ROCK BOLT
20170298732 · 2017-10-19
Assignee
Inventors
Cpc classification
E21D21/004
FIXED CONSTRUCTIONS
International classification
Abstract
A rock bolt to be embedded in a borehole and a method of manufacturing a rock bolt, the rock bolt including an extended energy-absorbing part, the first end of the energy-absorbing part including an anchor and the second end of the energy-absorbing part including a screw joint for prestressing the rock bolt. The rock bolt includes an extended tubular part with a jacket and a first end section and a second end section, with an internal dimension that is larger than the external dimension of the energy-absorbing part and arranged in such a manner that it surrounds the energy-absorbing part.
Claims
1. A rock bolt to be embedded in grout in a borehole, comprising an extended energy-absorbing part, the first end of the energy-absorbing part comprising an anchor and the second end of the energy-absorbing part comprising a screw joint for prestressing of the rock bolt, wherein the rock bolt comprises an extended tubular part with a jacket and a first and a second end section, and an Internal dimension of the tubular part that is larger than the external dimension of the energy-absorbing part and arranged in such a manner that it surrounds the energy-absorbing part and that the first end section of the tubular part is connected with the energy-absorbing part in association with the anchor and the second end section is arranged to make contact with a washer that is a component of the screw joint and to make contact with the washer when the rock bolt is prestressed.
2. The rock bolt according to claim 1, whereby the tubular part extends between the anchor and the screw joint and in this way prevents the energy-absorbing part coming into contact with the grout.
3. The rock bolt according to claim 1, whereby the end sections of the tubular part are united with the energy-absorbing part in association with the anchor and the screw joint.
4. The rock bolt according to claim 3, whereby the tubular part is united by means of welding.
5. The rock bolt according to claim 1, whereby the jacket of the tubular part is provided with a structure to increase friction.
6. The rock bolt according to claim 1, whereby the jacket of the tubular part is perforated.
7. The rock bolt according to claim 1, whereby the jacket of the tubular part is provided with lugs.
8. The rock bolt according to claim 1, whereby the energy-absorbing part comprises a reinforcement member.
9. The rock bolt according to claim 1, whereby the energy-absorbing part comprises a wire.
10. The rock bolt according to claim 1, whereby the energy-absorbing part comprises a steel rod.
11. The rock bolt according to claim 1, whereby the energy-absorbing part comprises an extended body of a composite material.
12. The rock bolt according to claim 3, whereby the tubular part is attached by means of welding.
13. The rock bolt according to claim 1, whereby the anchor comprises a wedge introduced Into a slot in the end of the energy-absorbing part.
14. The rock bolt according to claim 1, whereby the anchor comprises a stirring arrangement arranged at the end of the energy-absorbing part.
15. A method for the manufacture of a rock bolt, comprising the following operational steps: that a length and a diameter of the hole in the rock are determined, that an extended energy-absorbing part is chosen to correspond to the length of the hole in step 1, that an extended tubular part is chosen to correspond to the length of the hole in step 1 or the diameter of the energy-absorbing part in step 1, that the energy-absorbing part is adapted inside of the tubular part, that one end of the tubular part is permanently attached in association with a first end section of the energy-absorbing part, that the second end of the tubular part is permanently attached in association with a second end section of the energy-absorbing part, and that the first end and the second end of the energy-absorbing part are arranged with a screw joint and an anchor, respectively.
16. A method for the manufacture of a rock bolt, comprising the following operational steps: that a length and a diameter of the hole in the rock are determined, that an extended energy-absorbing part is chosen to correspond to the length of the hole in step 1, that an extended tubular part is chosen to correspond to the length of the hole in step 1 or the diameter of the energy-absorbing part in step 1, that the energy-absorbing part is adapted inside of the tubular part, that one end of the tubular part is permanently attached in association with a first end section of the energy-absorbing part, that the first end and the second end of the energy-absorbing part are arranged with a screw joint and an anchor, respectively, and that a washer that is a component of the screw joint is arranged in such a manner that it makes contact with the second end of the tubular part.
Description
DESCRIPTION OF DRAWINGS
[0010] The invention will be described below with reference to the attached drawings of which:
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DESCRIPTION OF EMBODIMENTS
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[0027] The jacket 7 of the external tubular part 3 is, as is shown in
[0028] The internal energy-absorbing part 4 demonstrates a length that exceeds the length of the external tubular part 3. In one preferred embodiment, the energy-absorbing part 4 comprises a reinforcement member 4a, but it can in other embodiments comprise a wire 4b, a rod 4c or an extended member of a composite material 4d, as shown in
[0029] The second end 15 of the energy-absorbing part 4 is provided with a threaded section 16 that extends a certain distance into the energy-absorbing part 4. The threaded section 16 is intended to be located outside of the borehole when the bolt 1 has been introduced into the hole 2, and has a diameter that is equal to or greater than the external dimension of the outer part, as shown in
[0030] The internal energy-absorbing part 4 is introduced into, placed inside, the external tubular part 3. One end 5 of the external tubular part 3 is attached at the internal energy-absorbing part 4 in association with the anchor 12. The second end 6 of the tubular part 3 is attached in close association with the screw joint 17, in direct association with the end of the threaded section 16. According to one preferred embodiment, the ends 5, 6 of the external tubular part 3 are attached by means of welding with fully welded joins S. It should, however, be realised that another type of fastening can be used, such as gluing or other permanent fastening. Gluing is particularly appropriate when other material than steel is used for the energy-absorbing part 4 and/or the external tubular part 3.
[0031] In another embodiment, only the end 5 of the tubular part is attached through welding with fully welded joins to the internal energy-absorbing part in association with the anchor 12. The length of the tubular part 3 is adapted such that its second end 6 comes into contact with the washer 19 and makes contact with it when the rock bolt is prestressed.
[0032] The preferred rock bolt is mounted in the following manner as shown in
[0033] If resin is used instead of concrete, the bolt 2 is provided with an anchor in the form of a stirring arrangement 21 formed by a blade or disk having the form of a paddle, instead of the wedge. When the bolt is to be mounted, the resin is introduced into the borehole, after which the bolt is introduced into the borehole and rotated such that the resin is mixed by the stirring arrangement 21. The resin hardens rapidly, which is why the screw joint 17 can be mounted and prestressed in direct association with the insertion of the bolt 1 into the hole 2.
[0034] Due to the fact that the external tubular part 3 surrounds and encloses the energy-absorbing part 4, the energy-absorbing part 4 is not subject to corrosion or other influences that can weaken the bolt 1. This gives a lifetime that is longer than that of other types of embedded rock bolt. In addition, the rock bolt 1 is given a maximum extent over which the bolt can be bent, since the energy-absorbing part 4 does not come into contact with the embedding material. This gives the advantage that the rock bolt can be bent more extensively and in this way can absorb larger forces than those absorbed by other types of embedded rock bolt.
[0035] The rock bolt is manufactured in the following manner: [0036] a length and a diameter of the hole 2 in the rock are determined, [0037] an extended energy-absorbing part 4 is arranged, [0038] an extended tubular part 3 is arranged, [0039] the energy-absorbing part 4 is adapted inside of the tubular part 3, [0040] one end 5 of the tubular part 3 is permanently attached in association with a first end section 11 of the energy-absorbing part 4.
[0041] A final step in the manufacture comprises [0042] the second end 6 of the tubular part 3 being permanently attached in association with a second end section 15 of the energy-absorbing part 4.
[0043] According to a second embodiment described above, the final step in the manufacture comprises [0044] a screw joint 17 with a washer 19 being arranged at a second end section 16 of the energy-absorbing part, and the second end 6 of the tubular part 3 coming into contact with the washer.
[0045] The internal dimension of the external tubular part 3, i.e. its internal diameter in the case in which it comprises a circular pipe, exceeds the external dimension or the diameter of the energy-absorbing part 4. The dimensions may be so adapted that the energy-absorbing part 4 must be pressed into the external tubular part 3, but it should be realised that it is an advantage if the external tubular part 3 has an internal dimension that is large enough to allow the internal energy-absorbing part 4 to move or be displaced freely relative to the tubular part 3 before the fastening, by, for example, welding or gluing. If the internal dimension of the external tubular part 3 is sufficiently large relative to the dimension of the internal energy-absorbing part 4, the advantage is achieved that the risk that grout comes into contact with the energy-absorbing part is minimised.
[0046] The present invention is not limited to what has been described above and shown in the drawings: it can be changed and modified in several different ways within the scope of the innovative concept defined by the attached patent claims.