Gyratory crusher with self-aligning mainshaft features and method of assembly thereof
11850600 ยท 2023-12-26
Assignee
Inventors
Cpc classification
International classification
B02C2/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The disclosure relates to novel components of a gyratory crusher (1) which aim to promote self-alignment of a mainshaft assembly (2) upon introduction of the mainshaft assembly (2) into the gyratory crusher (1) by lowering the mainshaft assembly (2) from above the gyratory crusher (1) into the gyratory crusher (1). The novel components may include a dust bonnet (9) having a plurality of guides (15), an end plate (32) having a lower alignment chamfer (36), and/or a counterweight (13) having an alignment chamfer (41). Each of the novel components may be configured to bias a lower mainshaft (26) of the mainshaft assembly (2) of the gyratory crusher (1) into concentric alignment with a bore (56) of the eccentric (11) or eccentric liner (12).
Claims
1. A gyratory crusher (1) comprising an annular dust bonnet (9), the dust bonnet (9) being configured to facilitate alignment between a mainshaft assembly (2) and a bore (56) of an eccentric (11) or eccentric liner (12) upon introduction of the mainshaft assembly (2) into the gyratory crusher (1) by lowering the mainshaft assembly (2) from above the gyratory crusher (1) into the gyratory crusher (1); the dust bonnet (9) comprising: an inner sidewall (22) configured for receiving a lower mainshaft (26) of the mainshaft assembly (2) therethrough; and an outer sidewall (52) configured for engaging an annular dust seal (10) provided within the mainshaft assembly (2); the dust bonnet (9) comprising a plurality of guides (15) arranged radially-inwardly with respect to the inner sidewall (22), each of the plurality of guides (15) having a guiding surface (15) configured to contact the mainshaft assembly (2); the guiding surface (15) forming an angle (58) with respect to the inner sidewall (22) such that a lower portion of each guiding surface (15) is positioned further radially-inwardly with respect to the inner sidewall (22) than a respective upper portion of each guiding surface (15); the guides (15) collectively being arranged and configured to bias the lower mainshaft (26) into concentric alignment with the bore (56) when the mainshaft assembly (2) is lowered into the gyratory crusher (1); the gyratory crusher (1) further comprising at least one of a.) or b.): a.) an end plate (32) for provision to a lower distal end of the mainshaft assembly (2), the end plate (32) comprising a lower side which is configured to rest on a thrust bearing (48) located above a hydraulic cylinder (59); the end plate (32) further comprising an upper side configured to be received in a recess (46) provided in the lower mainshaft (26) of the mainshaft assembly (2), the recess (46) being defined by a bottom surface (29) of the lower mainshaft (26) surrounded by a lower annular projection (28) of the lower mainshaft (26); the end plate (32) being configured to bias the lower mainshaft (26) of the mainshaft assembly (2) into concentric alignment with said bore (56) of an eccentric (11) or eccentric liner (12), upon introduction of the mainshaft assembly (2) into the gyratory crusher (1) by lowering the mainshaft assembly (2) from above the gyratory crusher (1) into the gyratory crusher (1), by virtue of a lower alignment chamfer (36) being provided to the end plate (32) at its radially-outermost periphery; b.) a counterweight (13) for provision to an upper portion of said eccentric (11) and/or eccentric liner (12); the counterweight (13) having an upper side and an underside and comprising a C-shaped arcuate profile having two ends, and a concave alignment chamfer (41); the alignment chamfer (41) being defined by a ramped surface which faces upwardly and radially-inwardly and extends between the upper side and the underside and two ends such that the counterweight (13) is narrower in width across its upper side than across its underside; the alignment chamfer (41) being configured to bias athe lower mainshaft (26) into concentric alignment with said bore (56) of the eccentric (11) or eccentric liner (12), upon introduction of the mainshaft assembly (2) into the gyratory crusher (1) by lowering the mainshaft assembly (2) from above the gyratory crusher (1) into the gyratory crusher (1).
2. The gyratory crusher (1) according to claim 1, comprising both a.), and b.).
3. The gyratory crusher (1) according to claim 1, further comprising said mainshaft assembly (2) having a lower mainshaft (26).
4. The gyratory crusher (1) according to claim 3, wherein the lower mainshaft (26) comprises a chamfer (27) which transitions to said lower alignment chamfer (36) of the end plate (32) if the end plate is employed.
5. The gyratory crusher (1) according to claim 1, further comprising said eccentric (11) or eccentric liner (12) having a bore (56).
6. The gyratory crusher (1) according to claim 5, wherein the eccentric (11) comprises the eccentric liner (12).
7. The gyratory crusher (1) according to claim 1, further comprising said annular dust seal (10) provided within the mainshaft assembly (2).
8. The gyratory crusher (1) according to claim 7, wherein the annular dust seal (10) is engaged with said outer sidewall (52) of the dust bonnet (9).
9. The gyratory crusher (1) according to claim 7, wherein the annular dust seal (10) is provided within the mainshaft assembly (2) by a dust seal cover (51).
10. The gyratory crusher (1) according to claim 7, wherein the annular dust seal (10) comprises a lower radially-inner chamfer (50).
11. The gyratory crusher (1) according to claim 1, wherein the dust bonnet (9) comprises an upper radially-outer chamfer (49).
12. The gyratory crusher (1) according to claim 1, further comprising one or more annular oil seals (53) configured to surround the lower mainshaft (26) of the mainshaft assembly (2).
13. The gyratory crusher (1) according to claim 12 wherein if the counterweight (13) is employed, the counterweight is configured to be positioned below the one or more annular oil seals (53).
14. The gyratory crusher (1) according to claim 1, further comprising an oil seal cavity (54).
15. The gyratory crusher (1) according to claim 14, wherein the oil seal cavity (54) is provided below the plurality of guides (15).
16. The gyratory crusher (1) according to claim 14, wherein the oil seal cavity (54) is provided within the dust bonnet (9).
17. The gyratory crusher (1) according to claim 14, wherein if the counterweight (13) is employed, the counterweight is configured to be positioned below the oil seal cavity (54).
18. The gyratory crusher (1) according to claim 1, wherein if the end plate (32) is employed, the end plate (32) comprises an upper annular lip (38) surrounding an upper projection (45).
19. The gyratory crusher (1) according to claim 18, wherein the upper annular lip (38) is configured to be received within said recess (46) provided in the lower mainshaft (26) of the mainshaft assembly (2).
20. The gyratory crusher (1) according to claim 1, further comprising projections (42) on the underside of the counterweight (13) if the counterweight (13) is employed.
21. The gyratory crusher (1) according to claim 1, further comprising mounting holes (43) extending through the counterweight (13) if the counterweight (13) is employed.
22. The gyratory crusher (1) according to claim 1, further comprising at least one mounting hole (43) passing through a projection (42) on the underside of the counterweight (13).
23. The gyratory crusher (1) according to claim 1, wherein each guiding surface (15) is removable.
24. The gyratory crusher (1) according to claim 1, wherein each guiding surface (15) comprises a material which is different from the dust bonnet (9).
25. The gyratory crusher (1) according to claim 1, wherein the dust bonnet (9) comprises guide mounts (14) configured to support said guides (15).
26. The gyratory crusher (1) according to claim 25, wherein each of the guides (15) are removably affixed to one of the guide mounts (14) with one or more fasteners (16, 24).
27. The gyratory crusher (1) according to claim 25, wherein guide mounts (14) each comprise side rails (21).
28. The gyratory crusher (1) according to claim 1, wherein the dust bonnet (9) comprises a lower sidewall (23) extending radially inwardly with respect to an inner sidewall (22).
29. The gyratory crusher (1) according to claim 28, wherein the lower sidewall (23) forms an inner annular lip or inner annular flange proximate a lower portion of the dust bonnet (9).
Description
BRIEF SUMMARY OF THE DRAWINGS
(1) To complement the description which is being made, and for the purpose of aiding to better understand the features of the invention, a set of drawings illustrating new and novel methods and apparatus for assisting self-centering and alignment during mainshaft assembly 2 installation is attached to the present specification as an integral part thereof, in which the following has been depicted with an illustrative and non-limiting character. It should be understood that like reference numbers used in the drawings (if any are used) may identify like components.
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(15) Prior art
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(20) In the following, the invention will be described in more detail with reference to drawings in conjunction with exemplary embodiments.
DETAILED DESCRIPTION
(21) While the present invention has been described herein using exemplary embodiments of a gyratory crusher 1 and method of assembling the same, it should be understood that numerous variations and adaptations will be apparent to those of ordinary skill in the field from the teachings provided herein.
(22) The detailed embodiments shown and described in the text and figures should not be construed as limiting in scope; rather, all provided embodiments should be considered to be exemplary in nature. Accordingly, this invention is only limited by the appended claims.
(23) The inventors have recognized a novel and heretofore unappreciated gyratory crusher 1 which includes features which are configured to assist centering of a mainshaft assembly 2 upon the introduction of the same, without limitation. For example, novel features described herein are configured to promote self-centering and/or self-aligning when lowering a portion (e.g., lower mainshaft 26) of the mainshaft assembly 2 into a liner 12 of an eccentric 11, without limitation.
(24) When a component of the gyratory crusher 1 is worn (including, but not limited to, an eccentric liner 12, mantle 7, dust seal 10, lower mainshaft 26, concave 8, or other component), a spider 6 may be removed from the gyratory crusher 1 and the mainshaft assembly 2 removed by lifting the mainshaft assembly 2 upwardly from the gyratory crusher 1 via an overhead crane. The mainshaft assembly 2 may need to be removed completely from the gyratory crusher 1 to replace a mantle 7 thereon, or, to gain access to replace portions of concave 8 which have worn.
(25) Turning now to
(26) The gyratory crusher 1 may further comprise a mainframe which may include a lower top shell 3, a bottom shell 4, and a top shell 5, without limitation. Any two or more of the shell portions 3, 4, 5 may be made integral with each other, without limitation. A spider 6 may span a top opening as shown. A concave 8 (e.g., inner crushing surface liner) may protect the inner portions of the mainframe. The mainshaft assembly 2 may be received within a liner 12 of an eccentric 11. An annular dust bonnet 9 may be provided around the mainshaft assembly 2, and an annular dust seal 10 may be provided around an outer surface of the dust bonnet 9. A counterweight 13 may be affixed to an upper portion of eccentric 11 and/or eccentric liner 12. The counterweight 13 may comprise a non-annular arcuate shape (e.g., a C shape), as shown, without limitation.
(27) As exemplified in
(28) As depicted in
(29) The guide mounts 14 may be configured with an integrally-formed guide surface or, as shown, may be configured to receive one or more separable guides 15. Each guide 15 may comprise, for instance, a replaceable wear surface or liner, without limitation. Guides 15 may comprise a bearing material such as bronze or a polymer, without limitation.
(30) In the particular exemplary, non-limiting embodiment shown (most clear from
(31) To better support a guide 15 from lateral forces and/or side loading (e.g., tangential forces within dust bonnet 9) caused during mainshaft assembly 2 insertion, one or more side rails 21 protruding from inclined base surface 20 may be provided on either or both sides of the guide(s) 15 as shown. The side rails 21 may project radially inwardly from guide mount 14 with respect to the dust bonnet 9, and may extend along guide mount 14 at an angle between inner 22 and lower 23 sidewalls. The side rails 21 may extend generally perpendicularly from the inclined base surface 20, without limitation.
(32) Each guide 15 may comprise one or more apertures 16 (e.g., one or more countersunk recesses) for receiving one or more respective fasteners 25 as depicted. An aperture 16 described herein may be sized and shaped to complimentarily receive a head of a fastener 25 as shown, and/or configured such that the fastener 25 does not protrude past an outer guide surface of a guide 15, without limitation.
(33) One or more side apertures 17 may be provided transversely to a separable or integral guide 15 as shown, and these may serve to receive one or more respective side pins 24 for temporarily or permanently securing a guide 15 to a guide mount 14, without limitation. Side pins 24 may extend entirely through guide mount 14, or partially into each guide 15 as shown. Side pins 24 may comprise roll pins, rollers, screws or other type of fastener which are pressed screwed into, or otherwise received through a side rail 21 and guide 15, without limitation. Guide mounts 14 may also comprise one or more side apertures 19 to receive the side pins 24 as shown, without limitation. As shown in the particular embodiment, side pins 24 may intersect apertures 16 so as to serve as set screws against fasteners 25, or other locking features without limitation. As shown, side pins 24 may extend through side rails 21.
(34) One or more mounting holes 18 may be provided to each guide mount 14 for receiving fasteners 25 (e.g., a fastener 25 extending through guide 15 and received within aperture 16).
(35) Turning now to
(36) As exemplified in
(37) A lower side of the bottom plate 32 may comprise a number of radial oil grooves 33 and/or one or more annular oil grooves 34 may be provided on its bottom surface, without limitation. The grooves 33, 34, may assist with the holding and channeling of oil between the end plate 32 and thrust bearing 48 thereby facilitating lubrication. The radial oil grooves 33 may be interrupted along a radial line as shown, so as to form a plurality of staggered arcuate block projections 55. The staggered arcuate block projections 55 may form a circular tile mosaic pattern as illustrated. The radial 33 and annular 34 oil grooves may be interconnected such that they collectively form a tortuous path for oil to move, thereby improving upon the rose pattern shown in
(38) A central pocket 35 may be provided to the lower side of the end plate 32 for receiving a fastener 30 for securing the end plate 32 to the lower mainshaft 26. However, it is conceived that a pattern of spaced pockets (centrally-disposed or not) may be provided and arranged within end plate 32 in order to provide means for securing the end plate 32 to the lower mainshaft 26.
(39) As suggested in the particular non-limiting embodiment shown, the fastener 30 may comprise a bolt or threaded pin, without limitation. The fastener 30 may, as shown in
(40) Another feature which may be employed to the end plate 32 is a lower alignment chamfer 36 (e.g., a frustoconical taper or lead-in surface). The lower alignment chamfer 36 may match the taper angle of an upper alignment chamfer 27 of the lower annular projection 28 as shown. A lower annular edge of the upper alignment chamfer 27 may abut or meet with an upper annular edge of the upper annular lip 38, as shown. Surfaces of the upper alignment chamfer 27 and lower alignment chamfer 36 may be flush with one another, collectively continuous, or generally follow the same outer chamfer taper anglethereby creating a smooth homogeneous transition between lower mainshaft 26 and end plate 32.
(41) To prevent relative movement between end plate 32 and lower mainshaft 26, mating surfaces between upper annular lip 38 and lower annular projection 28 may be interlocking (e.g., undulating, scalloped, undulating), without limitation. Moreover, the outer surface of upper projection 45 and inner surface of lower annular projection 28 can be complimentary splined surfaces, without limitation. However, as shown, in some embodiments, rotation of end plate 32 with respect to lower mainshaft 26 may be discouraged or prevented by providing one or more alignment pins 44 to bottom surface 29 such that they protrude into respective alignment holes 40. In this regard, upper projection 45 can be prevented from spinning within lower annular projection 28 during operation, which could cause loosening of fasteners 30, 31 attaching the end plate 32 to the lower mainshaft 26.
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(43) Turning now to
(44) The alignment chamfer 41 may, as shown, be provided to an inner concave portion of the counterweight, such that the counterweight 13 is generally narrower in width adjacent an upper part of the counterweight 13 and generally wider in width adjacent a lower part of the counterweight 13.
(45) In some embodiments, a number of projections 42 may be provided to a lower face of the counterweight 13 (
(46) Turning now to
(47) Upon even further lowering of mainshaft assembly 2, the smooth lead-in taper collectively formed by the flush lower alignment chamfers 27, 36 subsequently presents itself to the alignment chamfer 41 of counterweight 13. One or both of lower alignment chamfers 27, 36 may ride against surfaces of alignment chamfer 41 to supplementally finish guiding the lower mainshaft 26 into the eccentric 11 (e.g., into a liner 11 disposed therein), without limitation.
(48) Synergistic combinations of features 15, 27, 36, 41, 49, 50, disclosed herein may contribute to a greater self-aligning/self-centering effect.
(49) The disclosure of every patent, patent application, and publication cited, listed, named, or mentioned herein is hereby incorporated by reference in its entirety, for any and all purposes, as if fully set forth herein.
(50) While this subject matter has been disclosed with reference to specific embodiments, it is apparent that other embodiments and variations can be devised by others skilled in the art without departing from the true spirit and scope of the subject matter described herein. The appended claims may include some, but not all of such embodiments and equivalent variations.
(51) For example, it is envisaged that in some embodiments, an eccentric liner 12 may be entirely optional. The eccentric liner 12 may be omitted from the eccentric 11 (wherein the bore 56 and/or inner diameter 57 may be formed directly through the body of eccentric 11). Or, an eccentric liner 12 may be provided as an integral surface portion of eccentric 11. The eccentric liner 12 and eccentric 11 may be, in some embodiments, provided as a monolithic unitary structure and may be inseparable from each other, without limitation. The eccentric liner 12 and eccentric may also be provided as separable parts which have a clearance fit or press fit between them. Accordingly, where it is used herein and in the claims, the terms bore 56 and inside diameter 57 may relate to an opening through an eccentric 11 or its liner 12whichever is smaller in diameter, configured to receive the lower mainshaft 26, and/or which comprises the bearing surfaces designed to abut, envelope, or constrain lateral movement of the outer peripheral diametrical surface of lower mainshaft 26, without limitation.
(52) As yet another example, it should be further understood that where it is used herein and in the claims, the term guide 15 may refer to a separable guide structure that is removably affixed or mounted to a separate guide mount 14 as depicted in the figures; or, it may broadly refer to or encompass any structure connected to, integral with, attached to, or extending from the inner surface 22 of the dust bonnet 9 which is adequately configured to help concentrically align a lower mainshaft 26 of the mainshaft assembly 2 with one or more oil seals 53 and/or the inside diameter 57 of bore 56 of the eccentric 11 or its optional liner 12. The term guide 15 may also refer to or encompass any structure connected to, integral with, attached to, or extending from the inner surface 22 of the dust bonnet 9 which is adequately configured to help guide the lower mainshaft 26 into an oil seal(s) 53, eccentric 11, eccentric liner 12, bore 56, and/or inside diameter 57 when the mainshaft assembly 2 is lowered into the gyratory crusher 1, without limitation.
(53) The described embodiments are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is, therefore, indicated and governed only by the appended claims, rather than by the foregoing description. All embodiments which come within the meaning and range of equivalency of the claims are to be embraced within their scope.
(54) A contractor or other entity may provide a gyratory crusher 1 or component(s) thereof as substantially shown and described herein, or, may practice any one or more of the methods or method steps shown and described herein, without limitation. A contractor or other entity may operate a gyratory crusher 1 as shown and described.
(55) A contractor or other entity may fabricate, provide, or install a gyratory crusher 1 as substantially shown and described herein, and this may include conversion of an existing gyratory crusher to provide a gyratory crusher 1 configured to improve mainshaft self-alignment during installation. A contractor or other entity may receive a bid request for a project related to designing, fabricating, delivering, installing, operating, or performing maintenance on a gyratory crusher, or, for providing a component thereof as substantially described herein, with the intention or purpose of converting an existing gyratory crusher to one incorporating the inventive features, concepts, and associated advantages described herein. A contractor or other entity may offer to design such a gyratory crusher 1 or component thereof, for a client. A contractor or other entity may subcontract or facilitate the fabrication, delivery, sale, and/or installation of any component(s) of the gyratory crusher disclosed.
(56) The contractor or other entity may also maintain, modify, retrofit, or upgrade a gyratory crusher (or one or more components thereof) in order to produce a gyratory crusher 1 as shown and described. The contractor or other entity may provide such maintenance or modifications by subcontracting such services or by directly providing those services or components needed for said maintenance, modifications, retrofit, or upgrades. In some cases, the contractor or other entity may modify an existing gyratory crusher by virtue of provision of a retrofit kit to arrive at a modified gyratory crusher 1 comprising any number of the components described herein, or one or more of the inventive method steps, design features, devices, or inventive concepts discussed herein.
(57) Although the invention has been described in terms of particular embodiments and applications, one of ordinary skill in the art, in light of this teaching, can generate additional embodiments and modifications without departing from the spirit of or exceeding the scope of the claimed invention.
REFERENCE NUMERAL IDENTIFIERS
(58) 1. Gyratory crusher 2. Mainshaft assembly 3. Lower top shell 4. Bottom shell 5. Top shell 6. Spider 7. Mantle (e.g., outer crushing surface liner) 8. Concave (e.g., inner crushing surface liner) 9. Dust bonnet 10. Dust seal 11. Eccentric 12. Eccentric liner (e.g., bushing) 13. Counterweight 14. Guide mount 15. Guide (e.g., replaceable wear surface or liner) 15. Guiding surface 16. Aperture (e.g., countersunk recess) 17. Side aperture 18. Mounting hole 19. Side aperture 20. Inclined base surface 21. Side rails 22. Inner sidewall 23. Lower sidewall 24. Side pin 25. Fastener (e.g., machine screw, bolt) 26. Lower mainshaft 27. Lower alignment chamfer (of lower mainshaft 26) 28. Lower annular projection 29. Bottom surface 30. Fastener (e.g., bolt, threaded pin, threaded protrusion) 31. Fastening nut (or head of bolt 30) 32. Bottom plate 33. Radial oil groove(s) 34. Annular oil groove(s) 35. Central pocket 36. Lower alignment chamfer (of bottom plate 32) 37. Bore (e.g. threaded) 38. Upper annular lip 39. Mounting hole 40. Alignment hole 41. Alignment chamfer 42. Projections 43. Mounting holes 44. Alignment pin 45. Upper projection 46. Recess 47. Lift hook 48. Thrust bearing 49. Upper radially-outer chamfer (of dust bonnet 9) 50. Lower radially-inner chamfer (of dust seal 10) 51. Dust seal cover 52. Outer sidewall (of dust bonnet 9) 53. Oil seal(s) 54. Oil seal cavity 55. Staggered arcuate block projections (forming circular tile mosaic pattern) 56. Bore (of eccentric 11 or optional eccentric liner 12) 57. Inside diameter of (of bore 56) 58. Angle (e.g., between guiding surface 15 and inner sidewall 22, between radially-inner surface of guide mount 14 and inner sidewall 22) 59. Hydraulic cylinder 60. Top annular edge (of end plate 32)