System and method for supporting sidewalls or ribs in coal mines
20210381376 · 2021-12-09
Inventors
Cpc classification
E21D21/0026
FIXED CONSTRUCTIONS
International classification
Abstract
A mining bolt system to anchor mining roofs. A bearing plate has a top bearing surface, a bottom bearing surface and a central hole. An L-shaped angle bracket having an upstanding portion and an upper portion has further defined therein a pair of bracket holes. A bolt including a rod portion and a bolt head passes through the central hole and into a mine roof. A threaded staff is then adapted to pass through one of the bracket holes underneath the bottom bearing surface, wherein, in combination, the bearing plate, angle bracket and threaded staff can be tensioned to provide a lifting force against the mine roof.
Claims
1. A mining bolt system, comprising: a bearing plate having a top bearing surface, a bottom bearing surface and a central hole; an L-shaped angle bracket having an upstanding portion and an upper portion, said upstanding portion having defined therein a pair of bracket holes; a bolt, said bolt including a rod portion and a bolt head such that said rod portion can pass through said central hole and into a mine roof; a threaded staff, said threaded staff adapted to pass through one of said bracket holes underneath said bottom bearing surface, wherein, in combination, said bearing plate, said angle bracket and said threaded staff can be tensioned to provide a lifting force against said mine roof
2. The mining bolt system of claim 1, wherein said angle bracket is used in combination with said bearing plate, wherein said upper portion is adapted to be disposed over said top bearing surface and abut said top bearing surface;
3. The mining bolt system of claim 1, wherein said angle bracket is formed integral to said bearing plate.
4. The mining bolt system of claim 3, wherein said top bearing surface is entirely flat and transitions to said angle bracket.
5. The mining bolt system of claim 1, wherein said bolt consists of glass fiber reinforced polymer (GFRP).
6. The mining bolt system of claim 2, wherein said bolt head is over-molded to said rod portion to form said bolt entirely as a one-piece bolt.
7. The mining bolt system of claim 1, further comprising a nut for use along said threaded staff.
8. A mining bolt system, comprising: a bearing plate, said bearing plate having a top bearing surface and a bottom bearing surface, each said top bearing surface and said bottom bearing surface entirely flat but for a central hole defined axially therethrough, said bearing plate consisting of a rigid, polyvinyl chloride compound (PVC), wherein said PVC is formulated for high specific gravity, wherein said bearing plate is cuttable and adapted to sink in an iron-containing wastewater solution in the range of 1.4 to 1.8 specific gravity (SG); and, a bolt, said bolt including a rod portion and a bolt head, said bolt head including an integral, beveled washer transitioning from said bolt head to said rod portion, said bolt adapted to be received through said central hole with said beveled washer adapted to self-center within said bearing plate, thereby allowing said rod portion to penetrate a sidewall such that said bearing plate provides an inward force against said sidewall.
9. A mining bolt system, comprising: one or more bearing plates, each said bearing plate having a central hole defined axially therethrough, said bearing plate adapted to abut a side wall of a mine; a bolt, said bolt received through said central bore and self-centering within said bearing plate, thereby securing said bearing plate to said side wall to provide an inward force against said sidewall; a threaded staff positioned transaxially underneath said bearing plate, wherein said threaded staff is adapted to connect more than one of said bearing plates across said side wall to thereby enhance said inward force; and, a nut for use along said threaded staff for further tensioning said threaded staff against said bearing plate.
10. The mining bolt system of claim 9, further comprising an L-shaped angle bracket having an upstanding portion and an upper portion, said upstanding portion having defined therein a pair of bracket holes.
11. The mining bolt system of claim 10, wherein said angle bracket used in combination with said bearing plate, wherein said upper portion is adapted to be disposed over said bearing plate.
12. The mining bolt system of claim 10, wherein said angle bracket is formed integral to said bearing plate.
13. The mining bolt system of claim 12, wherein said top bearing surface is entirely flat and transitions to said angle bracket.
14. The mining bolt system of claim 9, wherein said bolt consists of glass fiber reinforced polymer (GFRP).
15. The mining bolt system of claim 14, wherein said bolt head is over-molded to said rod portion to form said bolt entirely as a one-piece bolt.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0026] Referencing then
[0027] The first subassembly is a bearing plate 1. Bearing plate 1 has a top bearing surface la and a bottom bearing surface lb. The top bearing surface la and bottom bearing surface (not visible) are each entirely flat but for a central hole 5. Bearing plate 1 preferably consists of a modified recycled, rigid polyvinyl chloride (PVC) compound. In one embodiment, the PVC is formulated for high specific gravity if desirable (regular PVC can be used without additives). Due the formulation of the PVC, the high specific gravity still allows the bearing plate 1 to sink in solutions in the range of 1.4 SG to 1.8 SG, which range equates to the specific gravity of for iron-containing wastewater in this mining application, thus falling to the bottom of any preparation facility heavy media vessel, to thereby enter the refuse stream. In other words, whereas the SG of PVC is typically 1.4 and would sink in water, the formulation must be such that it sinks in a higher SG medium. In this particular application, the highest end of an iron-containing medium customarily would approach 1.8, thus the instant formulation accomplishes this (i.e. PVC formulation adapted to sink in solution having SG in range of 1.4-1.8). The formulation is available exclusively (not readily available) from Meridian Precision, Inc., Pine Grove, Penn.
[0028] In the preferred embodiment (although not limited thereto) bearing plate 1 is square having a width of 6″, depth of 6″ and a height of 1″, but because the bearing plates 1 are extruded, various lengths, widths and depths may be used. Defined transaxially (along ‘x’ axis) through the bearing plate 1 are a plurality of hollow cores 2, i.e. defined entirely from front edge 3 to back edge 4. The hollow cores 2 preferably each measure ⅝″ in diameter and are uniformly spaced, 1″ apart from each center (0.375 inch gap), and in this example, six (6) hollow cores 2 are shown. The hollow cores 2 reduce the weight of the bearing plate 1 and thus increases ease of use and decreases expense while the strength and specific gravity of the system is still maintained. Additionally, as further described below, the hollow cores 2 can receive rebar 26 or connecting rods such as rod portions 7 of the fiberglass bolt 6 itself or cable strands. The central hole 5 is defined entirely through bearing plate 1 with center through ‘y’ axis, thus axially defined through the center of bearing plate 1 as shown. “Axially” also means inward towards the side wall 19, or along ‘y’ axis. Thus, central hole 5 is adapted to receive fiberglass bolt 6 axially therethrough, as follows.
[0029] The second subassembly comprises the bolt 6. A preferably fiberglass bolt 6 is provided which is adapted to insert through the bearing plate 1 by way of central hole 5, thus driving into side wall 19 while bearing plate 1 forcefully abuts the same to thereby anchor the side wall 19 at the location of entry. Bolt 6 has a rod portion 7 and integral bolt head 8. In the exemplar embodiment the rod portion 7 can range from 48″ to 60″ in length and would be saleable in these two lengths but any length can be used. The diameter of each rod portion 7 would preferably range from 0.603 to 0.703, but again, these measurements may vary as to both desired characteristics and tolerances. In the exemplar embodiment the bolt 6 is an Aslan 100 glass fiber reinforced polymer (GFRP) that combines fiberglass roving with a thermoset vinyl-ester resin system to create a long-lasting alternative to steel. The rod portion 7 has a rod surface 9 which can be modified to be roughened with granules to thereby be textured or granular to aid in grip.
[0030] Bolt head 8 is formed integral to rod portion 7, thereby forming a one-piece bolt 6. The bolt head 8 includes a first annular 14 and a second annular 15 with a beveled washer 11 fixed between the first annular 14 and the second annular 15, thus transitioning from bolt head 8 to rod portion 7 is an integral, beveled washer 11, preferably hemi-spherical, which self-centers within the bearing plate 1. Beveled washer 11 is defined by a tapered surface 13 and a flange 12. A sleeve 10 is integrally formed between the second annular 15 and the rod portion 7. A generally cubical knob 16 is formed on the first annular 14. An indentation is defined on a top surface 18 of knob 16 which acts as a physical stop to correct the depth of the over-mold manufacturing process because the bolt head 8 is injection molded around rod portion 7 to form entire bolt 6. More particularly, an over-mold process uses 50% GFRP products that are heated, molten stage, then shrunk around the rod portion 7 to achieve at least 10,000 tensile strength (see
[0031] The third subassembly includes one or more rebar 26. “Rebar 26” in this embodiment means connecting rods or dowels, which may be made of any material such as traditional steel, or they can be formed of similar polymer make-up as the rod portion 7 and could, in fact, be the rod portions themselves. Additionally, they can be steel cables as further defined (i.e. cable strand). More particularly, while rod portions 7 are the long end of bolt 6 and are, in one embodiment, driven in to the side wall 19 with the bearing plate 1 providing in inward (towards the side wall 19) retaining force against the sidewall/rib, axially through each bearing plate 1, the rod portions 7 can serve the secondary function of being inserted transaxially through the hollow cores 2 of the one or more bearing plates 1. In addition, the bearing plates 1 can be resized along the length of the system if they are used merely to capture a rod portion 7. The rebar 26 is not adhered to the bearing plate 1 but rather “inserted” therein to rely on friction for securement and to absorb any load. Any number of rebar 26 and accompanying hollow cores 2 of bearing plate 1 can be used depending on the needed application, i.e. only some of the hollow cores 2 could be occupied. For instance, referencing
[0032] With specific reference now to
[0033] In use therefore, and in a method for supporting a side wall 19, multiple bearing plates 1 are anchored into the side wall 19 axially, further comprising the step of fastening a fiberglass bolt 1 through the bearing plate 1 into the side wall 19; and the an inward force (toward the side wall 19) of the bearing plates 1 are enhanced by inserting fiberglass rebar 26 transaxially through the bearing plates 1, and with such combinations arranged across the side wall 19 in any orientation.
[0034] Referencing
[0035] This application is for use in mines that use what are called T-channels as temporary support in a coal mine while advancing gate entries. The roof is supported initially with two roof bolts attached to the ends of the T-strap. The bolts are installed with a bolting apparatus mounted on the two sides of the continuous miner ahead of the machine operator. This allows the continuous mining machine to advance in one cut a greater distance ahead. After the allotted amount of advancement is reached, the continuous miner backs out and moves to an adjacent entry to do the same. Then a center bolting machine goes into the entry from which the continuous miner exited and proceeds to install a center bolt in the channels to permanently support the roof. In the instant system, the channel is replaced with these two steel threaded staffs 27 with nuts 29 at each threaded end 28 end bolted to the roof with two or more slotted bearing plates 1 which accept the two threaded staffs 27 in parallel. The threaded staffs 27 with angle brackets 30 are tensioned by the bolt operators to give a lifting force to the roof. The center bolter can later bolt the center of the entry and also support the two tensioned threaded staffs 27. By tensioning the two parallel, threaded staffs 27, a higher bending strength can be achieved.
[0036] In the embodiment above (
EXAMPLE 1
[0037] Testing to determine the tensile strength of the fiberglass bolt prototype was conducted. The fiberglass bolt head was used to mimic the loading conditions that would be applied to the system in an underground application. Test results are shown in