CUTTING ASSEMBLY FOR LONGWALL MINING SYSTEM
A cutting assembly for a mining machine includes a mount configured to move about a first axis relative to a chassis of the mining machine and a ranging arm coupled to the mount. The ranging arm is moveable relative to the mount. The cutting assembly includes a cutting head having a housing coupled to the ranging arm. The housing is moveable relative to the ranging arm. The cutting head includes a drum supported for rotation relative to the housing about a rotational axis, a plurality of cutting bits coupled to the drum, and at least one motor supported by the housing to drive the drum about the rotational axis.
This application is a continuation of U.S. patent application Ser. No. 17/526,382, filed Nov. 15, 2021, which claims the benefit of U.S. Provisional Patent Application No. 63/114,235, filed Nov. 16, 2020. The entire contents of these applications are incorporated herein by reference.
TECHNICAL FIELDThe present disclosure relates to longwall mining systems, and particularly to cutting assemblies for a longwall mining system.
SUMMARYMining systems, such as longwall mining systems, include one or more ranging arms having cutting drums for cutting material from a mine face. In some embodiments, the material is deposited on an armored face conveyor (AFC) and carried away from the mine face.
In one aspect, a cutting assembly for a mining machine includes a mount configured to move about a first axis relative to a chassis of the mining machine and a ranging arm coupled to the mount. The ranging arm is moveable relative to the mount. The cutting assembly includes a cutting head having a housing coupled to the ranging arm. The housing is moveable relative to the ranging arm. The cutting head includes a drum supported for rotation relative to the housing about a rotational axis, a plurality of cutting bits coupled to the drum, and at least one motor supported by the housing to drive the drum about the rotational axis.
In another aspect, a cutting assembly for a mining machine includes a mount configured to move about a first axis relative to a chassis of the mining machine and a cutting head having a housing, a drum rotatably coupled to the housing about a rotational axis, a plurality of cutting bits coupled to the drum, and at least one motor supported by the housing to drive the drum about the rotational axis. The cutting assembly includes a ranging arm coupled to the mount and supporting the cutting head for movement about the first axis.
In yet another aspect, a cutting assembly for a mining machine includes a ranging arm configured to be coupled to a chassis of the mining machine and a cutting head having a housing coupled to the ranging arm, a drum rotatably coupled to the housing about a rotational axis, a plurality of cutting bits coupled to the drum, and at least one motor supported by the housing to drive the drum about the rotational axis. The cutting assembly is configured to include at least four degrees of movement of the drum relative to the chassis.
Other aspects will become apparent by consideration of the detailed description and accompanying drawings.
Before any embodiments are explained in detail, it is to be understood that the disclosure 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 disclosure is capable of supporting other embodiments and being practiced or 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. Terms of degree, such as “substantially,” “about,” “approximately,” etc. are understood by those of ordinary skill to refer to reasonable ranges outside of the given value, for example, general tolerances associated with manufacturing, assembly, and use of the described embodiments.
With continued reference to
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The drive shaft 200 includes a shaft gear 215 engaged with a plurality of first stage planetary gears 220. In the illustrated embodiment, the plurality of first stage planetary gears 220 includes four first stage planetary gears 220. In other embodiments, the plurality of first stage planetary gears 220 can include fewer or more than four first stage planetary gears 220. The illustrated first stage planetary gears 220 are rotatably coupled to a carrier 225. In particular, each first stage planetary gear 220 is coupled to the carrier 225 by a first pin 230 and first planetary roller bearings 235 (
The illustrated carrier 225 is coupled to a compound gear 245 that is positioned around the drive shaft 200 without engaging the drive shaft 200 (
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In operation, the first and second cutting assemblies 15 are moved about the first axis 25 to position the drums 90 of each assembly 15 relative to the mine face 360. For example, the first cutting assembly 15 can be elevated to cut material (e.g., coal or other minerals) from an upper portion of the mine face 360 adjacent the roof 370, while the second cutting assembly 15 can be lowered to cut material from a lower portion of the mine face 360 adjacent the floor 350. Referring again to
In the illustrated embodiment, the powertrain 80 includes a plurality of motors 125 that rotate the drum 90 about the rotational axis 95 through two planetary stages to provide torque to exert a cutting force to cut material from the mine face 360. In other embodiments, the powertrain 80 can be configured differently but still provide torque to exert a cutting force to cut material from the mine face 360. For example, the powertrain 80 can include fewer or more than three motors 125 and/or fewer or more than two planetary stages.
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In operation, the drum and motor assembly 55a rotates about a rotational axis 95a for cutting bit assemblies 100a to cut material from the mine face 360. The drum and motor assembly 55a can also move about the first axis 25a, move about the second axis 385a within the first angular range 395a, move about the third axis 400a within the second angular range 420a, and move about the fourth axis 405a within the third angular range 430a. Accordingly, the drum and motor assembly 55a includes five degrees of movement and can simultaneously or independently move in any combination of the five degrees of movement. In other embodiments, the drum and motor assembly 55a can include at least three degrees of movement (e.g., movement about the first axis 25a, movement about the rotational axis 95a, and movement within one of the first angular range 395a, within the second angular range 420a, or within the third angular range 430a). That is, it is understood that the drum and motor assembly 55a may be constructed with one or two of the three points of articulation illustrated at axis 385a, 400a, and 405a.
With reference to
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Accordingly, the illustrated shearer 10 can adjust an orientation of the drum and motor assembly 55a while the shearer 10 is moving in the first direction 40, the second direction 45, and/or the forward direction 355. Adjusting the orientation of the drum and motor assembly 55a provides greater control of material being cut from the mine face 360. For example, during operation, the track 35 along which the mining machine 10 trams may deviate relative to the direction of advance causing the mining machine 10 to move off of a desired cutting path. Such deviation may cause the mining machine 10 to cut the mine face 360 in an undesirable manner (e.g., nonlinearly as shown in
With reference to
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In operation, the drum and motor assembly 55b rotates about a rotational axis 95b for cutting bit assemblies 100b to cut material from the mine face 360. The drum and motor assembly 55b can also move about the first axis 25b, move along the first axis 25b within the first translational range 485b, and move along the longitudinal axis 410b within the second translational range 495b. Accordingly, the drum and motor assembly 55b includes four degrees of movement while cutting bit assemblies 100b cut into the mine face 360. In other embodiments, the drum and motor assembly 55b can include at least three degrees of movement (e.g., movement about the first axis 25b, movement about the rotational axis 95b, and movement within the first translational range 485b or the second translational range 495b).
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In operation, the drum and motor assembly 55c rotates about a rotational axis 95c for cutting bit assemblies 100c to cut material from the mine face 360. The drum and motor assembly 55c can also move about the first axis 25c, move along the first axis 25c within the translational range 485c, and move about the fourth axis 405c within the angular range 500c . . . . Accordingly, the drum and motor assembly 55 includes four degrees of movement. In other embodiments, the drum and motor assembly 55c can include at least three degrees of movement (e.g., movement about the first axis 25c, movement about the rotational axis 95c, and movement within the translational range 485c or within the angular range 500c).
The drum and motor assembly 55d includes a powertrain 80d supported by a housing 85d and operable to drive a drum 90d about a rotational axis 95d. The illustrated housing 85d supports a single motor 125d (e.g., an electric motor, a hydraulic motor, etc.). In the illustrated embodiment, the powertrain 80d is a four-stage planetary gear train. In other embodiments, the powertrain 80d can include fewer than four planetary stages or more than four planetary stages.
In particular, the motor 125d is coupled to an output pinion 140d that is rotatable about the rotational axis 95d. The output pinion 140d engages a plurality of first stage planetary gears 220d that are coupled to the housing 85d by first pins 230d. In particular, the first stage planetary gears 220d are rotatable about their corresponding first pin 230d via bearings, and the first pins 230d are rotatably fixed about the rotational axis 95d. In addition, the first stage planetary gears 220d are engaged with a first ring gear 502d. The first ring gear 502d is rotatable about the rotational axis 95d.
A plurality of second stage planetary gears 260d are coupled together by a second stage carrier 505d such that the second stage planetary gears 260d and the second stage carrier 505d are rotatable about the rotational axis 95d. The plurality of second stage planetary gears 260d engage the first ring gear 502d and a first portion 240d of the drum 90d. In the illustrated embodiment, the first stage planetary gears 220d and the second stage planetary gears 260d are aligned in a radial direction along the rotational axis 95d. In other embodiments, however, the first stage planetary gears 220d and the second stage planetary gears 260d can be offset along the rotational axis 95d (e.g., a ring gear spans between the first stage planetary gears 220d and the second stage planetary gears 260d). The second stage carrier 505d includes a third stage ring gear portion 510d that engages a plurality of third stage planetary gears 515d. The third stage planetary gears 515d also engage a second portion 285d of the drum 90d. The plurality of third stage planetary gears 515d are coupled together by a third stage carrier 520d such that the third stage planetary gears 515d and the third stage carrier 520d are rotatable about the rotational axis 95d. The third stage carrier 520d includes a fourth stage ring gear portion 525d that engages a plurality of fourth stage planetary gears 530d. The fourth stage planetary gears 530d also engage a third portion 535d of the drum 90d. The plurality of fourth stage planetary gears 530d are coupled together by a fourth stage carrier 540d, and the fourth stage carrier 540d is rotatably fixed about the rotational axis 95d. In particular, the fourth stage planetary gears 530d are rotatable about a corresponding second pin 275d coupled to the fourth stage carrier 540d, and the second pins 275d are rotatably fixed about the rotational axis 95d. As such, the fourth stage planetary gears 530d are also rotatably fixed about the rotational axis 95d.
In operation, the motor 125d drives the output pinion 140d to drive the first stage planetary gears 220d about their respective first pin 230d. In turn, the first ring gear 502d rotates about the rotational axis 95d to drive the second stage planetary gears 260d. The second stage planetary gears 260d then rotate about the rotational axis 95d to also move the third stage ring gear portion 510d about the rotational axis 95d. The third stage ring gear portion 510d drives the third stage planetary gears 515d about the rotational axis 95, which also moves the fourth stage ring gear portion 525d about the rotational axis 95. The fourth stage ring gear portion 525d then rotates the fourth stage planetary gears 530d about their respective second pin 275d. Accordingly, the drum 90d is driven about the rotational axis 95d via engagements of the second stage, third stage, and fourth stage planetary gears 260d, 515d, 530d and the portions 240d, 285d, 535d.
Although certain aspects have been described in detail with reference to certain preferred embodiments, variations and modifications exist within the scope and spirit of one or more independent aspects as described. Various features and advantages of the disclosure are set forth in the following claims.
Claims
1. A cutting assembly for a mining machine, the cutting assembly comprising:
- a mount configured to move about a first axis relative to a chassis of the mining machine;
- a ranging arm coupled to the mount, the ranging arm moveable relative to the mount; and
- a cutting head including, a housing coupled to the ranging arm, the housing moveable relative to the ranging arm, a drum supported for rotation relative to the housing about a rotational axis, a plurality of cutting bits coupled to the drum, and at least one motor supported by the housing to drive the drum about the rotational axis.
2. The cutting assembly of claim 1, wherein the first axis is a first pivot axis, wherein the ranging arm is moveable relative to the mount about a second pivot axis and about a third pivot axis, and wherein the housing is moveable relative to the ranging arm about a fourth pivot axis.
3. The cutting assembly of claim 1, wherein the first axis is a first pivot axis, and wherein the ranging arm is moveable relative to the mount along a first translational axis parallel to the first pivot axis.
4. The cutting assembly of claim 3, wherein the housing is moveable relative to the ranging arm along a second translational axis transverse to the first translational axis.
5. The cutting assembly of claim 3, wherein the housing is moveable relative to the ranging arm about a second pivot axis parallel to the first pivot axis.
6. The cutting assembly of claim 1, wherein the cutting head includes at least two motors supported by the housing.
7. The cutting assembly of claim 1, wherein the cutting head includes at least a four-stage transmission coupled between the at least one motor and the drum to drive the drum about the rotational axis.
8. A cutting assembly for a mining machine, the cutting assembly comprising:
- a mount configured to move about a first axis relative to a chassis of the mining machine;
- a cutting head including, a housing, a drum rotatably coupled to the housing about a rotational axis, a plurality of cutting bits coupled to the drum, and at least one motor supported by the housing to drive the drum about the rotational axis; and
- a ranging arm coupled to the mount and supporting the cutting head for movement about the first axis.
9. The cutting assembly of claim 8, wherein the ranging arm includes a plurality of hollow structural members.
10. The cutting assembly of claim 8, wherein the ranging arm is moveable relative to the mount about a second pivot axis and about a third pivot axis, wherein the second pivot axis is transverse to the third pivot axis, wherein the housing is moveable relative to the ranging arm about a fourth pivot axis, and wherein fourth pivot axis is parallel to the third pivot axis.
11. The cutting assembly of claim 8, wherein the first axis is a first pivot axis, wherein the ranging arm is moveable relative to the mount along a first translational axis, wherein the first translational axis is parallel to the first pivot axis, wherein the housing is moveable relative to the ranging arm along a second translational axis, and wherein the second translational axis is transverse to the first translational axis.
12. The cutting assembly of claim 8, wherein the first axis is a first pivot axis, wherein the ranging arm is moveable relative to the mount along a first translational axis, wherein the first translational axis is parallel to the first pivot axis, wherein the housing is moveable relative to the ranging arm about a second pivot axis, and wherein the second pivot axis is parallel to the first translational axis.
13. The cutting assembly of claim 8, wherein the cutting head includes at least two motors supported by the housing.
14. The cutting assembly of claim 13, wherein the housing supports at least a two-stage planetary transmission between the at least two motors and the drum to drive the drum about the rotational axis.
15. The cutting assembly of claim 8, wherein the cutting head includes a single motor, wherein the housing supports at least a four-stage planetary transmission between the single motor and the drum to drive the drum about the rotational axis.
16. A cutting assembly for a mining machine, the cutting assembly comprising:
- a ranging arm configured to be coupled to a chassis of the mining machine; and
- a cutting head including, a housing coupled to the ranging arm, a drum rotatably coupled to the housing about a rotational axis, a plurality of cutting bits coupled to the drum, and at least one motor supported by the housing to drive the drum about the rotational axis;
- wherein the cutting assembly is configured to include at least four degrees of movement of the drum relative to the chassis.
17. The cutting assembly of claim 16, further comprising a mount coupled to the ranging arm, wherein the mount is configured to move about a first pivot axis relative to the chassis of the mining machine, and wherein the mount enables movement of the drum about the first pivot axis.
18. The cutting assembly of claim 17, wherein the drum is moveable about a second pivot axis relative to the mount, wherein the second pivot axis is defined between a base of the ranging arm and the mount, wherein the drum is moveable about a third pivot axis relative to the mount, wherein the third pivot axis is defined between the base of the ranging arm and a structural member of the ranging arm, wherein the drum is moveable about a fourth pivot axis relative to the mount, and wherein the fourth pivot axis is defined between the structural member of the ranging arm and the housing.
19. The cutting assembly of claim 17, wherein the drum is moveable along a first translational axis relative to the mount, wherein the first translational axis is defined between the ranging arm and the mount, wherein the drum is moveable along a second translational axis relative to the mount, wherein the second translational axis is defined between the ranging arm and the housing.
20. The cutting assembly of claim 17, wherein the drum is moveable along a first translational axis relative to the mount, wherein the first translational axis is defined between the ranging arm and the mount, wherein the drum is moveable about a second pivot axis relative to the mount, wherein the second pivot axis is defined between the ranging arm and the housing.
Type: Application
Filed: Jun 10, 2024
Publication Date: Oct 3, 2024
Inventors: Edward Niederriter (Fryburg, PA), Ian Ruscak (Franklin, PA), Troy Amsler (Shippenville, PA)
Application Number: 18/738,879