Torque-Limiting Nut for a Break-Off Bolt
20220196062 · 2022-06-23
Assignee
Inventors
Cpc classification
F16B2200/93
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A torque-limiting nut for a break-off bolt includes a thread section having an internal thread, a head section having an abutment shoulder extending further toward a radial inward direction than the internal thread, and a predetermined breaking area separating the thread section and the head section. The abutment shoulder is arranged adjoining to the predetermined breaking area.
Claims
1. A torque-limiting nut for a break-off bolt, comprising: a thread section having an internal thread; a head section having an abutment shoulder extending further toward a radial inward direction than the internal thread; and a predetermined breaking area separating the thread section and the head section, the abutment shoulder is arranged adjoining to the predetermined breaking area.
2. The torque-limiting nut of claim 1, wherein the head section is solid.
3. The torque-limiting nut of claim 1, wherein the predetermined breaking area is hollow and has a lower material thickness than the thread section.
4. The torque-limiting nut of claim 1, wherein the head section does not have the internal thread.
5. The torque-limiting nut of claim 1, wherein the predetermined breaking area does not have the internal thread.
6. The torque-limiting nut of claim 1, wherein the internal thread extends from the predetermined breaking area away from the head section to a free end of the torque-limiting nut.
7. The torque-limiting nut of claim 1, wherein the head section has a fixing mechanism fixing the head section to the break-off bolt.
8. The torque-limiting nut of claim 1, wherein the head section, the predetermined breaking area, and the thread section are formed integrally with one another as a monolithic component.
9. A break-off assembly for installing a conductor within a connector, comprising: a break-off bolt; and a torque-limiting nut including a thread section having an internal thread, a head section having an abutment shoulder extending further toward a radial inward direction than the internal thread, and a predetermined breaking area separating the thread section and the head section, the abutment shoulder is arranged adjoining to the predetermined breaking area.
10. The break-off assembly of claim 9, wherein the abutment shoulder abuts a front face of the break-off bolt.
11. The break-off assembly of claim 9, wherein a first torque for breaking the torque-limiting nut at the predetermined breaking area is higher than a second torque for breaking the break-off bolt.
12. The break-off assembly of claim 9, wherein the break-off bolt does not have a breaking area.
13. The break-off assembly of claim 10, wherein the break-off bolt has a cavity open towards the front face of the break-off bolt.
14. The break-off assembly of claim 13, wherein the cavity is closed by the head section.
15. The break-off assembly of claim 13, wherein the break-off bolt has a remaining part that remains in the connector after breakage.
16. The break-off assembly of claim 15, wherein the cavity of the remaining part is closed by the head section.
17. A connector assembly, comprising: a connector having a hollow space and a bore extending from an outer surface of the connector to the hollow space; and a break-off assembly including a break-off bolt and a torque-limiting nut, the torque-limiting nut including a thread section having an internal thread, a head section having an abutment shoulder extending further toward a radial inward direction than the internal thread, and a predetermined breaking area separating the thread section and the head section, the abutment shoulder is arranged adjoining to the predetermined breaking area.
18. The connector assembly of claim 17, wherein the bore is closed off by the head section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006] The invention will now be described by way of example with reference to the accompanying Figures, of which:
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[0019]
DETAILED DESCRIPTION OF THE EMBODIMENT(S)
[0020] In the following, the torque-limiting nut and the break-off assembly according to the invention are explained in greater detail with reference to the accompanying drawings, in which exemplary embodiments are shown. In the figures, the same reference numerals are used for elements which correspond to one another in terms of their function and/or structure.
[0021] According to the description of the various aspects and embodiments, elements shown in the drawings can be omitted if the technical effects of those elements are not needed for a particular application, and vice versa: i.e., elements that are not shown or described with reference to the figures can be added if the technical effect of those particular elements is advantageous in a specific application.
[0022] In the following, the shorter words “bolt” and “nut” may be used instead of the word “break-off bolt” and “torque-limiting nut”, respectively.
[0023] First, a first exemplary embodiment of a torque-limiting nut 1 according to the invention is described with reference to
[0024] The nut 1 comprises a thread section 2 and a head section 4, which are separated by a predetermined breaking area 6 along a longitudinal axis L of the nut 1, as shown in
[0025] The head section 4 may be solid, increasing the stability of the head section 4. Tampering with the head section 4, particularly the at least one abutment shoulder 10, may be prevented. The head section 4 may thus form a cap 12 of the nut 1.
[0026] The head section 4 may comprise a screw drive, so that the head section 4 may be engaged by a tool, such as a wrench. In this exemplary embodiment, the head section 4 comprises the shape of a hexagon with a width 14 or outer diameter shown in
[0027] In an embodiment, the head section 4 and the thread section 8 may comprise a structurally identical outer shape, so that the head section 4 and the thread section 8 may be engaged simultaneously by the same tool. For example, the outer circumference of the head section 4 and thread section 8 may comprise a polygonal form such as a hexagon, as in the shown embodiment, which can be engaged by a standardized hex-wrench. However, the thread section 8 may be adapted to be singly engaged by the standardized tool, so that after breaking at the predetermined breaking area 6, the thread section 8 can be directly screwed down the break-off bolt 24 without having to remove the head section 4 and/or having to disengage the torque-limiting nut 1 with the tool before engaging only the broken off thread section 8.
[0028] However, the head section 4 may also comprise a different outer shape than the thread section 2. For example, the head section 4 may be formed as a cap 12 that is adapted to be mounted onto a remaining part of the bolt after breaking. The cap 12 may be adapted to be inserted into a depression of the connector, so that the cap 12 does not protrude beyond an outer circumference of the connector. In an embodiment, the cap 12 may be adapted to be flush with an outer surface of the connector.
[0029] The head section 4 may not comprise a cavity and/or an internal thread, as in the embodiment shown in
[0030] The thread section 2 may extend along the longitudinal axis L from the predetermined breaking area 6 in a direction away from the head section 4 to a free end 16 of the nut 1. The thread section 2 may be hollow and the internal thread 8 may be arranged along the entire thread section 2. The free end 16 may abut the connector, and by having the thread 8 extending to the free end 16, it can be ensured that an external thread of the bolt is engaged by the internal thread 8 close to or at the interface between nut 1 and connector. Consequently, after shearing off of the bolt, it can be assured that the remaining part of the bolt does not protrude out of a bore of the connector beyond an outer surface of the connector.
[0031] In this exemplary embodiment, the thread section 2 may taper off towards the free end 16 along the longitudinal axis L for allowing a smooth sitting of the thread section 2 on the connector. The connector may comprise a depression, wherein the free end 16 of the thread section 2 may be complementary formed to the depression, allowing a tight seat of the thread section 2 at the interface between thread section 2 and connector.
[0032] The torque-limiting nut 1 may comprise a pedestal with a lower outer diameter than the remaining torque-limiting nut 1, particularly the thread section 2. The pedestal may extend from the thread section 2 at a distal end distant from the predetermined breaking area 6 along the longitudinal axis in a direction away from the predetermined breaking area 6. Therefore, the pedestal may be adapted to abut the connector, so that the thread section 2 may easily be engaged by an installation tool, such as a wrench, and is not blocked by the connector.
[0033] The thread section 2 may be adapted to be singly engaged by a standardized tool such as a wrench. Therefore, the thread section 2 may comprise the dimensions of a standardized nut, particularly the outer shape and dimensions of the standardized nut. By only engaging the thread section 2 with the installation tool, the thread section 2 may be continuously screwed onto the bolt before and after breaking of the nut 1 at the predetermined breaking area 6. Consequently, the installation efficiency may be increased, particularly for an automated installation. The removal of the head section 2 after breaking may be irrelevant for the installation of the bolt.
[0034] The head section 4 and the thread section 2 may be rigidly connected by the predetermined breaking area 6. The predetermined breaking area 6 may, for example, be formed by a constriction 18 on the outer surface of the nut 1. The outer shape may, in an embodiment, be circumferential at the predetermined breaking area 6, allowing for a clean cleavage between the head section 4 and the thread section 2 after the predetermined torque for installing the bolt is achieved.
[0035] The predetermined breaking area 6 may be hollow, wherein a material thickness of the predetermined breaking area 6 may be lower than the material thickness of the thread section 2, as shown in
[0036] The thread section 2, head section 4, and predetermined breaking area 6 may, in an embodiment, be formed integrally with one another as a monolithic component 20, thereby simplifying the manufacturing process of the torque-limiting nut 1. In an embodiment, the torque-limiting nut 1 may be a steel nut, for example a stainless steel nut.
[0037] In
[0038] As can be seen in
[0039]
[0040] The free end 26 of the bolt 24 may be solid in an embodiment, so that the free end 26 may be adapted to lie flat on the conductor, e.g. a wire or cable, pressing against the conductor with surface pressure. The surface pressure may be distributed along a larger contact area.
[0041] The cavity 28 may comprise an internal thread 32 having grooves 34 that further decrease the wall thickness of the bolt 24, as shown in
[0042] As depicted in the detailed view in
[0043] The internal thread 8 of the thread section 2 may be adapted to engage the external thread 25 of the bolt 24. The nut 1 can be screwed onto the bolt 24 until the front face 30 of the bolt 24 abuts the at least one abutment shoulder 10 of the head section 4 directly beyond the predetermined breaking area 6 with respect to the thread section 2. The head section 4 thus prevents the nut 1, particularly the thread section 2, from being screwed any further down the bolt 24 in a winding direction D for installing the bolt 24 in a connector. In the position shown in
[0044] The function of the nut 1 is further explained with reference to
[0045]
[0046] Once the predetermined torque, which in an embodiment is the required installation torque of the bolt 24, is surpassed, the nut 1 may break at the predetermined breaking area 6, separating the head section 4 and the thread section 2 from one another. Consequently, the thread section 2 may be rotationally decoupled from the bolt 24 and may travel down the bolt 24, as shown in
[0047] The thread section 2 may travel down until abutment with an outer surface 40 of the connector 38, shown in
[0048] The bolt 24 may be split into a remaining part 58, arranged in the bore 46 and protruding into the hollow space 50 pressing against the conductor 52, and into a removable part 60 that can be discarded, as shown in
[0049] Therefore, with the nut 1, an easy and stable connection can be made. The installation can be completed in a single installation step, wherein a torque is applied to the thread section 2 until the bolt 24 is broken, while ensuring that the bolt 24 is installed with a predetermined torque without needing to use a specific tool, such as a torque wrench. During installation, no severed parts are required to be removed before the thread section 2 can be further screwed down the bolt 24, which may be the case by having different torque-limiting features. Consequently, the installation efficiency can be greatly enhanced and, for example, can easily be performed automatically.
[0050] A further advantageous embodiment of the inventive nut 1 is shown in
[0051] After breakage of the head section 4 from the thread section 2, the head section 4 may be kept and used as a cap 12. The cap 12, shown in