An ultrasonic atomization intelligent and precise dust reduction method and equipment

By using intelligent and precise dust reduction methods and equipment in coal mines, and dynamically adjusting the nozzle angle and power, the problems of low water resource utilization efficiency and safety accident risks in the existing technology are solved, and the effects of efficient dust reduction and cost saving are achieved.

CN119122596BActive Publication Date: 2025-06-06HENAN POLYTECHNIC UNIV +1
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Patent Information

Application Number
CN202411386709.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-06-06
Estimated Expiration
2044-09-30

AI Technical Summary

Technical Problem

The existing technology fails to effectively utilize water resources during the dust reduction process of coal mines, resulting in increased production costs and the risk of safety accidents.

Method used

The intelligent and precise dust reduction method and equipment of ultrasonic atomization are adopted to determine the dust source position through the GPS module, and the dust concentration monitoring device and the two-fluid ultrasonic atomization device are configured. The steering mechanism and the main controller are used to dynamically adjust the nozzle angle and power to achieve accurate dust reduction.

Benefits of technology

Efficiently complete coal mine dust reduction, save water resources, reduce production costs, improve safety, and eliminate dust accidents.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an ultrasonic atomization intelligent and precise dust reduction method and equipment, and relates to the field of dust treatment technology. The present invention uses a dust concentration monitoring device to analyze and judge the dust concentration situation of each circle position in the dust area in real time, and uses a steering mechanism to drive a two-fluid ultrasonic atomization nozzle to reduce dust in the dust area, and judges and analyzes the total dust concentration situation of the dust reduction area facing in real time, and at the same time, according to the rotation angle generated by the steering mechanism driving the two-fluid ultrasonic atomization nozzle, the mutual interference intensity of the dust reduction area of ​​the two-fluid ultrasonic atomization nozzles on both sides is judged, and the real-time spray dust reduction power of the two-fluid ultrasonic atomization nozzle is correspondingly adjusted, which not only efficiently completes the dust reduction of the coal mine production working face, but also can more efficiently utilize the equipped water resources, thereby reducing the actual production operation cost, ensuring the personal safety of personnel on the coal mine production working face, and preventing the occurrence of coal mine dust safety accidents.
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Description

Technical Field

[0001] The present invention relates to the field of dust treatment technology, and in particular to an ultrasonic atomization intelligent and precise dust reduction method and equipment. Background Art

[0002] During coal mining, a large amount of dust is generated at the underground working face. Eliminating dust hazards, reducing the occurrence of occupational diseases among coal miners, and preventing coal dust explosion accidents have become urgent tasks for coal mine safety production.

[0003] The existing method of eliminating dust from coal mine production is to directly use a two-fluid ultrasonic atomization device to atomize and reduce dust in the dust area. However, this direct atomization and dust reduction process often does not take into account the loss of water and electricity. In the face of some deep coal seams, long-distance operations and other scenarios, large-scale water distribution is difficult, and the large amount of water lost in dust reduction is also difficult to recycle, resulting in an increase in the actual cost of production operations.

[0004] In summary, how to efficiently complete dust reduction on the production working face of coal mines, while also being able to more efficiently utilize the allocated water resources, reduce actual production operation costs, ensure the personal safety of personnel on the production working face of coal mines, and prevent the occurrence of coal mine dust safety accidents has become an urgent problem to be solved. Summary of the Invention

[0005] In order to solve the above technical problems, the present invention provides an ultrasonic atomization intelligent and precise dust reduction method and equipment, which can not only efficiently complete the dust reduction of the coal mine production working face, but also can more efficiently utilize the equipped water resources, thereby reducing the actual production operation cost, ensuring the personal safety of personnel on the coal mine production working face, and preventing the occurrence of coal mine dust safety accidents.

[0006] The present invention is achieved through the following technical solutions:

[0007] The present invention provides an ultrasonic atomization intelligent and precise dust reduction equipment, comprising a GPS module arranged at the dust source position, forming a dust area with the dust source as the center, which continuously diffuses dust outward, and a dust concentration monitoring device is arranged at the dust area position.

[0008] The dust concentration monitoring device includes a radial mounting frame pointing toward the dust source. The radial mounting frame is equipped with multiple vertical airflow channels distributed radially along the dust zone. A main air pipe connecting to all vertical airflow channels is located on the upper side of the radial mounting frame. An airflow device connected to the main air pipe is located on the side of the radial mounting frame. Each vertical airflow channel is equipped with a photoelectric dust concentration monitoring module for monitoring dust concentration in the vertical airflow channel. A two-fluid ultrasonic atomization device is located on both sides of the dust zone. The two-fluid ultrasonic atomization device is equipped with a two-fluid ultrasonic atomization nozzle and a steering mechanism that drives the two-fluid ultrasonic atomization nozzle. The dust concentration monitoring device and the two-fluid ultrasonic atomization device are connected to the main controller via electrical signal lines.

[0009] As a preferred technical solution of the dust reduction equipment in the present invention: the dust concentration monitoring device is located above the dust area, and the spacing distances between the vertical air flow channels on the radial mounting frame are the same.

[0010] As a preferred technical solution for the dust reduction equipment in the present invention: the initial spraying positions of the two-fluid ultrasonic atomizing nozzles on both sides of the dust area are directly opposite to the dust source, and the dust source and the two initial positions of the two-fluid ultrasonic atomizing nozzles are collinear.

[0011] As a preferred technical solution of the dust reduction equipment in the present invention: the main controller is equipped with a position coding module, and the position coding information in the position coding module independently corresponds one by one to the multiple photoelectric dust concentration monitoring modules of the dust concentration monitoring device.

[0012] As the preferred technical solution of the dust reduction equipment in the present invention: the steering mechanism is equipped with a servo motor that drives the two-fluid ultrasonic atomizing nozzle to rotate, the servo motor is equipped with an angle encoding module, and the angle encoding module is connected to the main controller through an electrical signal transmission line.

[0013] As a preferred technical solution for the dust suppression equipment in the present invention: taking the line between the two-fluid ultrasonic atomizing nozzle and the dust source as a reference: the steering mechanism drives the two-fluid ultrasonic atomizing nozzle to rotate at an angle of (-90°, 90°).

[0014] The present invention provides an ultrasonic atomization intelligent and precise dust reduction method, which includes the following contents:

[0015] S1. Determine the center of the dust source based on the construction site.

[0016] S2. According to the center position of the dust source, adjust the position of the dust concentration monitoring device in the dust area. The distance parameters between the multiple vertical airflow channels of the radial mounting frame and the dust source are: {M1, M2, M3, ..., M n}.

[0017] S3. Adjust the position between the two-fluid ultrasonic atomization nozzle of the two-fluid ultrasonic atomization device and the dust area, and set the distance relationship L between the two-fluid ultrasonic atomization nozzle and the dust source.

[0018] S4. Construction begins at the work site, and the dust source spreads dust outward.

[0019] S5. The airflow device of the dust concentration monitoring device is started, and the airflow at each position in the dust area rises into the vertical airflow channel. The dust concentrations monitored by the photoelectric dust concentration monitoring module at each position are as follows: {C1, C2, C3, ..., C n}.

[0020] S6. The steering mechanism adjusts the steering of the two-fluid ultrasonic atomizing nozzle, with the line connecting the two two-fluid ultrasonic atomizing nozzles as the reference line. The angle between one of the two-fluid ultrasonic atomizing nozzles and the reference line is β1, and the angle between the other two-fluid ultrasonic atomizing nozzle and the reference line is β2, β1=-β2, β=|β1|=|-β2|.

[0021] S7. The main controller analyzes and calculates the angle coefficient λ1=A·sinβ+δ, 0 <A≤0.5,δ=0.5。

[0022] S8. According to the distance parameters {M1, M2, M3, ..., M n}The circular area formed by {F(M1), F(M2), F(M3), ..., F(M n )}, and the angle β generated in real time by the steering mechanism driving the two-fluid ultrasonic atomizing nozzle to rotate, the control system analyzes the spray path of any two-fluid ultrasonic atomizing nozzle and the circular area {F(M1), F(M2), F(M3), ..., F(M n )} The intersection positions of the boundary lines {x1, x2, x3, ..., x m}, obtain the dust concentration at the intersection position, fit the dust concentration change curve F(x) according to the dust concentration parameters at each intersection position, and calculate the dust concentration integral: .

[0023] S9. Real-time power P of any two-fluid ultrasonic atomizing nozzle 实时 =λ1·P 初始 +P 补偿 Among them, P 初始 A power parameter of the two-fluid ultrasonic atomizing nozzle preset by the main controller, P 补偿 is the atomization dustfall intensity compensation power, P 补偿 ∝Dust concentration integral T.

[0024] Compared with the existing technology, the beneficial effects of the present invention are:

[0025] The present invention predetermines the dust source and dust area of ​​the working face, configures a dust concentration monitoring device in the dust area, uses the dust concentration monitoring device to analyze and judge the real-time diffusion of dust concentration in each circle position in the dust area, and uses a steering mechanism to drive a two-fluid ultrasonic atomizing nozzle to reduce dust in the dust area. When the two-fluid ultrasonic atomizing nozzle reduces dust in the dust area, it judges and analyzes the total dust concentration according to the real-time dust reduction area facing it. At the same time, according to the rotation angle generated by the steering mechanism driving the two-fluid ultrasonic atomizing nozzle, the mutual interference intensity of the dust reduction areas of the two-fluid ultrasonic atomizing nozzles on both sides is judged, and the real-time spray dust reduction power of the two-fluid ultrasonic atomizing nozzle is correspondingly adjusted. It not only efficiently completes the dust reduction of the coal mine production working face, but also can more efficiently utilize the equipped water resources, thereby reducing the actual production operation cost, ensuring the personal safety of personnel on the coal mine production working face, and preventing the occurrence of coal mine dust safety accidents. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is an overall schematic diagram of the ultrasonic atomization dust reduction equipment in the present invention.

[0027] Figure 2 This is a schematic diagram of the ultrasonic atomization dust reduction equipment of the present invention performing dust reduction.

[0028] Figure 3 It is a structural schematic diagram of the dust concentration monitoring device in the present invention.

[0029] Figure 4 Schematic diagram of the changing relationship between the angle coefficient λ1 and the angle β in the present invention.

[0030] Figure 5 Schematic diagram of the relationship between atomization spray and dust concentration at various locations in the dust area in the present invention.

[0031] Among them: 1-dust source; 2-GPS module; 3-dust concentration monitoring device, 301-radial mounting frame, 302-vertical airflow channel, 303-photoelectric dust monitoring module, 304-main air pipe, 305-airflow device; 4-two-fluid ultrasonic atomization device; 5-steering mechanism; 6-two-fluid ultrasonic atomization nozzle; 7-dust area; 8-main controller. DETAILED DESCRIPTION

[0032] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0033] Example 1: The present invention designs an intelligent and precise dust suppression device that dynamically controls the degree of atomization based on monitoring dust concentration. The specific structure is as follows:

[0034] See also Figure 1 、 Figure 2 A GPS module 2 is installed at the dust source 1. During operation, a dust area 7 is formed with the dust source 1 as the center, where dust continuously diffuses outward. A dust concentration monitoring device 3 is installed at the dust area 7. The dust concentration monitoring device 3 is located above the dust area 7.

[0035] At least two two-fluid ultrasonic atomization devices 4 are arranged outside the dust area 7 , and the two two-fluid ultrasonic atomization devices 4 are located on both sides of the dust area 7 .

[0036] The two-fluid ultrasonic atomization device 4 is equipped with a steering mechanism 5 and a two-fluid ultrasonic atomization nozzle 6. The steering mechanism 5 drives the two-fluid ultrasonic atomization nozzle 6 to rotate: the steering mechanism 5 is equipped with a servo motor, which drives the two-fluid ultrasonic atomization nozzle 6 to rotate. The servo motor is equipped with an angle encoding module, which is connected to the main controller 8 via an electrical signal transmission line.

[0037] Among them, the connecting line between the two-fluid ultrasonic atomizing nozzle 6 and the dust source 1 is used as the benchmark: the steering mechanism 5 drives the two-fluid ultrasonic atomizing nozzle 6 to rotate in an angle range between -90° and 90°. Theoretically, the rotation angle of the two-fluid ultrasonic atomizing nozzle 6 relative to the initial position does not need to reach -90° and 90°.

[0038] The two-fluid ultrasonic atomizing nozzles 6 on both sides of the dust area 7 are located at the initial spraying position and are directly opposite to the dust source 1. When the dust source 1 and the two two-fluid ultrasonic atomizing nozzles 6 are at the initial position, the three are in a collinear state.

[0039] The main controller 8 is independently connected to the dust concentration monitoring device 3 and the two-fluid ultrasonic atomization device 4 through an electrical signal line.

[0040] Combine Figure 3 The dust concentration monitoring device 3 includes a radial mounting frame 301, a vertical airflow channel 302, a photoelectric dust concentration monitoring module 303, a main air pipe 304, and an airflow device 305. The radial mounting frame 301 points directly to the dust source 1. Along the radial direction of the dust area 7, multiple distributed vertical airflow channels 302 are opened on the radial mounting frame 301, and the spacing distance between each vertical airflow channel 302 on the radial mounting frame 301 is the same.

[0041] The main air pipe 304 is located on the upper side of the radial mounting frame 301, and the main air pipe 304 is connected to all vertical air flow channels 302. The air flow device 305 is located at the side end of the radial mounting frame 301, and the air flow device 305 is connected to the main air pipe 304. Each vertical air flow channel 302 is equipped with a photoelectric dust concentration monitoring module 303, which is used to monitor the dust concentration in the vertical air flow channel 302.

[0042] The main controller 8 is equipped with a position coding module. For example, the position coding information in the position coding module is {W1, W2, W3, ..., W n}, the positions of the multiple photoelectric dust concentration monitoring modules 303 of the dust concentration monitoring device 3 are {S1, S2, S3, ..., S n}, there is a one-to-one independent correspondence between the two: (W1~S1), (W2~S2), (W3~S3),..., (W n ~S n ).

[0043] Example 2: The present invention designs an ultrasonic atomization dust reduction method based on the above-mentioned dynamic intelligent precision dust reduction equipment, the specific contents of which are as follows:

[0044] The first step is to determine the center position of the dust source 1 according to the construction work point and configure the GPS module 2.

[0045] In the second step, the position of the dust concentration monitoring device 3 in the dust area 7 is adjusted according to the center position of the dust source 1. The distance parameters between the multiple vertical airflow channels 302 of the radial mounting frame 301 and the dust source 1 are as follows: {M1, M2, M3, ..., M n}.

[0046] The third step is to adjust the position between the two-fluid ultrasonic atomizing nozzle 6 of the two-fluid ultrasonic atomizing device 4 and the dust area 7, and set the distance relationship L between the two-fluid ultrasonic atomizing nozzle 6 and the dust source 1;

[0047] In the fourth step, construction begins at the work site, and dust source 1 spreads dust outward.

[0048] In the fifth step, the airflow device 305 of the dust concentration monitoring device 3 is started, and the airflow at each position of the dust area 7 rises into the vertical airflow channel 302. The dust concentrations monitored by the photoelectric dust concentration monitoring module 303 at each position are as follows: {C1, C2, C3, ..., C n}.

[0049] Step 6: The steering mechanism 5 adjusts the steering of the two-fluid ultrasonic atomizing nozzle 6. Taking the connection line between the two two-fluid ultrasonic atomizing nozzles 6 as the reference line, the included angle between one two-fluid ultrasonic atomizing nozzle 6 and the reference line is β1, and the included angle between the other two-fluid ultrasonic atomizing nozzle 6 and the reference line is β2, β1 = -β2, β = |β1| = |-β2|.

[0050] According to the above parameters, further analyze and calculate the angle coefficient λ1 = A·sinβ + δ, 0 < A ≤ 0.5, δ = 0.5, as Figure 4 shown, the variation range of the angle coefficient λ1 is [0, 1).

[0051] Step 7: According to the distance parameters {M1, M2, M3,..., M n} formed by multiple vertical air flow channels 302 and the dust source 1 to form a circular area {F(M1), F(M2), F(M3),..., F(M n ), and the included angle β generated by the steering mechanism 5 driving the two-fluid ultrasonic atomizing nozzle 6 to rotate in real time, the control system analyzes the intersection positions {x1, x2, x3,..., x n} of the spraying path of any one two-fluid ultrasonic atomizing nozzle 6 and the boundary line of the circular area {F(M1), F(M2), F(M3),..., F(M m ), obtains the dust concentration at the intersection positions, and combines the Figure 5 , for example, taking the dust concentrations {C1, C2, C3,..., C n} monitored by the optoelectronic dust concentration monitoring module 303 in Step 5 above as an example, fits the dust concentration change curve F(x), and calculates the dust concentration integral: .

[0052] Step 8: The real-time power P 实时 of any one two-fluid ultrasonic atomizing nozzle 6 初始 = λ1·P 补偿 + P 初始 . Among them, P 补偿 is a power parameter of the two-fluid ultrasonic atomizing nozzle 6 preset by the main controller 8. Among them, P 补偿

[0053] is the atomization dust reduction intensity compensation power, and the meaning of this parameter is to dynamically adjust the dust reduction intensity according to the total amount of dust reduction required in real time on the spraying dust reduction path. In addition, P 补偿The parameter of P increases gradually. This is because the length of the area where the two-fluid ultrasonic atomizing nozzle 6 sprays increases, and as it approaches the inner periphery of the dust area 7, the dust concentration increases, and the dust concentration integral T increases significantly, resulting in P 补偿 However, when the spray areas of the two-fluid ultrasonic atomizing nozzles 6 on both sides are close to each other, the angle β is reduced, and the angle coefficient λ1 is reduced. This is also to avoid excessive crossover when the spray areas of the two-fluid ultrasonic atomizing nozzles 6 on both sides are close to each other, which is not conducive to energy-saving design. 补偿 The power design method ensures the atomization and dust reduction effect.

[0054] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. An ultrasonic atomization intelligent precision dust reduction equipment, characterized by: It comprises a GPS module (2) arranged at the location of a dust source (1), a dust area (7) which continuously diffuses dust outwards is formed with the dust source (1) as the center, and a dust concentration monitoring device (3) is arranged at the location of the dust area (7); The dust concentration monitoring device (3) comprises a radial mounting frame (301) pointing toward the dust source (1), the radial mounting frame (301) being provided with a plurality of vertical airflow channels (302) distributed along the radial direction of the dust region (7), the upper side of the radial mounting frame (301) being provided with a main air pipe (304) communicating with all the vertical airflow channels (302), the side end of the radial mounting frame (301) being provided with an airflow device (305) connected with the main air pipe (304), and each vertical airflow channel (302) being provided with a photoelectric dust concentration monitoring module (303) for monitoring the dust concentration in the vertical airflow channel (302); The dust area (7) is provided with a two-fluid ultrasonic atomization device (4) located on both sides of the dust area (7) at the periphery thereof, and the two-fluid ultrasonic atomization device (4) is provided with a two-fluid ultrasonic atomization nozzle (6) and a steering mechanism (5) for driving the two-fluid ultrasonic atomization nozzle (6) to rotate; The dust concentration monitoring device (3) and the two-fluid ultrasonic atomization device (4) are connected to the main controller (8) via an electrical signal line.

2. The ultrasonic atomization intelligent precision dust reduction equipment according to claim 1, characterized in that: The dust concentration monitoring device (3) is located above the dust area (7), and the spacing distances between the vertical airflow channels (302) on the radial mounting frame (301) are the same.

3. The ultrasonic atomization intelligent precision dust reduction equipment according to claim 1 is characterized by: The initial spraying positions of the two-fluid ultrasonic atomizing nozzles (6) on both sides of the dust area (7) are directly opposite to the dust source (1), and the dust source (1) and the two initial spraying positions of the two-fluid ultrasonic atomizing nozzles (6) are collinear.

4. The ultrasonic atomization intelligent precision dust reduction equipment according to claim 1, characterized in that: The main controller (8) is equipped with a position coding module, and the position coding information in the position coding module independently corresponds one by one to a plurality of photoelectric dust concentration monitoring modules (303) of the dust concentration monitoring device (3).

5. The ultrasonic atomization intelligent precision dust reduction equipment according to claim 1, characterized in that: The steering mechanism (5) is equipped with a servo motor for driving the two-fluid ultrasonic atomizing nozzle (6) to rotate, and the servo motor is equipped with an angle encoding module, and the angle encoding module is connected to the main controller (8) via an electrical signal transmission line.

6. The ultrasonic atomization intelligent precision dust reduction equipment according to claim 1, characterized in that: Taking the line between the two-fluid ultrasonic atomizing nozzle (6) and the dust source (1) as a reference: the angle at which the two-fluid ultrasonic atomizing nozzle (6) is driven by the steering mechanism (5) to rotate is (-90°, 90°).

7. An ultrasonic atomization intelligent and precise dust reduction method, characterized in that: An ultrasonic atomization intelligent precision dust reduction equipment according to any one of claims 1 to 6, comprising the following contents: S1. Determine the center location of the dust source (1) based on the construction site; S2. According to the center position of the dust source (1), the position of the dust concentration monitoring device (3) in the dust area (7) is adjusted, and the distance parameters between the multiple vertical airflow channels (302) of the radial mounting frame (301) and the dust source (1) are as follows: {M1, M2, M3, ..., M n }; S3. adjusting the position between the two-fluid ultrasonic atomizing nozzle (6) of the two-fluid ultrasonic atomizing device (4) and the dust area (7), and setting the distance relationship L between the two-fluid ultrasonic atomizing nozzle (6) and the dust source (1); S4. Construction begins at the work site, and the dust source (1) spreads dust outward; S5. The airflow device (305) of the dust concentration monitoring device (3) is started, and the airflow at each position of the dust area (7) rises and enters the vertical airflow channel (302). The dust concentrations monitored by the photoelectric dust concentration monitoring module (303) at each position are as follows: {C1, C2, C3, ..., C n }; S6. The steering mechanism (5) performs steering adjustment on the two-fluid ultrasonic atomizing nozzle (6), with the line between the two two-fluid ultrasonic atomizing nozzles (6) as the reference line, the angle between one of the two-fluid ultrasonic atomizing nozzles (6) and the reference line is β1, and the angle between the other two-fluid ultrasonic atomizing nozzle (6) and the reference line is β2, β1=-β2, β=|β1|=|-β2|; S7. Main controller (8) analyzes and calculates the angle coefficient λ1=A·sinβ+δ, 0 <A≤0.5,δ=0.5; S8. According to the distance parameters {M1, M2, M3, ..., M n } The circular area formed by {F(M1), F(M2), F(M3), ..., F(M n )}, and the steering mechanism (5) drives the two-fluid ultrasonic atomizing nozzle (6) to rotate to generate an angle β in real time, and the control system analyzes the spray path of any two-fluid ultrasonic atomizing nozzle (6) and the circular area {F (M1), F (M2), F (M3), ..., F (M n )} The intersection positions of the boundary lines {x1, x2, x3, ..., x m }, obtain the dust concentration at the intersection position, fit the dust concentration change curve F(x) according to the dust concentration parameters at each intersection position, and calculate the dust concentration integral: ; S9. Real-time power P of any two-fluid ultrasonic atomizing nozzle (6) 实时 =λ1·P 初始 +P 补偿 ; Among them, P 初始 A power parameter of a two-fluid ultrasonic atomizing nozzle (6) preset for a main controller (8); Among them, P 补偿 is the atomization dust reduction intensity compensation power, P 补偿 ∝Dust concentration integral T.

Citation Information

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