The present invention relates to the field of mining machines, and particularly to a roll sizer for breaking apart and crushing mined material.
Conventional mining roll sizers include a pair of parallel counter-rotating roll assemblies positioned within a crushing chamber. The shafts include a series of picks arranged along the surface. As the roll assemblies rotate, the picks engage material that is fed into the crushing chamber, breaking the material apart until it is small enough to pass around the rolls. During normal operation, it is possible for the chamber to receive a tramp material, which is a very hard, dense material. The picks are unable to break apart the tramp material and pass it through the crushing chamber, causing the rolls to bind and one or more picks to break. This requires the roll sizer to be shut down so that the tramp can be removed and any necessary repairs be made to the roll assemblies.
In one embodiment, the invention provides a moveable shaft assembly includes a frame, a first shaft, and a first drive assembly. The frame includes a first support wall and a second support wall opposite the first support wall. The first shaft includes a drive end and a support end and defines a first axis therebetween. The first shaft extends between the first support wall and the second support wall. The first drive assembly rotates the first shaft about the first axis, and the first drive assembly is coupled to the drive end of the first shaft. The first shaft and first drive assembly are moveable relative to the frame in response to a reaction force acting on the first shaft in a direction oblique or transverse to the first axis.
In another embodiment, the invention provides a roll sizer for a mining crusher, the roll sizer including a frame, a first mobile shaft support, a second mobile shaft support, a first shaft, and at least one actuator. The frame includes a first support wall and a second support wall. The first support wall includes a first shaft track, and the second support wall includes a second shaft track parallel to the first shaft track. The first mobile shaft support moveably engages the first shaft track. The second mobile shaft support moveably engages the second shaft track. The first shaft includes a drive end and a support end and defines a first axis therebetween. The drive end is coupled to a first gear drive for rotating the first shaft about the first axis. The first shaft extends from the first support wall to the second support wall, and is rotatably supported by the first mobile shaft support and the second mobile shaft support. The at least one actuator applies a force to move the first and second mobile shaft supports along the first and second shaft support tracks, respectively. The first drive assembly moves in a direction parallel to the mobile shaft supports while coupled to the first shaft.
In yet another embodiment, the invention provides a method for adjusting a shaft spacing in a roll sizer. The method includes: providing a first shaft defining a first axis and a second shaft defining a second axis parallel to the first axis, the first shaft being rotatable about the first axis; providing a drive assembly coupled to the first shaft for rotating the first shaft; sensing the forces acting on the first shaft; and operating an actuator to provide a force to move the first shaft from a position that is a first distance from the second shaft to a position that is a second distance from the second shaft, the second distance being greater than the first distance, wherein the drive assembly moves with the first shaft.
Other aspects of the invention will become apparent by consideration of the detailed description and accompanying drawings.
Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. Use of “including” and “comprising” and variations thereof as used herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Use of “consisting of” and variations thereof as used herein is meant to encompass only the items listed thereafter and equivalents thereof Unless specified or limited otherwise, the terms “mounted,” “connected,” “supported,” and “coupled” and variations thereof are used broadly and encompass both direct and indirect mountings, connections, supports, and couplings.
Although the invention is described below as it relates to a roll sizer, it is important to note that the invention is also applicable to conveyors having a moveable shaft or other devices having a drive shaft that is moveable in response to a force.
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The second roll assembly 26 is positioned substantially within the interior chamber 54 and parallel to the first shaft 88. The second roll assembly 26 includes a second shaft 108 having a drive end 110 and a support end 114 opposite the drive end 110. The second roll assembly 26 also includes a crushing portion 118 coupled to the second shaft 108. The second shaft 108 defines a second axis 122 between the drive end 110 and the support end 114. The drive end 110 extends through the second support wall 66 and is coupled to the second drive assembly 42 for rotating the second roll assembly 26. The drive end 110 is rotatably supported by a second stationary shaft support 78b. The support end 114 extends through the first support wall 66 and is rotatably supported by a first stationary shaft support 78a. In one embodiment, the stationary shaft supports 78a, 78b include a tapered roller bearing for rotatably supporting the second shaft 108. In other embodiments, another type of bearing may be used. The crushing portion 118 is located within the interior chamber 54 and includes multiple picks 126 that are oriented to point in the direction of rotation of the second shaft 26.
The first roll assembly 22 and the second roll assembly 26 are counter-rotating, such that the first roll assembly 22 and the second roll assembly 26 rotate in opposite directions when viewed from a common side. Stated differently, the roll assemblies 22, 26 rotate in opposite directions so that the picks 126 rotate over the top of each roll assembly 22, 26. In the embodiment illustrated in
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In other embodiments, when the rams 162 are extended, the rams 162 contact the mobile shaft supports 74a, 74b to prevent the mobile shaft supports 74a, 74b from moving along the track 86. When the pressure applied on each ram 162 from the contact with the mobile shaft supports 74a, 74b exceeds a given value, the valve is opened and the pressure on the ram 162 is decreased, causing the ram 162 to retract and allowing the mobile shaft supports 74a, 74b to move along the track 86.
During operation of the roll sizer 10, the interior chamber 54 receives material from, for example, a conveyor (not shown). Pieces of the material are urged toward a position between the rotating roll assemblies 22 and 26 where the force of the picks 106, 126 converge, breaking apart the pieces to a desirable size. When a hard material, or tramp, is introduced into the interior chamber 54, the tramp material resists the breaking force of the picks 106, 124. This creates reaction forces on each roll assembly 22, 26, acting in a direction that is either oblique or transverse to each axis 102, 122. As used herein, the term “oblique” refers to a direction that is neither parallel nor perpendicular to either axis 102, 122. As used herein, the term “transverse” refers to a direction that is perpendicular to either axis 102, 122. The reaction forces press the mobile shaft supports 74a, 74b against the hydraulic rams 162, increasing the hydraulic pressure acting against the ram 162. The pressure sensor detects the pressure increase, and sends an electrical signal to a controller to open the valve and reduce pressure on the ram 162. This allows the rams 162 to retract, allowing the tramp material to pass through the roll assemblies 22, 26. In an alternative embodiment (not shown), the valve may open only by influence of the hydraulic pressure, without the use of an electric sensor.
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In this manner, the first roll assembly 22 moves away from the second roll assembly 26 in a direction parallel to the track 86, increasing the space between the first roll assembly 22 and the second roll assembly 26. This allows the tramp material to pass through the interior chamber 54 without damaging the roll assemblies 22, 26. In one embodiment, the first shaft 88 travels in a first direction parallel to the track 86 through a distance of approximately 12 inches, and travels in a second direction opposite the first direction through a distance of approximately 4 inches. In one embodiment, the first distance 170 is approximately 62 inches, with alternative shaft supports that allow the operator to configure the first distance 170 to be approximately 64 inches, 66 inches, or 68 inches.
Thus, the invention provides, among other things, a moveable shaft assembly for a roll sizer. Various features and advantages of the invention are set forth in the following claims.
Number | Date | Country | |
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61458709 | Nov 2010 | US |