Modular hoist drum for power shovel
10144622 ยท 2018-12-04
Assignee
Inventors
- Aruna Kinjarapu (Oak Creek, WI, US)
- Robin Varghese (Perumbavoor, IN)
- Sivakumar Subramaniam (Pollachi, IN)
- Tridib K. Das (Franklin, WI, US)
- Joseph A. Rapp (Franklin, WI, US)
- Narendra Thippappa (Bengaluru, IN)
- Gurbachan S. Bumraw (Franklin, WI, US)
Cpc classification
E02F3/50
FIXED CONSTRUCTIONS
E02F9/14
FIXED CONSTRUCTIONS
B66D1/34
PERFORMING OPERATIONS; TRANSPORTING
B66D1/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A modular hoist drum is disclosed for use with a power shovel. The modular hoist drum may have a first outer body, a second outer body, and an anchor body that are hollow and generally cylindrical. The anchor body is connected between the first outer body and the second outer body. The anchor body may include an internal anchor configured to receive a ferrule.
Claims
1. A modular hoist drum, comprising: a first outer body; a second outer body including an end casting coupled to an outer end of the second outer body, the end casting having an outermost diameter substantially equal to an outer diameter of an annular surface of the modular hoist drum and the end casting being adjacently positioned to the outer end of the second outer body such that an outer edge of the end casting and the annular surface of the modular hoist drum create a substantially continuous surface; an anchor body disposed between and connected to each of an inner end of the first outer body and an inner end of the second outer body such that the modular hoist drum is hollow and generally cylindrical; an internal anchor recessed within an outer annular surface of the modular hoist drum the internal anchor includes a flat bottom surface orientated perpendicular to a central axis of the modular hoist drum and non-tangential with the outer annular surface of the modular hoist drum; and at least two retainers formed within the internal anchor that are axially aligned and oppositely positioned across the flat bottom surface from each other, the at least two retainers extend axially inward from an outer curved surface of the anchor body and spaced radially above the flat bottom surface of the internal anchor such that a space is defined within the internal anchor to receive a ferrule.
2. The modular hoist drum of claim 1, wherein the internal anchor further includes the outer curved surface of the anchor body being substantially aligned with the outer annular surface of the modular hoist drum.
3. The modular hoist drum of claim 2, wherein the space of the internal anchor further includes a longitudinal pocket recessed within the outer curved surface of the internal anchor, and wherein the at least two retainers are radially spaced from the flat bottom surface to form a ceiling of the longitudinal pocket.
4. The modular hoist drum of claim 3, wherein the longitudinal pocket includes a pair of concave sidewalls that define an oval cross-sectional shape of the internal anchor within the longitudinal pocket.
5. The modular hoist drum of claim 1, wherein a length of the space within the internal anchor is about 5 times to about 6 times a width of the space within the internal anchor.
6. The modular hoist drum of claim 1, wherein an inner surface of the first outer body and an inner surface of the second outer body are beveled to receive a weld seam.
7. The modular hoist drum of claim 6, wherein an inner annular surface of the first outer body and the second outer body and a curved outer surface of the anchor body are generally continuous.
8. The modular hoist drum of claim 1, further including a plurality of annular grooves formed within an outer axial surface of the first outer body and the second outer body.
9. The modular hoist drum of claim 1, further including: a flange formed at an end of the first outer body and extending radially outward, and wherein the end casting coupled to the outer end of the second outer body includes a hub extending outward in an axial direction from a center thereof.
10. The modular hoist drum of claim 1, wherein an end casting is connected to the first outer body by way of a weld seam, such that the outer annular surface of the modular hoist drum, an edge of the end casting, and the weld seam are generally continuous.
11. The modular hoist drum of claim 1, wherein the anchor body is axially centered within the modular hoist drum.
12. A power shovel, comprising: a machine frame; a boom pivotally connected at a base end to the machine frame; a dipper handle pivotally connected at a midpoint of the boom; a dipper pivotally connected to a distal end of the dipper handle; a rope extending over a distal end of the boom to connect to the distal end of the dipper handle; and a modular hoist drum connected to the machine frame and configured to reel in the rope, the modular hoist drum including: a first outer body; a second outer body including an end casting coupled to an outer end of the second outer body, the end casting having an outermost diameter substantially equal to an outer diameter of an annular surface of the modular hoist drum and the end casting being adjacently positioned to the outer end of the second outer body such that an outer edge of the end casting and the annular surface of the modular hoist drum create a substantially continuous surface; an anchor body disposed between and connected to each of an inner end of the first outer body and an inner end of the second outer body such that the modular hoist drum is hollow and generally cylindrical; an internal anchor recessed within an outer annular surface of the modular hoist drum, the internal anchor includes a flat bottom surface orientated perpendicular to a central axis of the modular hoist drum and non-tangential with the outer annular surface of the hoist drum; and at least two retainers formed within the internal anchor that are axially aligned and oppositely positioned across the flat bottom surface from each other, the at least two retainers extend axially inward from an outer curved surface of the anchor body and spaced radially above the flat bottom surface of the internal anchor such that a space is defined within the internal anchor to receive a ferrule; a plurality of annular grooves formed within the outer annular surface of the modular hoist drum; a hub extending outward in an axial direction from a center of the end casting; and a flange formed at an end of the first outer body and extending radially outward.
13. The power shovel of claim 12, wherein the internal anchor includes the outer curved surface of the anchor body being substantially aligned with the outer annular surface of the modular hoist drum.
14. The power shovel of claim 12, wherein an inner surface of the first outer body and an inner surface of the second outer body are beveled to receive a weld seam.
15. The power shovel of claim 12, wherein the space of the internal anchor further includes a longitudinal pocket recessed within an outer curved surface of the internal anchor, and wherein the at least two retainers are radially spaced from the flat bottom surface to form a ceiling of the longitudinal pocket.
16. The power shovel of claim 15, wherein the longitudinal pocket includes a pair of opposing concave sidewalls that define an oval cross-sectional shape of the internal anchor within the longitudinal pocket.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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(7) Crawler 12 may be a structural unit that supports movements of machine 10. In the disclosed exemplary application, crawler 12 is itself movable, having one or more traction devices such as feet, tracks, and/or wheels that are driven to propel the machine 10 over a work surface 24. In other applications, however, crawler 12 may be a stationary platform configured for direct engagement with work surface 24.
(8) Frame 14 may pivot relative to crawler 12 about a vertical axis 26. As frame 14 is pivoted about vertical axis 26, attached gantry 16, boom 18, dipper handle 20, and tool 22 may likewise pivot to change a radial engagement angle of tool 22 with work surface 24. In the exemplary embodiment of
(9) Gantry 16 may be a structural frame, for example a general A-shaped frame, which is configured to anchor one or more static cables 30 to frame 14. Gantry 16 may extend from frame 14 in a vertical direction away from crawler 12. Gantry 16 may be located rearward of boom 18 relative to tool 22 and, in the disclosed exemplary embodiment, fixed in a single orientation and position. Cables 30 may extend from an apex of gantry 16 to a distal end of boom 18, thereby transferring a weight of boom 18, tool 22, and a load contained within tool 22 into frame 14.
(10) Boom 18 may be pivotally connected at a base end to frame 14, and constrained at a desired vertical angle relative to work surface 24 by cables 30. Additional cables or wire ropes (ropes) 32 may extend from hoist drum 29 over a first pulley mechanism 34 located at the distal end of boom 18 and around a second pulley mechanism 36 of tool 22. Ropes 32 may be dynamic, and selectively reeled-in and spooled-out by hoist drum 29 to affect the height and angle of tool 22 relative to work surface 24. For example, when ropes 32 are reeled in, the decreasing effective length of ropes 32 may cause tool 22 to rise and tilt backward away from work surface 24. In contrast, when ropes 32 are spooled out, the increasing effective length of ropes 32 may cause tool 22 to lower and tilt forward toward work surface 24.
(11) Dipper handle 20 may be pivotally connected at one end to a general midpoint of boom 18, and at an opposing end to a corner of tool 22 adjacent the second pulley mechanism 36 (e.g., rearward of second pulley mechanism 36). In this position, dipper handle 20 may function to maintain a desired distance of tool 22 away from boom 18 and ensure that tool 22 moves through a desired arc as ropes 32 are reeled in and spooled out. In the disclosed embodiment, dipper handle 20 may be connected to boom 18 at a location closer to the base end of boom 18, although other configurations are also possible. In some configurations, dipper handle 20 may be provided with a crowd cylinder (not shown) that functions to extend or retract the dipper handle 20. In this manner, the distance between tool 22 and boom 18 (as well as the arcuate trajectory of tool 22) may be adjusted.
(12) The hoist drum 29 may be rotatably mounted within a pedestal 38 that is fixedly connected to frame 14, and operatively connected to power source 28 via a gear train (not shown). As shown in
(13) An opposing and second end 48 of the hoist drum 29 may include a hub 50 that rests inside a bearing of pedestal 38. The hoist drum 29 may have a central axis X that passes through flange 46, hub 50, and an outer annular surface 52. A plurality of annular cable grooves 54 may be formed within outer annular surface 52. Annular cable grooves 54 may spiral around the hoist drum 29 and be configured to receive and guide ropes 32 (referring to
(14) Hub 50 may be an integral part of an end casting 56 that is welded to the hoist drum 29. In particular, end casting 56 may have an outer diameter that is about the same (e.g., within manufacturing tolerances) as an outer diameter of annular surface 52 of the hoist drum 29, and end casting 56 may butt up against a second end 48 of the second outer body 42. In one configuration, outer annular surface 52 and an outer edge of end casting 56 may create a substantially continuous surface. Hub 50 may extend axially outward from a center of end casting 56, and one or more holes for lifting (e.g., four equally distributed tapped holes for swivel rings) may be located with an external face of end casting 56 and radially outward of hub 50.
(15) An anchor body 72 can be positioned between the first outer body 40 and the second outer body 42. The anchor body 72 may include internal anchors 74 that can be recessed within outer annular surface 52 of the hoist drum 29 to receive one or more ends of ropes 32. In the disclosed example, two internal anchors 74 are included and each is configured to receive two cable ends (e.g., in opposition to each other). It is contemplated that fewer or more internal anchors 74 may be included, if desired, and each dedicated to holding any number of cable ends. Internal anchor(s) 74 may be generally centered in an axial direction of the hoist drum 29 and, if more than one internal anchor 74 is included, internal anchors 74 may be located symmetrically around the periphery of the hoist drum 29 to improve the balance of the hoist drum 29. For example, when two internal anchors 74 are included, internal anchors 74 may be located opposite each other relative to the hoist drum 29.
(16) Anchor body 72 may be a cast component that is connected between the first outer body 40 and the second outer body 42. The strength of the anchor body 72 enables the exclusion of internal stiffeners across the anchor body 72 inside the hoist drum 29. Weld seams 78 can be located on either side of the anchor body 72 and can connect the anchor body 72 to the first outer body 40 and the second outer body 42. These weld seams 78 may be generally continuous (i.e., within manufacturing tolerances) with arcuate outer surface 76 and outer annular surface 52. The first outer body 40, the second outer body 42, and/or the anchor body 72 may be beveled at weld seams 78 so as to create a channel that receives weld seams 78.
(17) Referring to
(18) One or more fingers or retainers 84 may extend axially inward from arcuate outer surface 76 a distance over bottom surface 82 to retain the associated cable ends (e.g., to retain ferrules that have been brazed to the rope endsnot shown) inside pocket 80, and retainers 84 may function as end-stops or collars for the ferrules. That is, retainers 84 may be spaced radially away from bottom surface 82 to form a ceiling of pocket 80. In the disclosed embodiment, two retainers 84 are included in each internal anchor 74 and centered relative to the length direction of bottom surface 82. Side walls 86 of pocket 80 may be curved outward (e.g., concave) such that a cross-sectional shape of the internal anchor 74 through pocket 80 may be oval (See
INDUSTRIAL APPLICABILITY
(19) The disclosed hoist drum may be used in any power shovel application where component longevity and reliability are desired. The disclosed hoist drum may have improved longevity due to the strength of the modular hoist drum including a strong anchor body and the connection configuration of end casting 56. In addition, welding a more durable anchor body 72 between the first outer body 40 and the second outer body 42 enables the use of an internal anchor 74 without any internal stiffeners across the interior of the hoist drum 29. Finally, the non-tangential configuration of internal anchors 74 may inhibit rotation and the associated premature rope pull out from the ferrule.
(20) It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed power shovel and modular hoist drum. Other embodiments will be apparent to those skilled in the art from consideration of the specification and practice of the disclosed power shovel and hoist drum. It is intended that the specification and example be considered as exemplary only, with a true scope being indicated by the following claims and their equivalents.