Support for drilling and bolting tool
11203933 · 2021-12-21
Assignee
Inventors
Cpc classification
E21D20/003
FIXED CONSTRUCTIONS
E21B7/022
FIXED CONSTRUCTIONS
International classification
B66C23/70
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A boom for supporting a drilling and bolting tool includes a first portion including a first end and a second end, a longitudinal axis extending between the first end and the second end; a second portion including a proximal end and a distal end, the proximal end supported for translational movement relative to the first portion in a direction parallel to the longitudinal axis, the distal end configured to support the drilling and bolting tool; an actuator for moving the second portion relative to the first portion parallel to the longitudinal axis; and a fluid passage for conveying pressurized fluid between the first end of the first portion and the drilling and bolting tool adjacent the distal end of the second portion, the fluid passage positioned within the first portion and the second portion.
Claims
1. A boom for supporting a drilling and bolting tool, the boom comprising: a first portion including a first end and a second end, a longitudinal axis extending between the first end and the second end; a second portion including a proximal end and a distal end, the second portion supported for translational movement relative to the first portion in a direction parallel to the longitudinal axis, the distal end configured to support the drilling and bolting tool; a shaft support including at least one bearing engaging an inner surface of the first portion and supporting the second portion for movement relative to the first portion; an actuator for moving the second portion relative to the first portion in a direction parallel to the longitudinal axis; and a fluid passage for conveying pressurized fluid from the first portion through the second portion, the fluid passage positioned within the first portion and the second portion.
2. The boom of claim 1, further comprising a rotary flow distributor positioned within the first portion and in fluid communication with a fluid source, and wherein the fluid passage includes a plurality of conduits extending between the rotary flow distributor and the distal end of the second portion, the plurality of conduits extending through the shaft support.
3. The boom of claim 1, wherein an inner surface of the first portion has a non-circular cross-section as viewed along the longitudinal axis.
4. The boom of claim 3, wherein the inner surface of the first portion includes at least one substantially planar wall, the at least one substantially planar wall providing a torque-reaction surface.
5. The boom of claim 1, wherein the shaft support includes a body, an inner shaft positioned at least partially within the body, and a piston slidably engaging an outer surface of the inner shaft, movement of the piston relative to the inner shaft driving the inner shaft to rotate about its longitudinal axis relative to the body.
6. The boom of claim 1, further comprising a rotary actuator and flow distributor secured to the distal end of the second portion, the rotary actuator and flow distributor configured to support the drilling and bolting tool for rotational movement about the distal end, the rotary actuator and flow distributor providing fluid communication from the fluid passage to actuate the drilling and bolting tool.
7. The boom of claim 1, further comprising an elongated guide member secured to the first portion and oriented substantially parallel to the longitudinal axis, the guide member engaging the second portion to guide the second portion for movement relative to the first portion.
8. A drilling and bolting device comprising: a tool including a base frame, a feed frame supported for translational movement relative to the base frame, and a rotation unit supported for translational movement relative to the base frame and the feed frame; and a boom including, a first portion including a first end configured to be coupled to a machine frame and a second end, a longitudinal axis extending between the first end and the second end, a second portion including a proximal end and a distal end, at least a portion of the second portion positioned within the first portion and supported for translational movement relative to the first portion in a direction parallel to the longitudinal axis, the distal end supporting the drilling and bolting tool for rotational movement about an axis of the second portion, an actuator for moving the second portion relative to the first portion in the direction parallel to the longitudinal axis, and a fluid passage including a plurality of conduits for conveying pressurized fluid from a fluid source supported on the machine frame through the boom to actuate the tool, the plurality of conduits extending between the first end of the first portion to the distal end of the second portion and enclosed within the first portion and the second portion.
9. The drilling and bolting device of claim 8, further comprising a rotary actuator and flow distributor secured to the distal end of the second portion and supporting the tool.
10. The drilling and bolting device of claim 8, further comprising an elongated guide member secured to the first portion and oriented substantially parallel to the longitudinal axis, the guide member engaging the second portion to guide the second portion for movement relative to the first portion.
11. The drilling and bolting device of claim 10, further comprising one or more electrical wires providing electrical power and communication to the tool; and a slip ring maintaining electrical communication for the electrical wires as the second portion is moved relative to the first portion about the longitudinal axis.
12. The drilling and bolting device of claim 10, wherein the first portion and the second portion have a circular cross-sectional profile.
13. The drilling and bolting device of claim 8, wherein the actuator includes a threaded shaft oriented substantially parallel to the longitudinal axis, the actuator further including a coupler threadably engaging the threaded shaft and coupled to the second portion, rotation of one of the threaded shaft and the coupler causing the coupler to move along the threaded shaft, thereby moving the second portion in a direction parallel to the longitudinal axis.
14. The drilling and bolting device of claim 8, wherein the second portion includes an elongated shaft and a shaft support, the shaft support including at least one bearing engaging an inner surface of the first portion and supporting the elongated shaft relative to the first portion.
15. The drilling and bolting device of claim 14, further comprising a rotary flow distributor positioned within the first portion and in fluid communication with a fluid source, and wherein the plurality of conduits extend between the rotary flow distributor and the distal end of the second portion, the plurality of conduits extending through the shaft support and the elongated shaft.
16. A boom for supporting a drilling and bolting tool, the boom comprising: a first portion including a first end and a second end, a longitudinal axis extending between the first end and the second end; a second portion including a proximal end and a distal end, the second portion supported for translational movement relative to the first portion in a direction parallel to the longitudinal axis, the second portion including an elongated shaft and a shaft support, the elongated shaft supported for rotation relative to the first portion, the distal end configured to support the drilling and bolting tool, the second portion at least partially positioned within the first position; an actuator for moving the second portion relative to the first portion parallel to the longitudinal axis, the actuator positioned within the first portion; a rotary flow distributor positioned within the first portion and in fluid communication with a fluid source; and a fluid passage extending through the first portion and the second portion including a plurality of conduits extending between the rotary flow distributor and the distal end of the second portion and through the shaft support and the elongated shaft to convey pressurized fluid to actuate the tool.
17. The boom of claim 16, further comprising a rotary actuator and flow distributor secured to the distal end of the second portion, the rotary actuator and flow distributor configured to support the drilling and bolting tool.
18. The boom of claim 16, wherein the actuator includes a threaded shaft oriented substantially parallel to the longitudinal axis and a coupler threadably engaging the threaded shaft and coupled to the second portion, rotation of one of the threaded shaft and the coupler causing the coupler to move along the threaded shaft, thereby moving the second portion in a direction parallel to the longitudinal axis.
19. The boom of claim 16, wherein an inner surface of the first portion includes at least one substantially planar wall providing a torque-reaction surface.
20. The boom of claim 16, wherein the actuator includes an elongated guide member secured to the first portion and oriented substantially parallel to the longitudinal axis, the guide member engaging the second portion to guide the second portion for movement relative to the first portion.
21. The boom of claim 16, further comprising a chain including a plurality of interconnected links, the chain forming a hollow passage; and a fluid conduit for conveying fluid between an outlet of the rotary actuator and flow distributor and the drilling and bolting tool, the fluid conduit at least partially positioned in the hollow passage.
22. The boom of claim 16, further comprising a support bracket supporting the first end of the first portion for pivoting movement, a first rotary flow distributor permitting transfer of fluid while the first portion is pivoted about a first pivot axis; a second rotary flow distributor permitting transfer of fluid while the first portion is pivoted about a second pivot axis oriented perpendicular to the first pivot axis; a third rotary flow distributor permitting transfer of fluid while the first portion is pivoted about a third pivot axis oriented perpendicular to the first pivot axis and the second pivot axis.
23. The boom of claim 16, further comprising one or more electrical wires providing electrical power and communication to the drilling and bolting tool; and a slip ring maintaining electrical communication for the electrical wires as the second portion is moved relative to the first portion about the longitudinal axis.
24. The boom of claim 16, wherein the first portion and the second portion have a circular cross-sectional profile.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(25) 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 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.
(26) In addition, it should be understood that embodiments of the invention may include hardware, software, and electronic components or modules that, for purposes of discussion, may be illustrated and described as if the majority of the components were implemented solely in hardware. However, one of ordinary skill in the art, and based on a reading of this detailed description, would recognize that, in at least one embodiment, aspects of the invention may be implemented in software (for example, stored on non-transitory computer-readable medium) executable by one or more processing units, such as a microprocessor, an application specific integrated circuits (“ASICs”), or another electronic device. As such, it should be noted that a plurality of hardware and software based devices, as well as a plurality of different structural components may be utilized to implement the invention. For example, “controllers” described in the specification may include one or more electronic processors or processing units, one or more computer-readable medium modules, one or more input/output interfaces, and various connections (for example, a system bus) connecting the components.
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(28) As shown in
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(30) Referring to
(31) As shown in
(32) As shown in
(33) A piston 124 is coupled to an outer surface of the inner portion 134. The piston 124 is slidable relative to the inner portion 134. In the illustrated embodiment, the piston 124 engages a helical spline on the outer surface of the inner portion 134. When the piston 124 is actuated (e.g., by pressurized fluid) to move or translate toward one end of the shaft support 102, the piston 124 moves relative to the inner portion 134 and the helical spline engagement between the piston 124 and the inner portion 134 causes the inner portion 134 and the shaft 46 (
(34) Referring again to
(35) Referring now to
(36) The shaft support 102 includes a keyway or slot 166 (
(37) In addition, the conduits and wires pass through the shaft support 102 and the shaft 46 and are in communication with the combined rotary actuator and flow distributor 82 at the distal end 74 of the shaft 46. Stated another way, the bearing 114, the linear actuator 142, and the tubes 130 supporting the conduits and wires are positioned within the housing 42, thereby sealing these components from contamination and protecting them from the surrounding environment. Among other things, the boom 30 does not require external hoses, tubes, cables, or wires, which can get caught or bind (e.g., due to over-rotation) and constrain movement of the boom 30. Also, the bearing 114 and linear actuator 142 are enclosed within the housing 42 and can be positively lubricated, thereby reducing wear on sliding parts.
(38) Referring again to
(39) Furthermore, as shown in
(40) In some embodiments, the boom actuators and the linear actuator 142 are operated by distributed logic and controller area network (CAN) communications. The compact size and weight of the boom 30 permits it to be attached to a machine 10 configured to work in narrow or restrictive tunnels. The boom 30 could be scaled up to permit additional and/or larger fluid and electric lines.
(41) Conventional machines may include one or more pumps dedicated to specific functions (e.g., a percussion or impact function that requires large power input) to permit one or more separate motors and pumps to concurrently operate other functions (e.g., at a lower power input). In contrast, the boom 30 and drill tool 34 of the illustrated embodiment can be operated by distributed hydraulic control. Among other things, the boom 30 may be operated by a single pump, rather than multiple pumps that are dedicated to certain operations of the boom 30 and drill tool 34. As a result, the boom 30 requires a single supply port, permitting the size and weight of the boom 30 to be reduced and increasing the stability and efficiency of the machine 10. In some embodiments, the single pump system may include a pressure compensated valve for the rotation function to isolate the rotation operating pressure to achieve a similar effect to systems that incorporate a secondary pump dedicated to providing the rotation function.
(42) Referring to
(43) The hydraulic system permits the machine 10 and the drill tool 34 to operate more efficiently than conventional drill jumbos, reducing losses caused by, among other things, heat and noise. The machine 10 and can operate more safely and at a lower required power input (and therefore at a lower cost) than conventional drill jumbos. In addition, the system avoids the need for relatively complex variable displacement pumps, which can be susceptible to premature failure (e.g., due to a lack of priming the internal hydraulic signal that brings the pump pressure on-line). Rather, including a fixed displacement pump powered by a variable motor improves system reliability and reduces cost.
(44) In some embodiments, the drill tool 34 is driven by pressurized fluid (e.g., hydraulic fluid), and fluid supply conduits or lines (not shown) are coupled between the boom 30 and the drill tool 34 to supply fluid to the drill tool 34. Referring to
(45) In addition, as shown in
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(48) Although various 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 are set forth in the following claims.