Clamping arrangement and ejector and conical ring for the same
09803696 · 2017-10-31
Assignee
Inventors
Cpc classification
Y10T403/7056
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16D2001/0945
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T403/7069
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F16D1/09
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A clamping arrangement for the force-fit connection of an outer component to an inner component including an inner conical ring and an outer conical ring wherein one of the rings has leadthrough bores clamping screws and the other ring has threaded bores for the clamping screws to brace the rings against one another via the conical peripheral surfaces, and against the inner and outer component arrangement. At least one leadthrough bore having an ejector thread for an ejector screw and the diameter of the ejector thread being greater than the diameter of the clamping screw. The arrangement including an ejector ring with an ejector bore for the leadthrough of the ejector screw which can be screwed into the ejector thread and an ejector surface for engaging a clamping screw head that is incompletely screwed into the corresponding threaded bore for the transmission of an ejector force onto the clamping screw.
Claims
1. A conical ring assembly for a clamping arrangement for a force-fit connection of an outer component arrangement having a recess, to an inner component arrangement, the conical ring assembly comprising a first conical ring and an associated adjacent second conical ring, the first conical ring having a plurality of bores for the leadthrough of a clamping screw which can be screwed to the associated adjacent second conical ring, wherein: a first portion of the plurality of bores, for the leadthrough of a clamping screw having a clamping screw thread, have an ejector thread for an ejector screw, the ejector thread being larger than an aligned corresponding screw connection bore in the associated adjacent second conical ring and allowing for both the leadthrough of one of the clamping screws and threaded interengagement with an associated ejector screw wherein the first portion of bores are configured so that the associated ejector screw is configured to abut a wall surface surrounding a corresponding threaded bore of the associated adjacent second conical ring so that the clamping screw and the associated ejector screw are operable in each of the bores in the first portion, and wherein a second portion of the plurality of bores lack the ejector thread.
2. The conical ring assembly according to claim 1, wherein the first conical ring is one of an inner and an outer conical ring of the clamping arrangement.
3. The conical ring assembly according to claim 1, wherein the first conical ring further includes a ring flange, the plurality of bores extending through the ring flange.
4. The conical ring assembly according to claim 3, wherein the ring flange extends radially away from an associated inner component arrangement and can be brought to bear axially against an associated outer component arrangement of the clamping arrangement.
5. The conical ring assembly according to claim 3, wherein the ring flange extends in the direction toward an associated inner component arrangement of the clamping arrangement.
6. The conical ring assembly according to claim 1, wherein the second portion includes at least one bore.
7. The conical ring assembly according to claim 6, wherein the first portion of the plurality of bores are equally spaced about the first conical ring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention may take physical form in certain parts and arrangement of parts, a preferred embodiment of which will be described in detail and illustrated in the accompanying drawings which form a part hereof and wherein:
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DETAILED DESCRIPTION OF INDIVIDUAL EMBODIMENTS
(11) Referring now to the drawings wherein the showings are for the purpose of illustrating preferred and alternative embodiments of the invention only and not for the purpose of limiting same,
(12) For this purpose, the hub 1 has a recess 6, into which the shaft 2 with attached conical rings 3, 4 is inserted. The recess 6 forms a cylindrical surface 7 that faces the shaft 2, and is designed here advantageously in the shape of a circular cylinder. The cylindrical surface 7 can also be designed to be conical, or in another advantageous way.
(13) A peripheral surface 8, here also circular cylindrical, of the outer conical ring 4 comes in contact with the cylindrical surface 7. A conical peripheral surface 9 faces away from the circular cylindrical peripheral surface 8 and faces toward the inner conical ring 3.
(14) The conicity causes a decrease of the inner diameter of the outer conical ring 4, from its end surface 10 facing the clamping screw 5 toward the opposite end surface 11. The outer diameter remains unchanged. The radial thickness of the outer conical ring 4 increases accordingly in the clamping screw direction from the end surface 10 to the end surface 11.
(15) The conical peripheral surface 9 comes in contact with an also conical peripheral surface 12 of the inner conical ring 3. The peripheral surfaces 9, 12 here have the same conical angle, but they rise in opposite axial directions. A circular cylindrical peripheral surface 14 of the inner conical ring 3, which surface comes into contact with to the shaft 2, faces away from the conical peripheral surface 12 of the inner conical ring 3 and toward a cylindrical peripheral surface 13 of the shaft 2.
(16) The inner conical ring 3 has a peripheral ring flange 15, which is supported in the axial direction against the hub 1. The bores 16 for leadthrough of the clamping screws 5 extend through the ring flange 15. In the extension of the bores 16, threaded bores 17 are provided in the outer conical ring 4, for screwing in the clamping screws 5.
(17) For the assembly of the clamping arrangement represented in
(18) The bores 16 for the clamping screws 5 are preferably distributed equally along the periphery of the inner conical ring 3, see
(19) At least one of the bores 16 in the inner conical ring 3 has an ejector thread 20. Purely as an example, five ejector threads 20 are illustrated in
(20) An ejector ring 22 is used to loosen the bracing between the hub 1, the external conical ring 4, the inner conical ring 3, and the shaft 2.
(21) The ejector ring 22 can be slid onto the shaft 2, and: has bores 23 for leadthrough of the ejector screws 21 at locations that can be aligned with the bores 16 in the ring flange 15 that have the ejector thread 20. The ejector ring 22 lacks a bore at those locations which in this position face the bores 20 without ejector threads; optionally, it is possible to provide there, as represented in
(22) For the disassembly, the clamping screws 5 are removed from the bores 16 with the ejector thread 20. The other clamping screws 5 are loosened, i.e., they are advantageously unscrewed from the threaded bores 17 of the outer conical ring 4 by the same amount. The clamping screw head 18 of these loosened clamping screws 5 is then at a distance from the ring flange 15, as represented in
(23)
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(25) In the embodiment according to
(26) For the disassembly, first the longer clamping screws 5 that are inserted in the bores 16 with ejector threads 20 are removed. The remaining longer clamping screws 5, but not the shorter clamping screws 5′, are then loosened slightly, for example, by one or two turns, in order to produce, as represented in
(27) In the embodiment represented in
(28) The ejector ring 22 can also be designed in two parts, see
(29) In this case, the bores 23 for the ejector screws are advantageously each provided for the ends of the parts 22′, 22″. The bores 16 in the ring flange 15 that are aligned with these bores 23 each have an ejector thread 20. As a result, in spite of the equal distribution of the clamping screws 5 along the periphery of the ring flange 15, one ensures that the halves 22′, 22″ of the ejector ring 22 are evenly mechanically loaded.
(30) Further, while considerable emphasis has been placed on the preferred embodiments of the invention illustrated and described herein, it will be appreciated that other embodiments, and equivalences thereof, can be made and that many changes can be made in the preferred embodiments without departing from the principles of the invention. Furthermore, the embodiments described above can be combined to form yet other embodiments of the invention of this application. Accordingly, it is to be distinctly understood that the foregoing descriptive matter is to be interpreted merely as illustrative of the invention and not as a limitation.