A control panel for wiring and connection of an electrostatic precipitator system
By introducing a linked structure of wiring strips, dust removal units, and heat dissipation units into the control panel, the problems of messy wiring, excessive dust, and high temperature are solved, achieving orderly wiring and efficient heat dissipation of the control panel and extending its service life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-08-09
- Publication Date
- 2026-04-03
Smart Images

Figure CN115579740B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of control panel technology, and in particular to a control panel for wiring and connection of an electrostatic precipitator system. Background Technology
[0002] Control cabinets are steel cabinets used to protect electrical appliances and ensure their normal operation. Because control cabinets contain various electrical modules and numerous internal wires, traditional switchgear lacks a dedicated structure for securing these wires, leading to haphazard placement, a messy appearance, and difficulties in maintenance. Furthermore, control cabinets are typically made of either hot-rolled or cold-rolled steel, resulting in poor heat dissipation. Over time, the electrical modules experience high temperatures, impacting their lifespan. Additionally, current control cabinets lack dust collection mechanisms, leading to dust accumulation during prolonged ventilation and heat dissipation, which also hinders appliance cooling and normal operation. Therefore, this invention addresses these problems. Summary of the Invention
[0003] The technical problem to be solved by the present invention is that the control panel cabinets in the prior art have problems such as messy wiring, high temperature inside the cabinet and a lot of dust.
[0004] To solve the above-mentioned technical problems, the present invention provides a control panel cabinet for wiring and connection of an electrostatic precipitator system, comprising:
[0005] The cabinet has a rectangular structure with a door on one side;
[0006] A partition is installed inside the cabinet to house the electrostatic precipitator system and to separate the cabinet.
[0007] A dust removal unit is installed at the bottom of the cabinet to remove dust from inside the cabinet.
[0008] A heat dissipation unit is installed on the side wall of the cabinet for dissipating heat from the electrostatic precipitator system and the wires;
[0009] A wiring strip, mounted on the partition, is used to guide and house wires;
[0010] The control unit, located inside the cabinet, is used to automatically control the operation of the dust removal unit and the cooling fan.
[0011] In an embodiment of this application, a control panel cabinet for wiring in an electrostatic precipitator system is provided, the dust removal unit comprising:
[0012] A storage bin, located on the partition, is used to guide and hold dust;
[0013] A dust collection device is installed at the bottom of the cabinet to suck up dust that falls into the storage bin;
[0014] A suction pipe, positioned between the storage hopper and the suction device, is used to transport dust;
[0015] The heat dissipation unit includes multiple cooling fans, which are mounted on the cabinet to provide air cooling.
[0016] The control unit includes a data acquisition module, a processing module, and a control module.
[0017] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0018] The acquisition module is used to acquire the dust concentration information △G inside the cabinet in real time, and the control module is used to control the dust collection device;
[0019] The processing module is used to set a preset dust concentration value G0 in the standard cabinet. The processing module is also used to set a first preset dust concentration difference g1, a second preset dust concentration difference g2, a third preset dust concentration difference g3, and a fourth preset dust concentration difference g4 in the cabinet, where g1 < g2 < g3 < g4. The processing module is also used to set a first preset working condition matrix A1 (a1, b1, c1), a second preset working condition matrix A2 (a2, b2, c2), a third preset working condition matrix A3 (a3, b3, c3), and a fourth preset working condition matrix A4 (a4, b4, c4), where a1 to a4 are the first to fourth preset dust collection powers, and a1 < a2 < a3 < a4; b1 to b4 are the first to fourth preset dust collection times, and b1 < b2 < b3 < b4.
[0020] The preset working condition matrix A is selected as the working condition of the dust collection device based on the difference between the dust concentration information △G inside the cabinet and the preset value G0 of the dust concentration inside the standard cabinet.
[0021] When △G-G0≤g1, the first preset working condition matrix A1 is selected as the working condition of the vacuuming device.
[0022] When g1 < △G-G0 ≤ g2, the second preset working condition matrix A2 is selected as the working condition of the vacuuming device;
[0023] When g2 < △G - G0 ≤ g3, the third preset working condition matrix A3 is selected as the working condition of the vacuuming device;
[0024] When g3 < △G - G0 ≤ g4, the fourth preset working condition matrix A4 is selected as the working condition of the vacuuming device;
[0025] When the i-th preset working condition matrix Ai is selected as the working condition of the vacuum cleaner, the control module controls the vacuum cleaner to work with the i-th preset water intake ai, and the control module will also control the vacuum cleaner to work with the i-th preset stirring time bi, i = 1, 2, 3, 4.
[0026] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0027] The acquisition module is also used to acquire the temperature information △S of the electrostatic precipitator system in real time, and the control module is used to control the cooling fan.
[0028] The acquisition module is used to set the preset temperature value S0 of the standard electrostatic precipitator system. The acquisition module is also used to set the first preset temperature difference s1, the second preset temperature difference s2, the third preset temperature difference s3, and the fourth preset temperature difference s4 of the electrostatic precipitator system, where s1 < s2 < s3 < s4. The processing module is also used to set the first preset working condition matrix W1(d1, e1), the second preset working condition matrix W2(d2, e2), the third preset working condition matrix W3(d3, e3), and the fourth preset working condition matrix W4(d4, e4), where d1 to d4 are the first to fourth preset fan speeds, and d1 < d2 < d3 < d4, and e1 to e4 are the first to fourth preset cooling times, and e1 < e2 < e3 < e4.
[0029] The preset working condition matrix W is selected as the working condition of the cooling fan based on the difference between the temperature information △S of the electrostatic precipitator system and the preset value G0 of the standard electrostatic precipitator system temperature.
[0030] When △S-S0≤g1, the first preset working condition matrix W1 is selected as the working condition of the cooling fan.
[0031] When s1 < △S-S0 ≤ s2, the second preset working condition matrix W2 is selected as the working condition of the cooling fan.
[0032] When s2<△S-S0≤s3, the third preset working condition matrix W3 is selected as the working condition of the cooling fan;
[0033] When s3 < △S - S0 ≤ s4, the fourth preset working condition matrix W4 is selected as the working condition of the cooling fan.
[0034] When the i-th preset working condition matrix Wi is selected as the working condition of the cooling fan, the control module controls the cooling fan to work at the i-th preset fan speed di, and the control module controls the cooling fan to work at the i-th preset cooling duration ei, i = 1, 2, 3, 4.
[0035] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0036] The processing module is also used to set a first preset cabinet internal temperature T1, a second preset cabinet internal temperature T2, a third preset cabinet internal temperature T3, and a fourth preset cabinet internal temperature T4, where T1 < T2 < T3 < T4; the processing module is also used to set a first preset correction coefficient m1, a second preset correction coefficient m2, a third preset correction coefficient m3, and a fourth preset correction coefficient m4, where 0.8 < m1 < m2 < m3 < m4 < 1;
[0037] The acquisition module is also used to acquire the cabinet internal temperature ΔT in real time, and the processing module is also used to select a preset correction coefficient to correct the working conditions in the i-th preset working condition matrix Wi when the i-th preset working condition matrix Ai is selected as the working condition of the cooling fan, based on the relationship between the real-time cabinet internal temperature ΔT and each preset cabinet internal temperature Ti.
[0038] When △T≤T1, the working conditions in the i-th preset working condition matrix Wi are not modified;
[0039] When T1 < △T ≤ T2, the first preset correction coefficient m1 is selected to correct Wi, and the corrected value is Ai(di*m1, ei*m1);
[0040] When T2 < △T ≤ T3, the second preset correction coefficient m2 is selected to correct Wi, and the corrected value is Ai(di*m2, ei*m2);
[0041] When T3 < △T ≤ T4, the third preset correction coefficient m3 is selected to correct Wi, and the corrected value is Ai(di*m3, ei*m3);
[0042] When T4 < △T, the fourth preset correction coefficient m4 is selected to correct Wi, and the corrected value is Ai(di*m4, ei*m4).
[0043] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0044] The partition divides the cabinet into different compartments, and a cooling fan is provided on one side of each compartment.
[0045] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0046] The temperature information of the electrostatic precipitator system is the average value of the temperatures of multiple electrostatic precipitator systems.
[0047] In an embodiment of this application, a control panel cabinet for wiring in an electrostatic precipitator system is provided, wherein the dust removal unit further includes:
[0048] A dust storage drawer, located below the vacuum cleaner, is used to store dust.
[0049] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0050] The cabinet is equipped with casters at the bottom to allow it to move.
[0051] Compared with the prior art, the control panel for wiring and connection of an electrostatic precipitator system according to an embodiment of the present invention has the following advantages:
[0052] This invention simplifies wiring and connection within the cabinet by using wiring strips to constrain wire placement. Furthermore, the coordinated structure of the heat dissipation and dust removal units reduces dust accumulation within the cabinet and lowers the temperature of the cabinet, electrostatic precipitator, and wires, ensuring the control panel can be used for extended periods. Attached Figure Description
[0053] Figure 1 This is a schematic diagram of the external structure of the control panel cabinet for wiring and connection of the electrostatic precipitator system in an embodiment of the present invention;
[0054] Figure 2 This is a schematic diagram of the internal structure of the control panel cabinet for wiring and connection of the electrostatic precipitator system in an embodiment of the present invention;
[0055] Figure 3 This is a schematic diagram of the control unit of the control panel cabinet for wiring and connection of the electrostatic precipitator system in an embodiment of the present invention;
[0056] Figure 4 This is a schematic diagram of the control unit of the control panel cabinet for wiring and connection of the electrostatic precipitator system in an embodiment of the present invention;
[0057] In the diagram: 1. Cabinet; 2. Shelf; 3. Power strip; 4. Cooling fan; 5. Control unit; 6. Dust collection drawer; 7. Casters; 8. Vacuum hose; 9. Vacuuming device; 10. Electrostatic precipitator; 11. First thermometer; 12. Second thermometer; 13. Third thermometer; 14. Dust concentration meter. Detailed Implementation
[0058] The specific embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and are not intended to limit the scope of the invention.
[0059] In the description of this application, it should be understood that the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0060] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, unless otherwise stated, "a plurality of" means two or more.
[0061] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0062] In an embodiment of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided, comprising:
[0063] Cabinet 1 is a rectangular parallelepiped structure with a cabinet door on one side;
[0064] A partition 2 is provided inside the cabinet 1 to house the electrostatic precipitator 10 and to separate the cabinet 1.
[0065] A dust removal unit is installed at the bottom of the cabinet 1 to remove dust from inside the cabinet 1;
[0066] A heat dissipation unit is installed on the side wall of the cabinet 1 to dissipate heat from the electrostatic precipitator 10 and the wires;
[0067] Wiring strip 3, disposed on the partition 2, is used to guide and place wires;
[0068] Preferably, the wiring strip 3 is inserted into the partition 2, so that the wires can be arranged in the guiding direction of the wiring strip 3, thereby reducing the mess of wires in the cabinet 1.
[0069] The control unit 5 is located inside the cabinet 1 and is used to automatically control the operation of the dust removal unit and the cooling fan 4.
[0070] Furthermore, by setting the wiring strip 3 to constrain the placement of wires, the wiring and connection within the cabinet 1 can be simplified. Moreover, the heat dissipation unit and the dust removal unit work together to form a linkage structure, which reduces dust accumulation within the cabinet 1 and simultaneously lowers the temperature of the cabinet 1, the electrostatic precipitator 10, and the wires, ensuring that the control panel can be used for a long time.
[0071] In an embodiment of this application, a control panel cabinet for wiring in an electrostatic precipitator system is provided, the dust removal unit comprising:
[0072] A storage bin, located on the partition 2, is used to guide and hold dust;
[0073] Preferably, the collection hopper is cone-shaped, wider at the top and narrower at the bottom, which allows dust to fall into the collection hopper over a larger area, thus ensuring a good dust removal effect.
[0074] A dust collection device 9 is installed at the bottom of the cabinet 1 to suck up dust that falls into the storage bin;
[0075] A suction pipe 8 is disposed between the storage hopper and the suction device 9 for conveying dust;
[0076] Preferably, the suction pipe 8 is a flexible pipe that can bend as the suction device 9 operates, allowing dust to enter the suction device 9 more effectively.
[0077] The heat dissipation unit includes multiple cooling fans 4, which are mounted on the cabinet 1 to provide air cooling.
[0078] The control unit 5 includes a data acquisition module, a processing module, and a control module.
[0079] The acquisition module is electrically connected to the first thermometer 11, the second thermometer 12, the third thermometer 13, and the dust concentration meter 14.
[0080] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0081] The acquisition module is used to collect the dust concentration information △G inside the cabinet 1 in real time, and the control module is used to control the dust collection device 9.
[0082] The processing module is used to set a preset dust concentration value G0 in the standard cabinet 1. The processing module is also used to set a first preset dust concentration difference g1, a second preset dust concentration difference g2, a third preset dust concentration difference g3, and a fourth preset dust concentration difference g4 in the cabinet 1, where g1 < g2 < g3 < g4. The processing module is also used to set a first preset working condition matrix A1 (a1, b1, c1), a second preset working condition matrix A2 (a2, b2, c2), a third preset working condition matrix A3 (a3, b3, c3), and a fourth preset working condition matrix A4 (a4, b4, c4), where a1 to a4 are the first to fourth preset dust collection powers, and a1 < a2 < a3 < a4; b1 to b4 are the first to fourth preset dust collection times, and b1 < b2 < b3 < b4.
[0083] Based on the difference between the dust concentration information △G inside the cabinet 1 and the preset value G0 of the dust concentration inside the standard cabinet 1, the preset working condition matrix A is selected as the working condition of the dust collection device 9.
[0084] When △G-G0≤g1, the first preset working condition matrix A1 is selected as the working condition of the vacuuming device 9;
[0085] When g1 < △G - G0 ≤ g2, the second preset working condition matrix A2 is selected as the working condition of the vacuuming device 9;
[0086] When g2 < △G - G0 ≤ g3, the third preset working condition matrix A3 is selected as the working condition of the vacuuming device 9;
[0087] When g3 < △G - G0 ≤ g4, the fourth preset working condition matrix A4 is selected as the working condition of the vacuuming device 9;
[0088] When the i-th preset working condition matrix Ai is selected as the working condition of the vacuum cleaner 9, the control module controls the vacuum cleaner 9 to work with the i-th preset water intake ai, and the control module will also control the vacuum cleaner 9 to work with the i-th preset stirring time bi, i = 1, 2, 3, 4.
[0089] Furthermore, since the dust concentration inside the cabinet 1 is constantly changing, the working conditions of the vacuuming device 9 need to be adjusted according to the changes in the dust concentration inside the cabinet 1. This will not only ensure that the dust inside the cabinet 1 is thoroughly removed, but also save unnecessary energy waste, achieving the goal of green, clean, and efficient operation.
[0090] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0091] The acquisition module is also used to acquire the temperature information △S of the electrostatic precipitator 10 in real time, and the control module is used to control the cooling fan 4;
[0092] The acquisition module is used to set the preset temperature value S0 of the standard electrostatic precipitator system 10. The acquisition module is also used to set the first preset temperature difference s1, the second preset temperature difference s2, the third preset temperature difference s3, and the fourth preset temperature difference s4 of the electrostatic precipitator system 10, where s1 < s2 < s3 < s4. The processing module is also used to set the first preset working condition matrix W1(d1, e1), the second preset working condition matrix W2(d2, e2), the third preset working condition matrix W3(d3, e3), and the fourth preset working condition matrix W4(d4, e4), where d1 to d4 are the first to fourth preset fan speeds, and d1 < d2 < d3 < d4, and e1 to e4 are the first to fourth preset cooling times, where e1 < e2 < e3 < e4.
[0093] The preset working condition matrix W is selected as the working condition of the cooling fan 4 based on the difference between the temperature information △S of the electrostatic precipitator 10 and the preset temperature value G0 of the standard electrostatic precipitator 10.
[0094] When △S-S0≤g1, the first preset working condition matrix W1 is selected as the working condition of the cooling fan 4.
[0095] When s1 < △S - S0 ≤ s2, the second preset working condition matrix W2 is selected as the working condition of the cooling fan 4.
[0096] When s2 < △S - S0 ≤ s3, the third preset working condition matrix W3 is selected as the working condition of the cooling fan 4;
[0097] When s3 < △S - S0 ≤ s4, the fourth preset working condition matrix W4 is selected as the working condition of the cooling fan 4;
[0098] When the i-th preset working condition matrix Wi is selected as the working condition of the cooling fan 4, the control module controls the cooling fan 4 to work at the i-th preset fan speed di, and the control module controls the cooling fan 4 to work at the i-th preset cooling duration ei, i = 1, 2, 3, 4.
[0099] Furthermore, since the temperature of the electrostatic precipitator 10 is constantly changing, the operating conditions of the cooling fan 4 need to be adjusted according to the temperature changes of the electrostatic precipitator 10. This can reduce the operating temperature of the electrostatic precipitator 10, extend its service life, and save unnecessary energy waste, thus achieving the goal of green, clean and efficient operation.
[0100] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0101] The processing module is also used to set the first preset temperature T1 inside the cabinet 1, the second preset temperature T2 inside the cabinet 1, the third preset temperature T3 inside the cabinet 1, and the fourth preset temperature T4 inside the cabinet 1, where T1 < T2 < T3 < T4; the processing module is also used to set the first preset correction coefficient m1, the second preset correction coefficient m2, the third preset correction coefficient m3, and the fourth preset correction coefficient m4, where 0.8 < m1 < m2 < m3 < m4 < 1;
[0102] The acquisition module is also used to acquire the temperature ΔT inside the cabinet 1 in real time. The processing module is also used to select a preset correction coefficient to correct the working conditions in the i-th preset working condition matrix Wi when the i-th preset working condition matrix Ai is selected as the working condition of the cooling fan 4, based on the relationship between the real-time temperature ΔT inside the cabinet 1 and each preset temperature Ti inside the cabinet 1.
[0103] When △T≤T1, the working conditions in the i-th preset working condition matrix Wi are not modified;
[0104] When T1 < △T ≤ T2, the first preset correction coefficient m1 is selected to correct Wi, and the corrected value is Ai(di*m1, ei*m1);
[0105] When T2 < △T ≤ T3, the second preset correction coefficient m2 is selected to correct Wi, and the corrected value is Ai(di*m2, ei*m2);
[0106] When T3 < △T ≤ T4, the third preset correction coefficient m3 is selected to correct Wi, and the corrected value is Ai(di*m3, ei*m3);
[0107] When T4 < △T, the fourth preset correction coefficient m4 is selected to correct Wi, and the corrected value is Ai(di*m4, ei*m4).
[0108] Furthermore, since the cooling effect of the cooling fan 4 on the electrostatic precipitator 10 may be inconsistent, it is necessary to adjust the working conditions of the cooling fan 4 according to the temperature changes inside the cabinet 1 in order to ensure that the cooling fan 4 can achieve a good heat dissipation effect.
[0109] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0110] The partition 2 divides the cabinet 1 into different partition areas, and a cooling fan 4 is provided on one side of each partition area.
[0111] Preferably, the cabinet 1 is divided into different partition areas, so that each partition area is cooled by a separate fan, which is more effective. In addition, the cooling fan 4 can also blow away dust during operation, thus achieving both heat dissipation and dust removal.
[0112] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0113] The temperature information of the electrostatic precipitator 10 is the average value of the temperatures of multiple electrostatic precipitator systems 10.
[0114] In an embodiment of this application, a control panel cabinet for wiring in an electrostatic precipitator system is provided, wherein the dust removal unit further includes:
[0115] A dust storage drawer 6 is located below the vacuum cleaner 9 and is used to store dust.
[0116] Preferably, the dust collection drawer 6 can be pulled out for dust cleaning, so as to achieve the purpose of reuse.
[0117] In the embodiments of this application, a control panel cabinet for wiring and connection of an electrostatic precipitator system is provided.
[0118] The cabinet 1 is equipped with casters 7 at the bottom to allow the cabinet 1 to move.
[0119] Preferably, the caster wheel 7 can move the cabinet 1, expanding the scope of use of the control panel.
[0120] In summary, this invention provides a control panel for wiring an electrostatic precipitator system, comprising a cabinet 1, which is a rectangular structure with a door on one side; a partition 2, disposed inside the cabinet 1, for housing the electrostatic precipitator system 10 and separating the cabinet 1; a dust removal unit, disposed at the bottom of the cabinet 1, for removing dust from inside the cabinet 1; a heat dissipation unit, disposed on the side wall of the cabinet 1, for dissipating heat from the electrostatic precipitator system 10 and the wires; a wiring strip 3, disposed on the partition 2, for guiding and placing the wires; and a control unit 5, disposed inside the cabinet 1, for automatically controlling the operation of the dust removal unit and the cooling fan 4. This invention simplifies wiring and connection within the cabinet 1 by using the wiring strip 3 to constrain the placement of the wires. Furthermore, the heat dissipation unit and the dust removal unit work together to form a linked structure, reducing dust accumulation inside the cabinet 1 and simultaneously lowering the temperature of the cabinet 1, the electrostatic precipitator system 10, and the wires, ensuring the control panel can be used for extended periods.
[0121] Finally, it should be noted that the above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A control panel for wiring in an electrostatic precipitator system, characterized in that, include: The cabinet is a rectangular structure with a door on one side; A partition is installed inside the cabinet to house the electrostatic precipitator system and to separate the cabinet. A dust removal unit is installed at the bottom of the cabinet to remove dust from inside the cabinet. A heat dissipation unit is installed on the side wall of the cabinet for dissipating heat from the electrostatic precipitator system and the wires; A wiring strip, mounted on the partition, is used to guide and house wires; A control unit, located inside the cabinet, is used to automatically control the operation of the dust removal unit and the cooling fan; The dust removal unit includes: A storage bin, located on the partition, is used to guide and hold dust; A dust collection device is installed at the bottom of the cabinet to suck up dust that falls into the storage bin; A suction pipe, positioned between the storage hopper and the suction device, is used to transport dust; The heat dissipation unit includes multiple cooling fans, which are mounted on the cabinet to provide air cooling. The control unit includes a data acquisition module, a processing module, and a control module; The acquisition module is used to collect real-time dust concentration information △G and electrostatic precipitator temperature information △S inside the cabinet; the control module is used to control the dust collection device and the cooling fan. The processing module is used to set the preset value of dust concentration G0 in the standard cabinet and the preset value of temperature S0 in the standard electrostatic precipitator system, and to set multiple preset dust concentration differences and multiple preset temperature differences. The processing module is also used to set multiple preset working condition matrices, which are used to select the working conditions of the dust collection device based on the difference between the dust concentration information △G and G0 in the cabinet, and to select the working conditions of the cooling fan based on the difference between the temperature information △S and S0 of the electrostatic precipitator system. When the difference is within different preset ranges, the control module controls the vacuuming device to work with the corresponding preset vacuuming power and preset vacuuming time, and controls the cooling fan to work with the corresponding preset fan speed and preset cooling time. The processing module is also used to set a first preset dust concentration difference value g1, a second preset dust concentration difference value g2, a third preset dust concentration difference value g3, and a fourth preset dust concentration difference value g4 in the cabinet, where g1 < g2 < g3 < g4; the processing module is also used to set a first preset working condition matrix A1 (a1, b1), a second preset working condition matrix A2 (a2, b2), a third preset working condition matrix A3 (a3, b3), and a fourth preset working condition matrix A4 (a4, b4), where a1~a4 are the first to fourth preset dust collection powers, where a1 < a2 < a3 < a4, and b1~b4 are the first to fourth preset dust collection times, where b1 < b2 < b3 < b4; The preset working condition matrix A is selected as the working condition of the dust collection device based on the difference between the dust concentration information △G inside the cabinet and the preset value G0 of the dust concentration inside the standard cabinet. The acquisition module is also used to set a first preset temperature difference value s1, a second preset temperature difference value s2, a third preset temperature difference value s3, and a fourth preset temperature difference value s4 of the electrostatic precipitator system, where s1 < s2 < s3 < s4; the processing module is also used to set a first preset working condition matrix W1 (d1, e1), a second preset working condition matrix W2 (d2, e2), a third preset working condition matrix W3 (d3, e3), and a fourth preset working condition matrix W4 (d4, e4), where d1~d4 are the first to fourth preset fan speeds, and d1 < d2 < d3 < d4, and e1~e4 are the first to fourth preset cooling times, and e1 < e2 < e3 < e4; The preset working condition matrix W is selected as the working condition of the cooling fan based on the difference between the temperature information △S of the electrostatic precipitator system and the preset value G0 of the standard electrostatic precipitator system temperature. The processing module is also used to set a first preset cabinet internal temperature T1, a second preset cabinet internal temperature T2, a third preset cabinet internal temperature T3, and a fourth preset cabinet internal temperature T4, where T1 < T2 < T3 < T4; the processing module is also used to set a first preset correction coefficient m1, a second preset correction coefficient m2, a third preset correction coefficient m3, and a fourth preset correction coefficient m4, where 0.8 < m1 < m2 < m3 < m4 < 1; The acquisition module is also used to acquire the cabinet internal temperature ΔT in real time. The processing module is also used to select a preset correction coefficient based on the relationship between the real-time cabinet internal temperature ΔT and each preset cabinet internal temperature Ti when the i-th preset working condition matrix Ai is selected as the working condition of the cooling fan, i=1,2,3,4.
2. The control panel for wiring and connection of an electrostatic precipitator system according to claim 1, characterized in that, The processing module selects a preset working condition matrix A as the working condition of the dust collection device based on the difference between the dust concentration information △G inside the cabinet and the preset value G0 of the standard dust concentration inside the cabinet. When △G-G0≤g1, the first preset working condition matrix A1 is selected as the working condition of the vacuuming device. When g1 < △G-G0 ≤ g2, the second preset working condition matrix A2 is selected as the working condition of the vacuuming device; When g2<△G-G0≤g3, the third preset working condition matrix A3 is selected as the working condition of the vacuuming device; When g3<△G-G0≤g4, the fourth preset working condition matrix A4 is selected as the working condition of the vacuuming device; When the i-th preset working condition matrix Ai is selected as the working condition of the vacuum cleaner, the control module controls the vacuum cleaner to work with the i-th preset water intake ai, and the control module will also control the vacuum cleaner to work with the i-th preset stirring time bi, i=1,2,3,4.
3. The control panel for wiring and connection of an electrostatic precipitator system according to claim 2, characterized in that, The processing module selects a preset working condition matrix W as the working condition of the cooling fan based on the difference between the temperature information △S of the electrostatic precipitator system and the preset value G0 of the standard electrostatic precipitator system temperature. When △S-S0≤g1, the first preset working condition matrix W1 is selected as the working condition of the cooling fan; When s1<△S-S0≤s2, the second preset working condition matrix W2 is selected as the working condition of the cooling fan; When s2<△S-S0≤s3, the third preset working condition matrix W3 is selected as the working condition of the cooling fan; When s3<△S-S0≤s4, the fourth preset working condition matrix W4 is selected as the working condition of the cooling fan; When the i-th preset working condition matrix Wi is selected as the working condition of the cooling fan, the control module controls the cooling fan to work at the i-th preset fan speed di, and the control module controls the cooling fan to work at the i-th preset cooling duration ei, i=1,2,3,4.
4. The control panel for wiring and connection of an electrostatic precipitator system according to claim 1, characterized in that, The processing module selects a preset correction coefficient based on the relationship between the real-time cabinet internal temperature ΔT and each preset cabinet internal temperature Ti to correct the working conditions in the i-th preset working condition matrix Wi: When △T≤T1, the working conditions in the i-th preset working condition matrix Wi are not modified; When T1 < ΔT ≤ T2, the first preset correction coefficient m1 is selected to correct Wi, and the corrected value is Ai(di). m1, ei m1); When T2 < ΔT ≤ T3, the second preset correction coefficient m2 is selected to correct Wi, and the corrected value is Ai(di). m2, ei m2); When T3 < ΔT ≤ T4, the third preset correction coefficient m3 is selected to correct Wi, and the corrected value is Ai(di). m3, ei m3); When T4 < ΔT, the fourth preset correction coefficient m4 is selected to correct Wi, and the corrected value is Ai(di). m4, ei m4).
5. A control panel for wiring and connection of an electrostatic precipitator system according to claim 1, characterized in that, The partition divides the cabinet into different compartments, and a cooling fan is provided on one side of each compartment.
6. A control panel for wiring and connection of an electrostatic precipitator system according to claim 3, characterized in that, The temperature information of the electrostatic precipitator system is the average value of the temperatures of multiple electrostatic precipitator systems.
7. A control panel for wiring and connection of an electrostatic precipitator system according to claim 1, characterized in that, The dust removal unit also includes: A dust storage drawer is located below the vacuum cleaner and is used to store dust.
8. A control panel for wiring and connection of an electrostatic precipitator system according to claim 1, characterized in that, The cabinet is equipped with casters at the bottom to allow it to move.
Citation Information
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