SPIDER BUSHING ASSEMBLY FOR A GYRATORY CRUSHER
20170304830 ยท 2017-10-26
Assignee
Inventors
Cpc classification
B02C2/045
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A gyratory crusher and a spider bushing assembly for supporting a spider bushing within the central hub of a gyratory crusher. The spider bushing assembly includes a spider bushing and a means for adjusting the distance between the outer flange of the spider bushing and a support shoulder formed within the central hub of the spider. The means for adjusting allows the position of the spider bushing within the internal bore of the central hub to change while maintaining an interference fit as a result of wear following use of the gyratory crusher. In one embodiment, one or more annular shims are positioned between the bearing support shoulder of the central hub and the outer flange of the spider bushing. Upon wear, one or more of the shims can be removed to improve the interference fit between the spider bushing and the internal bore formed within the central hub.
Claims
1. A gyratory crusher, comprising: a spider having a central hub including an internal bore and a bushing support shoulder; a mainshaft having an upper end supported within the central hub of the spider; a spider bushing positioned between the upper end of the mainshaft and the internal bore of the spider, the spider bushing having an outer flange; and means for adjusting the spacing between the bushing support shoulder and the outer flange of the spider bushing, wherein the means for adjusting is operable to adjust the position of the spider bushing relative to the internal bore upon wear to the spider bushing or the spider.
2. The gyratory crusher of claim 1 wherein the means for adjusting is one or more shims positioned between the bushing support shoulder of the spider and the outer flange of the spider bushing.
3. The gyratory crusher of claim 2 wherein the means for adjusting includes a plurality of shims.
4. The gyratory crusher of claim 2 wherein each of the shims includes an annular body that surrounds the body of the spider bushing and has a thickness.
5. The gyratory crusher of claim 1 wherein the internal bore is tapered and the spider bushing includes a body having an outer surface, wherein the outer surface is tapered.
6. The gyratory crusher of claim 5 wherein the outer diameter of the outer surface of the spider bushing is greater than the inner diameter of the internal bore of the spider to create an interference fit.
7. The gyratory crusher of claim 1 wherein the means for adjusting is a series of set screws movable within the outer flange of the spider bushing.
8. The gyratory crusher of claim 1 wherein the means for adjusting is an adjustment nut received along an outer surface of the spider bushing, wherein rotation of the adjustment nut moves the adjustment nut along the outer surface of the spider bushing.
9. The gyratory crusher of claim 1 wherein the means for adjusting is a series of washers positioned between the bushing support shoulder of the spider and the outer flange of the spider bushing.
10. A gyratory crusher, comprising: a spider having a central hub including a tapered internal bore and a bushing support shoulder; a mainshaft having an upper end supported within the central hub of the spider; a spider bushing positioned between the upper end of the mainshaft and the internal bore of the spider, the spider bushing having a body having a tapered outer surface and an outer flange extending from the outer surface; and one or more shims positioned between the bushing support shoulder and the outer flange of the spider bushing, wherein the one or more shims are selectively removable to adjust the position of the spider bushing relative to the internal bore upon wear to the spider bushing or wear to the internal bore of the spider.
11. The gyratory crusher of claim 10 wherein each of the shims includes an annular body that surrounds the body of the spider bushing and has a thickness.
12. The gyratory crusher of claim 11 further comprising a plurality of shims each having a different thicknesses.
13. The gyratory crusher of claim 10 wherein the outer diameter of the outer surface of the spider bushing is greater than the inner diameter of the internal bore of the spider to create an interference fit.
14. A spider bushing assembly for use with a gyratory crusher having a spider including a central hub having a tapered internal bore and a bushing support shoulder, the assembly comprising: a spider bushing having a body including a tapered outer surface and an outer flange extending from the outer surface; and one or more shims positioned between the bushing support shoulder and the outer flange of the spider bushing, wherein the one or more shims are selectively removable to adjust the position of the spider bushing relative to the internal bore upon wear to the spider bushing.
15. The spider bushing assembly of claim 14 wherein each of the shims includes an annular body that surrounds the body of the spider bushing and has a thickness.
16. The gyratory crusher of claim 15 further comprising a plurality of shims each having a different thicknesses.
17. A method of adjusting the position of a spider bushing within a spider of a gyratory crusher including a mainshaft, the method comprising the steps of: lowering the spider bushing into the spider until a tapered outer surface of the spider bushing contacts a tapered inner bore of the spider; determining an initial gap between an outer flange of the spider bushing and a support shoulder within the spider; removing the spider bushing from the spider; installing one or more shims within the spider based upon the determined gap; lowering the spider bushing into the spider such that the one or more shims are positioned between the outer flange of the spider bushing and the support shoulder of the spider; and securing the spider bushing to the spider.
18. The method of claim 17 wherein the one or more shims are installed to create a desired gap between the one or more shims and the outer flange of the spider bushing.
19. The method of 17 further comprising the step of providing a plurality of shims having a plurality of thicknesses, wherein one or more shims are installed to reduce the determined gap to the desired gap.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The drawings illustrate the best mode presently contemplated of carrying out the disclosure. In the drawings:
[0013]
[0014]
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DETAILED DESCRIPTION
[0022]
[0023] The upper end 28 of the mainshaft 26 is supported in a spider bushing 30 contained within a central hub 32 of a spider 34. The spider 34 is mounted to the upper top shell 16 by a series of bolts 36. The spider 34 includes a plurality of spider arms 38 that support the central hub 32 in the position as shown. In the embodiment illustrated, spider arm shields 40 are mounted to each of the spider arms 38 to provide wear protection. A spider cap 42 mounts over the central hub 32 to provide additional wear protection for the central hub 32.
[0024]
[0025] An access area 54 is positioned slightly above the internal bore 44. The access area 54 allows tooling and other components to access the upper end 28 of the mainshaft 26 when the spider bushing 30 is installed, as can be understood in
[0026] Referring again to
[0027] The upper end 64 is located below an outer flange 66 that protrudes radially outward from the outer surface 60 of the annular wall 58. The flange 66 has a lower contact surface 68 and an annular top surface 70. As illustrated in
[0028] In the embodiment shown in
[0029] Since both the outer surface 60 of the spider bushing 30 and the inner surface 46 of the bore 44 wear during operation of the gyratory crusher and the cost and effort to maintain the tight machining tolerances is high, the present disclosure includes a means for adjusting the interference fit between the spider bushing 30 and the internal bore 44. The use of the adjustment means allows for a slight relaxation of the machining tolerances on the tapered surfaces, which simplifies the manufacturing process and may lead to a reduction in the cost of the parts.
[0030] In order to accommodate the interference fit adjustment means, the spider bushing 30 is machined such that the tapered outer diameter defined by the outer surface 60 is slightly greater than the inner diameter of the internal bore 44 defined by the inner surface 46. When the spider bushing is initially installed in the internal bore, the interference fit between the two components creates a gap A-A shown in
[0031] In one embodiment of the disclosure, the means for adjusting the interference fit between the bushing support shoulder 52 and the outer flange 66 of the spider bushing 30 takes the form of one or more annular shims 78, which is shown in
[0032] Referring now to
[0033] In a first embodiment of the disclosure, the adjustment means is comprised of one or more annular shims 78, which are illustrated in
[0034] As illustrated in
[0035] Referring back to
[0036] Once the shims have been positioned as shown in
[0037] As the gyratory crusher operates and the outer surface of the spider bushing and the inner surface of the internal bore formed within the central hub begin to wear, the interference fit between the two components will begin to it will begin to lessen. When this happens, it will become necessary to modify the adjustment means to improve the interference fit. This can be done by first removing the spider bushing 30 from the spider. Once the spider bushing 30 is removed, one or more of the individual shims can be removed from between the spider bushing and the central hub. Once the shims are removed, the spider bushing 30 is again lowered into the internal bore. Since the shims 78 shown in
[0038] As described above, in one embodiment of the disclosure, the means for adjusting the interference fit between the bushing support shoulder and the outer flange of the spider bushing is created through the use of one or more individual shims. However, it is contemplated that other types of devices or components could be utilized while operating within the scope of the present disclosure.
[0039]
[0040] As the spider bushing 30 and central hub 32 begin to wear, the set screw 90 can be rotated to adjust the amount the bottom 94 extends past the lower contact surface 68, as illustrated by the arrow in
[0041]
[0042] As the spider bushing 30 and central hub 32 begin to wear, the adjustment nut 102 can be rotated to adjust the vertical position of the adjustment nut 102 along the spider bushing. In this manner, the adjustment nut 102 can improve the interference fit between the spider bushing and the inner bore of the spider.
[0043] In yet another contemplated alternative, individual washers could be utilized surrounding each of the connectors 74 rather than the annular shim shown in
[0044] Various other different types of devices and mechanisms could also be utilized while operating within the scope of the present disclosure. In each case, the adjustment device would create the desired spacing between the outer flange 66 of the spider bushing and the bushing support shoulder formed within the central hub. During wear, this adjustment device could be modified to begin to decrease the spacing between the outer flange of the spider bushing and the bushing support shoulder.