Heat supply system based on Tesla coil

By using Tesla coil igniters in biomass fuel heating systems, combined with air supply and negative pressure suction devices, the problem of igniter damage has been solved, achieving a long igniter lifespan and low maintenance frequency, thus improving system reliability.

CN121782745APending Publication Date: 2026-04-03HUNAN NONGYOU MACHINERY GRP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-29
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

In existing biomass fuel heating systems, igniters are prone to damage due to high temperatures, requiring frequent maintenance and repairs, and have a short service life.

Method used

The Tesla coil igniter replaces the traditional igniter. The discharge ignition end of the Tesla coil igniter extends into the furnace and above the grate. Combined with the air supply and negative pressure suction devices, ignition is achieved by resonant voltage boost and energy coupling. The air supply and negative pressure suction devices reduce the temperature at the grate position and extend the igniter's life.

Benefits of technology

The lifespan of the Tesla coil igniter is extended, the frequency of system maintenance is reduced, the temperature impact on the igniter is decreased, and the reliability and durability of the system are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a heat supply system based on a Tesla coil, and relates to the technical field of biomass fuel combustion heat supply, the heat supply system comprises a feeding device and an ignition combustion device, the feeding device is arranged on the feeding side of the ignition combustion device, the ignition combustion device comprises a combustion furnace and a Tesla coil igniter, the combustion furnace is provided with a hearth, and the Tesla coil igniter is arranged in the hearth. A fire grate is arranged in the hearth, the discharge ignition end of the Tesla coil igniter extends into the hearth and extends to the position above the fire grate, the air supply device is used for supplying air into the hearth from the position below the fire grate, and the negative pressure air suction device is used for exhausting air from the position above the fire grate. According to the heat supply system based on the Tesla coil, the service life of the Tesla coil igniter is long, and the overhaul and maintenance frequency of the system is low.
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Description

Technical Field

[0001] This invention relates to the field of biomass fuel combustion heating technology, and in particular, to a heating system based on a Tesla coil. Background Technology

[0002] In existing technologies, when using biomass fuel for heating, hot air furnace ignition is usually carried out in two ways: manual ignition or automatic ignition by an igniter. The automatic ignition method requires the igniter to be placed in the furnace chamber of the hot air furnace to ignite the biomass pellets that have been fed into the furnace in advance. However, when the pellets in the furnace chamber are completely burned, the temperature of the furnace wall is extremely high. Under prolonged exposure to the heat, the igniter is easily damaged, the igniter is not durable, and the frequency of inspection and maintenance is high.

[0003] Therefore, it is necessary to propose a heating system based on the Tesla coil to solve or at least alleviate some of the above-mentioned defects. Summary of the Invention

[0004] The heating system based on Tesla coils provided by this invention solves the technical problem of high maintenance frequency in existing systems that use ignition devices.

[0005] To achieve the above objectives, the technical solution adopted by the present invention is as follows: A heating system based on a Tesla coil includes a feeding device and an ignition and combustion device. The feeding device is located on the feed side of the ignition and combustion device. The ignition and combustion device includes a combustion furnace and a Tesla coil igniter. The combustion furnace has a furnace chamber, and a grate is arranged inside the furnace chamber. The discharge ignition end of the Tesla coil igniter extends into the furnace chamber and extends above the grate. The heating system based on a Tesla coil also includes an air supply device and a negative pressure suction device. The air supply device is used to supply air from below the grate into the furnace chamber, and the negative pressure suction device is used to draw air from above the grate.

[0006] Furthermore, the coil end of the Tesla coil igniter is located on the outside of the combustion furnace, and the discharge ignition end of the Tesla coil igniter extends through the side wall of the furnace into the furnace and extends above the grate. The discharge ignition end is located on the central axis of the furnace or near the inner wall of the furnace.

[0007] Furthermore, a heat insulation box is provided on the outer wall of the furnace, the coil end of the Tesla coil igniter is located inside the heat insulation box, and the discharge ignition end of the Tesla coil igniter passes through the heat insulation box and the furnace in sequence.

[0008] Furthermore, the coil end of the Tesla coil igniter is located inside the combustion furnace, and the coil end of the Tesla coil igniter is located on the inner wall of the furnace and below the grate. The discharge ignition end is located on the central axis of the furnace or near the inner wall of the furnace.

[0009] Furthermore, the feeding device includes a feeding hopper, a feeding conveying auger, and a feeding guide pipe. A feeding port is provided on the side wall of the furnace, which is located above the grate. The discharge side of the feeding guide pipe is connected to the feeding port, and the feeding side of the feeding guide pipe is connected to the conveying outlet of the conveying auger. A feeding hopper is provided at the input port of the conveying auger.

[0010] Furthermore, the feeding device also includes a lifting, tilting, and unloading mechanism. This mechanism is located on one side of the feeding hopper and detachably connected to it. The lifting, tilting, and unloading mechanism includes a frame, a conveying hopper, a movable reversing frame, and a power unit. The first end of the movable reversing frame is movably mounted on the frame, and the other end extends outward and is fixedly connected to the conveying hopper. The power unit is located on the frame and is used to drive the movable reversing frame to slide. The frame has a guide rail for guiding the movement of the movable reversing frame, and the guide rail includes a vertical extension section. The system includes a lateral extension section and an arc-shaped connecting section. The lateral extension section is located above the vertical extension section and is situated behind the vertical extension section. It is connected to the vertical extension section through the arc-shaped connecting section. The power components include a force transmission cable, a traction guide frame, and a force application machine. The traction guide frame and the force application machine are respectively mounted on the frame. One end of the force transmission cable is connected to the force application machine, and the other end of the force transmission cable passes around the traction guide frame and is connected to the movable reversing frame. The force application machine drives the force transmission cable to release or retract, driving the movable reversing frame to slide within the guide rail.

[0011] Furthermore, the conveying hopper is a square hopper with an open top, and the rear side wall of the conveying hopper is a guide slope that slopes backward from the bottom of the hopper towards the top of the hopper.

[0012] Furthermore, the guide rail includes two oppositely arranged guide slots, with the movable commutator located between the two guide slots, and the end of the movable commutator being movably embedded in the guide slot.

[0013] Furthermore, the lifting and tilting material unloading mechanism also includes a reset component, which includes reset springs arranged one-to-one with the guide grooves. A sealing plate is provided on the outlet side of the guide groove. The reset spring is housed in the corresponding guide groove and one end abuts against the sealing plate. The other end of the reset spring is a free-moving end.

[0014] Furthermore, the traction guide frame includes a wheel mounting frame and force transmission rollers. The wheel mounting frame is fixedly mounted between two guide extension frames, and three force transmission rollers are arranged at intervals on the wheel mounting frame. The other end of the force transmission cable passes around the force transmission rollers for tensioning and reversing before connecting to the movable reversing frame.

[0015] The present invention has the following beneficial effects: The present invention discloses a Tesla coil-based heating system, comprising a feeding device and an ignition and combustion device. The feeding device is located on the feed side of the ignition and combustion device and supplies biomass fuel to the ignition and combustion device. The ignition and combustion device includes a combustion furnace and a Tesla coil igniter. The combustion furnace has a furnace chamber with a grate arranged inside. The discharge ignition end of the Tesla coil igniter extends into the furnace chamber and above the grate. The Tesla coil-based heating system also includes an air supply device and a negative pressure suction device. The air supply device supplies air from below the grate into the furnace chamber, and the negative pressure suction device draws air from above the grate. The invention relates to a Tesla coil igniter, in which the discharge and ignition end of the Tesla coil igniter extends into the furnace and above the grate. Using Tesla coil resonance voltage boosting and energy coupling, ordinary voltage is converted into an electric spark to ignite biomass pellets. This Tesla coil igniter replaces the traditional igniter for ignition. Furthermore, with the assistance of an air supply device and a negative pressure suction device, hot air is drawn away from the combustion furnace, resulting in lower temperatures at and below the grate, minimizing the impact on the Tesla coil igniter. The Tesla coil-based heating system provided by this invention has a long service life for the Tesla coil igniter and requires less frequent system maintenance.

[0016] In addition to the objectives, features, and advantages described above, the present invention has other objectives, features, and advantages. The invention will now be described in further detail with reference to the figures. Attached Figure Description

[0017] The accompanying drawings, which form part of this application, are used to provide a further understanding of the invention. The illustrative embodiments of the invention and their descriptions are used to explain the invention and do not constitute an undue limitation of the invention. In the drawings: Figure 1 This is one of the structural schematic diagrams of a heating system based on a Tesla coil according to an embodiment of the present invention; Figure 2 This is a second schematic diagram of the structure of a heating system based on a Tesla coil according to an embodiment of the present invention; Figure 3 This is one of the planar structural schematic diagrams of the lifting, tilting, and unloading mechanism in one embodiment of the present invention; Figure 4 This is a second planar structural schematic diagram of the lifting, tilting, and unloading mechanism in one embodiment of the present invention; Figure 5 This is one of the three-dimensional structural schematic diagrams of the lifting, flipping, and unloading mechanism in one embodiment of the present invention; Figure 6 This is a second three-dimensional structural schematic diagram of the lifting, flipping, and unloading mechanism in one embodiment of the present invention; Figure 7 This is a schematic diagram of the first state of the feeding device in one embodiment of the present invention; Figure 8 This is a schematic diagram of the second state of the feeding device in one embodiment of the present invention; Figure 9 This is the third schematic diagram of a heating system based on a Tesla coil in one embodiment of the present invention.

[0018] Legend: 100. Lifting and tilting material unloading mechanism; 10. Frame; 11. Guide rail; 111. Vertical extension section; 112. Horizontal extension section; 113. Arc-shaped connecting section; 20. Conveying bucket; 30. Movable reversing frame; 40. Power component; 41. Traction guide frame; 50. Reset component; 200. Feeding device; 300. Ignition and combustion device; 31. Combustion furnace; 32. Tesla coil igniter; 33. Heat insulation box. Detailed Implementation

[0019] It should be understood that the specific embodiments described herein are merely illustrative of the invention and are not intended to limit the invention.

[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0021] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present invention are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indication will also change accordingly.

[0022] Furthermore, the use of terms such as "first" and "second" in this invention is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed by this invention.

[0023] Please refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7, Figure 8 as well as Figure 9 The present invention provides a heating system based on a Tesla coil, including a feeding device 200 and an ignition and combustion device 300. The feeding device 200 is located on the feeding side of the ignition and combustion device 300. The ignition and combustion device 300 includes a combustion furnace 31 and a Tesla coil igniter 32. The combustion furnace 31 has a furnace chamber, and a grate is arranged inside the furnace chamber. The discharge ignition end of the Tesla coil igniter 32 extends into the furnace chamber and extends above the grate. The heating system based on a Tesla coil also includes an air supply device and a negative pressure suction device. The air supply device is used to supply air from below the grate into the furnace chamber, and the negative pressure suction device is used to draw air from above the grate.

[0024] The present invention discloses a Tesla coil-based heating system, comprising a feeding device 200 and an ignition and combustion device 300. The feeding device 200 is located on the feed side of the ignition and combustion device 300 and supplies biomass fuel to the ignition and combustion device 300. The ignition and combustion device 300 includes a combustion furnace 31 and a Tesla coil igniter 32. The combustion furnace 31 has a furnace chamber, in which a grate is arranged. The discharge ignition end of the Tesla coil igniter 32 extends into the furnace chamber and extends above the grate. The Tesla coil-based heating system also includes an air supply device and a negative pressure suction device. The air supply device supplies air from below the grate into the furnace chamber, and the negative pressure suction device supplies air from below the grate into the furnace chamber. The system utilizes a Tesla coil igniter 32, designed with its discharge ignition end extending into the furnace chamber and above the grate. By employing Tesla coil resonance voltage boosting and energy coupling, ordinary voltage is converted into an electric spark to ignite biomass pellets. The Tesla coil igniter 32 replaces the traditional igniter for ignition. Furthermore, with the assistance of the air supply and negative pressure suction devices, hot air is drawn away from the combustion furnace 31. The relatively low temperature at and below the grate has minimal impact on the Tesla coil igniter 32. The Tesla coil-based heating system provided by this invention features a long service life for the Tesla coil igniter 32 and requires less frequent system maintenance.

[0025] Understandably, a Tesla coil is also called a Tesla coil. The Tesla coil igniter 32 of this invention can be purchased or made by oneself. The Tesla coil igniter 32 has an ignition switch located outside the combustion furnace 31.

[0026] Understandably, in this invention, the coil end of the Tesla coil igniter 32 can be arranged outside the furnace or inside the furnace and below the grate, as long as the discharge ignition end of the Tesla coil igniter 32 can ignite the biomass fuel inside the furnace when it extends near the grate.

[0027] Furthermore, in order to avoid the influence of temperature and further improve the service life of the Tesla coil igniter 32, the coil end of the Tesla coil igniter 32 is located on the outside of the combustion furnace 31, and the discharge ignition end of the Tesla coil igniter 32 extends through the side wall of the furnace into the furnace and extends above the grate.

[0028] Understandably, in this invention, the discharge ignition end of the Tesla coil igniter 32 can be located on the central axis of the furnace, or it can be eccentrically positioned near the inner wall of the furnace. In a preferred embodiment of this invention, to further improve the service life of the Tesla coil igniter 32, the discharge ignition end is arranged near the inner wall of the furnace.

[0029] Furthermore, for ease of installation and protection, a heat insulation box 33 is provided on the outer wall of the furnace. The coil end of the Tesla coil igniter 32 is located inside the heat insulation box 33, and the discharge ignition end of the Tesla coil igniter 32 passes through the heat insulation box 33 and the furnace in sequence.

[0030] Furthermore, the feeding device 200 includes a feeding hopper, a feeding conveying auger, and a feeding guide pipe. An inlet is provided on the side wall of the furnace, located above the grate. The outlet side of the feeding guide pipe is connected to the inlet, and the inlet side of the feeding guide pipe is connected to the conveying outlet of the feeding auger. A feeding hopper is located at the inlet of the feeding auger. Understandably, in this invention, the feeding conveying auger receives biomass fuel from the feeding hopper and, under the driving action of the screw conveying mechanism of the feeding conveying auger, continuously conveys the biomass fuel to the feeding guide pipe, which then feeds the biomass fuel into the furnace. More preferably, in order to prevent material from impacting the discharge ignition end of the Tesla coil igniter 32, the ignition and combustion device 300 also includes an annular protective electric ring. The annular protective electric ring is arranged on the grate, and the discharge ignition end passes through the bottom of the grate and extends into the annular protective electric ring. The discharge ignition end does not protrude from the top surface of the annular protective electric ring.

[0031] Furthermore, the feeding guide pipe is arranged through the side wall of the furnace, and the discharge ignition end is arranged close to the side wall of the furnace and below the extension end of the feeding guide pipe. When biomass fuel enters the furnace through the feeding guide pipe and accumulates, it will gradually slide outward and accumulate into a cone. Arranging the discharge ignition end close to the side wall of the furnace helps to avoid excessive material impact.

[0032] Furthermore, the feeding device 200 also includes a lifting and tilting unloading mechanism 100. The lifting and tilting unloading mechanism 100 is located on one side of the feeding hopper and is detachably connected to the feeding hopper. The lifting and tilting unloading mechanism 100 includes a frame 10, a conveying hopper 20, a movable reversing frame 30, and a power component 40. The first end of the movable reversing frame 30 is movably mounted on the frame 10, and the other end of the movable reversing frame 30 extends outward and is fixedly connected to the conveying hopper 20. The power component 40 is located on the frame 10 and is used to drive the movable reversing frame 30 to slide. The frame 10 has a guide rail 11 for guiding the movement of the movable reversing frame 30. The guide rail 11 includes a vertical extension section 1. 11. A transverse extension section 112 and an arc-shaped connecting section 113. The transverse extension section 112 is located above the vertical extension section 111. The transverse extension section 112 is located behind the vertical extension section 111 and is connected to the vertical extension section 111 through the arc-shaped connecting section 113. The power component 40 includes a force transmission cable, a traction guide frame 41, and a force application machine. The traction guide frame 41 and the force application machine are respectively located on the frame 10. One end of the force transmission cable is connected to the force application machine, and the other end of the force transmission cable passes around the traction guide frame 41 and is connected to the movable reversing frame 30. The force application machine drives the force transmission cable to release or retract, driving the movable reversing frame 30 to slide within the guide rail 11.

[0033] In actual operation, the conveying bucket 20 is initially in its initial position; the power component 40 drives the power transmission cable winding to drive the movable reversing frame 30, which in turn drives the conveying bucket to gradually rise in the vertical extension section 111, at which point the conveying bucket rises to the first height; the power transmission cable further winds up to drive the movable reversing frame 30, which in turn drives the conveying bucket to move in the arc-shaped connecting section 113, at which point the conveying bucket gradually rises and flips backward, finally rising to the second height and being in a flipped state, and the conveying bucket is located above the feed inlet of the feeding device 200; the power transmission cable further winds up to drive the movable reversing frame 30, which in turn drives the conveying bucket to move in the horizontal extension section 112, and after flipping, the conveying bucket moves further to above the feed inlet of the feeding device 200; after the flipped conveying bucket is tilted and unloaded, the power transmission cable unwinds and the conveying bucket returns to its initial position under its own gravity; the lifting, flipping and unloading mechanism 100 of the present invention can realize automatic lifting and automatic flipping and unloading, and has a simple structure.

[0034] Furthermore, the conveying hopper 20 is a square hopper with an open top, and the rear side wall of the conveying hopper 20 is a guiding slope that slopes backward from the bottom of the hopper towards the top. Understandably, in this invention, by employing the guiding slope, after the conveying hopper 20 is vertically flipped, the material can fall to the feed inlet of the feeding hopper of the feeding device 200 under its own gravity. Preferably, the guiding slope is a slope of 45 to 60 degrees.

[0035] In this invention, in order to ensure the capacity of the conveying bucket 20, the conveying bucket 20 is a quadrilateral bucket body, and the remaining three side walls of the conveying bucket 20 are vertical surfaces.

[0036] Furthermore, the guide rail 11 includes two oppositely arranged guide slots, and the movable commutator 30 is located between the two guide slots, with the end of the movable commutator 30 movably embedded in the guide slot.

[0037] Furthermore, the movable end of the movable reversing frame 30 is provided with a roller assembly, and the roller assembly is arranged in a one-to-one correspondence with the guide rail 11, with the rollers of the roller assembly embedded in the corresponding guide groove.

[0038] In this invention, the guide rail 11 has a vertical extension section 111, an arc-shaped connecting section 113, and a horizontal extension section 112 arranged in sequence. One end of the movable reversing frame 30 is embedded in the guide rail 11, and the conveying bucket 20 is fixedly mounted on the other end of the movable reversing frame 30 that is cantilevered outward. The movable reversing frame 30 and the guide rail 11 are engaged by guide side wheels to ensure the stability of the lifting process.

[0039] Furthermore, the lifting and tilting material unloading mechanism 100 also includes a reset member 50. The reset member 50 includes reset springs arranged one-to-one with the guide grooves. A sealing plate is provided on the outlet side of the guide groove. The reset springs are housed in the corresponding guide grooves, with one end abutting against the sealing plate, and the other end of the reset springs is a free-moving end. Understandably, in this invention, by setting the reset member 50, after the constraint of the force transmission cable is released, the reset member 50 pushes the movable reversing frame 30 to move towards the arc-shaped connecting section 113 within the transverse extension section 112 by its own elastic force, ultimately causing the conveying bucket 20 and the movable reversing frame 30 to slide to their initial positions through the arc-shaped connecting section 113 and the vertical extension section 111 by their own gravity.

[0040] Furthermore, the frame 10 includes a bottom frame, guide extension frames, and a stiffening connecting frame. Two guide extension frames are positioned opposite each other on the bottom frame and are fixedly connected by the stiffening connecting frame. The movable reversing frame 30 is located above the bottom frame and between the two guide extension frame positions. Guide grooves are provided on the side walls of the guide extension frame positions. In this invention, the frame 10 adopts a rigid frame structure, and casters are located at the four corners of the bottom of the bottom frame, enabling the entire device to move.

[0041] Furthermore, the frame 10 also includes casters and fasteners. The casters are located at the bottom of the bottom frame, and the fasteners are located at the end of the bottom frame away from the conveyor hopper 20. Furthermore, the fasteners are used to connect with the feeding device 200 to prevent tipping or overturning during the lifting and unloading process.

[0042] Furthermore, the traction guide frame 41 includes a wheel mounting frame and force transmission rollers. The wheel mounting frame is fixedly mounted between two guide extension frames, and three force transmission rollers are spaced apart on the wheel mounting frame. The other end of the force transmission cable passes around the force transmission rollers, is tensioned and reversed, and then connected to the movable reversing frame 30. In a specific embodiment of the present invention, the wheel mounting frame is located below the arc-shaped connecting section 113 and in the opening direction of the arc-shaped connecting section 113.

[0043] Furthermore, the force-applying device is a winch or an electric hoist, and the force-applying device is fixed on the rear edge of the bottom frame.

[0044] The operation process of the lifting and tilting unloading mechanism 100 of the present invention includes: moving and positioning, moving the lifting and tilting unloading mechanism 100 to the working position by means of casters, and fixing the lifting and tilting unloading mechanism 100 to the feeding hopper and feeding box of the adjacent feeding device 200; lifting stage, after the conveying hopper 20 is loaded with material, the electric hoist starts to wind up, and the force transmission cable pulls the conveying hopper to rise along the vertical extension section 111 of the guide rail 11 of the frame 10; tilting and unloading stage, under the guidance and constraint of the arc-shaped connecting section 113 and the transverse extension section 112 of the guide rail 11, the conveying hopper changes from lifting motion to rotational motion until it tilts at the transverse extension section 112, realizing automatic dumping of materials; reset section, after the material is guided, the electric hoist runs in reverse, the conveying hopper 20 descends along the original path and automatically returns to the original position.

[0045] The beneficial effects of the lifting, tilting and unloading mechanism 100 of the present invention include: it has a moving function, which can improve the utilization rate of the equipment and the flexibility of operation; it can complete the two actions of lifting and tilting with a single force-applying machine, which improves the reliability during operation; and it can be adapted to the discharge port height of different equipment by the reserved length of the wire rope of the electric hoist.

[0046] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.

Claims

1. A heating system based on a Tesla coil, characterized in that, It includes a feeding device and an ignition and combustion device, wherein the feeding device is located on the feeding side of the ignition and combustion device. The ignition and combustion device includes a combustion furnace and a Tesla coil igniter. The combustion furnace has a furnace chamber, in which a grate is arranged. The discharge ignition end of the Tesla coil igniter extends into the furnace chamber and above the grate. The heating system based on the Tesla coil also includes an air supply device and a negative pressure suction device. The air supply device is used to supply air from below the grate into the furnace, and the negative pressure suction device is used to draw air from above the grate.

2. The heating system based on a Tesla coil according to claim 1, characterized in that, The coil end of the Tesla coil igniter is located on the outside of the combustion furnace, and the discharge ignition end of the Tesla coil igniter extends through the side wall of the furnace chamber into the furnace chamber and extends above the grate. The discharge ignition end is located on the central axis of the furnace or near the inner wall of the furnace.

3. The heating system based on a Tesla coil according to claim 2, characterized in that, A heat insulation box is provided on the outer wall of the furnace chamber, and the coil end of the Tesla coil igniter is located inside the heat insulation box. The discharge ignition end of the Tesla coil igniter passes through the heat insulation box and the furnace chamber in sequence.

4. The heating system based on a Tesla coil according to claim 1, characterized in that, The coil end of the Tesla coil igniter is located inside the combustion furnace, and the coil end of the Tesla coil igniter is located on the inner wall of the furnace chamber and below the grate. The discharge ignition end is located on the central axis of the furnace or near the inner wall of the furnace.

5. The heating system based on a Tesla coil according to any one of claims 1 to 4, characterized in that, The feeding device includes a feeding hopper, a feeding conveying auger, and a feeding guide pipe. A feeding inlet is provided on the side wall of the furnace, located above the grate. The discharge side of the feeding guide pipe is connected to the inlet, and the inlet side of the feeding guide pipe is connected to the conveying outlet of the conveying auger. The feeding hopper is provided at the input port of the conveying auger.

6. The heating system based on a Tesla coil according to claim 5, characterized in that, The feeding device also includes a lifting, tilting, and unloading mechanism, which is located on one side of the feeding hopper and detachably connected to the feeding hopper. The lifting, tilting, and unloading mechanism includes a frame, a conveying bucket, a movable reversing frame, and a power component. The first end of the movable reversing frame is movably mounted on the frame, and the other end extends outward and is fixedly connected to the conveying bucket. The power component is mounted on the frame and drives the movable reversing frame to slide. The frame has a guide rail for guiding the movement of the movable reversing frame. The guide rail includes a vertical extension section, a horizontal extension section, and an arc-shaped connecting section. The horizontal extension section is located above the vertical extension section and is positioned behind the vertical extension section, communicating with it through the arc-shaped connecting section. The power component includes a force transmission cable, a traction guide frame, and a force application machine. The traction guide frame and the force application machine are respectively mounted on the frame. One end of the force transmission cable is connected to the force application machine, and the other end of the force transmission cable passes around the traction guide frame and connects to the movable reversing frame. The force application machine drives the force transmission cable to release or retract, driving the movable reversing frame to slide within the guide rail.

7. The heating system based on a Tesla coil according to claim 6, characterized in that, The conveying hopper is a square hopper with an open top, and the rear side wall of the conveying hopper is a guide slope that slopes backward from the bottom of the hopper towards the top of the hopper.

8. The heating system based on a Tesla coil according to claim 6, characterized in that, The guide rail includes two oppositely arranged guide slots, and the movable reversing frame is located between the two guide slots, with the end of the movable reversing frame movably embedded in the guide slot.

9. The heating system based on a Tesla coil according to claim 8, characterized in that, The lifting and tilting material unloading mechanism also includes a reset component, which includes reset springs arranged one-to-one with the guide grooves. A sealing plate is provided on the outlet side of the guide groove. The reset spring is housed in the corresponding guide groove and one end abuts against the sealing plate. The other end of the reset spring is a free-moving end.

10. The heating system based on a Tesla coil according to claim 8, characterized in that, The traction guide frame includes a wheel mounting frame and force transmission rollers. The wheel mounting frame is fixedly mounted between two guide extension frames, and the three force transmission rollers are arranged at intervals on the wheel mounting frame. The other end of the force transmission cable passes around the force transmission roller for tensioning and reversing before connecting to the movable reversing frame.