CLAMP AND METHOD FOR OPERATING A CLAMP
20220410349 · 2022-12-29
Inventors
Cpc classification
B25B5/102
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A clamp, comprising a guide rail, a fixed jaw, which is arranged on the guide rail, a sliding jaw, which is displaceable on the guide rail, and at least one spindle, which is arranged displaceably on the sliding jaw and on which there is arranged or formed a pressure piece, with an actuation device, which is spaced from the at least one spindle and which actuable by an operator in order to control a displacement movement of the at least one spindle, with a force application device, which acts on the at least one spindle and by means of which a displacement movement of the at least one spindle is achievable, and with a transmission device, which connects the actuation device and the force application device.
Claims
1. A clamp, comprising a guide rail; a fixed jaw, which is arranged on the guide rail; a sliding jaw, which is displaceable on the guide rail; at least one spindle, which is arranged displaceably on the sliding jaw and on which there is arranged or formed a pressure piece; an actuation device, which is spaced from the at least one spindle and which is actuable by an operator in order to control a displacement movement of the at least one spindle; a force application device, which acts on the at least one spindle and by means of which a displacement movement of the at least one spindle is driven and which is or comprises an electromotive drive for the at least one spindle, a hydraulic drive for the at least one spindle, or a pneumatic drive for the at least one spindle, and a transmission device, which connects the actuation device and the force application device.
2. A clamp according to claim 1, wherein the transmission device provides a signal-operative coupling between the actuation device and the force application device and control signals are transmitted by means of the transmission device.
3. A clamp according to claim 1, wherein the actuation device comprises a switch or is a switch.
4. A clamp according to claim 1, wherein the sliding jaw comprises a housing with a housing interior, and wherein the force application device is arranged in the housing interior.
5. A clamp according to claim 4, wherein the housing interior comprises a receptacle for one or more batteries.
6. A clamp according to claim 1, wherein the force application device comprises an electromotive drive which is coupled to a ball screw.
7. A clamp according to claim 1, wherein the transmission device connects the actuation device and the force application device to one another in signal-transmitting manner.
8. A clamp according to claim 1, wherein the actuation device is arranged on the sliding jaw and is displaceable with the sliding jaw.
9. A clamp according to claim 1, wherein the sliding jaw comprises a housing with a housing interior, and wherein the force application device and the transmission device are arranged at least in part in the housing interior.
10. A clamp according to claim 4, wherein the housing is closed.
11. A clamp according to claim 1, wherein the at least one spindle is mounted rotatably on the sliding jaw.
12. A clamp according to claim 11, wherein the at least one spindle is a screw spindle, which is mounted rotatably by means of a thread on a counter thread of the sliding jaw.
13. A clamp according to claim 1, wherein there is arranged on the sliding jaw a first guide device for guiding the sliding jaw on the guide rail, and wherein there is arranged on the sliding jaw, a second guide device for guiding the at least one spindle on the sliding jaw.
14. A clamp according to claim 13, wherein the first guide device and the second guide device are spaced from one another.
15. A clamp according to claim 1, wherein a direction of displacement of the displaceability of the sliding jaw on the guide rail and a direction of displacement of the displaceability of the at least one spindle on the sliding jaw are parallel to one another.
16. A clamp according to claim 1, wherein one-handed operation is possible, in which a displacement movement of the at least one spindle is achievable controlled by means of the actuation device by a holding operator's hand, by means of which the clamp is held.
17. A clamp according to claim 1, wherein the actuation device is or comprises a rotary handle, wherein a displacement of the at least one spindle is actuable by means of a rotation of the rotary handle.
18. A clamp according to claim 17, wherein the rotary handle is mounted rotatably on the sliding jaw.
19. A clamp according to claim 17, wherein an axis of rotation of the rotary handle is at least one of (i) at least approximately parallel to a direction of displacement of the displaceability of the at least one spindle on the sliding jaw and (ii) is at least approximately parallel to a direction of displacement of the displaceability of the sliding jaw on the guide rail.
20. A clamp according to claim 17, wherein the guide rail is guided through the rotary handle.
21. A clamp according to claim 20, wherein the rotary handle is displaceable with the sliding jaw.
22. A clamp according to claim 17, wherein the rotary handle comprises a holding element, which extends in a longitudinal direction and can be grasped by a holding hand of an operator.
23. A clamp according to claim 17, wherein the rotary handle is arranged and configured such that, by means of said rotary handle, a displacement movement of the sliding jaw on the guide rail is actuable.
24. A clamp according to claim 17, wherein a torque exerted onto the rotary handle is transmitted to the at least one spindle by means of the transmission device as drive torque in order to rotate and displace the at least one spindle.
25. A clamp according to claim 1, wherein a contact element is arranged or formed on the fixed jaw, and the pressure piece of the at least one spindle is arranged such that a projection of the pressure piece with a direction of projection parallel to a direction of displacement of the at least one spindle abuts the contact element.
26. A clamp according to claim 1, comprising a blocking device, by means of which the displaceability of the sliding jaw on the guide rail is blockable, at least in one direction.
27. A clamp according to claim 26, wherein the blocking device is formed such that a movement of the sliding jaw away from the fixed jaw is blockable and a movement of the sliding jaw towards the fixed jaw is permitted.
28. A clamp according to claim 26, wherein the blocking device comprises at least one brake element, which has at least two different angular positions relative to the guide rail.
29. A clamp according to claim 26, comprising a release element for releasing a blocking which is operable with a holding hand of an operator, with which the clamp is held.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0055] In the drawings:
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DETAILED DESCRIPTION OF THE INVENTION
[0069] A first exemplary embodiment of a clamp according to the invention, which is shown in
[0070] The guide rail 12 is profiled. It has, in cross-section (for example see
[0071] The guide rail 12, in cross-section, has a rectangle as envelope, wherein the edges are rounded. It also has mutually opposed trough-like recesses 20 in a middle region, based on a height direction.
[0072] The guide rail 12 is produced in particular from a metallic material.
[0073] In the region of the second end 18, a fixed jaw 22 is arranged on the guide rail 12. This fixed jaw 22 is permanently fixed to the guide rail 12.
[0074] In one embodiment the fixed jaw 22 is an element which is produced separately from the guide rail 12 and is permanently fixed thereto subsequently.
[0075] It is also possible in principle that the fixed jaw 22 is connected releasably to the guide rail 12.
[0076] It is also possible in principle that the fixed jaw 22 is formed integrally on the guide rail 12.
[0077] In one embodiment the fixed jaw 22 is a part separate from the guide rail 12 and for example is a plastics part.
[0078] The fixed jaw extends away from the guide rail 12 in a direction perpendicular to the longitudinal direction 14.
[0079] The fixed jaw 22 has a fixing region 24, by means of which it is held on the guide rail 12. The fixing region has a receptacle 26, into which the guide rail 12 is inserted. For example, a further fixing of the fixed jaw 22 by way of the fixing region 24 of the guide rail 12 is provided by means of one or more screws, pins, bolts, etc.
[0080] A contact element 28 is arranged or formed on the fixed jaw 22. This contact element 28 provides a contact face 30 for a workpiece. The contact face 30 is in particular a flat face.
[0081] The contact element 28 with the contact face 30 is spaced from the guide rail 12 in a transverse direction relative to the longitudinal direction 14.
[0082] The clamp 10 comprises a sliding jaw 32. This is mounted on the guide rail 12 (slidingly) displaceably.
[0083] The sliding jaw 32 has a first guide device 34. By means of this first guide device 34, the sliding jaw 32 is arranged on the guide rail 12 guidably, with a direction of displacement 36 (direction and opposite direction). This direction of displacement 36 is in particular parallel to the longitudinal direction 14 of the guide rail 12. It can also be arranged at an acute angle.
[0084] The first guide device 34 is formed in a guide region 38 of the sliding jaw 32. It is formed in particular as a cut-out, through which the guide rail 12 passes.
[0085] This cut-out is adapted in terms of its form to the corresponding profiling of the guide rail 12, such that, where possible, play-free sliding is made possible.
[0086] On the sliding jaw 12, spaced from the guide region 38 and thus also spaced from the guide rail 12, there is arranged (at least) one spindle 40 on a second guide device 41 of the sliding jaw 32. This spindle 40 has an extent in a longitudinal direction 42, which is parallel to the longitudinal direction 14 of the guide rail 12 or parallel to the direction of displacement 36 of the sliding jaw 32 on the guide rail 12.
[0087] A pressure piece 44 is seated on the spindle 40 or is formed thereon.
[0088] In one embodiment the pressure piece 44 is an element which is separate from the spindle 40 and which is fixed in the region of a first end 46 of the spindle.
[0089] It can be provided here that the pressure piece 44 is mounted pivotably on the spindle 40, for example by means of a type of ball bearing, so as to enable an appropriate movability of the pressure piece 44 on the spindle 40.
[0090] The spindle 40 is mounted on an appropriate bearing region 50 of the sliding jaw 32 so as to be displaceable in a direction of displacement 48 (direction and opposite direction), wherein the second guide device 41 is seated on this bearing region 50.
[0091] The direction of displacement 48 of the spindle 40 on the sliding jaw 32 is parallel to the longitudinal direction 42 of the spindle 40.
[0092] The direction of displacement 48 is parallel to the direction of displacement 36 of the sliding jaw 32 on the guide rail 12.
[0093] The spindle 40 is positioned on the sliding jaw 32 in a manner directed towards the contact element 28 with its contact face 30. A projection of the spindle 40 or of the pressure piece 44 in the longitudinal direction 42 onto the fixed jaw 22 lies on the contact element 28.
[0094] The pressure piece 44 has a contact face 52, which in particular is flat. This contact face 52 faces towards the contact face 30 of the fixed jaw 22. Accordingly, the contact face 30 of the fixed jaw 22 faces towards the contact face 52 on the pressure piece 44 of the spindle 40.
[0095] One or more workpieces can be clamped between the sliding jaw 32 and the fixed jaw 22. Here, contact at the contact faces 30 and 52 is provided.
[0096] In one embodiment the spindle 40 is mounted rotatably on the bearing region 50 of the sliding jaw 32. An axis of rotation 54 of the spindle 40 on the sliding jaw 32 is parallel to or coaxial with the longitudinal direction 42 and parallel to or coaxial with the direction of displacement 48.
[0097] The spindle 40 is formed in particular as a screw spindle with a thread 56, which engages in a counter thread 58 on the bearing region 50 of the sliding jaw 32.
[0098] The thread 56 is in particular an external thread, and the counter thread 58 is an internal thread.
[0099] By means of a rotation of the spindle 40 about the axis of rotation 54, a displacement in the direction of displacement 48 can then be achieved.
[0100] Depending on the direction of rotation, the pressure piece 44 can be displaced towards the contact element 28 or away therefrom.
[0101] As mentioned, the sliding jaw 32 is displaceable on the guide rail 12 in the direction of displacement 36. The clamp 10 comprises a blocking device 60, so as to block the displaceability of the sliding jaw 32 on the guide rail 12, at least in one direction.
[0102] It is possible here in principle that the blocking device 60 is formed such that the displaceability of the sliding jaw 32 on the guide rail 12 can be blocked both in the direction of the fixed jaw 22 and also away from the fixed jaw 22.
[0103] In a shown embodiment the blocking device 60 is configured such that only the displaceability of the sliding jaw 32 on the guide rail 12 away from the fixed jaw 22 is blocked.
[0104] In one embodiment the blocking device 60 comprises a brake element 62 (
[0105] The brake element 62 has a cut-out 64, through which the guide rail 12 passes.
[0106] The brake element 62, in the region of one end 66, is mounted on the sliding jaw 32 in the guide region 38, and moreover is mounted in such a way that an angular position of the brake element 62 relative to the guide rail 12 is changeable.
[0107] A recess 70 is formed accordingly on the guide region 38 of the sliding jaw 32, in which recess the brake element 62 sits pivotably. A corresponding pivot axis 72 lies perpendicularly to the longitudinal direction 14 of the guide rail 12. In
[0108] The pivot axis 72 does not necessarily have to be a spatially fixed axis, but instead can change its position in principle.
[0109] The brake element 62 has a basic position 74, in which the brake element 62 is inclined at a (small) acute angle 78 based on a plane 76 perpendicular to the longitudinal direction 14 of the guide rail 12.
[0110] This acute angle 78 lies here in the order of 5° in one embodiment.
[0111] The acute angle 78 lies here in the direction of the fixed jaw 22.
[0112] The basic position 74 is achieved for example by a spring device 80, which is supported on the brake element 62 and a corresponding support region 82 in the guide region 38 of the sliding jaw 32. The spring device 80 presses the brake element 62 out of the plane 76 into its basic position 74 with the acute angle 78.
[0113] As a result of the action of a force against the spring force of the spring device 80, the brake element 62 can be brought into a position at least approximately parallel to the plane 76.
[0114] The blocking device 60 comprises a release element 84. This release element 84 is arranged on the sliding jaw 32 (and in particular on the brake element 62) such that an operator can access it in the manner of a switch, and in so doing in particular can position the brake element 62, overcoming the force of the spring device 80, at least approximately parallel to the plane 76, in order to cancel the blocking effect.
[0115] The release element 84 is accessible in particular from an upper side 86 of the sliding jaw 32. This upper side 86 faces away from that side of the sliding jaw 32 in the vicinity of which the spindle 40 is seated. This upper side 86 lies above the guide rail 12, whereby the spindle 40 is then positioned beneath the guide rail 12.
[0116] In the shown exemplary embodiment the shown blocking device 60 is configured such that the spring device 80 produces the basic position 74 (
[0117] If it is attempted to displace the sliding jaw 32 away from the fixed jaw 22 (indicated in
[0118] By changing the angular position of the brake element 62, this blocking can be cancelled. If an operator accesses the release element 84 and pivots it in a direction 90, the tilting of the brake element 62 relative to the guide rail 12 is then cancelled accordingly, and the sliding jaw 32 is freely displaceable on the guide rail 12 and is also displaceable in the direction 88.
[0119] In order to pivot the brake element 62 in the direction 90, the force of the spring device 80 must be overcome.
[0120] If the brake element 62 is in its basic position 74, the sliding jaw 32 can still be displaced in a direction 92 (opposite direction to the direction 88) towards the fixed jaw 22 (provided the pressure piece 44 is not in contact against the contact element 28 or one or more workpieces lies/lie between the fixed jaw 22 and the sliding jaw 32).
[0121] By means of a displacement of the sliding jaw 32 in the direction 92, the tilting of the brake element 62 is cancelled if a force sufficiently great for the displacement is exerted.
[0122] By means of the described construction of the blocking device 60 with the brake element 62, blocking in one direction is achieved.
[0123] The clamp 10 comprises an actuation device 94 for an operator, by means of which the operator can activate a displacement movement of the spindle 40 on the sliding jaw.
[0124] In one exemplary embodiment the actuation device 94 is formed as a handgrip 96. This handgrip 96 has in particular an at least approximately cylindrical holding element 98, which can be grasped by a holding hand of the operator.
[0125] This holding element 98 extends in a longitudinal direction 100 (
[0126] The actuation device 94 with the handgrip 96 or the holding element 98 is oriented along the guide rail 12 and is directed away from the sliding jaw 32 in a direction from the second end 18 of the guide rail 12 to the first end 16.
[0127] The handgrip 96 is formed as a rotary handle. It is mounted rotatably on the sliding jaw 32 by means of a rotary bearing 102. It is seated here on a side of the sliding jaw 32 that is remote from the fixed jaw 22.
[0128] An axis of rotation 104 about which the handgrip 96 (rotary handle 96) is rotatably mounted on the sliding jaw 32 is parallel to or coaxial with the longitudinal direction 14 of the guide rail 12 and parallel to or coaxial with the direction of displacement 36 of the sliding jaw 32 on the guide rail 12.
[0129] The axis of rotation 104 in one embodiment is parallel to the axis of rotation 54 for a rotatability of the spindle 40 on the sliding jaw 32. The axes of rotation 54 and 104 are spaced from one another in parallel.
[0130] The axes of rotation 54 and 104, however, can also be arranged at an acute angle to one another.
[0131] The actuation device 94 (the handgrip or rotary handle 96) has a cut-out 106, through which the guide rail 12 is guided. This guidance of the guide rail through the cut-out is such that the actuation device 94 is rotatable on the guide rail 12, i.e. the handgrip or rotary handle 96 is rotatable relative to the guide rail 12; the guide rail 12 does not hinder the rotatability of the handgrip or rotary handle 96.
[0132] A transmission device 108 for transmitting a torque, which is introduced by an operator at the actuation device 94 (the handgrip or rotary handle 96), to the spindle 40 in order to bring about a corresponding displacement of the spindle 40 in the direction of displacement 48 is provided. The actuation device 94 and the spindle 40 are spaced from one another. The transmission device 108 ensures that this space is “bridged” in a force-transmitting or torque-transmitting way, so as to be able to perform a displacement of the spindle 40 by means of the actuation device 94.
[0133] In one exemplary embodiment the transmission device 108 is formed as a mechanical gearing device 110.
[0134] A force application device 112 is provided, by means of which the spindle 40 can be acted on with a corresponding force (a corresponding torque), so as to be able to perform a spindle displacement triggered and in particular activated by the actuation device 94. This force is fed to the force application device 112 by the transmission device 108.
[0135] The sliding jaw 32 comprises a housing 114 with a housing interior 116. The transmission device 108 and in particular the mechanical gearing device 110 and (at least in part) the force application device 112 are arranged in the housing interior 116.
[0136] The spindle 40 is also positioned at least in part in the housing interior 116.
[0137] The housing 114 is closed. In particular, a housing cover 118 (
[0138] In one exemplary embodiment a shaft element 122 of the rotary bearing 102 is passed through a corresponding cut-out 124 in the housing cover 118. The handgrip or rotary handle 96 is connected to said shaft element 122 for conjoint rotation.
[0139] It can also be provided that a region 128 of the force application device 112 is passed through a corresponding cut-out 126. Here, it is provided in particular that this region 128 is rotatable in the cut-out 124.
[0140] In an alternative embodiment the region 128 is arranged completely in the housing 114 and is covered by the housing cover 118.
[0141] In principle, the cut-out 124 can be provided as a plain bearing region for the region 128 of the spindle 40.
[0142] It is accordingly possible that the cut-out 124 is formed as a plain bearing region for the shaft element 122 or the handgrip 96.
[0143] In one exemplary embodiment the mechanical gearing device 110 is a gearwheel drive 130. This gearwheel drive 130 comprises a first gearwheel 132, which is connected to the actuation device 94 (the handgrip or rotary handle 96) for conjoint rotation. This first gearwheel 132 has, accordingly, an axis of rotation coaxial with the axis of rotation 104.
[0144] A rotation of the handgrip or rotary handle 96 brings about a synchronous rotation of the first gearwheel 132. The primary rotation is implemented here at the handgrip 96, whereby a rotation of the first gearwheel 132 in the housing interior 116 is brought about.
[0145] The second gearwheel 134 is connected to a sleeve 136 for conjoint rotation. The sleeve 136 is mounted so as to be able to rotate about the axis of rotation 54 and at the same time is arranged on the sliding jaw 32 in a manner fixed against movement in translation. The region 128 is formed on the sleeve.
[0146] The spindle 40 is fixed to the sleeve 136 for conjoint rotation. To this end, the spindle 40 is provided for example with a hexagonal contour, which lies in a hexagonal cavity in the sleeve 136. The spindle 40 is mounted displaceably on the sleeve 136.
[0147] A rotation of the sleeve 136 with the spindle 40 can be brought about by the second gearwheel 134, which rotation, depending on its direction, results in a displacement movement of the spindle 40 towards the fixed jaw 22 or away therefrom on account of the engagement of the thread 56 with the counter thread 58.
[0148] An engagement region of the thread 56 of the spindle 40 on the counter thread 58 of the sliding jaw 32 is spaced from the sleeve 136 and thus also a region in which the spindle 40 is inserted within the sleeve 136.
[0149] The sleeve 136 forms the force application device 112 for the spindle 40, by means of which the torque originating from the actuation device 94 is coupled into the spindle 40 for the movement in rotation thereof.
[0150] A stop element 137 (
[0151] It is possible in principle that the first gearwheel 132 engages directly with the second gearwheel 134 so as to enable the corresponding transmission of torque from the actuation device 94 to the spindle 40.
[0152] In the shown exemplary embodiment further gearwheels are provided between the first gearwheel 132 and the second gearwheel 134.
[0153] The first gearwheel 132 engages with a third gearwheel 140. This third gearwheel 140 is mounted so as to be able to rotate about an axis of rotation 142, which is parallel to the axes of rotation 104 and 54. The third gearwheel 140 is arranged in the housing interior 116.
[0154] The third gearwheel 140 meshes with a fourth gearwheel 144, which is mounted so as to be rotatable about an axis of rotation 146 parallel to the axes of rotation 54, 104, 142. The fourth gearwheel 144 is positioned in the housing interior 116.
[0155] The fourth gearwheel 144 then meshes with the second gearwheel 134.
[0156] As a result of this chain of action of gearwheels 132, 140, 144, 134, the torque that is introduced by means of the actuation device 94 is transmitted to the spaced spindle 40 for the displacement thereof in the direction of displacement 48.
[0157] It is possible in principle that the transmission device 108 and in particular mechanical gearing device 110, based on a speed of rotation (number of revolutions) of the actuation device 94 about the axis of rotation 104, is formed as a step-down gearing, step-up gearing, or gearing in which the speed of rotation remains the same. In the case of a step-down gearing the speed of rotation of the spindle 40 about the axis of rotation 54 is reduced compared to the original speed of rotation of an actuation device 94, and in the case of a step-up gearing it is increased.
[0158] In the shown exemplary embodiment, the speed of rotation is maintained at the same level.
[0159] It is also possible that a rotation at the handgrip or rotary handle 96 is converted into a rotation in the same direction of the spindle 40 or into a rotation in the opposite direction. In the shown exemplary embodiment the rotation is converted in the opposite direction, that is to say, when the handgrip 96 is rotated in a clockwise direction, the spindle 40 is rotated in an anticlockwise direction.
[0160] The number of gearwheels of the gearwheel drive 130 determines whether the rotation is performed in the opposite direction or in the same direction, and in the shown exemplary embodiment the rotation is in the opposite direction on account of an even number of gearwheels, specifically the four gearwheels 132, 134, 140, 144. With an odd number of gearwheels, rotation in the same direction can be achieved.
[0161] The number of gearwheels of the gearwheel drive 130 is determined by the geometric dimensions of the clamp 10 and also by the field of use.
[0162] The gearwheels of the gearwheel drive 130 are produced for example from a plastics material.
[0163] For example, if workpieces that can be easily destroyed are to be clamped, it can be expedient to provide a step-down gearing, or, in the case of “rough” workpieces, if rapid clamping is desired, it can be expedient to provide a step-up gearing.
[0164] The clamp 10 can be operated one-handed. An operator can hold the clamp 10 as a whole at the handgrip 96. The operator can bring about a displacement of the sliding jaw 32 on the guide rail 12 by means of the handgrip 96. The operator can also access the release element 94 using a finger of the holding hand, which grasps the handgrip 96, and can bring said release element into a release position.
[0165] The operator can also introduce a torque at the clamp 10 by means of his holding hand, which torque is then transmitted by means of the transmission device 108 and the force application device 112 to the spindle 40, and a displacement of the spindle 40 is made possible. The direction of rotation of the rotation at the handgrip 96 determines whether the spindle 40 is displaced towards the fixed jaw 22 or away therefrom.
[0166] It is also possible in principle that a gearwheel of the gearing device is directly connected to the spindle 40 for conjoint rotation. This gearwheel then forms the force application device. In the case of a gearwheel of this kind, engagement by the transmission device must then be ensured on account of the displacement of the spindle 40, in each position of the spindle 40.
[0167] The clamp 10 functions as follows:
[0168] One or more workpieces is/are to be clamped between the fixed jaw 22 (the contact element 28) and the sliding jaw 32 (the pressure piece 44).
[0169] An operator holds the clamp 10 by the operating device 94, that is to say the handgrip 96. He will have positioned the spindle 40 beforehand such that said spindle is not at an end point of its range of displacement, but still can be displaced in the direction of the fixed jaw 22. The operator then slides the sliding jaw 32 in the direction of the fixed jaw 22 by means of the handgrip 96, until the pressure piece 44 bears against a corresponding workpiece between the fixed jaw 22 and the sliding jaw 32.
[0170] The blocking device 60 is configured such that this movement towards the fixed jaw is permitted. A displacement of the sliding jaw 32 on the guide rail 12 in the direction 92 (opposite direction) is blocked by the blocking device 60.
[0171] The operator can then use his holding hand, which is holding the handgrip 96, to introduce a torque by means of the actuation device 94 by appropriate rotation about the axis of rotation 104.
[0172] This torque is transmitted to the spindle 40 by the transmission device 108, and at the clamp 10 by means of the gearwheels of the gearwheel drive 130. With an appropriate direction of the rotation, the spindle 40 can thus be displaced in the direction of the fixed jaw 22, and the one or more workpieces can be clamped in position.
[0173] The clamp allows complete one-handed operation. An operator for example has his non-holding hand free for positioning or holding of one or more workpieces, which is/are to be clamped between the fixed jaw 22 and the sliding jaw 32.
[0174] Simple operation thus results.
[0175] The sleeve 136 forms the force application device 112, wherein the position in translation of the sleeve 136 on the sliding jaw 32 is fixed. The sleeve 136 is rotatable about the axis of rotation 104 on the sliding jaw 132. The spindle 104 is inserted to a varying extent into the sleeve 136 depending on the position of displacement relative to the sliding jaw 32. The spindle is mounted on the sleeve 136 non-rotatably and displaceably in translation (in particular by means of a slide bearing).
[0176] A rotation of the sleeve 136 brings about a rotation of the spindle 40 in the counter thread 58 and thus a displacement in translation of the spindle 40 on the sliding jaw 32. Specifically, this displaceability is enabled by the mounting of the spindle 40 in the sleeve 136 in a manner displaceable in translation until the stop element 137 contacts the shoulder 138.
[0177] In the case of the gearwheel drive 130, the actuation device 94 of the drive is provided by the connection of the first gearwheel 132 to the actuation device 94 (the handgrip or the rotary handle 96) for conjoint rotation.
[0178] The output at the force application device 112 and thus at the spindle 40 is provided by means of the coupling of the second gearwheel 134 to the force application device 112 for conjoint rotation, that is to say by means of the connection of the second gearwheel 134 to the sleeve 136 for conjoint rotation.
[0179] A second exemplary embodiment of a clamp according to the invention, which is shown in a partial illustration in
[0180] The clamp 160 comprises a sliding jaw 32′, which has a housing 114′ with a housing interior 116′.
[0181] A transmission device 162 is arranged in the housing interior 116′ and is constructed as a mechanical gearing device. The transmission device 162 is constructed as a belt drive or chain drive.
[0182] A first pulley element 164 is connected to the corresponding actuation device 94 for conjoint rotation, wherein the handgrip 96 is not shown in
[0183] The first pulley element 164 and the second pulley element 166 are coupled to one another for the transfer of torque by means of a belt or a chain 168.
[0184] A torque introduced by means of the actuation device 94 is transmitted by means of the belt or the chain 168 to the second pulley element 166 and is transmitted from there to the force application device 112 in order to provide a rotary movement of the spindle 40.
[0185] The transmission device 162, in its configuration as a belt drive or chain drive, ensures a physical “bridging” at the sliding jaw 32′ for the transmission of torque to the spindle 40.
[0186] Otherwise, the clamp 160 acts similarly to the clamp 10.
[0187] Due to the connection of the first pulley element 164 to the actuation device 94 for conjoint rotation, the drive in the clamp 160 for the corresponding mechanical gearing device is the actuation device 94. The output is formed by the force application device 112.
[0188] A third exemplary embodiment of a clamp according to the invention, which is shown in
[0189] A sliding jaw 32″ is provided, which is formed identically to the sliding jaw 32 in respect of its fundamental construction.
[0190] This sliding jaw 32″ has a housing 114″ with a housing interior 116″.
[0191] An electromotive drive 184 (an electric motor) is arranged in the housing interior 116″ as a force application device 162. This drive is coupled to the spindle 40. The spindle can be displaced by means of this electromotive drive 184.
[0192] In particular, the electromotive drive 184 is coupled to a ball screw so as to be able to rotate the spindle 40.
[0193] A switch 186 is arranged on the sliding jaw 32″. In this case, the switch is an electric switch. A conductive arrangement 188 leads from the switch 186 to a control device of the electromotive drive 184. This conductive arrangement 188 constitutes a connection, suitable for signal exchange, between the switch 186 and the control device of the electromotive drive 184 and thus of the electromotive drive 184. A coupling, suitable for signal exchange, between the switch 186 as actuation device and the force application device 162 is provided.
[0194] By actuating the switch 186, spaced from the spindle 40, the operator can control a displacement of the spindle 40, driven by means of the electromotive drive 184.
[0195] In one embodiment the housing interior 114′ comprises a receptacle for one or more batteries for supplying power to the electromotive drive 184.
[0196] In the case of the clamp 180, a handgrip is arranged on the sliding jaw 32′ (not shown in
[0197] In the case of the clamp 180, there is no mechanical coupling in the sense of a drive-output coupling between the actuation device (the switch 186) and the spindle 40 or the force application device 182. The control of the displacement movement by means of the actuation device 186 is a signal-operative control without mechanical force transmission from the actuation device 186 to the force application device 182.
[0198] Otherwise, the clamp 180 functions as described above.
LIST OF REFERENCE SIGNS
[0199] 10 clamp (first exemplary embodiment) [0200] 12 guide rail [0201] 14 longitudinal direction [0202] 16 first end [0203] 18 second end [0204] 20 recess [0205] 22 fixed jaw [0206] 24 fixing region [0207] 26 receptacle [0208] 28 contact element [0209] 30 contact face [0210] 32 sliding jaw [0211] 32′ sliding jaw [0212] 32″ sliding jaw [0213] 34 first guide device [0214] 36 direction of displacement of the sliding jaw [0215] 38 guide region [0216] 40 spindle [0217] 41 second guide device [0218] 42 longitudinal direction [0219] 44 pressure piece [0220] 46 first end [0221] 48 direction of displacement of the spindle [0222] 50 mounting region [0223] 52 contact face [0224] 54 axis of rotation [0225] 56 thread [0226] 58 counter thread [0227] 60 blocking device [0228] 62 brake element [0229] 64 cut-out [0230] 66 end [0231] 68 angular position [0232] 70 recess [0233] 72 pivot axis [0234] 74 basic position [0235] 76 plane [0236] 78 acute angle [0237] 80 spring device [0238] 82 support region [0239] 84 release element [0240] 86 upper side [0241] 88 direction of displacement [0242] 90 direction of displacement [0243] 92 direction of pivot [0244] 94 actuation device [0245] 96 handle [0246] 98 holding element [0247] 100 longitudinal direction [0248] 102 rotary bearing [0249] 104 axis of rotation [0250] 106 cut-out [0251] 108 transmission device [0252] 110 mechanical gearing device [0253] 112 force application device [0254] 114 housing [0255] 114′ housing [0256] 114″ housing [0257] 116 housing device [0258] 116′ housing device [0259] 116″ housing device [0260] 118 housing cover [0261] 120 screw [0262] 122 shaft element [0263] 124 cut-out [0264] 126 cut-out [0265] 128 region [0266] 130 gearwheel drive [0267] 132 first gearwheel [0268] 134 second gearwheel [0269] 136 sleeve [0270] 137 stop element [0271] 138 shoulder [0272] 140 third gearwheel [0273] 142 axis of rotation [0274] 144 fourth gearwheel [0275] 146 axis of rotation [0276] 160 clamp (second exemplary embodiment) [0277] 162 transmission device [0278] 164 first pulley element [0279] 166 second pulley element [0280] 168 belt, chain [0281] 180 clamp (third exemplary embodiment) [0282] 182 force application device [0283] 184 electromotive drive [0284] 186 switch (actuation device) [0285] 188 conductive arrangement