each of the plurality of hydraulic bushes has an annular chamber within a circumferential wall of the carrier rod, the annular chamber is connected to a pressure chamber and fillable with a hydraulic fluid, the removable bearing arrangement includes a tool holder, the tool holder holds the tool axially movably and rotationally rigidly on the removable bearing arrangement, and the electronic control device is configured to: control an axial extension movement of the tool holder and thereby to engage the tool with the coupling, activate the rotary drive to thereby rotate the carrier rod relatively to the tool, monitor a torque generated by the rotary drive, and, when clamping and/or relieving the hydraulic clamping system, terminate rotation of the carrier rod as soon as the torque reaches a predetermined threshold value.
4. A hydraulic carrier rod of a rotary printing machine in combination with an apparatus for actuating the hydraulic carrier rod, the apparatus comprising: a rotary drive for the carrier rod; an electronic control device for the rotary drive; and a removable bearing arrangement for supporting one end of the carrier rod, wherein the carrier rod has a hydraulic clamping system for clamping a cylinder sleeve pushed onto the carrier rod, the hydraulic clamping system has a rotatable actuating member at the one end of the carrier rod, the rotatable actuating member is mounted in the removable bearing arrangement and includes a coupling for a tool, the hydraulic clamping system includes a plurality of hydraulic bushes, each of the plurality of hydraulic bushes has an annular chamber within a circumferential wall of the carrier rod, the rotatable actuating member includes a screw, the carrier rod includes a plug on the one end of the carrier rod, the plug includes a pressure chamber, the screw goes into/out of the plug on the one end of the carrier rod to compress/decompress the pressure chamber, the removable bearing arrangement includes a tool holder, the tool holder holds the tool axially movably and rotationally rigidly on the removable bearing arrangement, and the electronic control device is configured to: control an axial extension movement of the tool holder and thereby to engage the tool with the coupling, activate the rotary drive to thereby rotate the carrier rod relatively to the tool, monitor a torque generated by the rotary drive, and, when clamping and/or relieving the hydraulic clamping system, terminate rotation of the carrier rod as soon as the torque reaches a predetermined threshold value.
5. The apparatus of claim 4, wherein, when compressing the pressure chamber, the hydraulic fluid in the pressure chamber and the annular chamber is compressed so that the plurality of hydraulic bushes and the circumferential wall of the carrier rod expand elastically, thereby clamping the circumferential wall against an inner circumferential surface of the cylinder sleeve.
Description
(1) In the following, an exemplary embodiment is explained in more detail with reference to the drawing.
(2) Shown are:
(3)
(4)
(5)
(6)
(7)
(8)
(9) In
(10) To activate and deactivate the hydraulic clamping system, an actuating member 36 is arranged at the end of the carrier rod 16 accommodated in the bearing 32, which can be rotated relative to the carrier rod 16 in order to pressurize the hydraulic fluid in the hydraulic clamping system 22. On the face side that faces the base plate 30 of the bearing arrangement 28, the actuating member 36 has a coupling 38, for example, in the form of an inner hexagon, for a tool 40. The tool 40, which has an outer hexagon complementary to the coupling 38, is held axially movably and rotationally rigidly on the base plate 30 by means of a tool holder 42.
(11) In
(12) In
(13) In
(14) If now the cylinder sleeve 20 is to be released from the carrier rod 16, the hydraulic clamping system 22 must first be relieved. For this purpose, the carrier rod 16 and the cylinder sleeve 20 are rotated with the help of the rotary drive 18 such that the actuating member 36, which is held rotationally rigidly by the tool 40, is screwed out of the plug 54 so that the volume of the pressure chamber 52 increases and the hydraulic pressure decreases accordingly. The tool 40 is then pulled back, by means of the pneumatic cylinder 56, into the disengaged position.
(15) Subsequently, by means of the drive unit 34, the entire bearing arrangement 28 is moved axially away from the bearing block 24. The bearing 32 is pulled off from the end of the carrier rod 16. Thereafter, the bearing arrangement 28 is pivoted about the pivoting axis A into the position shown in
(16) By reversing the movement sequences described above, a new cylinder sleeve can be mounted on the carrier rod 16. If the bearing arrangement 28 is pivoted back into the position shown in
(17) When the tool is extended again in the direction of the actuating member 36 by means of the pneumatic cylinder 56, it can happen that the outer hexagon of the tool and the inner hexagon of the coupling 38 are rotated relative to one another so that the tool cannot engage immediately. However, when the carrier rod and thus also the actuating member 36 are then rotated with the help of the rotary drive 18, then, as it is held under elastic bias by the pneumatic cylinder, the tool 40 automatically locks as soon as the correct angular position is reached. During further rotation of the carrier rod, the actuating member 36 is then screwed deeper and thus the hydraulic system is pressurised again.
(18) In
(19) The rotary drive 18 usually contains an integrated angle incremental encoder, with which the angular position of the carrier rod can be measured. The angular position is fed back to the control device 58. In this way, it can be ensured that the actuating member 36 is always rotated by the same angle, so that the hydraulic pressure in the clamping system 22 can be maintained at the predetermined value with high precision.
(20) In an advantageous embodiment, the control device 58 is also able to measure the torque actually exerted by the rotary drive in a known manner, for example, by means of the current consumption of the rotary drive 18. In this case, the control device can also operate in such a way that, upon tensioning of the clamping system, the rotary movement terminates as soon as the torque has reached a certain threshold value.
(21) As far as the unscrewing movement of the actuating member 36 is also limited by a stop (not shown here), the unscrewing movement can be terminated as soon as the torque reaches a certain threshold value even when the clamping system is released. Otherwise, it is ensured based on the data from the angle incremental encoder that the actuating member 36 is brought into a defined neutral position when the clamping system is released.