Pulse resonance deicing device
Through the pulse resonant deicing device powered by solar energy, the resonant frequency of the transmission line is detected and adjusted in real time, solving the problems of low deicing efficiency, high energy consumption and environmental pollution in the transmission line, and achieving efficient and safe deicing effects and intelligent management.
Patent Information
- Application Number
- CN202422609893.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-10-29
AI Technical Summary
When removing ice and snow mixtures on power transmission lines, the prior art has problems such as high energy consumption, great environmental impact, inconvenient maintenance and low deicing efficiency.
The pulse resonant deicing device is adopted, and the main control box and the external excitation source device powered by solar energy are used, and the pulse generation module, the resonant frequency detection module and the resonant generation module are used to detect and adjust the resonant frequency of the transmission line in real time, apply an external excitation force to remove the ice and snow mixture, and monitor and upload the line ice covering in real time.
It achieves low energy consumption, low pollution and efficient deicing effects, and at the same time improves the intelligent management and safe and stable operation of transmission lines, reducing the operation and maintenance workload.
Smart Images

Figure CN223194380U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a pulse resonance deicing device for removing ice and snow mixture on a transmission line. Background Art
[0002] During the operation of high-voltage transmission lines, ice and snow disasters are one of the variables that can affect the safe and stable operation of the power grid. The accumulation of ice and snow often degrades the electrical performance of bare metal conductors. In high-altitude areas or extreme weather conditions, it can also lead to accidents such as line breakage and tower collapse. Traditional methods for de-icing transmission lines mainly rely on direct current (DC) de-icing, mechanical de-icing, and chemical de-icing. DC de-icing is a cumbersome process, significantly affected by site and equipment factors, and can also affect normal line operation. Mechanical de-icing typically involves manual hammering or equipment, which not only places high demands on personnel and equipment but can also cause damage to equipment and transmission lines, potentially endangering personnel. Chemical de-icing can have a significant impact on the environment. Furthermore, chemical de-icing has a short duration of action on transmission lines, and accurate chemical application is a challenge, making widespread deployment difficult. Therefore, in the face of this problem, the utility model proposes a pulse resonance de-icing device with low energy consumption, small environmental impact, easy maintenance and high de-icing efficiency. It uses pulse force and resonance device to de-ice the transmission lines, thereby achieving the purpose of low-cost and efficient de-icing. Utility Model Content
[0003] To address the aforementioned technical issues, this utility model proposes a pulse resonance de-icing device. This device applies time-domain pulses to the transmission line, rapidly detects the natural frequency of the ice-snow mixture, uses a resonance generation module to apply an external excitation source, and tracks the resonance of the transmission line. This ensures that the natural frequency changes caused by changes in the ice-snow mixture on the transmission line are regulated and fed back, allowing for timely adjustment of the resonant frequency, achieving closed-loop system adaptation and stable de-icing. The device can also monitor line ice coverage in real time and upload the device's operating status to a remote monitoring platform. The backend system can then record the relevant data for intelligent management and control.
[0004] In order to achieve the above purpose, the technical solution adopted by the utility model is:
[0005] A pulse resonance deicing device is characterized by comprising a solar device and a main control box mounted on a power tower, and an external excitation source device mounted on a transmission line. The solar device comprises a solar panel and a fixed steel bracket, and the solar panel is fixed to the power tower via the fixed steel bracket.
[0006] The main control box is equipped with a communication board, a main control board, a power board and a battery. The main control board is connected to the remote monitoring platform signal through the communication board, the solar panel is connected to the power board, the power board is connected to the battery, and the battery is connected to the main control board.
[0007] The external excitation source device includes a pulse generating module, a resonant frequency detecting module and a resonant generating module. The pulse generating module, the resonant frequency detecting module and the resonant generating module are connected to the power supply board and the main control board respectively. The power supply board serves as the power input end of the pulse generating module, the resonant frequency detecting module and the resonant generating module.
[0008] The pulse generation module, the resonance frequency detection module and the resonance generation module are clamped and fixed on the transmission line with bolts and are located above the insulator.
[0009] The pulse generating module is used to convert electrical pulses into mechanical pulses. The pulse generating module includes a pulse coil and an actuator. The pulse coil is connected to the actuator. The pulse coil is used to realize the conversion between electricity and magnetism. The actuator is used to convert magnetic force into mechanical force to apply external excitation force to the transmission line.
[0010] The resonant frequency detection module is used to detect the resonant frequency of the transmission line. Each time the pulse generation module applies an external excitation force to the transmission line, the resonant frequency detection module performs a resonant frequency detection on the transmission line. When the resonant frequency detection module detects different natural frequencies of the ice and snow mixture on the transmission line, it feeds them back to the main control board. The main control board calculates and controls the pulse duration and pulse force of the pulse generation module and the resonant frequency of the resonance generation module.
[0011] The resonance generating module is used to add external excitation force to the ice-snow mixture on the transmission line so that the resonance frequency is consistent with the natural frequency of the ice-snow mixture on the transmission line. The resonance generating module includes a vibration generating device for generating external excitation force.
[0012] In the above structure: The utility model proposes a pulse resonance de-icing device, which includes a solar device and a main control box installed on a power tower and an external excitation source device installed on a transmission line, wherein the solar device is used to generate electricity to power the main control box and the external excitation source device, the main control box is used for dominant control, and the external excitation source device is used to clear the ice and snow mixture on the output line.
[0013] The solar device includes solar panels, which are fixed to the power tower through fixed steel brackets. The solar panels are fixed around and on the back panel with metal alloy as structural reinforcement to improve the reliability of the solar panel structure. The fixed steel brackets are made of composite metal materials with high strength, corrosion resistance and long service life. The fixing structure uses bolts to achieve L-shaped clamping.
[0014] The main control box is equipped with a communication board, a main control board, a power board and a battery. The main control board is connected to the remote monitoring platform signal through the communication board. The solar panel is connected to the power board through a cable, and the power is transmitted to the battery after rectification and regulation. The battery is connected to the main control board to provide power for it. The power board and the battery are the power part of the entire pulse resonance de-icing device. The device is powered by solar energy. After the solar device part completes power collection, it is connected to the power board by a cable to complete rectification and regulation and then transmitted to the battery.
[0015] The external excitation source device includes a pulse generating module, a resonant frequency detection module and a resonance generating module, wherein the pulse generating module, the resonant frequency detection module and the resonance generating module are respectively connected to the power supply board and the main control board. The power supply board serves as the power input end of the pulse generating module, the resonant frequency detection module and the resonance generating module. The pulse generating module, the resonant frequency detection module and the resonance generating module are clamped as a whole and fixed above the insulator with bolts. The pulse generation module is used to convert electrical pulses into mechanical pulses, thereby realizing wide-range resonant frequency confirmation. The pulse generation module consists of a pulse coil and an actuator mechanism, wherein the pulse coil is used to realize the conversion between electricity and magnetism. The actuator mechanism is made of iron-aluminum alloy and is used to convert magnetic force into mechanical force to apply external excitation force to the conductor. By controlling the electric energy and time passing through the pulse coil, different frequencies can be verified. Each time an external excitation force is applied, the resonant frequency detection module is waited for to detect the resonant frequency of the equipment conductor. The pulse force of the pulse generation module is fed back through the detected resonant amplitude and frequency, so that the resonant frequency range close to the natural frequency of the ice and snow mixture on the transmission line conductor can be found more quickly. When the resonant frequency detection module detects different natural frequencies of the ice and snow mixture, it will also feed back relevant information to the main control board. After the main control board completes the system calculation, it controls the pulse duration and pulse force of the pulse generation module and the resonant frequency of the resonance generation module, thereby ensuring better system tracking and stability.
[0016] The vibration generating device built into the resonance generating module is used to increase the external excitation force on the ice and snow mixture on the transmission line conductor, so that the resonance frequency is consistent with the natural frequency of the ice and snow mixture on the transmission line conductor, thereby achieving rapid de-icing.
[0017] The ice and snow mixture on the transmission line conductor will change its natural frequency during the oscillation process due to the continuous falling ice and snow. Therefore, the resonant frequency detection module is required to continuously follow and detect the natural frequency of the current ice and snow mixture, so that the resonance generation module can respond to the change of the resonant frequency more quickly, avoiding the system becoming an open-loop system due to the lack of a feedback loop.
[0018] Further: the solar device also includes an angle adjustment mechanism, which includes a lifting screw, a limit block and a limit bolt. The solar panel is hingedly connected to a base plate, and the fixed steel bracket is fixed to the base plate. One end of the lifting screw is fixed to the base plate and is located on the end face opposite to the base plate and the solar panel. The limit block is installed on the solar panel through the limit bolt and is located on the end face opposite to the solar panel and the base plate. The lifting screw and the limit block are connected by bolts.
[0019] In the above structure: an angle adjustment mechanism is installed on the solar panel, and the angle adjustment mechanism includes a lifting screw, a limit block and a limit bolt. The solar panel is hinged to a base plate, and the fixed steel bracket is fixed to the base plate. The lifting screw adopts an extended screw with a hexagonal opening at the bottom. During installation, the height of the screw is adjusted by an hexagonal wrench, and the position of the limit block is adjusted at the same time. After the angle adjustment is completed, the position of the limit block is fixed with a limit bolt to realize the angle adjustment of the solar panel as a whole, and the fixed steel bracket is fixed to the power tower by bolts.
[0020] Furthermore: the solar panels are made of single crystal silicon.
[0021] In the above structure: the solar panel is made of monocrystalline silicon, which has higher efficiency and longer life than polycrystalline silicon.
[0022] Furthermore: an I-shaped mounting piece is provided on the back of the main control box, a first through-core fixing hole and a second through-core fixing hole are provided in the middle of the I-shaped mounting piece, and a first bolt fixing hole and a second bolt fixing hole are provided at both ends.
[0023] In the above structure, the main control box utilizes a high-grade enclosed waterproof box with excellent sealing performance, protecting against insects, moisture, and water. An "I"-shaped mounting bracket is installed on the back of the main control box for easy attachment to the transmission line tower. Connection to the power tower can be achieved by clamping with steel tie straps through the first and second through-holes, or by bolts through the first and second bolt holes.
[0024] Furthermore: the communication board has a built-in APN card for realizing data transmission and remote startup with a remote monitoring platform.
[0025] In the above structure: through the APN card, data transmission and remote startup with the remote monitoring platform can be realized, helping the remote monitoring platform to achieve centralized control of the icing conditions of different lines.
[0026] Furthermore: the battery is a lithium iron phosphate battery.
[0027] In the above structure: the battery adopts lithium iron phosphate battery, which can effectively ensure the power supply safety of the system.
[0028] Compared with the prior art, the beneficial effects of the present invention are:
[0029] This utility model proposes a pulse resonance deicing device that is easy to install and highly maintenance-free. While achieving efficient, low-energy, pollution-free, and safe deicing, it also transmits the current ice and snow coverage status of power transmission lines to a remote monitoring system, providing relevant data to assist user decision-making. When necessary, it can be remotely activated by relevant personnel. This not only ensures the safe and stable operation of the power grid's high-voltage transmission lines, reduces the workload of maintenance and repair personnel, improves work efficiency, and adds intelligent management capabilities to the power grid's high-voltage transmission lines. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 This is a schematic diagram of the installation of the utility model;
[0031] Figure 2 It is a schematic diagram of the solar panel structure;
[0032] Figure 3 It is a schematic diagram of the overall structure of the solar panel;
[0033] Figure 4 Schematic diagram of the structure of the external excitation source device;
[0034] Figure 5 This is a schematic diagram of the main control box structure;
[0035] Figure 6 This is a schematic diagram of the side structure of the main control box.
[0036] List of reference numerals:
[0037] 1. Solar device; 2. Main control box; 3. External excitation source device; 4. Solar panel; 5. Fixed steel bracket; 6. Angle adjustment structure; 7. Lifting screw; 8. Limit block; 9. Limit bolt; 10. Pulse generating module; 11. Resonance frequency detection module; 12. Resonance generating module; 13. Communication board; 14. Main control board; 15. Power board; 16. Battery; 17. First through-core fixing hole; 18. Second through-core fixing hole; 19. First bolt fixing hole; 20. Second bolt fixing hole; 21. Insulator. DETAILED DESCRIPTION
[0038] The present invention is described in further detail below with reference to the accompanying drawings and specific embodiments:
[0039] like Figure 1-6As shown, the utility model proposes a pulse resonance deicing device, comprising a solar device 1 and a main control box 2 installed on a power tower, and an external excitation source device 3 installed on a transmission line. The solar device 1 comprises a solar panel 4 and a fixed steel bracket 5. The solar panel 4 is fixed to the power tower by the fixed steel bracket 5.
[0040] The main control box 2 is equipped with a communication board 13, a main control board 14, a power board 15 and a battery 16. The main control board 14 is connected to the remote monitoring platform signal through the communication board 13. The solar panel 4 is connected to the power board 15, the power board 15 is connected to the battery 16, and the battery 16 is connected to the main control board 14.
[0041] The external excitation source device 3 includes a pulse generating module 10, a resonant frequency detecting module 11 and a resonant generating module 12. The pulse generating module 10, the resonant frequency detecting module 11 and the resonant generating module 12 are connected to a power supply board 15 and a main control board 14 respectively. The power supply board 15 serves as a power input terminal of the pulse generating module 10, the resonant frequency detecting module 11 and the resonant generating module 12.
[0042] The pulse generating module 10, the resonance frequency detecting module 11 and the resonance generating module 12 are clamped and fixed on the transmission line with bolts and are located above the insulator 21.
[0043] The pulse generating module 10 is used to convert electrical pulses into mechanical pulses. The pulse generating module 10 includes a pulse coil and an actuator. The pulse coil is connected to the actuator. The pulse coil is used to realize the conversion between electricity and magnetism. The actuator is used to convert magnetic force into mechanical force to apply external excitation force to the transmission line.
[0044] The resonant frequency detection module 11 is used to detect the resonant frequency of the transmission line. Each time the pulse generation module 10 applies an external excitation force to the transmission line, the resonant frequency detection module 11 performs a resonant frequency detection on the transmission line. When the resonant frequency detection module 11 detects different natural frequencies of the ice and snow mixture on the transmission line, it feeds them back to the main control board 14. The main control board 14 calculates and controls the pulse duration and pulse force of the pulse generation module 10 and the resonant frequency of the resonance generation module 12.
[0045] The resonance generating module 12 is used to add external excitation force to the ice-snow mixture on the transmission line so that the resonance frequency is consistent with the natural frequency of the ice-snow mixture on the transmission line. The resonance generating module 12 includes a vibration generating device for generating external excitation force.
[0046] The utility model proposes a pulse resonance de-icing device, which includes a solar device 1 and a main control box 2 installed on a power tower, and an external excitation source device 3 installed on a transmission line. The solar device 1 is used to generate electricity to supply power to the main control box 2 and the external excitation source device 3. The main control box 2 is used for dominant control, and the external excitation source device 3 is used to clear the ice and snow mixture on the output line.
[0047] The solar device 1 includes a solar panel 4, which is fixed to the power tower by a fixed steel bracket 5. The solar panel 4 is fixed around and on the back panel with a metal alloy as a structural reinforcement to improve the reliability of the solar panel 4 structure. The fixed steel bracket 5 is made of a composite metal material with high strength, corrosion resistance and long service life. The fixing structure uses bolts to achieve L-shaped clamping.
[0048] The main control box 2 is equipped with a communication board 13, a main control board 14, a power board 15 and a battery 16. The main control board 14 is connected to the remote monitoring platform signal through the communication board 13. The solar panel 4 is connected to the power board 15 via a cable, and the power is transmitted to the battery 16 after rectification and regulation. The battery 16 is connected to the main control board 14 to provide power for it. The power board 15 and the battery 16 are the power part of the entire pulse resonance de-icing device. The device is powered by solar energy. After the solar device 1 partially completes power collection, it is connected to the power board 15 by a cable to complete rectification and regulation and then transmit it to the battery 16.
[0049] The external excitation source device 3 includes a pulse generating module 10, a resonant frequency detection module 11 and a resonance generating module 12, wherein the pulse generating module 10, the resonant frequency detection module 11 and the resonance generating module 12 are respectively connected to the power supply board 15 and the main control board 14, and the power supply board 15 serves as the power input end of the pulse generating module 10, the resonant frequency detection module 11 and the resonance generating module 12. The pulse generating module 10, the resonant frequency detection module 11 and the resonance generating module 12 are clamped as a whole and fixed above the insulator 21 with bolts. The pulse generating module 10 is used to convert electrical pulses into mechanical pulses, thereby realizing wide-range resonant frequency confirmation. The pulse generating module 10 is composed of a pulse coil and an actuator mechanism, wherein the pulse coil is used to realize the conversion between electricity and magnetism. The actuator mechanism is made of iron-aluminum alloy and is used to convert magnetic force into mechanical force to apply external excitation force to the conductor. By controlling the electric energy and time passing through the pulse coil, different frequencies can be verified. Each time an external excitation force is applied, the resonant frequency detection module 11 is waited for to detect the resonant frequency of the primary equipment conductor. The pulse force of the pulse generating module 10 is fed back through the detected resonant amplitude and frequency, so as to more quickly find the resonant frequency range close to the natural frequency of the ice and snow mixture on the transmission line conductor. When the resonant frequency detection module 11 detects different natural frequencies of the ice and snow mixture, it will also feed back the relevant information to the main control board 14. After the main control board 14 completes the system calculation, it controls the pulse duration and pulse force of the pulse generating module 10 and the resonant frequency of the resonance generating module 12, thereby ensuring better system tracking and stability.
[0050] The vibration generating device built into the resonance generating module 12 is used to add external excitation force to the ice-snow mixture on the transmission line conductor, so that the resonance frequency is consistent with the natural frequency of the ice-snow mixture on the transmission line conductor, thereby achieving rapid de-icing.
[0051] The ice and snow mixture on the transmission line conductor will change the natural frequency of the ice and snow mixture during the oscillation process due to the continuous falling ice and snow. Therefore, the resonant frequency detection module 11 is required to continuously follow and detect the natural frequency of the current ice and snow mixture, so that the resonance generation module 12 can respond to the change of the resonant frequency more quickly to avoid the system becoming an open-loop system due to the lack of a feedback loop.
[0052] In this embodiment: the solar device 1 also includes an angle adjustment mechanism, which includes a lifting screw 7, a limit block 8 and a limit bolt 9. The solar panel 4 is hingedly connected to a base plate, and the fixed steel bracket 5 is fixed to the base plate. One end of the lifting screw 7 is fixed to the base plate and is located on the end face opposite to the base plate and the solar panel 4. The limit block 8 is installed on the solar panel 4 through the limit bolt 9 and is located on the end face opposite to the solar panel 4 and the base plate. The lifting screw 7 and the limit block 8 are connected by bolts. An angle adjustment mechanism is installed on the solar panel 4, which includes a lifting screw 7, a limit block 8 and a limit bolt 9. The solar panel 4 is hinged to a base plate, and the fixed steel bracket 5 is fixed to the base plate. The lifting screw 7 adopts an extended screw with a hexagonal opening at the bottom. During installation, the height of the screw is adjusted with an hexagonal wrench, and the position of the limit block 8 is adjusted at the same time. After the angle adjustment is completed, the position of the limit block 8 is fixed with the limit bolt 9 to realize the angle adjustment of the solar panel 4 as a whole, and the fixed steel bracket 5 is fixed to the power tower by bolts.
[0053] In this embodiment, the solar panel 4 is made of monocrystalline silicon, which has higher efficiency and longer life than polycrystalline silicon.
[0054] In this embodiment, the back of the main control box 2 is equipped with an I-shaped mounting member. The center portion of the I-shaped mounting member is provided with a first through-hole fixing hole 17 and a second through-hole fixing hole 18, and the ends are provided with first bolt fixing holes 19 and second bolt fixing holes 20. The main control box 2 utilizes a high-grade enclosed waterproof box with excellent sealing performance, and is insect-proof, moisture-proof, and waterproof. An I-shaped mounting member is installed on the back of the main control box 2 to facilitate attachment to a transmission line tower. Connection to the power tower can be achieved by clamping the first through-hole fixing holes 17 and the second through-hole fixing holes 18 with steel tie straps, or by securing the installation with bolts through the first bolt fixing holes 19 and the second bolt fixing holes 20.
[0055] In this embodiment, the communication board 13 includes an APN card for data transmission and remote activation with a remote monitoring platform. This card enables data transmission and remote activation with the remote monitoring platform, enabling the remote monitoring platform to centrally manage the icing conditions of different lines.
[0056] In this embodiment, the battery 16 is a lithium iron phosphate battery, which can effectively ensure the power supply security of the system.
[0057] This utility model proposes a pulse resonance deicing device that is easy to install and highly maintenance-free. While achieving efficient, low-energy, pollution-free, and safe deicing, it also transmits the current ice and snow coverage status of power transmission lines to a remote monitoring system, providing relevant data to assist user decision-making. When necessary, it can be remotely activated by relevant personnel. This not only ensures the safe and stable operation of the power grid's high-voltage transmission lines, reduces the workload of maintenance and repair personnel, improves work efficiency, and adds intelligent management capabilities to the power grid's high-voltage transmission lines.
[0058] The above description is merely a preferred embodiment of the present invention and does not constitute any other limitation to the present invention. Any modification or equivalent variation based on the technical essence of the present invention shall still fall within the scope of protection claimed by the present invention.
Claims
1. A pulse resonance deicing device, characterized in that: The invention comprises a solar device (1) and a main control box (2) installed on a power tower, and an external excitation source device (3) installed on a transmission line. The solar device (1) comprises a solar panel (4) and a fixed steel bracket (5). The solar panel (4) is fixed on the power tower via the fixed steel bracket (5). The main control box (2) is equipped with a communication board (13), a main control board (14), a power board (15) and a battery (16). The main control board (14) is connected to the remote monitoring platform signal through the communication board (13). The solar panel (4) is connected to the power board (15). The power board (15) is connected to the battery (16). The battery (16) is connected to the main control board (14). The external excitation source device (3) comprises a pulse generating module (10), a resonant frequency detecting module (11) and a resonant generating module (12); the pulse generating module (10), the resonant frequency detecting module (11) and the resonant generating module (12) are respectively connected to a power supply board (15) and a main control board (14); the power supply board (15) serves as a power input terminal of the pulse generating module (10), the resonant frequency detecting module (11) and the resonant generating module (12); The pulse generation module (10), the resonance frequency detection module (11) and the resonance generation module (12) are integrally clamped and fixed on the transmission line with bolts and are located above the insulator (21). The pulse generating module (10) is used to convert electrical pulses into mechanical pulses. The pulse generating module (10) comprises a pulse coil and an actuating mechanism. The pulse coil is connected to the actuating mechanism. The pulse coil is used to realize the conversion between electricity and magnetism. The actuating mechanism is used to convert magnetic force into mechanical force to apply external excitation force to the power transmission line. The resonant frequency detection module (11) is used to detect the resonant frequency of the transmission line. Each time the pulse generation module (10) applies an external excitation force to the transmission line, the resonant frequency detection module (11) detects the resonant frequency of the transmission line. When the resonant frequency detection module (11) detects different natural frequencies of the ice and snow mixture on the transmission line, it feeds back the frequency to the main control board (14). The main control board (14) calculates and controls the pulse duration and pulse force of the pulse generation module (10) and the resonant frequency of the resonant generation module (12). The resonance generating module (12) is used to add an external excitation force to the ice and snow mixture on the transmission line so that the resonance frequency is consistent with the natural frequency of the ice and snow mixture on the transmission line. The resonance generating module (12) includes a vibration generating device for generating the external excitation force.
2. The pulse resonance deicing device according to claim 1, characterized in that: The solar device (1) also includes an angle adjustment mechanism, which includes a lifting screw (7), a limit block (8) and a limit bolt (9). The solar panel (4) is hingedly connected to a base plate, and the fixed steel bracket (5) is fixed to the base plate. One end of the lifting screw (7) is fixed to the base plate and is located on the end surface opposite to the base plate and the solar panel (4). The limit block (8) is installed on the solar panel (4) through the limit bolt (9) and is located on the end surface opposite to the solar panel (4) and the base plate. The lifting screw (7) and the limit block (8) are connected by bolts.
3. The pulse resonance deicing device according to claim 2, characterized in that: The solar panel (4) is made of single crystal silicon.
4. The pulse resonance deicing device according to claim 1, characterized in that: The back of the main control box (2) is provided with an I-shaped mounting piece, the middle portion of the I-shaped mounting piece is provided with a first through-core fixing hole (17) and a second through-core fixing hole (18), and the two ends are provided with a first bolt fixing hole (19) and a second bolt fixing hole (20).
5. The pulse resonance deicing device according to claim 1, characterized in that: The communication board (13) is equipped with an APN card for realizing data transmission and remote startup with a remote monitoring platform.
6. The pulse resonance deicing device according to claim 1, characterized in that: The storage battery (16) is a lithium iron phosphate battery.