Circulating mine entering concentration system for coal mine ventilation air methane

By using a coal mine exhaust air recycling and concentration system, the exhaust air is purified and concentrated multiple times using adsorption devices and regeneration fans. This solves the problem of low methane concentration in the exhaust air and achieves efficient recycling of exhaust air and environmentally friendly methane emission management.

CN224047302UActive Publication Date: 2026-03-27BEIJING JUNFA COMBUSTIBLE GAS TECH DEV CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing technologies are insufficient to effectively increase the concentration of methane in coal mine exhaust air, resulting in high methane emissions, high energy consumption, severe environmental pollution, and low exhaust air recycling rate.

Method used

A coal mine exhaust air circulation and concentration system is adopted, which uses adsorption devices and regeneration fans to purify and concentrate exhaust air. Harmful gases are adsorbed by adsorption purifiers, and gas is desorbed through desorption pipelines. Combined with gas heating equipment and concentration detection instruments, exhaust air can be purified and concentrated in multiple cycles.

Benefits of technology

This increases the concentration of methane in the exhaust air, reduces emissions and energy loss, ensures that the exhaust air is recycled into the mine without being toxic or harmful, reduces environmental pollution and energy consumption, and improves the utilization rate of exhaust air.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a coal mine ventilation air methane circulating into-mine concentration system which comprises an air inlet pipeline, an air outlet pipeline, a desorption pipeline, more than two adsorption devices and a regeneration fan, the air inlet pipeline is connected with the first air port of each adsorption device and is suitable for introducing to-be-treated ventilation air methane into the adsorption devices; adsorption purifying agents are arranged in the adsorption devices, the second air opening of each adsorption device is connected with an air outlet pipeline, and the other end of the air outlet pipeline is suitable for being connected with an air inlet of an air inlet shaft; the desorption pipeline is connected with the second air port of each adsorption device, the first air port of each adsorption device is connected with waste gas treatment equipment, and a first valve is arranged at the first air port of each adsorption device and located on the air inlet pipeline; a second valve is arranged at the second air port of each adsorption device and is positioned on the air outlet pipeline; a third valve is also arranged at the second air port and is positioned on the desorption pipeline.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of coal mine ventilation air methane purification, and particularly relates to a coal mine ventilation air methane recycling and concentrating system. BACKGROUND

[0002] Ventilation air methane refers to the exhaust gas containing a small amount of methane discharged by a mine ventilation system, and most of its components are air. The coal mine safety regulations stipulate that the methane content of ventilation air methane shall not exceed 0.75%. In the process of coal mine production, a large amount of ventilation is required to remove gas, harmful gas and dust, and to provide a fresh air environment for miners. In this process, the equipment inside the mine and the self-heating of the ore will cause the temperature of the air to rise, and these exhaust gases containing heat are discharged through the air shaft to form ventilation air methane. The safety management of coal mines in China is relatively strict, and the ventilation air methane content of almost all coal mines is extremely low, usually to ensure "absolute safety", so the ventilation air methane content is usually controlled at about 0.1%, and some are even much lower than 0.1%. This is because the increase in the volume flow of ventilation air methane due to factors such as the requirement of air flow velocity in the roadway and the increase in ventilation volume ultimately leads to a large total amount of methane and a very low concentration.

[0003] On the other hand, methane is the second largest greenhouse gas in the world, and although its total amount is small, its greenhouse gas effect is 28 times that of carbon dioxide. It is the second largest greenhouse gas that causes global climate change. Usually, due to the extremely thin methane contained therein, its oxidation cannot maintain the self-heating balance, and the existing technology has already used the method of heat storage to the greatest extent for destruction, but due to the above reasons, a large amount of extracted gas must be mixed to increase the methane concentration to be partially destroyed, and without a large amount of extracted gas, it is impossible to completely destroy, thus resulting in large energy consumption and investment. SUMMARY

[0004] Therefore, the present application provides a coal mine ventilation air methane recycling and concentrating system, which is suitable for increasing the concentration of methane in ventilation air methane.

[0005] According to an aspect of the present application, a coal mine ventilation air methane recycling and concentrating system is provided, characterized in that it comprises: an air inlet pipeline, an air outlet pipeline, a desorption pipeline, two or more adsorption devices and a regenerative blower.

[0006] One end of the air inlet pipeline is suitable for connecting the air outlet of the air return shaft; the air inlet pipeline is connected with the first air port of each adsorption device, and is suitable for introducing the ventilation air methane to be treated into the adsorption device; the adsorption device is provided with an adsorption purifying agent, and is suitable for purifying and adsorbing the ventilation air methane to be treated released by the air return shaft; the second air port of each adsorption device is connected with the air outlet pipeline, and the other end of the air outlet pipeline is suitable for connecting with the air inlet of the air inlet shaft.

[0007] The desorption pipeline is connected with the second air outlet of each adsorption device, and is suitable for introducing hot air into the adsorption device to desorb the adsorption purifying agent in the adsorption device.

[0008] The air inlet pipeline is provided with a coal mine main fan, and a blowing side of the coal mine main fan faces the adsorption device.

[0009] The first air outlet of each adsorption device is provided with a first valve, and the first valve is located on the air inlet pipeline.

[0010] In a possible implementation, the gas heating device is further included; the air outlet end of the gas heating device is connected with the desorption pipeline, and is suitable for injecting hot air into the desorption pipeline, so as to heat the adsorption purifying agent and resolve the adsorbed harmful gas.

[0011] In a possible implementation, the first air outlet of each adsorption device is connected with the waste gas treatment equipment through the waste gas pipeline.

[0012] In a possible implementation, the waste gas treatment equipment is an RTO furnace.

[0013] In a possible implementation, the air inlet pipeline is provided with a first concentration detector, and the first concentration detector is located on a suction side of the coal mine main fan, and is suitable for detecting a methane gas concentration at an air outlet of the air return shaft.

[0014] In a possible implementation, the second air outlet of each adsorption device is provided with a second concentration detector, and the second concentration detector is located on the air outlet pipeline.

[0015] In a possible implementation, the adsorption device is provided with two.

[0016] Beneficial effects: The air inlet pipeline is suitable for introducing the to-be-treated exhaust air released from the exhaust air well into two or more adsorption devices, when the to-be-treated exhaust air passes through the two or more adsorption devices, the internal adsorption purifying agent can adsorb the carbon monoxide gas and other toxic and harmful gases in the to-be-treated exhaust air, so as to increase the methane concentration in the exhaust air and meet the requirement of recycling the exhaust air into the mine; the air outlet pipeline is suitable for collecting and conveying the treated exhaust air after the adsorption of each adsorption device to the air inlet well, so as to complete the recycling of the exhaust air into the mine; the desorption pipeline connected with the second air port of each adsorption device is suitable for introducing hot air from the second air port into the adsorption device to desorb and analyze the saturated adsorption purifying agent in the adsorption device, and the desorbed harmful gas flows out through the first air port of the adsorption device and is conveyed to the waste gas treatment equipment for purification and destruction; after the coal mine exhaust air is adsorbed and purified by the application, the exhaust air can be recycled into the mine again to replace fresh air, and the recycled exhaust air into the mine is non-toxic and harmless; at the same time, since the recycling of the exhaust air will appropriately increase the methane concentration in the exhaust air, the utilization rate of the exhaust air can be improved, the emission amount can be reduced, the energy loss can be reduced, and the serious environmental pollution can be avoided.

[0017] Other features and aspects of the present application will become apparent from the following detailed description of exemplary embodiments with reference to the drawings. BRIEF DESCRIPTION OF DRAWINGS

[0018] The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate exemplary embodiments, features, and aspects of the present application and serve to explain the principles of the present application.

[0019] Figure 1 A structure connection diagram of a coal mine exhaust air recycling into mine concentration system of an embodiment of the present application is shown.

[0020] The air inlet pipeline 100, the air outlet pipeline 200, the desorption pipeline 300, the adsorption purifying agent 430, the coal mine main fan 400, the exhaust air recycling fan 500, the regeneration fan 600, the gas heating equipment 800, the waste gas treatment equipment 700, the waste gas pipeline 710, the first concentration detector 120, the second concentration detector 414, and the third concentration detector 720. DETAILED DESCRIPTION

[0021] Various exemplary embodiments, features, and aspects of the present application will be described in detail below with reference to the accompanying drawings. The same reference numerals in the drawings represent functionally the same or similar elements. Although various aspects of the embodiments are shown in the drawings, the drawings are not necessarily drawn to scale unless specifically indicated.

[0022] It should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate directions or positions based on the directions or positions shown in the drawings, and are used only for convenience of description of the present application or simplification of description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.

[0023] In addition, the terms "first", "second", "third", etc. are used only for descriptive purposes and are not to be construed as indicating or implying relative importance or a required or preferred sequence of elements. Thus, features with a "first", "second", "third" designation can include one or more of the features, explicitly or implicitly.

[0024] The word "exemplary" is used herein to mean "serving as an example, instance, or illustration." Any implementation described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other implementations.

[0025] In addition, in order to better illustrate the present application, a large number of specific details are given in the specific embodiments below. Those skilled in the art should understand that the present application can also be implemented without some specific details. In some examples, methods, means, elements and circuits that are well known to those skilled in the art are not described in detail, in order to highlight the main ideas of the present application.

[0026] Figure 1 The structural connection diagram of the coal mine ventilation air recirculation into mine concentration system according to the embodiment of the present application is shown. As shown in the figure, Figure 1As shown, the coal mine ventilation air methane recycling into mine concentration system comprises: an air inlet pipeline 100, an air outlet pipeline 200, a desorption pipeline 300, two or more adsorption devices and a regeneration fan 600; one end of the air inlet pipeline 100 is adapted to be connected to an air outlet of an air return shaft; the air inlet pipeline 100 and a first air port of each adsorption device are connected and adapted to introduce ventilation air to be treated into the adsorption device; an adsorption purifying agent 430 is arranged in the adsorption device and adapted to purify and adsorb the ventilation air to be treated released from the air return shaft; a second air port of each adsorption device is connected to the air outlet pipeline 200, and the other end of the air outlet pipeline 200 is adapted to be connected to an air inlet of an air inlet shaft; the desorption pipeline 300 is connected to the second air port of each adsorption device and adapted to introduce hot air into the adsorption device to desorb the adsorption purifying agent 430 in the adsorption device; the first air port of each adsorption device is also connected to a waste gas treatment device and adapted to introduce the desorbed gas into the waste gas treatment device; a coal mine main fan 400 is arranged on the air inlet pipeline 100, and a blowing side of the coal mine main fan 400 faces the adsorption device; a ventilation air methane recycling fan 500 is arranged on the air outlet pipeline 200, and a suction side of the ventilation air methane recycling fan 500 faces the adsorption device; a regeneration fan 600 is arranged on the desorption pipeline 300, and a blowing side of the regeneration fan 600 faces the adsorption device; a first valve is arranged at the first air port of each adsorption device and located on the air inlet pipeline 100; a second valve is arranged at the second air port of each adsorption device and located on the air outlet pipeline 200; and a third valve is also arranged at the second air port of each adsorption device and located on the desorption pipeline 300.

[0027] Here, it needs to be explained that the return air shaft refers to the air shaft that discharges the spent air in the mine ventilation system, and the air inlet shaft is the air inlet shaft of the mine; the air inlet pipe 100 is suitable for introducing the treated spent air discharged from the return air shaft into two or more adsorption devices, when the treated spent air passes through the two or more adsorption devices, the internal adsorption purifying agent 430 can adsorb and purify the carbon monoxide gas and other toxic and harmful gases in the treated spent air, and after reaching the standard requirements of the spent air circulating into the mine, the treated spent air is sent back into the mine through the air outlet pipe 200, and after the treated spent air flows through the inside of the mine again to carry gas again, it is discharged from the return air shaft, and then it is sent into the adsorption device again for adsorption and purification, and finally it is sent into the mine again through the air inlet shaft to form the spent air circulating into the mine; therefore, in the process of continuous circulation into the mine, the methane in the spent air will increase continuously until the methane concentration reaches the critical value and the spent air is discharged from the system; wherein the coal mine main fan 400 on the air inlet pipe 100 is suitable for increasing the flow speed of the treated spent air in the air inlet pipe 100, so that the treated spent air can quickly enter the adsorption device; the air outlet pipe 200 is suitable for collecting and transporting the treated spent air after the adsorption of each adsorption device to the air inlet shaft to complete the spent air circulating into the mine. At the same time, due to the multiple circulation of the spent air, the methane concentration in the spent air will be increased, and the utilization rate will be improved without the need to inject and mix the extracted gas throughout the process, which is convenient for the subsequent destruction of the spent air, reduces the emission amount, reduces energy loss, and avoids serious environmental pollution.

[0028] In order to realize zero emission of coal mine gas and destroy the spent air with minimum energy consumption, the present application circulates the partially purified spent air into the mine, reduces the total emission volume, and concentrates and increases the methane volume concentration in the spent air, so that the methane volume concentration is finally concentrated to close to 0.3% and not more than 0.3%, which provides convenient conditions for subsequent complete destruction and efficient utilization of gas.

[0029] However, the discharged treated spent air may contain trace amounts of carbon monoxide, carbon dioxide, hydrogen sulfide and other harmful gases, so the harmful gases need to be adsorbed and removed before circulating into the mine, so that the treated spent air meets the standard of circulating into the mine to ensure that the spent air circulating into the mine is non-toxic and harmless. It needs to be explained that the standard of the treated spent air circulating into the mine is that the carbon monoxide concentration meets the secondary concentration limit (applicable to Class II functional areas) in Table I of the "Environmental Air Pollutant Basic Item Concentration Limit" in the GB3095-2021 "Environmental Air Quality Standard" document (i.e. the 1-hour average concentration of carbon monoxide needs to be less than 10 mg / m 3 ); the suspended particulate matter concentration meets the secondary concentration limit in Table II of the "Environmental Air Pollutant Other Item Concentration Limit"; the hydrogen sulfide concentration and the carbon dioxide concentration need to meet the concentration limit specified in the "Atmospheric Pollutant Comprehensive Emission Standard"; to ensure the air quality in the mine and the physical health of the mine workers.

[0030] Further, the gas on the adsorption medium needs to be desorbed in time after the adsorption medium is close to saturation to avoid affecting the purification effect after adsorption saturation; the desorption pipeline 300 is connected with the second air port of each adsorption device, which is suitable for introducing hot air from the second air port into the adsorption device to desorb the adsorption purifying agent 430 inside; the harmful gas after desorption flows out through the first air port of the adsorption device and is transported to the waste gas treatment equipment for purification and destruction; the first air port of each adsorption device is provided with a first valve, and the second air port of each adsorption device is provided with a second valve and a third valve, and by controlling the on-off of the first valve, the second valve and the third valve of each adsorption device, the use of the adsorption device for adsorption and purification of the treated waste air or for desorption can be controlled at any time; it should be noted that all adsorption devices in the present application can simultaneously adsorb and purify the treated waste air, and then all adsorption devices can simultaneously desorb the adsorption purifying agent 430; this method can process a large amount of treated waste air at one time; the present application can also use a part of the adsorption devices to adsorb and purify the treated waste air, and the other part to desorb the adsorption purifying agent 430, and then cycle and alternate use; this method can realize uninterrupted treatment of the treated waste air. After the treated waste air discharged from the air return well is adsorbed and purified by the present application, the waste air can be recycled and introduced into the mine to replace fresh air, and the waste air circulating into the mine is non-toxic and harmless.

[0031] In a possible implementation, the gas heating device 800 is further included; the air outlet end of the gas heating device 800 is connected with the desorption pipeline 300, which is suitable for injecting hot air into the desorption pipeline 300. It should be noted that the gas heating device 800 is suitable for heating gas and injecting hot gas into the desorption pipeline 300.

[0032] Further, the gas heating device 800 adopts a gas heater. The gas heating device 800 can be installed before the inlet of the regenerative fan 600 or after the outlet of the regenerative fan 600, and preferably, the gas heating device 800 and the regenerative fan 600 are arranged in sequence along the flow direction of the air in the desorption pipeline 300.

[0033] Preferably, the gas heating device 800 adopts a flue gas heat exchanger, which can avoid a large amount of water generated by the adsorption purifying agent 430 due to cold and hot alternation, damage to the adsorption purifying agent 430, or cause the adsorption purifying agent 430 to be blocked, the resistance to increase, or even to be invalid due to long-term water carrying compared with steam heating.

[0034] It should be noted that according to the characteristics of the adsorption purifying agent 430, the temperature of the hot air after heating by the gas heating device 800 should be greater than 100℃ and less than 150℃, which meets the desorption effect in the heating process.

[0035] In a possible implementation, the first air outlet of each adsorption device is connected with the waste gas pipeline 710 and the waste gas treatment device 700. As shown in Figure 1 , a fourth valve is arranged at the first air outlet of each adsorption device and located on the waste gas pipeline 710.

[0036] In a possible implementation, the waste gas treatment device 700 is an RTO furnace (regenerative thermal oxidizer), which can treat the desorbed waste gas, has high purification efficiency, and avoids environmental pollution caused by directly discharging the waste gas into the atmosphere.

[0037] In a possible implementation, the first concentration detector 120 is arranged on the air inlet pipeline 100 and located on the air suction side of the coal mine main fan 400, and is suitable for detecting the methane gas concentration at the air outlet of the return air shaft, that is, detecting the gas concentration of the methane in the to-be-treated ventilation air. It should be noted that, according to relevant regulations, the methane concentration must be controlled below 0.75%, and higher than 0.5% will be defined as a safety accident, and the ventilation air circulation will appropriately increase the methane concentration therein. The methane concentration of the circulation ventilation air in the present application is taken as a critical point that the total exhaust gas methane content is not more than 0.3%. When the exhaust gas methane concentration detected by the first concentration detector 120 reaches 0.3%, the circulation purification can be stopped or the circulation amount can be reduced, to ensure the safety of the mine ventilation.

[0038] In a possible implementation, as shown in Figure 1 , the second concentration detector 414 is arranged at the second air outlet of each adsorption device and located on the air outlet pipeline 200; the second concentration detector 414 adopts a multi-channel gas analyzer; the second concentration detector 414 is suitable for detecting the carbon monoxide concentration, the carbon dioxide concentration, and the hydrogen sulfide concentration in the treated ventilation air; and whether the treated ventilation air meets the circulation into-mine standard (standard value) is determined according to the detected carbon monoxide concentration, carbon dioxide concentration, and hydrogen sulfide concentration. Meanwhile, when the carbon monoxide concentration detected by the second concentration detector 414 reaches or exceeds the index required by the second functional area, the first valve and the second valve are closed; the system circulation is stopped, and desorption regeneration is performed, so that the adsorption purification agent 430 reaches the adsorption saturation state; the adsorbed harmful gas (carbon monoxide, carbon dioxide, and hydrogen sulfide) is desorbed and analyzed by heating the adsorption purification agent 430 with hot air, and the analyzed gas is sent to the waste gas treatment device 700 through the waste gas pipeline 710 for destruction treatment.

[0039] In a possible implementation, the third concentration detector 720 is arranged on the exhaust pipe 710, and is adapted to detect the carbon monoxide concentration in the exhaust pipe 710; the desorption degree of the adsorption purifying agent 430 is confirmed by the measured carbon monoxide concentration; when the carbon monoxide concentration in the exhaust pipe 710 is reduced to a certain threshold value and the desorption continues but the carbon monoxide concentration no longer continues to decrease, it is determined that the desorption work is completed, and the desorption and resolution of the adsorption purifying agent 430 can be stopped.

[0040] As shown in Figure 1 each adsorption device includes an adsorption box and an adsorption purifying agent 430 filled in the adsorption box, and the first air port and the second air port are located on opposite sides of the adsorption box to facilitate the rapid circulation of air; the adsorption purifying agent 430 is stacked in the adsorption box.

[0041] In a possible implementation, the adsorption purifying agent 430 is an acid gas adsorbent; preferably, the adsorption purifying agent 430 is silica gel, which can adsorb carbon dioxide, carbon monoxide, and hydrogen sulfide and other harmful gases in the to-be-treated ventilation air.

[0042] In a possible implementation, the top surface of the adsorption purifying agent 430 is attached to an adsorption layer 440; preferably, the material of the adsorption layer 440 is activated carbon, which can remove odors in the to-be-treated ventilation air.

[0043] The adsorption purifying agent 430 and the adsorption layer 440 can simultaneously adsorb carbon monoxide, carbon dioxide, hydrogen sulfide, and odors in the to-be-treated ventilation air, and impurities in the to-be-treated ventilation air are also blocked and filtered in the adsorption device.

[0044] Here, it should be noted that the specific filling amount of the adsorption purifying agent 430 is based on the composition analysis data of the ventilation air of different coal mines, and is mainly based on temperature swing adsorption. The specific filling amount of the adsorption purifying agent 430 is comprehensively calculated according to the designed regeneration period, the mixed flow of the ventilation air, and the concentrations of carbon monoxide, carbon dioxide, and hydrogen sulfide detected before adsorption. The filling amount can consider the surplus based on the design calculation amount, and the adsorption amount of the adsorption purifying agent 430 is equal to the adsorption amount of the adsorption purifying agent per unit volume multiplied by the filling amount of the adsorption purifying agent. The design is based on the fact that the adsorption amount in the cycle period is greater than the total amount of the adsorbed gas contained in the ventilation air.

[0045] The calculation formula of the filling amount of the adsorption purifying agent 430 is as follows:

[0046] V = Q × △t × m1 ÷ m0 × ω

[0047] V: the filling amount of the adsorption purifying agent (m 3 )

[0048] Q: the ventilation air flow (m3 / min)

[0049] Δt: cycle period (min), that is, the adsorption purification time between the completion of the last desorption and the start of the next desorption;

[0050] m 1: The total content of CO, CO2 and H2S in the exhaust air (mg / m 3 )

[0051] m 0: The adsorption capacity of the adsorption purification agent per unit volume, that is, the adsorption capacity of the adsorption purification agent per unit volume for CO, CO2 and H2S (mg / m 3 )

[0052] ω: safety factor; the value range of ω is 1.2-1.5, and the larger value is taken for the exhaust air of the coal mine with higher actual CO, CO2 and H2S content.

[0053] Description: The calculation amount of the patent is not the difference between the import and export harmful gas contents, but directly uses the import content as the calculation basis, and the purpose is to obtain the air quality standard due to the above.

[0054] It should be noted that the number of adsorption devices can be increased or decreased according to the exhaust air flow of different coal mines. Since the adsorption device is provided with multiple adsorption devices, at least one adsorption device is put into use for adsorbing the exhaust air to be treated, or a part of the adsorption devices is put into use for adsorbing the exhaust air to be treated, or all the adsorption devices are put into use for adsorbing the exhaust air to be treated. Further, the adsorption device is provided with two adsorption devices.

[0055] The present application utilizes the principle of temperature swing adsorption purification, and can adsorb at room temperature and desorb at high temperature.

[0056] It should be noted that the general cycle period is preferably adsorbed for 30 minutes and then regenerated and desorbed once, and after the desorption and desorption are completed, the adsorption operation is put into use again.

[0057] The working process of the present application is described:

[0058] The adsorption device is provided with two, one of which is set as the first adsorption device 410; the other is the second adsorption device 420. The two adsorption devices are set to cyclically and alternately perform adsorption purification work; in the initial state, the first valve 411 of the first adsorption device 410 is opened, the second valve 412 of the first adsorption device 410 is opened, the third valve 413 of the first adsorption device 410 is closed, the fourth valve 711 of the first adsorption device 410 is closed; the first valve 421 of the second adsorption device 420 is closed, the second valve 422 of the second adsorption device 420 is closed, the third valve 423 of the second adsorption device 420 is closed, and the fourth valve 712 of the second adsorption device 420 is closed; the coal mine main fan 400 is opened, the first adsorption device 410 performs adsorption purification on the treated waste air, and the second adsorption device 420 is in an inactive state.

[0059] When the adsorption purification agent 430 of the first adsorption device 410 reaches the first adsorption saturation state, the first valve 411 of the first adsorption device 410 is closed, the second valve 412 of the first adsorption device 410 is closed, the third valve 413 of the first adsorption device 410 is opened, the fourth valve 711 of the first adsorption device 410 is opened; the first valve 421 of the second adsorption device 420 is opened, the second valve 422 of the second adsorption device 420 is opened, the third valve 423 of the second adsorption device 420 is closed, the fourth valve 712 of the second adsorption device 420 is closed, and the second adsorption device 420 starts to perform adsorption work on the treated waste air; the gas heating equipment 800 and the regenerative fan 600 are opened, hot air is sent into the first adsorption device 410 and heats and desorbs the adsorption purification agent 430 inside, the generated waste gas directly enters the waste gas treatment equipment 700 from the waste gas pipeline 710; until the third concentration detector 720 detects that the carbon monoxide concentration no longer changes, the heating of the adsorption purification agent 430 can be stopped, the first valve 411 of the first adsorption device 410 is opened again, the second valve 412 of the first adsorption device 410 is opened again, the third valve 413 of the first adsorption device 410 is closed again, the fourth valve 711 of the first adsorption device 410 is closed again, and the adsorption purification mode is switched to, to perform adsorption purification on the treated waste air; similarly, when the adsorption purification agent 430 of the second adsorption device 420 reaches the adsorption saturation state, the first valve 421 of the second adsorption device 420 is closed, the second valve 422 of the second adsorption device 420 is closed, the third valve 423 of the second adsorption device 420 is opened, and the fourth valve 712 of the second adsorption device 420 is opened; the gas heating equipment 800 and the regenerative fan 600 are opened, hot air is sent into the second adsorption device 420 and heats and desorbs the adsorption purification agent 430 inside, and after desorption is completed, it is put into use for adsorption, so that the two adsorption devices are alternately used to realize the adsorption of the treated waste air, and realize uninterrupted cyclic adsorption.

[0060] When the methane concentration detected by the first concentration detector 120 reaches 0.3%, the first valve 411 of the first adsorption device 410 and the first valve 421 of the second adsorption device 420 are closed, and the exhaust air circulation is stopped.

[0061] By recycling the exhaust air according to the present application, on the one hand, the negative energy output is changed into positive energy output, and on the other hand, the investment can be reduced by several times and the return on investment can be increased, realizing the self-heating balance of the subsequent mine exhaust air destruction, while also reducing the heating load in winter; taking a mine with 0.1% methane content in exhaust air and a total exhaust air flow of 1 million cubic meters per hour as an example, the methane content in the exhaust air is increased to 0.3% by the recycling method of the present application, at this time the exhaust air discharge volume flow will become 330,000 cubic meters per hour, that is, the air flow supplemented will become 330,000 cubic meters per hour. The number of destruction devices constructed and the processing volume flow will become 1 / 3 of the original, and the investment will also become 1 / 3 or even less, on the contrary, the output heat and energy consumption will be more reasonable and efficient.

[0062] The above has described various embodiments of the present application, the above description is exemplary, not exhaustive, and is not limited to the disclosed embodiments. Many modifications and changes are obvious to those skilled in the art without departing from the scope and spirit of the described embodiments. The choice of terms used herein is intended to best explain the principles of the embodiments, practical application or improvement of technology in the market, or to enable other ordinary skilled persons in the art to understand the embodiments disclosed herein.

Claims

1. A coal mine ventilation air methane recirculation into mine concentration system, characterized by, The utility model relates to a kind of coal mine waste gas purification device, including: Air inlet pipe, air outlet pipe, desorption pipeline, more than two adsorption devices and regenerative fan; One end of the air inlet pipe is suitable for connecting the air outlet of return air shaft;The air inlet pipe is connected with the first air port of each adsorption device, and is suitable for introducing the waste air to be treated into the adsorption device; The adsorption device is provided with adsorption purifying agent, and is suitable for purifying and adsorbing the waste air to be treated released by the return air shaft;The second air port of each adsorption device is connected with the air outlet pipe, and the other end of the air outlet pipe is suitable for connecting with the air inlet of air inlet shaft, so that the waste air to be treated released by the return air shaft is sent back to the air inlet shaft after passing through the adsorption device; The desorption pipeline is connected with the second air port of each adsorption device, and is suitable for introducing hot air into the adsorption device to desorb the adsorption purifying agent in the adsorption device;The first air port of each adsorption device is also connected with waste gas treatment equipment, and is suitable for introducing the gas after desorption into the waste gas treatment equipment; The air inlet pipe is provided with a coal mine main fan, and the blowing side of the coal mine main fan faces the adsorption device;The air outlet pipe is provided with a waste air circulating fan, and the suction side of the waste air circulating fan faces the adsorption device;The desorption pipeline is provided with a regenerative fan, and the blowing side of the regenerative fan faces the adsorption device; A first valve is arranged at the first air port of each adsorption device, and the first valve is located on the air inlet pipe;A second valve is arranged at the second air port of each adsorption device, and the second valve is located on the air outlet pipe;A third valve is also arranged at the second air port of each adsorption device, and the third valve is located on the desorption pipeline.

2. The coal mine ventilation air recycle into mine concentration system of claim 1, wherein, It also includes a gas heating device. The air outlet end of the gas heating device is connected with the desorption pipeline, and is suitable for injecting hot air into the desorption pipeline to heat the adsorption purifying agent and release the harmful substances adsorbed by the adsorption purifying agent.

3. The coal mine ventilation air recycle into mine concentration system of claim 1, wherein, The first air port of each adsorption device is connected with the waste gas treatment equipment through a waste gas pipeline.

4. The coal mine ventilation air recycle into mine concentration system of claim 3, wherein, The waste gas treatment equipment is an RTO furnace.

5. The coal mine ventilation air recycle into mine concentration system of claim 1, wherein, A first concentration detector is arranged on the air inlet pipe, and the first concentration detector is located on the suction side of the coal mine main fan, and is suitable for detecting the methane gas concentration at the air outlet of the return air shaft.

6. The coal mine ventilation air recycle into mine concentration system of claim 1, wherein, A second concentration detector is arranged at the second air port of each adsorption device, and the second concentration detector is located on the air outlet pipe.

7. The coal mine ventilation air recycle into mine concentration system of any of claims 1-6, wherein, The adsorption device is provided with two.