Coal mine dry-type punching carbon monoxide dispersing and dust particle collecting device

By designing a dry-drilled carbon monoxide dispersion and dust collection device for coal mines, the problem of difficult alignment during installation of baghouse collection equipment is solved by utilizing the synergistic effect of the main components, collection components, and other components. This improves installation efficiency and equipment sealing, and reduces safety risks.

CN121803285APending Publication Date: 2026-04-07GUIZHOU COAL MINE DESIGN & RES INST
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-26
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

During dry drilling in coal mines, baghouse collection equipment is difficult to align during installation, resulting in slow installation speed, reduced work efficiency, and problems such as excessive carbon monoxide and dust pollution.

Method used

A dry-drilling carbon monoxide dispersion and dust collection device for coal mines was designed, including a main component, a collection component, a connecting component, a calibration component, a track component, a limiting component, a triggering component, and a driving component. Through the synergistic effect of these components, the rapid alignment and installation of the filter bag is achieved, ensuring the sealing and safety of the equipment.

Benefits of technology

It enables rapid alignment and installation of the filter bags, improves equipment installation efficiency, reduces manpower consumption, enhances equipment sealing and safety, and reduces the risk of excessive carbon monoxide and dust pollution.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of coal mine dry-type punching, in particular to a coal mine dry-type punching carbon monoxide dispersing and dust particle collecting device which comprises a dustproof component, a dust removal component, a dust removal component and a dust removal component. The containing part comprises a connecting assembly fixedly arranged on the main body assembly and a proofreading assembly arranged on the connecting assembly in a sliding mode, and further comprises a rail assembly and a limiting assembly which are fixedly arranged on the connecting assembly, and further comprises a triggering assembly arranged on the limiting assembly in a sliding mode; the container assembly can be quickly checked through the connecting assembly and the checking assembly, the installation effect is achieved, and the driving assembly and the triggering assembly can complete installation work in a labor-saving mode; the limiting assembly and the rail assembly can have the step-by-step limiting function in the butt joint process of the connecting assembly and the correcting assembly, and therefore a person with small strength can complete installation work in multiple times.
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Description

Technical Field

[0001] This invention relates to the field of dry drilling technology in coal mines, and in particular to a device for dispersing carbon monoxide and collecting dust particles during dry drilling in coal mines. Background Technology

[0002] Because coal mines in the Yunnan, Guizhou, and Sichuan regions are mostly composed of mudstone and argillaceous sandstone, which expand when exposed to water, geological drilling, water exploration drilling, and gas identification drilling all require dry drilling. Dry drilling is prone to causing borehole fires, resulting in excessive carbon monoxide levels and subsequent carbon monoxide poisoning accidents. This can cause unpredictable safety and economic losses to coal mine safety production. Dust and coal dust also cause air pollution and harm the health of workers. Therefore, dust dispersion and debris collection equipment are generally used.

[0003] When using a debris collection device, the filter bag needs to be replaced when it is full of particles and dust. However, the filter bag opening is usually aligned with the collection device manually, which is not easy to align and is slow to install. Therefore, it needs to be improved. Summary of the Invention

[0004] The purpose of this section is to outline some aspects of embodiments of the present invention and to briefly describe some preferred embodiments. Simplifications or omissions may be made in this section, as well as in the abstract and title of this application, to avoid obscuring the purpose of these documents; however, such simplifications or omissions should not be construed as limiting the scope of the invention.

[0005] In view of the problem that the stacked fabric bags are not easy to align during installation in the above or existing technologies, the present invention is proposed.

[0006] Therefore, the purpose of this invention is to provide a coal mine dry drilling carbon monoxide dispersion and dust particle collection device.

[0007] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a dustproof component, comprising a main body component and a collection component fixedly disposed on the main body component; a receiving component, comprising a connecting component fixedly disposed on the main body component and a calibration component slidably disposed on the connecting component, further comprising a track component and a limiting component fixedly disposed on the connecting component, further comprising a trigger component slidably disposed on the limiting component, further comprising a drive component rotatably disposed on the connecting component, wherein the drive component and the trigger component are connected, and further comprising a container component adapted to the calibration component.

[0008] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersion and dust collection device of the present invention, the main component includes a dispersion device, a carbon monoxide monitor fixedly installed on the top of the dispersion device, a sealing gasket and an annular sprayer fixedly installed at both ends of the dispersion device, a sealing brush fixedly installed on the inner wall of the annular sprayer, and a tension spring fixedly installed on the outer wall of the annular sprayer.

[0009] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersion and dust collection device of the present invention, the collection component includes a water mist dust suppression device and a dust suction pipe fixedly installed at the port of the water mist dust suppression device, and also includes a vacuum generator fixedly installed at the inlet of the dust suction pipe, wherein the vacuum generator is connected to the dispersion device.

[0010] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersion and dust collection device of the present invention, the connecting component includes a connecting ring fixedly disposed at the dust outlet of the dispersion device, and the connecting ring is provided with a reserved groove, a through hole and a rotating groove, and also includes a connecting plate slidably disposed on the connecting ring, and the connecting plate is provided with an installation groove.

[0011] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersing and dust collection device of the present invention, the calibration component includes a C-shaped ring, and a calibration surface is provided on the top of the C-shaped ring. It also includes a slide rod fixedly disposed on the top of the C-shaped ring, and the slide rod is connected to a through hole.

[0012] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersing and dust particle collection device of the present invention, the track assembly includes a multi-groove block fixedly disposed on the connecting ring, and the multi-groove block is provided with a central groove, a sliding groove, an initial groove, a provisional groove and a multi-stage groove.

[0013] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersion and dust collection device of the present invention, the limiting component includes a connecting pipe fixedly disposed on the mounting groove, and a through groove provided on the connecting pipe, a spring fixedly disposed on the connecting pipe, a rotating roller fixedly disposed on the connecting pipe, a push rod slidably disposed inside the connecting pipe, the push rod having an inner cavity and a limiting surface, a ball bearing disposed on the push rod, and a connecting belt fixedly disposed on the push rod.

[0014] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersion and dust collection device of the present invention, the triggering component includes a trigger rod slidably disposed on the through groove, and the trigger rod is provided with a slot and a vertical slot, and also includes a first semicircular ring and a second semicircular ring fixedly disposed on the trigger rod, and a rotating component fixedly disposed on the top of the second semicircular ring, and the trigger rod is connected to the connecting belt.

[0015] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersion and dust collection device of the present invention, the driving component includes a shaft rotatably mounted on the rotating groove, and long rods fixed at both ends of the shaft, and also includes an arc-shaped end fixed on the long rod, the arc-shaped end being connected to the rotating component.

[0016] As a preferred embodiment of the coal mine dry drilling carbon monoxide dispersion and dust collection device of the present invention, the container assembly includes a cloth bag and a conical ring fixedly disposed on the outer wall of the bag opening, the conical ring being adapted to the calibration surface.

[0017] The beneficial effects of the coal mine dry drilling carbon monoxide dispersion and dust collection device of the present invention are as follows: The present invention can quickly calibrate the container component and achieve the installation effect through the connecting component and the calibration component; the driving component and the triggering component can complete the installation work with less effort; the limiting component and the track component can have the function of step-by-step limiting during the docking of the connecting component and the calibration component, so that even people with less strength can complete the installation work in multiple times. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0019] Figure 1 This is a schematic diagram of a dry drilling carbon monoxide dispersion and dust collection device for coal mines.

[0020] Figure 2 A schematic diagram of the dustproof component structure of a dry drilling carbon monoxide dispersion and dust particle collection device for coal mines.

[0021] Figure 3 A schematic diagram of the housing component of a dry-drilling carbon monoxide dispersion and dust collection device for coal mines.

[0022] Figure 4 A schematic diagram of the connection components for a dry-drilling carbon monoxide dispersion and dust collection device in a coal mine.

[0023] Figure 5 A schematic diagram of the calibration component structure for a dry drilling carbon monoxide dispersion and dust collection device in a coal mine.

[0024] Figure 6 A schematic diagram of the track assembly structure for a dry drilling carbon monoxide dispersion and dust collection device in a coal mine.

[0025] Figure 7 A schematic diagram of the limiting component structure of a dry drilling carbon monoxide dispersion and dust particle collection device for coal mines.

[0026] Figure 8 A schematic diagram of the triggering component structure for a dry drilling carbon monoxide dispersion and dust particle collection device in a coal mine.

[0027] Figure 9 A schematic diagram of the drive component structure for a dry drilling carbon monoxide dispersion and dust collection device in a coal mine.

[0028] Figure 10 A schematic diagram of the container assembly structure for a dry-drilling carbon monoxide dispersion and dust collection device in a coal mine. Detailed Implementation

[0029] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0030] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the invention. Therefore, the invention is not limited to the specific embodiments disclosed below.

[0031] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that is mutually exclusive with other embodiments.

[0032] Example 1, referring to Figures 1 to 3 This is the first embodiment of the present invention. This embodiment provides a coal mine dry drilling carbon monoxide dispersing and dust collection device, which can achieve a quick alignment effect when the stacked bag is installed. It includes a dustproof component 100, which includes a main component 101 and a collection component 102 fixed on the main component 101. The main component 101 has the functions of dust prevention and carbon monoxide dispersing when drilling. The collection component 102 can extract the dust in the main component 101 and perform wet dust suppression.

[0033] The receiving component 200 includes a connecting component 201 fixedly mounted on the main body component 101, and a calibration component 202 slidably mounted on the connecting component 201. It also includes a track component 203 and a limiting component 204 fixedly mounted on the connecting component 201, a trigger component 205 slidably mounted on the limiting component 204, a drive component 206 rotatably mounted on the connecting component 201, the drive component 206 and the trigger component 205 being connected, and a container component 207 adapted to the calibration component 202. The component 200 can collect larger dust particles from the main component 101, mainly stored in the container component 207. When installing the container component 207, it can be automatically positioned by manually placing it on the calibration component 202. Then, by moving the drive component 206, the trigger component 205 is activated to release the limits of the limit component 204 and the track component 203, and the limit component 204 continues to move, causing the connecting component 201 and the calibration component 202 to fit together, thus completing the installation of the container component 207.

[0034] During use, the main component 101 has the functions of dust prevention and carbon monoxide dispersal during drilling. The collecting component 102 can extract the dust in the main component 101 and perform wet dust suppression. The containing component 200 can collect larger dust particles in the main component 101, mainly stored by the container component 207. When installing the container component 207, it can be automatically positioned by manually placing the container component 207 on the calibration component 202. Then, by moving the drive component 206, the trigger component 205 is driven to release the limit component 204 and the track component 203, and the limit component 204 continues to move to drive the connecting component 201 and the calibration component 202 to fit together, thus completing the installation of the container component 207.

[0035] In summary, the connecting component 201 and the calibration component 202 can quickly calibrate the container component 207 and achieve the installation effect. The driving component 206 and the triggering component 205 can complete the installation work with less effort. The limiting component 204 and the track component 203 can have a step-by-step limiting function during the docking process of the connecting component 201 and the calibration component 202, so that even people with less strength can complete the installation work in multiple steps.

[0036] Example 2, refer to Figures 1-3This is the second embodiment of the present invention. Unlike the previous embodiment, this embodiment provides a dustproof component 100 for a coal mine dry drilling carbon monoxide dispersion and dust particle collection device, solving the problem of excessive dust during dry drilling. It includes a main component 101 comprising a dispersion device 101a, a carbon monoxide monitor 101b fixedly mounted on the top of the dispersion device 101a, sealing gaskets 101c and an annular sprayer 101d fixedly mounted at both ends of the dispersion device 101a, a sealing brush 101e fixedly mounted on the inner wall of the annular sprayer 101d, and a tension spring 101f fixedly mounted on the outer wall of the annular sprayer 101d. During drilling... By using a tension spring 101f to fix the sealing gasket 101c to the part that needs to be drilled, the sealing gasket 101c can achieve a sealing effect, so that dust and dust particles will be introduced into the dispersing device 101a through the sealing gasket 101c. The dispersing device 101a can guide the dust to the collection component 102, and the dust particles will be discharged to the receiving component 200 through the bottom of the dispersing device 101a. The drill rod can be passed through the center of the sealing brush. The function of the sealing brush is to reduce the dust particles discharged from the drill rod. During the drilling process, the carbon monoxide monitor 101b will monitor the carbon monoxide concentration in the air in real time. When the concentration exceeds the standard, the annular sprayer 101d will be activated to disperse it.

[0037] Specifically, the collection component 102 includes a water mist dust suppression device 102a, a suction pipe 102b fixedly installed at the port of the water mist dust suppression device 102a, and a vacuum generator 102c fixedly installed at the inlet of the suction pipe 102b. The vacuum generator 102c is connected to the dispersing device 101a. When drilling, the vacuum generator 102c needs to be turned on at the same time, so that the dust inside the dispersing device 101a is guided through the vacuum generator 102c to the suction pipe 102b, and discharged through the suction pipe 102b to the water mist dust suppression device 102a, and the water mist dust suppression device 102a is activated to perform water mist dust suppression on the dust.

[0038] The rest of the structure is the same as in Example 1.

[0039] During use, when drilling, the sealing gasket 101c is fixed to the area to be drilled using a tension spring 101f. The sealing gasket 101c provides a sealing effect, allowing dust and dust particles to pass through it and be directed to the dispersing device 101a. The dispersing device 101a guides the dust to the collecting assembly 102, and the dust particles are discharged from the bottom of the dispersing device 101a to the receiving component 200. This can be achieved by passing the drill rod through the center of the sealing brush, which reduces the amount of dust discharged from the drill rod. The dust particles will be removed. During the drilling process, the carbon monoxide monitor 101b will monitor the carbon monoxide concentration in the air in real time. When the concentration exceeds the standard, the annular sprayer 101d will be activated to disperse it. At the same time, the vacuum generator 102c needs to be turned on, and the dust inside the dispersion device 101a will be guided through the vacuum generator 102c to the dust suction pipe 102b. The dust will be discharged through the dust suction pipe 102b to the water mist dust suppression device 102a, and the water mist dust suppression device 102a will be activated to suppress the dust with water mist.

[0040] In summary, it prevents problems such as excessive carbon monoxide and dust, thus improving the safety of workers operating in coal mines.

[0041] Example 3, referring to Figures 1-10 This is the third embodiment of the present invention. Unlike the previous embodiment, this embodiment provides a receiving component 200 for a dry-drilled carbon monoxide dispersion and dust collection device for coal mines. This solves the problem of difficulty in aligning the stacked filter bags during installation. It includes a connecting assembly 201 comprising a connecting ring 201a fixedly disposed at the dust outlet of the dispersion device 101a, and the connecting ring 201a having a reserved groove 201b, a through hole 201c, and a rotating groove 201d. The reserved groove 201b has two sections. 1b is located on both sides of the top of the connecting ring 201a. There are four through holes 201c, which are evenly distributed on the top of the connecting ring 201a. It also includes a connecting plate 201e that is slidably disposed on the connecting ring 201a. There are two connecting plates 201e, which are respectively located on the surface of the connecting ring 201a and inside the reserved groove 201b. It also includes a mounting groove 201f on the connecting plate 201e. The top of the opposite ends of the two connecting plates 201e are both provided with mounting grooves 201f.

[0042] Specifically, the calibration component 202 includes a C-shaped ring 202a and a calibration surface 202b on the top of the C-shaped ring 202a. It also includes four slide rods 202c fixedly disposed on the top of the C-shaped ring 202a. The four slide rods 202c are evenly distributed on the top of the C-shaped ring 202a. The slide rods 202c are connected to through holes 201c. The positions of the four slide rods 202c are adapted to the four through holes 201c. The four slide rods 202c slide in the corresponding through holes 201c. The top of the C-shaped ring 202a is connected to the connecting plate 201e.

[0043] Furthermore, the track assembly 203 includes a multi-groove block 203a fixedly mounted on the connecting ring 201a. There are two multi-groove blocks 203a, which are respectively located on both sides of the connecting ring 201a at the corresponding reserved grooves 201b. The multi-groove block 203a is provided with a central groove 203b, a sliding groove 203c, an initial groove 203d, a temporary groove 203e, and a multi-level groove 203f. The multi-groove block 203a has a central groove 203b in the middle, a sliding groove 203c on the opposite side, an initial groove 203d on the inner wall of the opposite end, a temporary groove 203e at the bottom of the initial groove 203d, and multiple temporary grooves 203e. The initial groove 203d has a multi-level groove 203f at the top.

[0044] Furthermore, the limiting component 204 includes a connecting pipe 204a fixedly disposed on the mounting groove 201f, and a through groove 204b provided on the connecting pipe 204a; it also includes a spring 204c fixedly disposed on the connecting pipe 204a, the spring 204c being located on the inner wall of the connecting pipe 204a; it also includes a rotating roller 204d fixedly disposed on the connecting pipe 204a, the rotating roller 204d being located at the opening on the inner wall of the connecting pipe 204a; and it also includes a stop rod 204e slidably disposed inside the connecting pipe 204a, the stop rod 204e being located on the inner wall of the connecting pipe 204a biased towards the opening; and it also includes... The abutment rod 204e is provided with an inner cavity 204f and a limiting surface 204g. The center of the abutment rod 204e has an inner cavity 204f, and the bottom end of the abutment rod 204e away from the connecting pipe 204a has a limiting surface 204g. It also includes a ball bearing 204h provided on the abutment rod 204e. The ball bearing 204h is located at the end of the abutment rod 204e away from the connecting pipe 204a. The number of the ball bearing 204h is equal to that of the temporary groove 203e. It also includes a connecting band 204i fixedly provided on the abutment rod 204e. The connecting band 204i is fixedly provided on the inner wall of the side of the abutment rod 204e away from the connecting pipe 204a.

[0045] Furthermore, the trigger assembly 205 includes a trigger rod 205a slidably disposed on the through groove 204b, the trigger rod 205a being located inside the through groove 204b, and the trigger rod 205a having a slot 205b and a vertical groove 205c. The surface of the trigger rod 205a has a slot 205b at the opening of the connecting pipe 204a, and vertical grooves 205c are formed on both sides of the corresponding slot 205b. It also includes a first semicircular ring 205d and a second semicircular ring 205e fixedly disposed on the trigger rod 205a. The first semicircular ring 205d is located at the bottom of the trigger rod 205a, and the second semicircular ring 205e is located at the top of the trigger rod 205a. It also includes a rotating member 205f fixedly disposed on the top of the second semicircular ring 205e. The trigger rod 205a is connected to the connecting belt 204i, and the bottom of the slot 205b of the trigger rod 205a is fixed to the connecting belt 204i.

[0046] Furthermore, the drive assembly 206 includes a shaft 206a rotatably mounted on the rotating groove 201d, and two long rods 206b fixedly mounted at both ends of the shaft 206a. The two long rods 206b are located on both sides of the shaft 206a respectively. The drive assembly 206 also includes an arc-shaped end 206c fixedly mounted on the long rod 206b. The arc-shaped end 206c is fixed at one end of the long rod 206b located on the shaft 206a. The arc-shaped end 206c is connected to the rotating component 205f. The end of the arc-shaped end 206c away from the long rod 206b is fixed to the corresponding rotating component 205f.

[0047] Furthermore, the container assembly 207 includes a cloth bag 207a, the opening of which is made of a rigid material, and a conical ring 207b fixed to the outer wall of the opening of the cloth bag 207a. The conical end of the conical ring 207b faces the bottom, and the conical ring 207b is adapted to the alignment surface 202b.

[0048] The rest of the structure is the same as in Example 2.

[0049] In use, the tapered ring 207b is placed on the alignment surface 202b at the top of the C-shaped ring 202a, so that the tapered surface at the bottom of the tapered ring 207b and the inclined surface of the alignment surface 202b are aligned, thus completing the automatic alignment work. By manually pressing down the two long rods 206b, the arc end 206c is driven to rotate around the shaft 206a as the base point. The arc end 206c can drive the rotating part 205f, the second semi-circular ring 205e, the trigger rod 205a and the first semi-circular ring 205d to move upward. The top of the first semi-circular ring 205d contacts the bottom of the connecting tube 204a and applies an upward force to it, so that the ball 204h at the end of the abutment rod 204e is disengaged from the temporary groove 203e. During this process, the abutment rod 204 is driven to move upward. When spring 204c is compressed, ball bearing 204h moves upward into multi-stage groove 203f, pressing against the initial groove 203d. Multi-stage groove 203f has multiple stepped grooves, ensuring the spring force of spring 204c drives the ball bearing of the abutment rod 204e to constantly conform to the multi-stage groove 203f. When the applied force is lost, the limiting surface 204g of the abutment rod 204e can abut against the multi-stage groove 203f to limit its downward movement. Ideally, the limiting surface 204g of the abutment rod 204e should be limited to the top of the multi-stage groove 203f, thus preventing the abutment rod 204e from moving downward. Ideally, the limiting surface 204g of the abutment rod 204e should be limited to the top of the multi-stage groove 203f, thus preventing reset due to insufficient force during the lifting process. During this process, connecting pipe 204a drives connecting plate 201e and C-ring 202a to move upward, thereby... When ring 202a and connecting ring 201a are engaged, the top interface of bag 207a will align with the bottom discharge port of the dispersing device, thus completing the installation of bag 207a. During unlocking, by manually lifting the two long rods 206b, the arc-shaped end 206c rotates around the shaft 206a. The arc-shaped end 206c drives the rotating part 205f, the second semi-circular ring 205e, the trigger rod 205a, and the first semi-circular ring 205d downwards. The movement of the trigger rod 205a also drives the connecting belt 204i. Due to the limiting effect of the rotating roller 204d, the connecting belt 204i pulls the inner cavity 204f of the abutment rod 204e closer to the trigger rod 205a. During this process, the abutment rod 204e compresses the spring 204. c. At this time, the abutment 204e is retracted into the connecting tube 204a, so it is not limited by the multi-stage groove 203f. After the abutment 204e retracts, its second semi-circular ring 205e will abut against the top of the connecting tube 204a. It can apply downward pressure to the connecting tube 204a, causing the connecting tube 204a to drive the connecting plate 201e and the C-ring 202a to move downward. The C-ring 202a can then drive the conical ring 207b and the cloth bag 207a to disengage from the dispersing device 101a. At the same time as disengagement, the ball 204h on the abutment 204e is also in the temporary groove 203e. At this time, by releasing the drive assembly 206, the spring 204c can drive the abutment 204e and the ball 204h to be inserted into the temporary groove 203e.

[0050] In summary, the interface between the cloth bag 207a and the dispersing device 101a can be quickly located, and docking can be performed through a relatively labor-saving structure. If the force is insufficient during docking, force can be applied in stages, which has the effect of preventing reset during docking. During installation or disassembly, docking, locking, unlocking, and reset can be achieved simply by lifting or pressing down the drive component 206, making it convenient to operate and effective.

[0051] It is important to note that the constructions and arrangements of this application shown in several different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who consult this disclosure will readily understand that many modifications are possible (e.g., changes in the size, dimensions, structure, shape, and proportions of various elements, as well as parameter values ​​(e.g., temperature, pressure, etc.), mounting arrangements, use of materials, color, orientation, etc.) without substantially departing from the novel teachings and advantages of the subject matter described in this application). For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of elements may be inverted or otherwise altered, and the nature or number or position of discrete elements may be changed or altered. Therefore, all such modifications are intended to be included within the scope of the invention. The order or sequence of any process or method steps may be changed or rearranged according to alternative embodiments. In the claims, any "device plus function" clause is intended to cover the structure described herein that performs the function, and not only structurally equivalent but also equivalent in structure. Other substitutions, modifications, alterations, and omissions may be made in the design, operation, and arrangement of the exemplary embodiments without departing from the scope of the invention. Therefore, the present invention is not limited to the specific embodiments, but extends to various modifications that still fall within the scope of the appended claims.

[0052] Furthermore, in order to provide a concise description of exemplary embodiments, not all features of actual embodiments (i.e., those features that are not relevant to the best mode of carrying out the invention as currently considered, or those features that are not relevant to implementing the invention) may be omitted.

[0053] It should be understood that numerous specific implementation decisions can be made during the development of any practical implementation, such as in any engineering or design project. Such development efforts may be complex and time-consuming, but for those skilled in the art who benefit from this disclosure, the development effort will be a routine work of design, manufacturing, and production without requiring much experimentation.

[0054] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A dry-drilling carbon monoxide dispersion and dust particle collection device for coal mines, characterized in that: include, A dustproof component (100) includes a main body assembly (101) and a collection assembly (102) fixedly disposed on the main body assembly (101); The receiving component (200) includes a connecting component (201) fixedly disposed on the main body component (101), and a calibration component (202) slidably disposed on the connecting component (201), a track component (203) and a limiting component (204) fixedly disposed on the connecting component (201), a trigger component (205) slidably disposed on the limiting component (204), a drive component (206) rotatably disposed on the connecting component (201), the drive component (206) and the trigger component (205) being connected, and a container component (207) adapted to the calibration component (202).

2. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 1, characterized in that: The main component (101) includes a dispersing device (101a), a carbon monoxide monitor (101b) fixedly disposed on the top of the dispersing device (101a), a sealing gasket (101c) and an annular sprayer (101d) fixedly disposed at both ends of the dispersing device (101a), a sealing brush (101e) fixedly disposed on the inner wall of the annular sprayer (101d), and a tension spring (101f) fixedly disposed on the outer wall of the annular sprayer (101d).

3. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 1 or 2, characterized in that: The collection component (102) includes a water mist dust suppression device (102a) and a suction pipe (102b) fixedly disposed at the port of the water mist dust suppression device (102a). It also includes a vacuum generator (102c) fixedly disposed at the inlet of the suction pipe (102b). The vacuum generator (102c) is connected to the dispersing device (101a).

4. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 3, characterized in that: The connecting assembly (201) includes a connecting ring (201a) fixedly disposed at the dust outlet of the dispersing device (101a), and the connecting ring (201a) is provided with a reserved groove (201b), a through hole (201c) and a rotating groove (201d), and also includes a connecting plate (201e) slidably disposed on the connecting ring (201a), and the connecting plate (201e) is provided with an installation groove (201f).

5. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 4, characterized in that: The calibration component (202) includes a C-shaped ring (202a) and a calibration surface (202b) on the top of the C-shaped ring (202a). It also includes a slide rod (202c) fixedly disposed on the top of the C-shaped ring (202a) and a through hole (201c) connected to the slide rod (202c).

6. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 5, characterized in that: The track assembly (203) includes a multi-groove block (203a) fixedly disposed on the connecting ring (201a), and the multi-groove block (203a) is provided with a central groove (203b), a sliding groove (203c), an initial groove (203d), a provisional groove (203e) and a multi-level groove (203f).

7. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 6, characterized in that: The limiting component (204) includes a connecting pipe (204a) fixedly disposed on the mounting groove (201f), and a through groove (204b) provided on the connecting pipe (204a), a spring (204c) fixedly disposed on the connecting pipe (204a), a rotating roller (204d) fixedly disposed on the connecting pipe (204a), a stop rod (204e) slidably disposed inside the connecting pipe (204a), the stop rod (204e) being provided with an inner cavity (204f) and a limiting surface (204g), a ball bearing (204h) disposed on the stop rod (204e), and a connecting strip (204i) fixedly disposed on the stop rod (204e).

8. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 7, characterized in that: The trigger assembly (205) includes a trigger rod (205a) slidably disposed on the through groove (204b), and the trigger rod (205a) is provided with a slot (205b) and a vertical groove (205c). It also includes a first semi-circular ring (205d) and a second semi-circular ring (205e) fixedly disposed on the trigger rod (205a), and a rotating member (205f) fixedly disposed on the top of the second semi-circular ring (205e). The trigger rod (205a) is connected to the connecting belt (204i).

9. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 8, characterized in that: The drive assembly (206) includes a shaft (206a) rotatably mounted on the rotating groove (201d), and long rods (206b) fixedly mounted at both ends of the shaft (206a). It also includes an arc-shaped end (206c) fixedly mounted on the long rod (206b), and the arc-shaped end (206c) is connected to the rotating component (205f).

10. The coal mine dry drilling carbon monoxide dispersion and dust collection device as described in claim 8 or 9, characterized in that: The container assembly (207) includes a cloth bag (207a) and a conical ring (207b) fixed to the outer wall of the opening of the cloth bag (207a), the conical ring (207b) being adapted to the alignment surface (202b).