Underground processing assembly for mining equipment
By designing underground processing components for mining equipment, and utilizing lifting plates and limiting membrane systems, the orderly storage and flexible adjustment of multiple pipeline sections are achieved, solving the problem of low efficiency in underground pipeline transportation and improving the safety and efficiency of underground operations.
Patent Information
- Application Number
- CN202520171261.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-26
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2035-01-26
AI Technical Summary
Current technologies for underground pipeline transfer are inefficient, requiring repeated transfers of a single section of pipeline, which affects work efficiency and safety.
The design incorporates underground processing components for mining equipment, utilizing lifting plates and limiting membrane systems to achieve orderly storage and flexible adjustment of multiple pipeline sections. Electric telescopic rods control the lifting and jacking of the pipelines, ensuring safe transportation and installation at different heights.
It improves the efficiency of pipeline storage and installation, reduces safety hazards, adapts to the needs of different underground installation environments, and enhances the practicality and applicability of the equipment.
Smart Images

Figure CN223647875U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of mining equipment, especially to the underground processing assembly of mining equipment. BACKGROUND
[0002] In the underground operation environment, the installation and removal work of drainage, compressed air, water supply, air supply and grouting pipeline systems are relatively frequent. These pipeline systems play a crucial role in ensuring the normal development of underground operation. Drainage pipeline can timely remove underground water to ensure the dryness and safety of the operation area; compressed air pipeline provides necessary compressed air for underground equipment and personnel; water supply pipeline ensures the supply of production and living water; air supply pipeline maintains the stable operation of the ventilation system; grouting pipeline plays a key role in related operations. In order to better meet the needs of roadway driving, avoid the obstruction of pipeline to driving, part of the pipeline is installed above the top of the roadway side.
[0003] After searching, the existing patent (publication number: CN216836971U) discloses a "underground pipeline installation and removal lifting device, including an explosion-proof trackless rubber-tyred vehicle for installing and placing the lifting device, the lifting device includes a support platform, the support platform is provided with a telescopic oil cylinder that can horizontally adjust the connecting frame, the connecting frame is provided with a lifting oil cylinder that supports the lifting platform, the lifting platform can place the pipeline, through the application of the underground pipeline installation and removal lifting device, the labor of personnel is reduced, the manpower and installation time are saved, the work efficiency is improved, the difficulty of roadway top pipeline installation and removal is simplified, and the safety hidden danger in the process of installing and removing the pipeline is reduced."
[0004] The inventor found that the prior art has the following problems in the process of implementing the present application: the above-mentioned comparative patent provides an underground pipeline installation and removal lifting device by setting up explosion-proof trackless rubber-tyred vehicle, support platform, telescopic oil cylinder and lifting oil cylinder and other components, but a single pipe is transported, and multiple pipes need to be transported back and forth repeatedly, so the efficiency needs to be improved. Therefore, the underground processing assembly of mining equipment is provided by the person skilled in the art to solve the problems raised in the above background. UTILITY MODEL CONTENTS
[0005] The utility model discloses a mine equipment underground processing assembly which is provided to solve the problems in the prior art, and the assembly can stack multiple pipes between the two partition plates and the two side walls of the box according to actual needs during use, realizing orderly storage. During the lifting process of the lifting plate, the limiting film at the lower end can effectively prevent the pipes from rolling out of the rectangular hole and falling off. The torsional spring can wind the limiting film when the lifting plate is lowered. By controlling the first electric telescopic rod to work, the height of the lifting plate and the pipes can be raised, which facilitates pushing the pipes onto the supporting plate. By controlling the corresponding four of the eight second electric telescopic rods to work and elongate, the supporting plate and the pipes at the upper end thereof can be lifted to a suitable installation position, improving the practicability and applicability of the equipment.
[0006] To achieve the above object, the utility model provides the following technical scheme: a mine equipment underground processing assembly, comprising a transport mechanism and a mounting mechanism, the transport mechanism comprises a box, a rectangular hole is formed in the center of the lower end of the box, the mounting mechanism comprises two support rods, the lower ends of the two support rods are fixedly arranged on the upper end of the box in an axisymmetric manner at the front and rear intermediate positions, the upper ends of the two support rods are fixedly provided with a top plate, the lower end of the top plate is fixedly provided with a first electric telescopic rod at the front and rear positions, the lower ends of the two first electric telescopic rods are fixedly provided with a lifting plate, and the size of the lifting plate is the same as that of the rectangular hole.
[0007] Further, the box is fixedly provided with a supporting leg at the four corner positions in an axisymmetric manner, and brake universal wheels are fixedly arranged at the lower ends of the four supporting legs.
[0008] Further, the box is fixedly provided with a partition plate between the inner surfaces of the front and rear ends in an axisymmetric manner at the positions close to the two sides, and the two partition plates are both provided with a rectangular hole at the lower positions on the two sides.
[0009] Further, the box is fixedly provided with two second electric telescopic rods at the front and rear positions on the upper end in an axisymmetric manner.
[0010] Further, the upper ends of the four second electric telescopic rods close to one side and the four second electric telescopic rods close to the other side are fixedly provided with a supporting plate in an axisymmetric manner, and the upper ends of the two supporting plates are both provided with an arc-shaped groove.
[0011] Further, the box is fixedly provided with a connecting plate at the front and rear intermediate positions of the rectangular hole at the lower end, and a rotating shaft is fixedly arranged between the lower positions of the two connecting plates, the lifting plate is slidingly arranged in the rectangular hole, and the upper end of the lifting plate is fixedly provided with a limiting plate at the front and rear positions on the inner side of the two first electric telescopic rods.
[0012] Furthermore, a limiting membrane roll is rotatably installed at the middle position of the rotating shaft. The two ends of the limiting membrane on the limiting membrane roll are respectively fixedly connected to the middle position of the lower end of the lifting plate near both sides. An L-shaped plate is fixedly installed at the lower middle position of the inner side of the two connecting plates. A torsion spring is fixedly installed between the two L-shaped plates and the front and rear ends of the limiting membrane roll near the center position. An L-shaped block is fixedly installed at the lower end of the box body at the middle position of the rectangular hole near the front and rear sides.
[0013] Furthermore, a limiting shaft is rotatably provided between two of the four L-shaped blocks on the same side, and the limiting membrane is located on the outside of the two limiting shafts respectively.
[0014] This utility model has the following beneficial effects:
[0015] 1. The mining equipment underground processing component proposed in this utility model allows for the storage of multiple pipe sections in the space between the two partitions and the side walls of the box, according to actual needs. Only one pipe section can roll to the top of the lifting plate at any given time, achieving orderly storage of pipes and facilitating subsequent pipe retrieval and installation. During the lifting process of the lifting plate, the limiting membrane fixedly connected to the middle of its lower end near both sides is pulled out from the limiting membrane roll and passes through the positions between the two limiting shafts and the two sides of the rectangular hole, effectively preventing the pipes stacked on both sides of the box from rolling out and falling through the rectangular hole. Furthermore, the torsion spring can restore its deformation when the lifting plate descends, retracting the pulled-out limiting membrane back into the limiting membrane roll, ensuring safety during underground operations and avoiding equipment damage and safety hazards caused by pipes falling.
[0016] 2. The mining equipment underground processing component proposed in this utility model can raise the height of the lifting plate and a section of pipe above it by controlling the first electric telescopic rod to shorten, until it is higher than the initial height of the two support plates. This facilitates the subsequent pushing and rolling of the pipe onto the support plates, providing convenience for the pipe installation process and meeting the operation and installation requirements at different heights. Eight second electric telescopic rods are fixedly installed symmetrically on both sides of the upper part of the box. Four of them are fixedly installed on one side and four are fixedly installed on the other side with support plates at their upper ends. By extending the corresponding four second electric telescopic rods, the support plates and the pipe above them can be raised to a suitable installation position. This allows the installation height of the pipe to be flexibly adjusted to adapt to different installation environments and requirements underground, improving the practicality and applicability of the equipment. Attached Figure Description
[0017] Figure 1 This is an isometric schematic diagram of the present invention;
[0018] Figure 2 This is an isometric view of the present invention as seen from the bottom.
[0019] Figure 3 This is an isometric view of the present invention without the transport mechanism installed.
[0020] Figure 4 This is a schematic diagram of the isometric side section of this utility model;
[0021] Figure 5 This is an isometric schematic diagram of the two limiting shafts and four L-shaped blocks of this utility model.
[0022] Legend:
[0023] 1. Transportation mechanism; 2. Installation mechanism; 101. Handle; 102. Brake caster wheel; 103. Outrigger; 104. Housing; 105. Partition plate; 106. Rectangular hole; 201. Connecting plate; 202. Rotating shaft; 203. Limiting membrane roll; 204. L-shaped block; 205. Limiting shaft; 206. Torsion spring; 207. L-shaped plate; 208. Lifting plate; 209. Limiting plate; 210. First electric telescopic rod; 211. Top plate; 212. Support rod; 213. Support plate; 214. Second electric telescopic rod. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0025] Reference Figure 1 and Figure 2 An embodiment of this utility model provides a mining equipment underground processing component, including a transport mechanism 1 and an installation mechanism 2. The transport mechanism 1 includes a housing 104 with a rectangular hole at the center of the lower end. The installation mechanism 2 includes two support rods 212, with the lower ends of the two support rods 212 fixedly and symmetrically positioned at the front and rear middle positions of the upper end of the housing 104. A top plate 211 is fixedly installed on the upper end of the two support rods 212. A first electric telescopic rod 210 is fixedly installed at the front and rear positions of the lower end of the top plate 211. A lifting plate 208 is fixedly installed on the lower end of the two first electric telescopic rods 210, and the size of the lifting plate 208 is the same as the size of the rectangular hole.
[0026] Specifically, the housing 104 in the transport mechanism 1 provides a good mounting position for the two support rods 212 in the installation mechanism 2.
[0027] Reference Figure 2 and Figure 4The lower end of the box 104 is symmetrically equipped with support legs 103 near the four corners. Each of the four support legs 103 is fixedly equipped with a brake caster 102 at the center of its lower end. The rear end of the box 104 is fixedly equipped with a handle 101 near the lower middle position. The inner surfaces of the front and rear ends of the box 104 are symmetrically equipped with partitions 105 near the middle of the sides. Both partitions 105 have rectangular holes 106 that extend through the lower sides.
[0028] Specifically, after the component and the internally loaded pipes are transported to the target location, the user can push the component and pipes to the location where the pipes need to be repaired or replaced using the handle 101 and four brake casters 102. The upper surface of the lower end of the housing 104 is set as an inclined surface on both sides of the two partitions 105 towards the lifting plate 208. In use, multiple pipe sections can be stacked in the space between the two partitions 105 and the two side walls of the housing 104, depending on actual needs. Only one pipe section can roll to the top of the lifting plate 208 at any given time.
[0029] Reference Figure 2 , Figure 3 , Figure 4 and Figure 5 Two second electric telescopic rods 214 are fixedly installed symmetrically on both sides of the upper end of the box body 104. Four of the eight second electric telescopic rods 214 are fixedly installed symmetrically on the upper end of the four on one side and four on the other side. The upper end of the two support plates 213 is provided with arc-shaped grooves. The lower end of the box body 104 is fixedly installed with connecting plates 201 at the middle of the front and rear of the rectangular hole. The lower middle of the two connecting plates 201 is fixedly installed with a rotating shaft 202. The lifting plate 208 is slidably installed in the rectangular hole. The upper end of the lifting plate 208 is fixedly installed with limit plates 209 at the inner side of the two first electric telescopic rods 210 at the front and rear of the two first electric telescopic rods 210.
[0030] A limiting membrane roll 203 is rotatably installed at the middle position of the shaft 202. The two ends of the limiting membrane on the limiting membrane roll 203 are fixedly connected to the lower middle position of the lifting plate 208 near both sides. L-shaped plates 207 are fixedly installed at the lower middle position of the inner side of the two connecting plates 201. Torsion springs 206 are fixedly installed between the two L-shaped plates 207 and the front and rear ends of the limiting membrane roll 203 near the center. L-shaped blocks 204 are fixedly installed at the lower end of the box 104 at the front and rear positions of the middle of the rectangular hole. A limiting shaft 205 is rotatably installed between the two L-shaped blocks 204 on the same side. The limiting membrane is located on the outside of the two limiting shafts 205 respectively.
[0031] Specifically, the two first electric telescopic rods 210 shorten the height of the lifting plate 208 and a section of pipe above it until it is higher than the initial height of the two support plates 213. Then, according to the actual installation needs, the section of pipe is pushed and rolled to the top of one of the two support plates 213. Then, four of the eight second electric telescopic rods 214 extend to lift the support plate 213 and the pipe above it to a suitable installation position. After the pipe section is installed, the two first electric telescopic rods 210 extend to drive the lifting plate 208 down into the rectangular hole. One section of the multiple pipe sections stacked on both sides inside the box 104 passes through the rectangular hole 106 along the inclined plane and rolls naturally to the position between the two limit plates 209 at the top of the lifting plate 208, preparing for the next installation.
[0032] During the lifting process of the lifting plate 208, when the lifting plate 208 rises, the limiting membrane fixedly connected to the middle of its lower end near both sides is pulled out from the limiting membrane roll 203. As the lifting plate 208 rises, the limiting membrane roll 203 rotates continuously, and the limiting membrane is continuously pulled out, passing through the positions between the two limiting shafts 205 and the two sides of the rectangular hole, effectively preventing the pipes stacked on both sides inside the box 104 from rolling out and falling from the rectangular hole 106. The torsion springs 206 fixedly installed between the two L-shaped plates 207 and the front and rear ends of the limiting membrane roll 203 near the center position also twist and deform accordingly. When the lifting plate 208 descends, it restores its deformation and rolls the pulled-out limiting membrane back into the limiting membrane roll 203.
[0033] Working principle: After the component and the internally loaded pipes are transported to the target location, the user can push the component and pipes to the location where the pipes need to be repaired or replaced using the handle 101 and four brake casters 102. The upper surface of the lower end of the box 104 is set as an inclined surface on both sides of the two partitions 105 towards the lifting plate 208. During use, multiple pipe sections can be stacked in the space between the two partitions 105 and the two side walls of the box 104, depending on actual needs. Only one pipe section can roll to the top of the lifting plate 208 at any given time.
[0034] Secondly, the two first electric telescopic rods 210 work to shorten the height of the lifting plate 208 and a section of pipe above it until it is higher than the initial height of the two support plates 213. Then, according to the actual installation needs, the section of pipe is pushed and rolled to the top of one of the two support plates 213. Then, four of the eight second electric telescopic rods 214 work to extend and lift the support plate 213 and the pipe above it to a suitable installation position. After the pipe section is installed, the two first electric telescopic rods 210 work to extend and drive the lifting plate 208 down into the rectangular hole. One section of the multiple pipe sections stacked on both sides inside the box 104 passes through the rectangular hole 106 along the inclined plane and rolls naturally to the position between the two limit plates 209 at the top of the lifting plate 208, preparing for the next installation.
[0035] Finally, during the lifting process of the lifting plate 208, when the lifting plate 208 rises, the limiting membrane fixedly connected to the middle of its lower end near both sides is pulled out from the limiting membrane roll 203. As the lifting plate 208 rises, the limiting membrane roll 203 rotates continuously, and the limiting membrane is continuously pulled out, passing through the positions between the two limiting shafts 205 and the two sides of the rectangular hole, effectively preventing the pipes stacked on both sides inside the box 104 from rolling out and falling from the rectangular hole 106. The torsion springs 206 fixedly installed between the two L-shaped plates 207 and the front and rear ends of the limiting membrane roll 203 near the center position also twist and deform accordingly. When the lifting plate 208 descends, it restores its deformation and rolls the pulled-out limiting membrane back into the limiting membrane roll 203.
[0036] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A mining equipment underground processing component, comprising a transport mechanism (1) and an installation mechanism (2), characterized in that: The transport mechanism (1) includes a box (104), and a rectangular hole is provided at the center of the lower end of the box (104). The installation mechanism (2) includes two support rods (212). The lower ends of the two support rods (212) are fixedly fixed to the middle positions of the front and rear of the upper end of the box (104) in an axially symmetrical manner. A top plate (211) is fixedly provided at the upper end of the two support rods (212). A first electric telescopic rod (210) is fixedly provided at the front and rear positions of the lower end of the top plate (211). A lifting plate (208) is fixedly provided at the lower end of the two first electric telescopic rods (210). The size of the lifting plate (208) is the same as the size of the rectangular hole.
2. The mining equipment downhole processing component according to claim 1, characterized in that: The lower end of the box (104) is symmetrically provided with support legs (103) near the four corners. Each of the four support legs (103) is fixedly provided with a brake caster (102) at the center of its lower end. A handle (101) is fixedly provided at the lower middle of the rear end of the box (104).
3. The mining equipment downhole processing component according to claim 1, characterized in that: The inner surfaces of the front and rear ends of the box (104) are fixedly provided with partitions (105) in a symmetrical manner near the middle of the two sides. Both partitions (105) have rectangular holes (106) that extend through the lower part of both sides.
4. The mining equipment downhole processing component according to claim 1, characterized in that: Two second electric telescopic rods (214) are fixedly installed on the upper front and rear sides of the box (104) in an axially symmetrical manner.
5. The mining equipment downhole processing component according to claim 4, characterized in that: Four of the eight second electric telescopic rods (214) near one side and four near the other side are fixedly provided with support plates (213) at their upper ends in an axially symmetrical manner. Both of the support plates (213) have arc-shaped grooves at their upper ends.
6. The mining equipment downhole processing component according to claim 1, characterized in that: The lower end of the housing (104) is fixedly provided with connecting plates (201) at the middle positions in front and behind the rectangular hole. A rotating shaft (202) is fixedly provided between the two connecting plates (201) at the lower middle position. The lifting plate (208) is slidably provided in the rectangular hole. Limiting plates (209) are fixedly provided at the upper end of the lifting plate (208) at the inner positions of the two first electric telescopic rods (210) at the front and rear positions.
7. The mining equipment downhole processing component according to claim 6, characterized in that: A limiting membrane roll (203) is rotatably installed at the middle position of the shaft (202). The two ends of the limiting membrane on the limiting membrane roll (203) are respectively fixedly connected to the lower middle position of the lifting plate (208) near both sides. An L-shaped plate (207) is fixedly installed at the lower middle position of the inner side of the two connecting plates (201). A torsion spring (206) is fixedly installed between the two L-shaped plates (207) and the front and rear ends of the limiting membrane roll (203) near the center position. An L-shaped block (204) is fixedly installed at the lower end of the box (104) at the front and rear positions of the two sides of the rectangular hole.
8. The mining equipment downhole processing component according to claim 7, characterized in that: Two of the four L-shaped blocks (204) on the same side are provided with rotatable limit shafts (205), and the limit membranes are located on the outside of the two limit shafts (205).
Citation Information
Patent Citations
Lifting device for mounting and dismounting underground pipeline
CN216836971U