DOG BONE BUTTERFLY SLIDING TORQUE REACTOR AND A METHOD FOR OPERATING THE SAME
20200130147 ยท 2020-04-30
Inventors
Cpc classification
B25B13/481
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A torque reactor has a first body element adjustably joined to a second body element. A first key extends from the first body element to engage a first socket. A second key extends from the second body element to engage a second socket. At least one of the first key and second key is constrained to rotate over a limited rotation angle.
Claims
1. A torque reactor comprising: a first body element adjustably joined to a second body element; a first key extending from the first body element and configured to engage a first socket; a second key extending from the second body element and configured to engage a second socket; wherein at least one of the first key and second key is constrained to rotate over a limited rotation angle.
2. The torque reactor as defined in claim 1 further comprising: a first shaft received in a first bore in first body element, the first shaft carrying the first key and terminating in a first head; a second shaft received in a second bore in second body element, the second shaft carrying the second key and terminating in second head, at least one of said first shaft and second shaft constrained to rotate over the limited rotation angle.
3. The torque reactor as defined in claim 2 wherein the at least one of said first shaft and second shaft has lateral extensions received in butterfly reliefs in the associated first or second bore and wherein contact surfaces on the lateral extensions engage constraints in the butterfly reliefs constraining rotation of the at least one of said first and second shafts to the limited rotation angle.
4. The torque reactor as defined in claim 1 further comprising: a sliding tongue extending from first body element adjustably received on a bed extending from second body element joining the first and second body elements whereby spacing between the first socket and second socket is longitudinally adjustable to accommodate various spacing of adjacent fastener heads to be torqued, the sliding tongue and bed adapted to allow adjustment from a fully compressed position to a fully expanded position.
5. The torque reactor as defined in claim 4 wherein the sliding tongue has a trapezoidal cross section received in a channel in the bed, said channel having sides with mating angles for the trapezoidal cross section.
6. The torque reactor as defined in claim 5 further comprising a locking bolt received through a slot in the sliding tongue into a threaded bore in the bed whereby loosening the locking bolt allows adjustment to any position in a range from the fully compressed position to the fully expanded position.
7. The torque reactor as defined in claim 6 wherein releasing the locking bolt from threaded bore in the bed releases the trapezoidal cross section for vertical movement from the channel to release any binding preload in the first and second sockets.
8. The torque reactor as defined in claim 2 wherein the first body element and associated first shaft have a first depth while the second body element and second shaft have a second depth whereby fasteners arranged in a structure having a step offset are engaged by the first and second sockets.
9. A torque reactor comprising: a first body element and a second body element; a first key extending from the first body element and configure to engage a first socket; a second key extending from the second body element and configured to engage a second socket; a sliding tongue extending from first body element adjustably received on a bed extending from second body element joining the first and second body elements whereby spacing between the first socket and second socket is longitudinally adjustable to accommodate various spacing of adjacent fastener heads to be torqued, the sliding tongue and bed adapted to allow adjustment from a fully compressed position to a fully expanded position; wherein the first body element has a first depth while the second body element has a second depth whereby fasteners arranged in a structure having a step offset are engaged by the first and second sockets.
10. The torque reactor as defined in claim 9 wherein at least one of the first key and second key is constrained to rotate over a limited rotation angle.
11. The torque reactor as defined in claim 10 further comprising: a first shaft received in a first bore in first body element, the first shaft carrying the first key and terminating in a first head; a second shaft received in a second bore in second body element, the second shaft carrying the second key and terminating in second head, at least one of said first shaft and second shaft constrained to rotate over the limited rotation angle.
12. The torque reactor as defined in claim 11 wherein the at least one of said first shaft and second shaft has lateral extensions received in butterfly reliefs in the associated first or second bore and wherein contact surfaces on the lateral extensions engage constraints in the butterfly reliefs constraining rotation of the at least one of said first and second shafts to the limited rotation angle.
13. The torque reactor as defined in claim 9 wherein the sliding tongue has a trapezoidal cross section received in a channel in the bed, said channel having sides with mating angles for the trapezoidal cross section.
14. The torque reactor as defined in claim 13 further comprising a locking bolt received through a slot in the sliding tongue into a threaded bore in the bed whereby loosening the locking bolt allows adjustment to any position in the range from the fully compressed position to the fully expanded position.
15. The torque reactor as defined in claim 14 wherein releasing the locking bolt from threaded bore in the bed releases the trapezoidal cross section for vertical movement from the channel to release any binding preload in the first and second sockets.
16. A method for reacting torque on adjacent fasteners, said method comprising: adjusting a first body element and a second body element for a width of adjacent fasteners in a structure; engaging a first socket with a first key extending from the first body element; engaging a second socket with a second key extending from the second body element and; rotating at least one of the first key and second key within a limited rotation angle thereby aligning the first and second socket to receive heads of the adjacent fasteners.
17. The method as defined in claim 16 wherein the first key is carried by a first shaft received in a first bore in first body element, said first shaft terminating in a first head and the second key is carried by a second shaft received in a second bore in second body element, the second shaft terminating in second head, wherein the step of rotating at least one of the first key and second key comprises rotating the first head or second head.
18. The method as defined in claim 17 wherein at least one of said first shaft and second shaft has lateral extensions received in butterfly reliefs in the associated first or second bore and wherein rotating at least one of the first key and second key within a limited rotation angle comprises constraining rotation of the at least one of said first and second shafts to the limited rotation angle with contact surfaces on the lateral extensions engaging constraints in the butterfly reliefs.
19. The method as defined in claim 16 wherein the step of adjusting a first body element and a second body element comprises longitudinally adjusting a sliding tongue having a trapezoidal cross section and extending from the first body element and received on a bed having a channel with mating angles receiving the trapezoidal cross section and extending from second body element and securing the sliding tongue to the bed with a locking bolt.
20. The method as defined in claim 19 further comprising releasing the locking bolt allowing vertical motion of the sliding tongue with respect to the channel releasing any binding preload in the first and second sockets.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0005] The features, functions, and advantages that have been discussed can be achieved independently in various implementations or may be combined in yet other implementations further details of which can be seen with reference to the following description and drawings.
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DETAILED DESCRIPTION
[0016] The exemplary implementations described herein provide torque reactor which is longitudinally adjustable for various spacing of adjacent fastener heads and provides limited rotational engagement of sockets to allow orientation alignment.
[0017] Referring to the drawings,
[0018] As seen in
[0019] In the exemplary implementation, sliding tongue 20 has a trapezoidal cross section received in a channel 48 in the bed 22, the channel having sides 49 with mating angles 51 to the trapezoidal cross section as seen in
[0020] As also seen in
[0021] As seen in
[0022] In the exemplary implementation, the first body element 12 of torque reactor 10 and associated first shaft 36 have a first depth 84 while the second body element 16 and second shaft 42 have a second depth 86 (seen in
[0023] The implementations disclosed provide a method 1000 for reacting torque with paired adjacent fasteners as shown in
[0024] Having now described various implementations in detail as required by the patent statutes, those skilled in the art will recognize modifications and substitutions to the specific implementations disclosed herein. Such modifications are within the scope and intent of the present invention as defined in the following claims.