Clamping device with planar contact
11660729 · 2023-05-30
Assignee
Inventors
Cpc classification
B23F23/12
PERFORMING OPERATIONS; TRANSPORTING
B25B5/14
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23B31/20
PERFORMING OPERATIONS; TRANSPORTING
B23F23/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Clamping device having a receiving opening which is arranged concentrically to a workpiece spindle axis, wherein the clamping device is designed for clamping a gear workpiece comprising a head region and a shaft, the clamping device comprises an annular planar contact surface, which is arranged concentrically to the workpiece spindle axis, is located in a workpiece-side end region of the clamping device, and which extends essentially perpendicular to the workpiece spindle axis, wherein at least one circumferential groove is provided in the workpiece-side end region, which groove extends from an outer surface of the clamping device radially in the direction of the workpiece spindle axis and which provides the clamping device with elasticity in the region of the planar contact surface.
Claims
1. Clamping device comprising: a body including a central receiving opening configured to be concentrically located with a workpiece spindle axis; and an annular planar contact surface, which is configured to be concentrically located with the workpiece spindle axis, is located in a workpiece-side end region of the clamping device, and which extends at least substantially perpendicular to the workpiece spindle axis; wherein said clamping device is configured to clamp a gear workpiece comprising a head region and a shaft or a shank; wherein the workpiece-side end region includes at least one circumferential groove therein, said at least one groove at least one of extends from an outer surface of the clamping device radially toward the workpiece spindle axis or extends radially outwardly from an inner surface of the clamping device relative to the workpiece spindle axis; and wherein said at least one groove provides the clamping device with elasticity in a region of the planar contact surface.
2. Clamping device according to claim 1, wherein at least one of the body defines the outer surface in the workpiece-side end region, or the body defines the inner surface in the workpiece-side end region.
3. Clamping device according to claim 2, wherein the body defines a nose piece defining said central receiving opening, wherein the nose piece defines at least one of the outer surface or the inner surface.
4. Clamping device according to claim 1, further comprising a gear workpiece defining a shaft and a head region defining a heel defining a rear heel surface, and configured to be at least substantially parallel to a plane extending at least substantially perpendicular to the workpiece spindle axis when the shaft of the gear workpiece is inserted into the central receiving opening.
5. Clamping device according to claim 4, further comprising means for applying an axial tensile force on the gear workpiece at least substantially parallel to the workpiece spindle axis, wherein the means is configured to apply said force to the shaft by frictional connection therebetween to pull the gear workpiece together with the shaft into the central receiving opening.
6. Clamping device according to claim 4, wherein said gear workpiece is clamped in a clamped state by frictional connection therebetween on the shaft and by a positive connection between the annular planar contact surface and the rear heel surface of the heel, wherein the at least one circumferential groove changes shape during clamping and thereby generates a restoring force in the clamping device.
7. Clamping device according to claim 6, wherein said restoring force acts in the clamped state at least substantially in an axial direction on the rear heel surface of the heel.
8. Clamping device according to 4, configured to generate a positive connection and a frictional connection between the rear heel surface of the heel and the annular planar contact surface that are maintained during a temperature-related expansion of the gear workpiece.
9. Clamping device according to claim 2, further comprising a gear workpiece defining a shaft and a head region defining a heel defining a rear heel surface, and configured to be at least substantially parallel to a plane extending at least substantially perpendicular to the workpiece spindle axis when the shaft of the gear workpiece is inserted into the central receiving opening.
10. Clamping device according to claim 3, further comprising a gear workpiece defining a shaft and a head region defining a heel defining a rear heel surface, and configured to be at least substantially parallel to a plane extending at least substantially perpendicular to the workpiece spindle axis when the shaft of the gear workpiece is inserted into the central receiving opening.
11. Clamping device according to claim 5, wherein said gear workpiece is clamped in a clamped state by frictional connection therebetween on the shaft and by a positive connection between the annular planar contact surface and the rear heel surface of the heel, wherein the at least one circumferential groove changes its shape during clamping and thereby generates a restoring force in the clamping device.
12. Clamping device according to 5, configured to generate a positive connection and a frictional connection between the rear heel surface of the heel and the annular planar contact surface that are maintained during a temperature-related expansion of the gear workpiece.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other advantages and features will become apparent from the following detailed description, which are understood not to be limiting, will be described in greater detail hereafter with reference to the drawings.
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DETAILED DESCRIPTION
(17) In connection with the present description, terms are used which are also used in relevant publications and patents. It should be noted, however, that the use of these terms is merely intended to facilitate understanding. The inventive idea and the scope of protection of the claims should not be restricted in interpretation by the specific choice of terms. The invention can easily be transferred to other conceptual systems and/or fields. In other areas of expertise the terms are to be applied analogously.
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(19) The gear machine 10 is specially designed for machining the tooth flanks of gear workpieces 1 with a gear cutting tool and has a clamping device 20 for clamping a gear workpiece 1 to be machined. An exemplary clamping device 20 is shown in
(20) As shown in the exploded view in
(21) The clamping device 20 comprises here a clamping device main body 22 and a nose piece 23 in order to be able to clamp the gear workpiece 1 (here a bevel gear pinion with pinion shaft 3). The ring-shaped nose piece 23 is connected to the main body 22 and the pinion shaft 3 is pushed into the central bore 24 of the nose piece 23 and the central bore 25 of the main body 22. Then the pinion shaft is clamped there. The nosepiece 23 serves on the one hand as a centering bushing and on the other hand as an adapter. By selecting the appropriate nose piece 23, the shape and/or size can be adjusted.
(22) The clamping device 20 can, for example, be inserted with an external cone 22.1 into a conical receiving opening of the workpiece spindle (not shown) of the machine 10 and fastened there with screws. The corresponding screw holes can be provided e.g. on the circumferential flange 22.2 of the main body 22.
(23) The spindle axis of the workpiece spindle bears the reference sign A in
(24) The nosepiece 23 has an annular connecting flange 26 with a planar annular surface (called axial flange surface, annular bearing surface or planar contact surface), as shown in the highly schematic diagram in
(25) At the nose piece 23, the annular planar contact surface 26 is resiliently designed, as further described below with respect to the embodiment shown in
(26) As described above, the shaft 3 is pushed into the central bore 24 of the ring-shaped nose piece 23 and the central bore 25 of the main body 22. In this process, a large tensile force P1 (cf.
(27) In order to avoid torsional vibrations which can occur when the gear workpiece 1 heats up and expands axially, a part of the annular planar contact surface 26 is resilient.
(28) In the embodiment example of
(29) The provision of such a circumferential groove 31 defines a resilient restoring force. In order to address the given circumstances (e.g., the forces occurring and the expected thermal expansion), the restoring force can be set relatively precisely by positioning and/or dimensioning the circumferential groove 31, as will be understood by those of ordinary skill in the art.
(30) For example, a finite element method can be used to calculate the restoring force.
(31) The geometrical design (e.g. groove depth, groove shape, groove position) and the material properties (modulus of elasticity of the nose piece 23) have an influence on the spring properties of this part. In the embodiment shown, the radial depth Tr and also the axial distance Aa to the planar contact surface 26 can be predetermined in order to define the resilient restoring force. Furthermore, the clear (open) width of the groove 31 (measured in axial direction) can also have an influence on the “movability/deformability” of the overhanging material region 30 of the nose piece 23. The larger the clear width of the groove 31, the more room for movement or space for deformation this material region 30 has, whereas with a small clear width the groove 31 can close relatively quickly when axially directed forces occur. After closing the groove 31, the elastic effect is virtually eliminated.
(32) The tensile force P1, which is applied parallel to the workpiece spindle axis A, may be transmitted to the shaft 3 of the gear workpiece 1 by means of a concentrically arranged collet chuck 32, or a number of clamps or arms, for example. For this purpose, these elements surround or enclose a section of shaft 3.
(33) In the embodiment shown in
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(35) Instead of a double collet chuck, a single collet chuck can be used.
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(37) The gear workpiece 1 is clamped due to the force acting radially on the shaft 3 in area C and due to the positive connection acting between heel 4 and the annular planar contact surface 26 in the axial direction. In area C, frictional forces are mainly acting. Also in the area between the ring-shaped supporting surface 26 and the heel 4, frictional forces act in a tangential direction (on a circle in plane E).
(38) If now, due to increased temperatures, the head region 2 in
(39) If the shaft 3 expands in the axial direction during the machining of the gear workpiece 1, the “movability/deformability” of the material region 30 of the nose piece 23 means that a planar contact between the heel 4 and the annular planar contact surface 26 is still maintained, which avoids or significantly reduces the aforementioned torsional vibrations.
(40) So far, embodiments of the clamping device 20 have been described which have a separate nose piece 23. Such a nose piece 23 can be used, for example, to adapt a universal clamping device 20 to the geometry and dimension of the gear workpiece 1.
(41) Instead of using a nose piece 23, the clamping device 20 as such can have the described “movability/deformability” of a material region 30. In this case, the functionality is the same. In an embodiment with nose piece 23, as shown in
(42) If the nose piece 23 is omitted, then the circumferential groove 31 on the main body 22 can be located in the area close to the workpiece.
(43) An embodiment with groove 31 on the main body 22 is not shown in the figures, but can be derived from the figures and the description.
(44) In those embodiments that have a circumferential groove 31 in the area close to the workpiece on the main body 22, the collet chuck 32 and the collet insert 33 are designed and/or arranged differently, as one of ordinary skill would understand. However, the functionality of these elements may be the same.
(45) For at least some of the embodiments, the planar contact surface 26 can be machined by turning so that it has an inner annular area i which extends in a flat and perpendicular manner to the workpiece spindle axis A. This inner annular area i may be surrounded by an outer annular area ii which rises slightly conically outwards. An example is shown in
(46) If the gear workpiece 1 is now tightened with force P1, the outer annular area ii is deformed while the clear width of the groove 31 is reduced. This results in a complete planar contact at the inner and outer ring-shaped areas i and ii, as can be seen in
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(51) The embodiments of
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(53) In all three cases, the end region Eb1 close to the workpiece has an outer cylinder surface 29 (a conical surface 29 can also be used, the circumference of which is reduced in the direction of the gear workpiece). In the embodiment of
(54) In all three cases, the circumferential groove 31 defines a plane that is at least substantially perpendicular to the workpiece spindle axis A. However, the circumferential groove 31 can also have a slightly inclined course. The circumferential groove 31 can also have a curved (e.g. arc-shaped) course, wherein the production of such a groove 31 is considerably more complex, but should be understood by those of ordinary skill in the art. With reference to the embodiment of
(55) As in the embodiment of
(56) The embodiment of
(57) Since the respective restoring force F only occurs when the device is clamped, the arrows in
(58) While the above describes certain embodiments, those skilled in the art should understand that the foregoing description is not intended to limit the spirit or scope of the present disclosure. It should also be understood that the embodiments of the present disclosure described herein are merely exemplary and that a person skilled in the art may make any variations and modification without departing from the spirit and scope of the disclosure. All such variations and modifications, including those discussed above, are intended to be included within the scope of the disclosure.