JAW CRUSHER SYSTEMS, METHODS, AND APPARATUS
20230390782 · 2023-12-07
Inventors
Cpc classification
International classification
Abstract
Systems, methods and apparatus are provided for crushing rock. In some embodiments a toggle feature of a jaw crusher is in tension during operation. In some embodiments a lower portion of the moveable jaw moves simultaneously moves closer to the stationary jaw and forward along said first direction. In some embodiments, a direction along which material moves between the moveable and stationary jaws is closer to horizontal than vertical.
Claims
1. A jaw crusher, comprising: first and second sidewalls; an eccentric shaft rotatably supported on said first and second sidewalls; a stationary jaw supported between said first and second sidewalls; a moveable jaw supported on said eccentric shaft; and at least a first link connected to said moveable jaw, said first link defining a minimum gap between said stationary jaw and said moveable jaw, said first link being in tension as material is crushed between said stationary jaw and said moveable jaw.
2. The jaw crusher of claim 1, further comprising: a second link connected to said moveable jaw, said second link disposed on an opposing side of said jaw crusher from said first link.
3. The jaw crusher of claim 2, wherein said second link is operably coupled to said first link at a pivot point.
4. The jaw crusher of claim 3, wherein a position of said pivot point is adjustable.
5. The jaw crusher of claim 3, further comprising a pivot point adjustment assembly, said pivot point adjustment assembly configured to adjust a position of said pivot point.
6. The jaw crusher of claim 5, wherein said pivot point adjustment assembly includes at least a first actuator, wherein extension of said actuator modifies the position of said pivot point.
7. A method for crushing rock with a jaw crusher having a stationary jaw and a moveable jaw, the method comprising: moving aggregate material between the stationary jaw and the moveable jaw along a first direction moving a lower portion of the moveable jaw through a path, wherein said path includes a path portion in which said lower portion simultaneously moves closer to the stationary jaw and forward along said first direction.
8. The method of claim 7, further comprising: by a link, maintaining a minimum gap between said lower portion and said stationary jaw; and crushing material between the moveable jaw and the stationary jaw such that a tension in said link increases.
9. The method of claim 8, further comprising: compressing uncrushable material between the moveable jaw and stationary jaw; and breaking said link such that said moveable jaw is released from said stationary jaw.
10. The method of claim 8, further comprising: by moving said link, adjusting the minimum gap.
11. The method of claim 7, wherein said first direction is closer to horizontal than vertical.
12. The jaw crusher of claim 1, wherein said stationary jaw comprises a crushing face, said crushing face extending along a first direction, wherein said first direction is closer to horizontal than vertical.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION
[0010] Referring to the drawings, wherein like reference numerals designate identical or corresponding parts throughout the several views,
[0011] The sidewalls 110-1, 110-2 optionally cooperate with the moveable and stationary jaws 120, 140 to form both an upper opening O.sub.U configured and disposed to receive aggregate material (e.g., rock, stone, gravel, sand, debris, etc.) and a lower opening O.sub.L configured and disposed to release at least partially crushed aggregate material from the jaw crusher 100. The size of a gap G at the lower opening O.sub.L optionally determines the size of material released from the lower opening; as the size of gap G varies during operation, a given size (e.g., minimum size) of gap G may be referred to in the art as the close-side setting. It should be appreciated that movement of the moveable jaw 120 about eccentric shaft (which is optionally driven by a motor such as an electric motor, not shown, which may drive the shaft via a flywheel, drive belt and/or other apparatus) includes movement toward and away from the stationary jaw 140 so as to crush material trapped between the moveable and stationary jaws.
[0012] In some embodiments, a link 150-1 is optionally pivotally coupled (e.g., at a first end thereof) to the moveable jaw 120. The link 150-1 is optionally pivotally coupled to the moveable jaw 120 via a crossbar 160 mounted to the moveable jaw 120 defining a pivot point 152-1. The link 150-1 is optionally pivotally coupled (e.g., at a second end thereof) to a support 255-1 (e.g., pin, bearing, shaft, etc.) defining a pivot point 154-1. Support 255-1 is optionally disposed on the opposite side of stationary jaw 140 relative to moveable jaw 120. Support 255-1 is optionally disposed outside of the space between sidewalls 110-1, 110-2. In some embodiments, supports 255 are optionally supported (e.g., welded, mounted with fasteners, etc.) with a breaking strength selected such that in the event the support 255 is broken to allow release of the movable jaw upon introduction of uncrushable material.
[0013] In some embodiments, a link 150-2 is optionally pivotally coupled (e.g., at a first end thereof) to the moveable jaw 120. The link 150-2 is optionally pivotally coupled to the moveable jaw 120 via crossbar 160 defining a pivot point 152-2. The link 150-2 is optionally pivotally coupled (e.g., at a second end thereof) to a support 255-2 defining a pivot point 154-2. Support 255-2 is optionally disposed on the opposite side of stationary jaw 140 relative to moveable jaw 120. Support 255-2 is optionally disposed outside of the space between sidewalls 110-1, 110-2.
[0014] Links 150-1, 150-2 are optionally or substantially equal length. Links 150-1, 150-2 are optionally disposed outside of the sidewalls 110-1, 110-2. Crossbar 160 optionally extends through openings 112-1, 112-2 in the sidewalls 110-1, 110-2, respectively. Openings 112-1, 112-2 optionally are optionally configured to permit motion of the crossbar 160 as the moveable jaw 120 moves during operation.
[0015] It should be appreciated that for a given length of links 150-1, 150-2, the position of pivot point 154-1 (which is optionally coaxial with pivot point 154-2) determines the minimum gap G (e.g., close-side setting) during operation.
[0016] Referring to
[0017] It should be appreciated that crushing of material between the moveable and stationary jaws will place the links 150-1, 150-2 in tension. In the event that an uncrushable object (e.g., “tramp” material such as metal or excessively tough aggregate material) enters the jaw crusher 100, the links 150-1 and/or 150-2 optionally break to release the moveable jaw (e.g., such that more catastrophic damage to the jaw crusher 100 is avoided). A toughness and/or cross-sectional dimension of the links 150-1 and/or 150-2 are optionally selected in order to maintain integrity of the links 150 during normal crushing operations but to allow the links 150 to break upon introduction of uncrushable material. In some embodiments, the links 150 are extendable (e.g., incorporates a tension spring and/or hydraulic cylinder) to allow the links to extend upon introduction of uncrushable material.
[0018] In some embodiments, the position of the pivot points 154-1, 154-2 is optionally adjustable (e.g., so as to modify the minimum gap G and/or path P.sub.L). Referring to
[0019] Referring to
[0020] Referring to
[0021] In some embodiments, the jaw crusher 100 has one or more features or functionalities in common with U.S. Pat. No. 6,641,068, incorporated herein by reference. In some embodiments, the jaw crusher 100 has one or more features or functionalities in common with U.S. Pat. No. 9,662,655, incorporated herein by reference. In some embodiments, the crushing faces (e.g., faces of the jaw dies) are optionally curved or arched across the width of the jaw crusher. Additionally or alternatively, in some embodiments the crushing faces have a variety of profiles such as flat, slotted, corrugated etc. Additionally or alternatively, in some embodiments the crushing faces are be tapered (or more narrow width) along the sides thereof, e.g., to allow passage of fines along the sides of the crushing faces.
[0022] In various embodiments, the crusher embodiments described herein may be self-standing and/or may be incorporated in a plant having other equipment thereon (e.g., vibratory screens, vibratory feeders, crushers, impactors, hoppers, conveyors, etc.). The crusher embodiments and/or plant embodiments including such impactor embodiments may be stationary or portable (e.g., supported on skids, tracks, or wheels) according to various embodiments.
[0023] Ranges recited herein are intended to inclusively recite all values and sub-ranges within the range provided in addition to the maximum and minimum range values. Headings used herein are simply for convenience of the reader and are not intended to be understood as limiting or used for any other purpose.
[0024] Although various embodiments have been described above, the details and features of the disclosed embodiments are not intended to be limiting, as many variations and modifications will be readily apparent to those of skill in the art. Accordingly, the scope of the present disclosure is intended to be interpreted broadly and to include all variations and modifications within the scope and spirit of the appended claims and their equivalents. For example, any feature described for one embodiment may be used in any other embodiment.