Spring-loaded locking bolt
20220186766 · 2022-06-16
Inventors
Cpc classification
F16B19/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B21/183
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B39/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B21/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A spring-loaded locking bolt with a guide sleeve and an adjusting pin movably mounted axially in the guide sleeve. The adjusting pin can be brought into a locked position protruding axially out of the guide sleeve against the actuating force of an axial compression spring and a retracted neutral position which does not protrude axially from the guide sleeve. The adjusting pin has a locking end and an actuating end in conjunction with an actuator knob. The actuator knob has an outer sleeve with which the actuator knob is movably mounted axially on a sleeve section of the guide sleeve. The actuator knob includes an inner locking projection which in the locked position lockingly engages into a corresponding recess in the side wall of the sleeve section, and fixes the actuator knob, which is engaged under spring tension, against an axial rotation about the center axis of the locking bolt, and in the neutral position the actuator knob is rotatable about the center axis.
Claims
1. A spring-loaded locking bolt comprising: a guide sleeve which is screwed into an associated bore in a machine or furniture part, the guide sleeve having a sleeve section, an actuator knob, an adjusting pin which is movably mounted axially in the guide sleeve and which is configured to be brought into at least two locking positions in the guide sleeve, and which can be adjusted from a locked position protruding axially out of the guide sleeve against the actuating force of an axial compression spring into a retracted neutral position which does not protrude axially from the guide sleeve, and which has a tip-side locking end and an oppositely arranged actuating end in connection with the actuator knob, wherein the actuator knob has an outer sleeve with which the actuator knob is movably mounted axially on the sleeve section of the guide sleeve, wherein the actuator knob comprises at least one internal locking projection which, in the locked position, engages in a locking manner in a corresponding recess in a side wall of the sleeve section of the guide sleeve, wherein the actuator knob is engaged under spring tension and fixed in a rotationally fixed manner with respect to an axial rotation about a center axis of the locking bolt, and in a neutral position, a fixed position of the at least one internal locking projection which is blocked against rotation is cancelled and the actuator knob is rotatable about the center axis.
2. The locking bolt according to claim 1, wherein the at least one internal locking projection is arranged at an inner circumference of the outer sleeve and extends in radial and axial direction.
3. The locking bolt according to claim 1, wherein the at least one internal locking projection is seated on an end face of the sleeve section when in the neutral position due to operative spring tension and is configured to be brought into the at least two locking positions of the guide sleeve.
4. The locking bolt according to claim 1, wherein the end face has at least one locking groove for receiving the locking projection.
5. The locking bolt according to claim 1, wherein the adjusting pin has a locking pin at the tip-side locking end, a beveled approach edge disposed at an end of the tip-side locking end, and a guide section which adjoins the locking pin in a direction of the actuating end and which radially reduces in diameter, which is surrounded at least in sections by the axial compression spring and opens into the actuating end, which can be brought into axially fixed engagement with the actuator knob.
6. The locking bolt according to claim 5,wherein the guide sleeve has an axial guide bore through which the adjusting pin is guided and which is open in the direction of the tip-side locking end and which has a bore section in the direction of the actuating end which radially narrows the guide bore, and the guide bore once again enlarges radially above the bore section and forms an interior space within the sleeve section which is open in the direction of the actuating end.
7. The locking bolt according to claim 1, wherein the actuator knob has an inner mounting sleeve which extends in the axial direction at a radial distance from the outer sleeve, and in which mounting sleeve the actuating end is at least partially received.
8. The locking bolt according to claim 7, wherein the mounting sleeve is connected to a feed-through extending through the head of the actuator knob, through which feed-through a screw is guided which engages in a thread extending in the longitudinal direction of the actuating end for axial adjustment of the spring-preloaded adjusting pin.
9. The locking bolt according to claim 8, wherein the mounting sleeve has an inner profile corresponding to the outer profile of the actuating end.
10. The locking bolt according to claim 9, wherein the side wall of the mounting sleeve has slots running in the axial direction.
11. The locking bolt according to claim 1, wherein the guide sleeve is at least divided into two parts and consists of a plug-in sleeve and a rotatable receiving sleeve plugged onto the plug-in sleeve.
12. The locking bolt according to claim 11, wherein the plug-in sleeve has a ring groove in which a grub screw protruding inwardly from the receiving sleeve engages and positionally secures the two sleeves against each other.
13. The locking bolt according to claim 11, wherein the fastening end of the adjusting pin has a profiling for a rotationally fixed and frictional connection to the actuator knob.
14. The locking bolt according to claim 1, wherein the axial compression spring is clamped between a ring shoulder of the adjusting pin, which is radially enlarged relative to the guide section, and an end stop between the bore section and the guide bore of the guide sleeve.
15. The locking bolt according to claim 1, wherein the bore section, which is radially reduced relative to the guide bore, forms an end stop in the direction of the actuating end, on which a circlip, which is at least partially introduced into a circlip groove of the guide section, rests when the thread is decoupled from the screw and the adjusting pin is moved axially.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0040] In the following, the novelty is explained in more detail with reference to drawings illustrating several embodiments. Here, further features and advantages of the innovation essential to the invention emerge from the drawings and their description.
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DETAILED DESCRIPTION
[0060]
[0061] Above the external thread 31, approximately in the middle area of the guide sleeve 30, there is an external hexagonal profile 32, by means of which the guide sleeve 30 can be screwed into the machine component or the like. This external hexagonal profile can be seen, for example, in
[0062] Moving upwards, this external hexagonal profile 32 is joined by a sleeve section 33, which forms a hollow cylinder. In the approximate axial region of the external hexagonal profile 32 and the external thread 31, the guide sleeve 30 has a stepped guide bore 34, which forms a radially inwardly offset end stop 35 in the approximate region of the external hexagonal profile 32.
[0063] A radially tapered bore section 36 adjoins this stop 35 towards the sleeve section 33 and opens into a radially widened interior space 37 of the sleeve section 33.
[0064] An adjusting pin 20 is inserted through the interior space 37, the bore section 36, and the guide bore 34, which adjusting pin 20 forms a radially expanded locking pin 23 in its lower actuating end 22, as can be seen in
[0065] This locking pin 23 is attached at the top to a guide section 26, which is reduced in diameter and protrudes through the bore section 36, which is radially tapered relative to the guide bore 34, and extends into the radially widened interior space 37. At the end of the guide section 26, which is to say in the section opposite the locking pin 23, the adjusting pin 20 forms an actuating end 22 on which the actuator knob 10 can be mounted.
[0066] As can be seen in
[0067] For this purpose, the actuator knob 10 has an inner mounting sleeve 17, which forms a correspondingly diameter-adjusted inner profile 19 for receiving the actuating end 22, of which only the cross-section is visible in
[0068] The actuating end 22 of the adjusting pin 20, which is inserted into the radially tapered mounting sleeve 17, is fixed in an axially fixed position by the screw 9, which is screwed into the thread 29 of the actuating end 22.
[0069] The screw 9 is centrally inserted in the upper side of the actuator knob 10 in a feed-through 16 and is secured against axial movement in the arrow direction 8 by a circular-shaped support stop.
[0070] An axial compression spring 6 can be placed on the guide section 26 of the adjusting pin 20 and is located together with the lower locking pin 23 within the radially expanded area of the guide bore 34. By means of this axial compression spring 6, the adjusting pin 20 is held in its locking position, in which the locking pin 23 protrudes axially downward out of the guide sleeve 30 and has a beveled approach edge 21. The adjusting spring 6 is arranged under axial pretension and clamped between ring shoulder 25 and end stop 35.
[0071] Due to the locking effect of the locking projection 15 with the locking groove 41, this axial position of the adjusting pin 20 is fixed within the guide sleeve 33.
[0072] Furthermore, it can be seen from
[0073] According to
[0074] At the same time, the end surface 14 of the sleeve of the actuator knob 10 is axially supported on the end stop 47, above the external hexagonal profile 32.
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[0076] If the actuator knob 10 together with the adjusting pin 20 screwed to it is now pulled against the arrow direction 8, the locking projection 15 disengages from the locking groove 41 and can slide along the end face 38 of the sleeve section 33 when the actuator knob 10 is rotated in the arrow direction 4 until the locking projection reaches the area above the recess 39. At this time, the locking projection 15 is no longer in contact with the end face 38 and the actuator head 10 can once again be moved in the direction of the end stop 47 in arrow direction 8. This movement is supported by the reset force of the axial compression spring 6.
[0077] The vertical travel limitation of the adjusting pin 20 in the arrow direction 8 can be adjusted by screw 9. In order to be able to bring the actuator knob 10 back together with the adjusting pin 20 into the locked position shown in
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[0081] Starting from the underside of the head 11, the mounting sleeve 17 protrudes into the receiving space 13. The mounting sleeve 17 has edge slots 18 which extend in the axial direction and allow elastic expansion of the mounting sleeve when the actuating end 22 is introduced. On the inside of the mounting sleeve 17, it has an inner profile that is adapted to the profile of the actuating end 22.
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[0083] The locking pin 23 has a radially outwardly open groove on its outer circumference, which forms the marking 24. When the marking 24 is visible below the guide sleeve 30, the operating personnel can see that the entire adjusting pin 20 with its locking pin 23 is in a locking position in which the locking pin 23 protrudes to a maximum from the guide sleeve 30.
[0084] At the end of the guide section 26, shortly before the beginning of the actuating end 22, the guide section 26 has a radially outwardly open circlip groove 27 on its outer circumference, which serves to receive the circlip 7. This circlip 7 can be seen in
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[0086] The design according to the invention thus defines by the screw 9, on the one hand, the relative position of the locking pin 23 protruding downward from of the guide sleeve 30 in relation to the actuator knob 10 and, on the other hand, at the same time, the retracted neutral position of the actuator knob 10 and thereby that of the adjusting pin 20 in the guide sleeve 30.
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[0088] If the grub screw 3 is loosened, the receiving sleeve 54 can be rotated relative to the plug-in sleeve 45. Since the receiving sleeve 54, as in the first embodiment, has a recess 39′ for receiving and guiding the locking tooth of the actuator knob 10′, rotation of the receiving sleeve 54 can also change the rotational position at which the actuating sleeve 10′ engages the recess 39′ with the locking tooth. Since, in the second embodiment, the actuating sleeve 10′ is connected to the adjusting pin 20′ in a rotationally fixed manner, the alignment of the beveled approach edge 21′ present at the end of the adjusting pin 20′ can thus also be adjusted.
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[0090] Above the external thread, approximately in the middle area of the guide sleeve 40, there is an external hexagonal profile 42, by means of which the guide sleeve 40 can be screwed in a fixed position into the machine component or the like. This external hexagonal profile can also be seen in
[0091] It is also possible to imagine a hexagonal profile above the thread of the guide sleeve 40, with which the guide sleeve can independently be screwed into the machine component.
[0092] Moving upwards, this external hexagonal profile 42 is joined by a sleeve section 43, which forms a hollow cylinder, in the approximate axial region of the external hexagonal profile 42 and the external thread, the guide sleeve 40 has a stepped guide bore 34′, which forms a radially inwardly offset end stop 55 in approximately the region of the external hexagonal profile 42.
[0093] A radially tapered bore section 36′ adjoins this end stop 55 towards the sleeve section 43 and opens into a radially widened interior space 37′ of the sleeve section 43.
[0094] An adjusting pin 20′ is inserted through the interior space 37′, the bore section 36′, and the guide bore 34′, which adjusting pin 20′ forms a radially expanded locking pin 23′ in its lower actuating end. This locking pin 23′ has an outer diameter corresponding to the inner diameter of bore section 36′.
[0095] This locking pin 23′ is attached at the top to a guide section 26′, which is reduced in diameter and protrudes through the bore section 36′, which is radially tapered relative to the guide bore 34′, and extends into the radially widened interior space 37′. At the end of the guide section 26′, which is to say at the section opposite the locking pin 23′, the adjusting pin 20′ forms an actuating end 22′ on which the actuator knob 10′ can be mounted.
[0096] As can be seen in
[0097] For this purpose, the actuator knob 10′ has an inner mounting sleeve 57, which is adapted to receive the actuating end 22′. The inside of the mounting sleeve 57 is designed in such a way that the actuating end 22′ of the adjusting pin 20′ forms both a positive locking and a frictional connection after insertion into the mounting sleeve 57, such that an axially fixed connection is formed after the actuator knob 10′ is placed on the adjusting pin 20′.
[0098] An axial compression spring 6′ can be placed on the guide section 26′ of the adjusting pin 20′ and is located together with the lower locking pin 23′ within the radially expanded area of the guide bore 34′. The adjusting pin 20′ is held in its locking position by means of this axial compression spring 6′, in which locking position the locking pin 23′ protrudes axially downwards from the guide sleeve 40 and has a beveled approach edge 21′.
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[0100] Furthermore, it can be seen from
[0101] According to
[0102] At the same time, the end surface of the sleeve 12′ is axially supported on the end stop above the external hexagonal profile 42.
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[0104] In order to now be able to move the actuator knob 10′ together with the adjusting pin 20′ back into the locked position shown in
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DRAWING LEGEND
[0110] 1. Locking bolt [0111] 2. Locking end [0112] 3. Grub screw [0113] 4. Arrow direction [0114] 5. Center axis [0115] 6. Axial compression spring 6′ [0116] 7. Circlip [0117] 8. Arrow direction [0118] 9. Screw [0119] 10. Actuator knob 10′ [0120] 11. Head 11′ [0121] 12. Sleeve 12′ [0122] 13. Receiving space 13′ [0123] 14. End face (of 12) [0124] 15. Locking projection, 15′ [0125] 16. Feed-through [0126] 17. Mounting sleeve 17′ [0127] 18. Slot [0128] 19. Inner profile [0129] 20. Adjusting pin 20′ [0130] 21. Beveled approach edge 21′ [0131] 22. Actuating end 22′ [0132] 23. Locking pin 23′ [0133] 24. Marking [0134] 25. Ring shoulder [0135] 26. Guide section 26′ [0136] 27. Circlip groove [0137] 28. Collar [0138] 29. Thread [0139] 30. Guide sleeve [0140] 31. External thread [0141] 32. External hexagonal profile [0142] 33. Sleeve section [0143] 34. Guide bore 34′ [0144] 35. End stop [0145] 36. Bore section 36′ [0146] 37. Interior space 37′ [0147] 38. End face [0148] 39. Recess 39′ [0149] 40. Guide sleeve [0150] 41. Locking groove [0151] 42. External hexagonal profile [0152] 43. Sleeve section [0153] 44. Tapped hole [0154] 45. Plug-in sleeve [0155] 46. Assembly area [0156] 47. End stop [0157] 48. End face [0158] 49. Recess [0159] 50. Knurling [0160] 51. Tooth-profiled area [0161] 52. Ring groove [0162] 53. End stop [0163] 54. Receiving sleeve [0164] 55. Stop [0165] 57. Mounting sleeve [0166] 58. Locking projection [0167] 59. Recess [0168] 60. Actuator knob [0169] 61. Locking projection [0170] 62. Sleeve [0171] 63. Sleeve section [0172] 64. Slotted guide [0173] 65. Slotted gate [0174] 66. Slotted gate [0175] 67. End portion [0176] 68. Actuator knob [0177] 69. Sleeve [0178] 70. Locking projection [0179] 71. Sleeve section [0180] 72. Recess [0181] 73. End face