Intelligent control equipment for environment-friendly electric dust remover
By improving the structural design of the intelligent control equipment for electrostatic precipitators, the sliding and heat dissipation components are used to quickly dissipate heat, and the dehumidification components are used to absorb moisture, thus solving the problem of dampness caused by heat accumulation, ensuring stable operation of the equipment and extending its lifespan.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-17
- Publication Date
- 2026-04-07
AI Technical Summary
Existing intelligent control equipment for electrostatic precipitators is prone to creating a humid environment due to heat buildup during long-term operation, which affects the performance of internal components and shortens their service life.
The design incorporates protective components, a frame, sliders, fan holders, support buffers, and an exhaust fan. Combined with buffer springs, sliding grooves, tensioning and opening supports, clip frames, and sliding rods, the system utilizes sliding mechanisms, heat dissipation holes, dehumidification components, and heat-conducting components to achieve rapid heat dissipation and moisture absorption, keeping the equipment dry.
It effectively prevents heat buildup, keeps the inside of the equipment dry, extends its service life, and ensures the stable operation of the intelligent controller.
Smart Images

Figure CN121815586A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of dust removal equipment technology, specifically to an intelligent control device for an environmentally friendly electrostatic precipitator. Background Technology
[0002] Existing electrostatic precipitators (ESPs) primarily use four types of power supplies: mains frequency power, three-phase power, high-frequency power, and pulse power. Due to significant differences in the circuit principles, control methods, and detection methods of these power supplies, the existing control systems are in a one-to-one correspondence with the power supplies. The existing host computer control system for ESPs can monitor the operating status of these power supplies through specific communication protocols. Intelligent control equipment can then automatically and intelligently adjust operating parameters based on the operating conditions of the ESP and the power supply. Areas for improvement when using intelligent control equipment include: When using intelligent control equipment, under normal circumstances, the intelligent control equipment used in the electrostatic precipitator is installed inside the housing. A protective component serves to house and protect the intelligent control equipment. Heat dissipation holes on the protective component allow heat generated by the intelligent circuit board inside the equipment to dissipate. Simultaneously, an exhaust fan mounted on the fan frame in the ventilation holes removes the heat dissipated from the ventilation holes, preventing the intelligent controller from overheating due to prolonged operation. However, when the protective component is protecting the intelligent controller, the heat generated by the controller can only be expelled through the ventilation holes on both sides of the protective component. This prevents the heat from being quickly dissipated and tends to accumulate inside, leading to the formation of water vapor. This causes the intelligent circuit board inside the controller to operate in a humid environment, adversely affecting the performance of the internal components. Furthermore, because the intelligent controller is installed inside the protective component and is fitted against its inner wall on all sides, the heat generated by the controller is surrounded by the protective component from top to bottom, thus shortening its lifespan. Summary of the Invention
[0003] To address the shortcomings of existing technologies, this invention is achieved through the following technical solution: an intelligent control device for an environmentally friendly electrostatic precipitator, comprising a protective device, legs, ventilation plates, a main body, a display screen, a controller, and a slide rail. The controller is installed inside the protective device, and the display screen is mounted on the controller. The protective device is installed in the middle of the main body. Ventilation plates are provided on both sides of the main body. A slide rail is fixedly connected to the inner wall of the main body, and the slide rail is slidably connected to the protective device. Legs are installed at the bottom of the main body.
[0004] As a further optimization of the invention, the protective device includes a protective component, a frame, a slider, a fan frame, a support buffer, and an exhaust fan. The protective component is installed in the middle of the frame. Two sliders and fan frames are provided on both the left and right sides of the frame. An exhaust fan is installed inside each of the two fan frames and is connected to the frame. Support buffers are provided at both the upper and lower ends inside the frame. The end of the support buffer away from the frame is connected to the upper and lower ends of the protective component. A controller is installed inside the frame. The frame is installed in the middle of the main body. The slider is slidably connected to the slide rail.
[0005] As a further optimization of the invention, the supporting buffer includes a buffer spring, a sliding groove, a support plate, a tensioning support, a retaining frame, and a sliding rod. Two buffer springs are provided and symmetrically arranged on the left and right sides of the lower end of the support plate. Two tensioning supports are provided between the two buffer springs. The tops of the two tensioning supports are installed in the middle position inside the support plate. Sliding rods are provided on both the left and right sides of the support plate. The outer ends of the sliding rods are connected to the sliding grooves and the two are slidably connected. The support plate is connected to the frame. The buffer springs and tensioning supports are connected to the upper and lower ends of the protective assembly.
[0006] As a further optimization of the invention, the tensioning support includes a tension limiting member, a connecting block, a swing rod, a docking plate, a spring-loaded member, and an extension member. The tension limiting member is connected between two docking plates. Swing rods and extension members are connected to both sides of the docking plates. The ends of the two swing rods away from the docking plates are connected to the spring-loaded member. The outer side of the spring-loaded member faces the connecting block. The connecting block is located in the middle of the extension member. The tension limiting member is located between two buffer springs. The upper and lower ends of the docking plate are connected to the support plate and the protective component, respectively.
[0007] As a further optimization of the invention, the protective component includes a mounting bracket, a dehumidification component, a placement cavity, a heat-conducting component, and heat dissipation holes. The mounting bracket has a placement cavity inside, and heat-conducting components are fitted to both the upper and lower ends of the mounting bracket. Dehumidification components and heat dissipation holes are provided on both the left and right sides of the mounting bracket. The placement cavity is connected to the dehumidification component through the heat dissipation holes. A buffer spring and a tensioning support are connected to the top of the mounting bracket. The mounting bracket is installed in the middle position of the frame.
[0008] As a further optimization of the invention, the dehumidification component includes a flow channel, partitions, moisture-absorbing pads, a filter screen, and a mounting plate. The flow channel is located on the left and right sides of the moisture-absorbing pads and inside the mounting plate. Multiple partitions are arranged at equal intervals on both sides of the mounting plate, and filter screens are connected between the partitions. The filter screens are in communication with the flow channel. The mounting plate is installed on the side of the mounting bracket, and the flow channel is connected to the placement cavity through heat dissipation holes.
[0009] As a further optimization of the invention, the heat-conducting component includes a shell, a heat-conducting component, a heat-absorbing layer, and a heat-dissipating layer. Multiple heat-conducting components are installed inside the shell, and heat-dissipating layers are connected between the multiple heat-conducting components. Heat-absorbing layers are connected to both the upper and lower ends of the heat-dissipating layer, and the left and right ends of the heat-absorbing layer are connected to the ends of the heat-conducting components. The shell is fitted and connected to the mounting cover.
[0010] As a further optimization of the invention, interconnecting holes are provided between the multiple partition blocks.
[0011] As a further optimization of the invention, the heat-conducting component is arranged in an "H" shape inside the outer casing.
[0012] As a further optimization of the invention, the two swing rods are connected between the elastic member and the tension limiter. The tension limiter and the elastic member can be adjusted by opening and closing under the action of the swing rods, effectively extending and adjusting the tension limiter, so that the connection between the tension limiter and the docking plate can be adjusted accordingly, effectively limiting and maintaining the position of the protective component.
[0013] As a further optimization of the invention, the heat-absorbing layer is made of rock wool, which has good heat absorption properties, and the heat-conducting component has an H-shaped cross-section; the heat-conducting component can be used to conduct the temperature of the controller sidewall, thereby achieving the purpose of cooling the controller. Beneficial effects
[0014] This invention discloses an intelligent control device for an environmentally friendly electrostatic precipitator, which has the following beneficial effects: This invention utilizes a protective component, a frame, a slider, a fan holder, supporting buffers, and an exhaust fan. The controller is installed inside the protective component, and two supporting buffers adjust the position of the protective component to the center of the frame. When the controller is running, the protective component dissipates the heat emitted by the intelligent circuit board inside the controller, while the exhaust fan mounted on the fan holder dissipates the heat from the heat dissipation holes, preventing the intelligent controller from overheating due to prolonged operation. Simultaneously, the slider and slide rail work together to move and adjust the frame from the main body to the corresponding position, allowing heat to dissipate quickly and ensuring stable operation of the controller.
[0015] This invention utilizes a buffer spring, a sliding groove, a support plate, a tensioning support, a frame, and a sliding rod. The lower ends of the buffer spring and the tensioning support are connected to the protective component. The support plate moves and adjusts on the sliding groove via the sliding rod. During the movement of the support plate, the buffer spring and the tensioning support extend and retract accordingly to pull the protective component, thereby confining the protective component to the middle position inside the frame, opposite to the exhaust fan, so that the heat generated by the controller can be quickly dissipated.
[0016] This invention utilizes a mounting bracket, a dehumidification component, a placement cavity, heat-conducting components, and heat dissipation holes. The controller is installed in the center of the mounting bracket. Heat dissipation holes are provided on both the left and right sides of the mounting bracket, and these holes are connected to the placement cavity. The heat generated by the controller during operation is conducted through the placement cavity to the heat dissipation holes, where it is dissipated. The dehumidification component then absorbs moisture and prevents dampness, thus keeping the interior of the mounting bracket dry. Furthermore, heat-conducting components are provided at both the top and bottom of the mounting bracket, which, together with the heat dissipation holes, disperse and discharge the heat, preventing heat from accumulating in the placement cavity and affecting the normal operation of the controller. Attached Figure Description
[0017] Other features, objects, and advantages of the present invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings: Figure 1 This is a schematic diagram of the structure of an intelligent control device for an environmentally friendly electrostatic precipitator according to the present invention; Figure 2 This is a schematic diagram of the internal structure of the protective device of the present invention.
[0018] Figure 3 This is a schematic diagram of the internal structure of the support buffer of the present invention.
[0019] Figure 4 This is a cross-sectional structural diagram of the tensioning support member of the present invention.
[0020] Figure 5 This is a schematic diagram of the internal structure of the protective component of the present invention.
[0021] Figure 6 This is a cross-sectional structural diagram of the dehumidification component of the present invention.
[0022] Figure 7 This is a cross-sectional structural diagram of the heat-conducting radiator of the present invention.
[0023] In the diagram: Protective device 1, support leg 6, ventilation plate 2, main body 5, display screen 7, controller 3, slide rail 4, protective component Q1, frame E3, slider T5, fan frame W2, support buffer R4, exhaust fan Y6, buffer spring R11, sliding groove I15, support plate T12, tension support U14, clip frame Y13, slide rod P16, tension limiter D21, connecting block F23, swing rod J25, docking plate H24, spring puller G22, extension part K26, mounting protective part K31, dehumidification component Z33, placement cavity X34, heat conduction component L32, heat dissipation hole C35, flow channel C41, partition block V43, moisture-absorbing pad N42, filter screen Q45, mounting plate M44, outer shell E51, heat conduction component Y54, heat absorption layer T52, heat dissipation layer R53. Implementation
[0024] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments. Example
[0025] Please see Figures 1-4 This invention provides a technical solution: an intelligent control device for an environmentally friendly electrostatic precipitator, the structure of which includes a protective device 1, support legs 6, ventilation plates 2, a main body 5, a display screen 7, a controller 3, and a slide rail 4. The controller 3 is installed inside the protective device 1, and the display screen 7 is provided on the controller 3. The protective device 1 is installed in the middle position inside the main body 5. Ventilation plates 2 are provided on both sides of the outside of the main body 5. The slide rail 4 is fixedly connected to the inner wall of the main body 5 and is slidably connected to the protective device 1. Support legs 6 are installed at the bottom of the main body 5.
[0026] The protective device 1 includes a protective component Q1, a frame E3, a slider T5, a fan frame W2, a support buffer R4, and an exhaust fan Y6. The protective component Q1 is installed in the middle of the frame E3. Two sliders T5 and fan frames W2 are provided on both the left and right sides of the frame E3. An exhaust fan Y6 is installed inside each of the two fan frames W2 and is connected to the frame E3. Support buffers R4 are provided at both the upper and lower ends inside the frame E3. The end of the support buffer R4 away from the frame E3 is connected to the upper and lower ends of the protective component Q1. A controller 3 is installed inside the frame E3. The frame E3 is installed in the middle of the main body 5. The slider T5 is slidably connected to the slide rail 4.
[0027] The aforementioned exhaust fan Y6 is used in conjunction with the protective component Q1 to install the controller 3 inside the protective component Q1. When the controller 3 is running, the protective component Q1 can dissipate the heat emitted by the intelligent circuit board inside the controller 3. At the same time, the exhaust fan Y6 installed on the fan frame W2 will dissipate the heat emitted from the heat dissipation holes, thus preventing the intelligent controller from overheating due to prolonged operation.
[0028] The supporting buffer component R4 includes a buffer spring R11, a sliding groove I15, a support plate T12, a tensioning support U14, a retaining frame Y13, and a sliding rod P16. There are two buffer springs R11, which are symmetrically arranged on the left and right sides of the lower end of the support plate T12. There are two tensioning supports U14 between the two buffer springs R11. The top of the two tensioning supports U14 is installed in the middle position inside the support plate T12. There are sliding rods P16 on both the left and right sides of the support plate T12. The outer end of the sliding rod P16 is connected to the sliding groove I15 and the two are slidably connected. The support plate T12 is connected to the frame E3. The buffer springs R11 and the tensioning support U14 are connected to the upper and lower ends of the protective component Q1.
[0029] The aforementioned buffer spring R11 is used to cooperate with the support plate T12. The lower ends of the buffer spring R11 and the tensioning support U14 are both connected to the protective component Q1. The support plate T12 is moved and adjusted on the sliding groove I15 by the slide rod P16. During the movement of the support plate T12, the buffer spring R11 and the tensioning support U14 will pull the protective component Q1 accordingly, thereby limiting the protective component Q1 to the middle position inside the frame E3, opposite to the exhaust fan Y6.
[0030] The tensioning support component U14 includes a tension limiting component D21, a connecting block F23, a swing rod J25, a docking plate H24, a spring-loaded component G22, and an extension component K26. The tension limiting component D21 is connected between two docking plates H24. The swing rod J25 and the extension component K26 are connected to both sides of the docking plate H24. The ends of the two swing rods J25 away from the docking plate H24 are connected to the spring-loaded component G22. The outer side of the spring-loaded component G22 is directly opposite the connecting block F23. The connecting block F23 is located in the middle of the extension component K26. The tension limiting component D21 is located between two buffer springs R11. The upper and lower ends of the docking plate H24 are connected to the support plate T12 and the protective component Q1, respectively.
[0031] The two swing rods J25 are connected between the elastic member G22 and the tension limit member D21. The tension limit member D21 and the elastic member G22 can be adjusted by opening and closing under the action of the swing rods J25, which can effectively extend and adjust the tension limit member D21, so that the connection between the tension limit member D21 and the docking plate H24 can be adjusted accordingly, effectively limiting and maintaining the position of the protective component Q1.
[0032] The working principle of the above technical solution is explained below: In use, the controller 3 is installed inside the protective assembly Q1. The position of the protective assembly Q1 is adjusted to the middle position of the frame E3 via two support buffers R4. Each support buffer R4 contains two buffer springs R11 and two tension / opening supports U14, arranged in parallel. Their lower ends are connected to the upper and lower ends of the protective assembly Q1. The support plate T12 is adjusted by sliding on the sliding groove I15 via the slide rod P16. During movement, the buffer spring R11 and the tensioning support U14 will extend and retract to pull the protective component Q1. During the movement of the protective component Q1, the connecting plate H24 on the tensioning support U14 will be restrained by the protective component Q1 and the support plate T12. Multiple connecting plates H24 are connected to the tension limiting component D21, and the two cooperate to be restrained and extend / retract accordingly. A swing rod J25 connects the elastic pull component G22 and the tension limiting component D21. The tension limiting component D21 and the elastic pull component G22... The swing arm J25 can be adjusted to open and close, effectively controlling the extension limit of the tension limiter D21. This allows the tension limiter D21 to extend and retract with the docking plate H24. The connecting block F23 and the extension member K26 work together to assist the spring puller G22 in restraining the docking plate H24, thereby effectively limiting and maintaining the position of the protective component Q1. This ensures that the protective component Q1 is kept in a neutral position inside the frame E3, opposite to the fan frame W2, preventing the protective component Q1 from interfering with the exhaust fan Y6. When the controller 3 is running, the protective component Q1 can dissipate the heat emitted by the intelligent circuit board inside the controller 3. At the same time, the exhaust fan Y6 installed on the fan frame W2 will dissipate the heat emitted from the heat dissipation holes, preventing the intelligent controller from overheating due to long-term operation. The buffer spring R11 further buffers the protective component Q1, allowing the controller 3 inside to operate stably. The exhaust fan Y6 can effectively and quickly dissipate the hot air. Example
[0033] Please see Figures 5-7 This invention provides a technical solution: an intelligent control device for an environmentally friendly electrostatic precipitator. The protective component Q1 includes a mounting guard K31, a dehumidification component Z33, a placement cavity X34, a heat-conducting component L32, and a heat dissipation hole C35. The mounting guard K31 has a placement cavity X34 inside. The upper and lower ends of the mounting guard K31 are fitted with heat-conducting components L32. The left and right sides of the mounting guard K31 are provided with dehumidification components Z33 and heat dissipation holes C35. The placement cavity X34 is connected to the dehumidification component Z33 through the heat dissipation hole C35. The top of the mounting guard K31 is connected with a buffer spring R11 and a tensioning support U14. The mounting guard K31 is installed in the middle position of the frame E3.
[0034] The aforementioned heat dissipation hole C35 is used to cooperate with the placement cavity X34. The protective component K31 has heat dissipation holes C35 on both the left and right sides. The heat dissipation holes C35 are connected to the placement cavity X34. The controller 3 is installed inside the placement cavity X34. The heat generated by the controller 3 during operation will be conducted through the placement cavity X34 to the heat dissipation hole C35, and the heat will be dissipated through the heat dissipation hole C35.
[0035] The dehumidification component Z33 includes a flow channel C41, partitions V43, moisture-absorbing pads N42, a filter screen Q45, and a mounting plate M44. The flow channel C41 is located on the left and right sides of the moisture-absorbing pads N42 and is located inside the mounting plate M44. Multiple partitions V43 are arranged at equal intervals on both the left and right sides of the mounting plate M44. Filter screens Q45 are connected between the multiple partitions V43 and are in communication with the flow channel C41. The mounting plate M44 is installed on the side of the mounting bracket K31. The flow channel C41 is connected to the placement cavity X34 through heat dissipation holes C35.
[0036] Interconnecting holes are provided between the multiple spacers V43.
[0037] The aforementioned filter screen Q45 is used in conjunction with the spacer block V43. Interconnecting holes are provided between multiple spacer blocks V43, and filter screens Q45 are connected to the interconnecting holes. Filter screens Q45 can effectively block dust between the interconnecting holes.
[0038] The heat-conducting component L32 includes a shell E51, a heat-conducting component Y54, a heat-absorbing layer T52, and a heat-dissipating layer R53. Multiple heat-conducting components Y54 are installed inside the shell E51, and heat-dissipating layers R53 are connected between the multiple heat-conducting components Y54. The heat-dissipating layer R53 is connected to the heat-absorbing layer T52 at both the top and bottom ends, and the heat-absorbing layer T52 is connected to the ends of the heat-conducting components Y54 at both the left and right ends. The shell E51 is fitted and connected to the mounting protective component K31.
[0039] The heat-conducting component Y54 is arranged in an "H" shape inside the outer casing E51.
[0040] The heat-absorbing layer T52 is made of rock wool, which has good heat absorption properties, and the heat-conducting component Y54 has an H-shaped cross-section. The heat-conducting component Y54 can be used to conduct the temperature of the controller side wall, thereby achieving the purpose of cooling the controller.
[0041] The working principle of the above technical solution is explained below: In use, the controller 3 is installed in the middle of the mounting bracket K31. The mounting bracket K31 has heat dissipation holes C35 on both sides, which are connected to the placement cavity X34. The heat generated by the controller 3 during operation is conducted through the placement cavity X34 to the heat dissipation holes C35, where it is dissipated. The hot air then flows to the dehumidification component Z33. The mounting plate M44 on the dehumidification component Z33 has multiple partitions V43 on both sides, with interconnecting holes between them. The hot air flows through these interconnecting holes, which are connected to filter screens Q45. The filter screens Q45 effectively block dust between the interconnecting holes. The hot air enters the flow channel C41 inside the mounting plate M44 through the interconnecting holes. The left and right sides of the flow channel C41 receive the hot air discharged by the controller 3 and external air. When hot and cold air mix, water vapor is easily generated. The moisture-absorbing pad N42 absorbs this water vapor and also acts as a barrier, keeping the interior of the housing K31 dry. Both ends of the housing K31 are equipped with heat-conducting components L32, which, together with the heat dissipation holes C35, disperse and exhaust the hot air. The dispersed hot air is then conducted to the heat-absorbing layer T52 inside the outer shell E51. The heat-absorbing layer T52 has good heat absorption properties and can absorb the hot air. The absorbed hot air is then conducted to the heat-conducting component Y54, which has an H-shaped cross-section. The heat-conducting component Y54 dissipates the heat absorbed by the heat-absorbing layer T52. Simultaneously, the heat dissipation layer R53, in conjunction with the heat-conducting component Y54, dissipates the heat generated by the controller 3 during operation, thus preventing hot air from accumulating on the placement cavity X34 and affecting the normal operation of the controller 3, effectively ensuring the service life of the controller 3.
[0042] In summary, this invention employs a combination of protective devices, support legs, ventilation panels, a main body, a display screen, a controller, and a slide rail to form a new intelligent control device for environmentally friendly electrostatic precipitators. The controller is installed inside the protective assembly, and the position of the protective assembly is adjusted to the middle of the frame by two supporting buffers. When the controller is running, the protective assembly can dissipate the heat emitted by the intelligent circuit board inside the controller, while the exhaust fan installed on the fan frame dissipates the heat emitted from the heat dissipation holes, preventing the intelligent controller from overheating due to prolonged operation. At the same time, the sliding block and the slide rail work together to move the frame out of the main body, allowing the heat to dissipate quickly and ensuring stable operation of the controller.
[0043] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. It will be apparent to those skilled in the art that the invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the scope of the invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0044] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An intelligent control device for an environmentally friendly electrostatic precipitator, comprising a protective device (1), support legs (6), a ventilation plate (2), a main body (5), a display screen (7), a controller (3), and a slide rail (4), characterized in that: The protective device (1) is equipped with a controller (3), and the controller (3) is equipped with a display screen (7). The protective device (1) is installed in the middle of the main body (5). Ventilation plates (2) are provided on both sides of the outside of the main body (5). A slide rail (4) is fixedly connected to the inner wall of the main body (5). The slide rail (4) is slidably connected to the protective device (1). The bottom of the main body (5) is equipped with a support leg (6). The protective device (1) includes a protective component (Q1), a frame (E3), a slider (T5), a fan frame (W2), a support buffer (R4), and an exhaust fan (Y6). The protective component (Q1) is installed in the middle of the frame (E3). Two sliders (T5) and fan frames (W2) are provided on both the left and right sides of the frame (E3). An exhaust fan (Y6) is installed inside each of the two fan frames (W2). The exhaust fan (Y6) is connected to the frame (E3). Support buffers (R4) are provided at both the upper and lower ends inside the frame (E3). The end of the support buffer (R4) away from the frame (E3) is connected to the upper and lower ends of the protective component (Q1). A controller (3) is installed inside the frame (E3). The frame (E3) is installed in the middle of the main body (5). The slider (T5) is slidably connected to the slide rail (4).
2. The intelligent control device for an environmentally friendly electrostatic precipitator according to claim 1, characterized in that: The supporting buffer (R4) includes a buffer spring (R11), a sliding groove (I15), a support plate (T12), a tensioning support (U14), a retaining frame (Y13), and a sliding rod (P16). There are two buffer springs (R11), which are symmetrically arranged on the left and right sides of the lower end of the support plate (T12). There are two tensioning supports (U14) between the two buffer springs (R11). The tops of the two tensioning supports (U14) are installed in the middle position inside the support plate (T12). There are sliding rods (P16) on both the left and right sides of the support plate (T12). The outer ends of the sliding rods (P16) are connected to the sliding groove (I15) and the two are slidably connected. The support plate (T12) is connected to the frame (E3). The buffer springs (R11) and tensioning supports (U14) are connected to the upper and lower ends of the protective component (Q1).
3. The intelligent control device for an environmentally friendly electrostatic precipitator according to claim 2, characterized in that: The tensioning support (U14) includes a tension limiter (D21), a connecting block (F23), a swing rod (J25), a docking plate (H24), a spring-loaded member (G22), and an extension member (K26). The tension limiter (D21) is connected between two docking plates (H24). The docking plates (H24) are connected to the swing rod (J25) and the extension member (K26) on both sides. The ends of the two swing rods (J25) away from the docking plates (H24) are connected to the spring-loaded member (G22). The outer side of the spring-loaded member (G22) faces the connecting block (F23). The connecting block (F23) is located in the middle of the extension member (K26). The tension limiter (D21) is located between two buffer springs (R11). The upper and lower ends of the docking plate (H24) are connected to the support plate (T12) and the protective component (Q1), respectively.
4. The intelligent control device for an environmentally friendly electrostatic precipitator according to claim 1, characterized in that: The protective component (Q1) includes a mounting bracket (K31), a dehumidification component (Z33), a placement cavity (X34), a heat-conducting component (L32), and a heat dissipation hole (C35). The mounting bracket (K31) has a placement cavity (X34) inside. The mounting bracket (K31) is connected to the heat-conducting component (L32) at both the top and bottom. The mounting bracket (K31) has a dehumidification component (Z33) and a heat dissipation hole (C35) on both the left and right sides. The placement cavity (X34) is connected to the dehumidification component (Z33) through the heat dissipation hole (C35). The mounting bracket (K31) is connected to the top of the mounting bracket (K31) with a buffer spring (R11) and a tensioning support (U14). The mounting bracket (K31) is installed in the middle position of the frame (E3).
5. The intelligent control device for an environmentally friendly electrostatic precipitator according to claim 4, characterized in that: The dehumidification component (Z33) includes a flow channel (C41), partitions (V43), moisture-absorbing pads (N42), a filter screen (Q45), and a mounting plate (M44). The flow channel (C41) is located on the left and right sides of the moisture-absorbing pads (N42) and inside the mounting plate (M44). Multiple partitions (V43) are arranged at equal intervals on both sides of the mounting plate (M44). Filter screens (Q45) are connected between the partitions (V43) and are in communication with the flow channel (C41). The mounting plate (M44) is installed on the side of the mounting bracket (K31). The flow channel (C41) is connected to the placement cavity (X34) through heat dissipation holes (C35).
6. The intelligent control device for an environmentally friendly electrostatic precipitator according to claim 4, characterized in that: The heat-conducting component (L32) includes a shell (E51), a heat-conducting component (Y54), a heat-absorbing layer (T52), and a heat-dissipating layer (R53). Multiple heat-conducting components (Y54) are installed inside the shell (E51), and heat-dissipating layers (R53) are connected between the multiple heat-conducting components (Y54). The heat-dissipating layer (R53) is connected to the heat-absorbing layer (T52) at both the top and bottom ends. The heat-absorbing layer (T52) is connected to the ends of the heat-conducting components (Y54) at both the left and right ends. The shell (E51) is fitted and connected to the mounting cover (K31).
7. The intelligent control device for an environmentally friendly electrostatic precipitator according to claim 5, characterized in that: Interconnecting holes are provided between the multiple partition blocks (V43).
8. The intelligent control device for an environmentally friendly electrostatic precipitator according to claim 6, characterized in that: The heat-conducting component (Y54) is arranged in an "H" shape inside the outer shell (E51).