A disc spring efficient heat treatment system and a treatment method thereof
By introducing a moving mechanism, an air intake mechanism, and a circulation component, combined with a conical cylinder and inclined plate design, the problem of uneven heat treatment caused by slow hot air flow velocity was solved, achieving uniform heating and efficient heat treatment of the disc spring.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SUQIAN SANZHONG SPRING MANUFACTURING CO LTD
- Filing Date
- 2026-04-29
- Publication Date
- 2026-06-05
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Figure CN122147026A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of spring heat treatment equipment technology, specifically to a high-efficiency heat treatment system and method for disc springs. Background Technology
[0002] A high-efficiency heat treatment device for disc springs is an integrated special equipment designed for the large-scale and high-precision heat treatment needs of disc springs. With uniform hot air circulation and dynamic airflow purging in the furnace, it ensures uniform heating and cooling of disc springs and small deformation. During the use of this device, the workers first place the pre-processed disc springs into the placement rack. Then, the conveying device at the bottom of the main body is activated to move the placement rack into the main body, and the entrance of the main body is closed. At this time, the disc springs inside the placement rack are heat-treated under continuous heating inside the main body. Because the hot air circulating inside the main body is relatively slow during the heat treatment of the disc springs inside the placement rack, it will disperse after contacting the side wall of the placement rack during the heat treatment, which will affect the heat treatment of the disc springs at the bottom of the placement rack. This affects the heat treatment status of the disc springs placed inside the placement rack and the overall quality of the heat treatment of the disc springs. Summary of the Invention
[0003] The purpose of this invention is to provide a high-efficiency heat treatment system and method for disc springs to solve the problems mentioned in the background art.
[0004] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution: This invention relates to a high-efficiency heat treatment system for disc springs, comprising a main body, with a mounting bracket slidably connected inside the main body, and further comprising: The moving mechanism is installed inside the main body and is used to guide the flow of hot air when heat-treating the disc springs in the placement rack. The suction mechanism is installed on the top inner wall of the main body and is used to assist in absorbing hot air when the disc spring is heat-treated by hot air circulation.
[0005] Furthermore, the main body includes: A circulation assembly is installed on the top of the main body to guide hot air to circulate inside the main body during heat treatment of the disc spring. Auxiliary components are installed inside the main body and are used to enable the auxiliary loop components to function.
[0006] Furthermore, the mobile mechanism includes: The flow-guiding component is installed inside the auxiliary component and is used to guide hot air to flow into the interior of the main body when the circulation component is working; The push component is installed on the bottom inner wall of the main body and is used to apply a push force to the drainage component when the placement frame moves.
[0007] Furthermore, the inhalation mechanism includes: The diversion component is installed on the top inner wall of the main body to block the suction component of the circulation component, thereby dispersing the suction force generated by the circulation component.
[0008] Furthermore, the circulation component includes an air intake port opened at the top of the main body, an air supply pipe fixedly connected to the inner wall of the air intake port, and a fan fixedly connected to the outer surface of the air supply pipe. The end of the air supply pipe furthest from the air intake is fixedly connected to the side wall of the main body, and the bottom of the fan is fixedly connected to the top of the main body.
[0009] Furthermore, the auxiliary component includes a conical cylinder fixedly connected to the end of the air supply pipe away from the air inlet, and two sliding grooves are formed on the outer surface of the conical cylinder; An auxiliary groove is provided on the side wall of the sliding groove, and a sliding block is slidably connected inside the auxiliary groove.
[0010] Furthermore, a connecting plate is slidably connected to the outer surface of the sliding block one, and an annular plate is fixedly connected to one end of the two connecting plates that are far apart from each other; A tapered plate is fixedly connected between the two connecting plates, and a spring is fixedly connected to the side wall of the connecting plate; Several inclined plates are fixedly connected to the inner wall of the conical cylinder; The side wall of the connecting plate is slidably connected to the inner wall of the sliding groove, the outer surface of the conical plate is in contact with the inner wall of the conical cylinder, and the end of the spring away from the connecting plate is fixedly connected to the inner wall of the sliding groove.
[0011] Furthermore, the actuating component includes a connecting shaft fixedly connected to the inner wall of the main body, and a swing plate slidably connected to the outer surface of the connecting shaft; A spring is fixedly connected to the side wall of the swing plate, and a sliding block is rotatably connected to the bottom of the swing plate; The top of the swing plate contacts the side wall of the connecting plate, the end of the second spring away from the swing plate is fixedly connected to the inner wall of the main body, and the bottom of the second sliding block is slidably connected to the bottom inner wall of the main body.
[0012] Furthermore, the diversion assembly includes several fixing blocks fixedly connected to the inner wall of the top of the main body, and a rectangular plate fixedly connected to the bottom of the fixing blocks, with several tapered holes opened inside the rectangular plate.
[0013] Furthermore, a method of using a high-efficiency heat treatment system for disc springs, the method comprising the following steps: S1: Conveying Disc Springs: First, the processed disc springs are stacked inside the placement rack. Then, the placement rack is pushed to move into the main body. When the placement rack moves to the designated position, the main body of the device is closed. S2: Heating cycle: The heating components inside the main body are activated. As the components inside the main body gradually heat the disc springs in the placement rack, the fan will absorb hot air through the air inlet and discharge it into the interior of the main body through the air delivery pipe, thus realizing the hot air circulation during the heat treatment process. S3: Recycling and Retrieval: After the disc spring inside the main body has been heat-treated, the operator closes the device, then activates the sliding assembly to move the placement rack out of the main body, and then removes the heat-treated disc spring.
[0014] The present invention has the following beneficial effects: (1) In this invention, when hot air comes into contact with the inclined plate, it will be guided by the inclined surface of the inclined plate to be diverted. The diverted hot air will come into contact with the disc springs inside the placement rack layer by layer, so that the disc springs placed at the bottom of the placement rack can also be heated evenly by the blowing of hot air when the hot air is circulating. This reduces the situation where the hot air circulating inside the main body is dispersed after contacting the side wall of the placement rack due to the slow flow rate when heat treating the disc springs inside the placement rack, resulting in the inability to heat treat the disc springs at the bottom of the placement rack. This ensures that the disc springs placed inside the placement rack are heated evenly, and improves the overall quality of the device when heat treating the disc springs.
[0015] (2) In this invention, after hot air enters the conical cylinder, it is diverted by the conical plate. Part of it enters the conical cylinder through the outside of the conical plate and then flows out into the main body through the inclined plate. Part of it flows out into the main body through the inside of the conical plate and then flows out into the main body through the inclined plate. This achieves that when the placement rack moves to a position close to the main body, the circulating airflow will directly disperse to heat treat the disc spring inside the placement rack. When the placement rack is far from the conical cylinder, the hot air will be pressurized and accelerated by the conical plate before being diverted to contact the disc spring inside the placement rack. This reduces the situation where the heat treatment effect of the disc spring inside the placement rack is affected by the different distances when the placement rack moves to different positions. This ensures the effect of the disc spring heat treatment and improves the efficiency of the device in heat treating the disc spring.
[0016] (3) In this invention, the movement of the connecting plate will simultaneously drive the top connecting plate to move synchronously through the annular plate. At this time, since the annular plate is a circle, the movement of the connecting plate will be restricted by the annular plate, so that the connecting plate slides horizontally inside the sliding groove. This makes the conical plate stable during the process of the swing plate pushing the connecting plate to move and driving the conical plate to move. This reduces the situation where the conical plate swings when it is pushed and slides inside the sliding groove because the sliding groove is in an inclined state. This keeps the operation of the conical plate and the connecting plate stable and further improves the overall quality of the device when heat treating the disc spring.
[0017] (4) In this invention, when hot air is conveyed into the main body through the conical cylinder and the inclined plate, the suction force generated from the air inlet to the bottom is weakened. As a result, when the hot air comes into contact with the disc springs of the placement rack, the hot air can better contact the disc springs inside the placement rack. This reduces the situation where the part of the disc springs far from the conical cylinder does not fully contact the hot air due to the suction force generated at the top of the air inlet when the hot air is conveyed into the main body for heat treatment. This increases the circulation distance of the hot air inside the main body and further improves the efficiency of the device in heat treatment of the disc springs.
[0018] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the overall partial cross-sectional structure of the present invention; Figure 3 This is a partial cross-sectional view of the circulation component of the present invention; Figure 4 This is a partial cross-sectional view of the auxiliary component of the present invention; Figure 5 For the present invention Figure 4 Enlarged view of point A in the middle; Figure 6 This is a partial cross-sectional view of the drainage component of the present invention; Figure 7 This is a partial component diagram of the diversion component of the present invention; Figure 8 This is a partial cross-sectional view of the component driving the present invention; Figure 9 For the present invention Figure 8 Enlarged view of point B in the middle; Figure 10 This is a partial cross-sectional view of the current splitter assembly of the present invention; Figure 11 This is a partial plan view of the drainage component of the present invention; Figure 12 This is a flowchart of the processing method of the present invention.
[0021] The attached diagram lists the components represented by each number as follows: In the diagram: 1. Main body; 101. Placement rack; 11. Circulation assembly; 111. Inlet; 112. Air supply pipe; 113. Fan; 12. Auxiliary assembly; 121. Conical cylinder; 122. Sliding groove; 123. Auxiliary groove; 124. Sliding block one; 2. Moving mechanism; 21. Drainage assembly; 211. Connecting plate; 212. Annular plate; 213. Conical plate; 214. Spring one; 215. Inclined plate; 22. Pushing assembly; 221. Connecting shaft; 222. Swinging plate; 223. Spring two; 224. Sliding block two; 3. Intake mechanism; 31. Diversion assembly; 311. Fixing block; 312. Rectangular plate; 313. Conical hole. Detailed Implementation
[0022] 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 some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0023] Please see Figures 1-12 As shown, the present invention is a high-efficiency heat treatment system and method for disc springs, comprising a main body 1, wherein a placement rack 101 is slidably connected inside the main body 1, and further comprising: The moving mechanism 2 is installed inside the main body 1 and is used to guide the flow of hot air when heat-treating the disc spring in the placement rack 101. The suction mechanism 3 is installed on the top inner wall of the main body 1 and is used to assist in absorbing hot air when the disc spring is heat-treated by hot air circulation.
[0024] Entity 1 includes: The circulation assembly 11 is installed on the top of the main body 1 and is used to guide hot air to circulate inside the main body 1 during the heat treatment of the disc spring. Auxiliary component 12 is installed inside the main body 1 and is used to operate the auxiliary circulation component 11.
[0025] Mobile mechanism 2 includes: The flow guiding component 21 is installed inside the auxiliary component 12 and is used to guide hot air to flow into the interior of the main body 1 when the circulation component 11 is working. Pushing component 22 is installed on the bottom inner wall of the main body 1 and is used to apply a pushing force to the drainage component 21 by the pushing force of the placement frame 101 when the placement frame 101 moves.
[0026] The inhalation mechanism 3 includes: The diversion component 31 is installed on the top inner wall of the main body 1 to block the suction component of the circulation component 11, thereby dispersing the suction force generated by the circulation component 11.
[0027] The circulation component 11 includes an air inlet 111 opened at the top of the main body 1, an air supply pipe 112 is fixedly connected to the inner wall of the air inlet 111, and a fan 113 is fixedly connected to the outer surface of the air supply pipe 112. Among them, the end of the air supply pipe 112 away from the air intake 111 is fixedly connected to the side wall of the main body 1, and the bottom of the fan 113 is fixedly connected to the top of the main body 1. When the placement rack 101 moves into the main body 1, the entrance of the main body 1 will be closed. At this time, the disc spring inside the placement rack 101 is heat-treated under continuous heating inside the main body 1.
[0028] The auxiliary component 12 includes a conical cylinder 121 fixedly connected to the end of the air supply pipe 112 away from the air inlet 111, and two sliding grooves 122 are formed on the outer surface of the conical cylinder 121. An auxiliary groove 123 is provided on the side wall of the sliding groove 122. A sliding block 124 is slidably connected inside the auxiliary groove 123. When the fan 113 starts, the absorbed hot air flows into the body 1 through the bottom of the air supply pipe 112. Since the conical plate 213 is conical in shape and its side wall is in contact with the outlet of the air supply pipe 112, the hot air will flow into the conical cylinder 121 through the channel in the middle of the conical plate 213 when it flows out of the air supply pipe 112.
[0029] A connecting plate 211 is slidably connected to the outer surface of the sliding block 124, and an annular plate 212 is fixedly connected to one end of the two connecting plates 211 that are far apart from each other. A tapered plate 213 is fixedly connected between the two connecting plates 211, and a spring 214 is fixedly connected to the side wall of the connecting plate 211. Several inclined plates 215 are fixedly connected to the inner wall of the conical cylinder 121; The side wall of the connecting plate 211 is slidably connected to the inner wall of the sliding groove 122, the outer surface of the conical plate 213 is in contact with the inner wall of the conical cylinder 121, and the end of the spring 214 away from the connecting plate 211 is fixedly connected to the inner wall of the sliding groove 122. When the hot air comes into contact with the inclined plate 215, it will be guided by the inclined surface of the inclined plate 215 to be diverted. The diverted hot air will come into contact with the disc springs inside the placement rack 101 layer by layer, so that the disc springs placed at the bottom of the placement rack 101 can also be uniformly heated by the hot air blowing when the hot air circulates.
[0030] The pushing component 22 includes a connecting shaft 221 fixedly connected to the inner wall of the main body 1, and a swing plate 222 slidably connected to the outer surface of the connecting shaft 221. Spring 223 is fixedly connected to the side wall of the swing plate 222, and sliding block 224 is rotatably connected to the bottom of the swing plate 222. The top of the swing plate 222 contacts the side wall of the connecting plate 211, the end of the spring 223 away from the swing plate 222 is fixedly connected to the inner wall of the main body 1, and the bottom of the sliding block 224 is slidably connected to the bottom inner wall of the main body 1. When the sliding block 224 moves, it will push the swing plate 222 to swing upward around the connecting shaft 221. During the swing of the swing plate 222, it will apply a pushing force to the spring 223 to make it contract and accumulate potential energy.
[0031] The diversion assembly 31 includes several fixing blocks 311 fixedly connected to the inner wall of the top of the main body 1. A rectangular plate 312 is fixedly connected to the bottom of the fixing blocks 311. The rectangular plate 312 has several conical holes 313 inside. When the fan 113 absorbs the hot air inside the main body 1 through the air supply pipe 112, part of the hot air located at the bottom of the air intake 111 will flow into the air supply pipe 112 through the conical holes 313 under the obstruction of the rectangular plate 312. The other part will be dispersed inside the main body 1 and then flow into the air supply pipe 112 from both sides of the rectangular plate 312.
[0032] A method for using a high-efficiency heat treatment system for disc springs, the method comprising the following steps: S1: Conveying disc springs: First, the processed disc springs are piled up inside the placement rack 101, and then the placement rack 101 is pushed to move into the body 1. When the placement rack 101 moves to the designated position, the device body 1 is closed. S2: Heating cycle: Start the heating component inside the main body 1. As the component inside the main body 1 gradually heats the disc spring in the placement rack 101, the fan 113 will absorb hot air through the air intake 111 and discharge it into the interior of the main body 1 through the air delivery pipe 112, thereby realizing the hot air circulation during the heat treatment process. S3: Retrieval of parts: After the disc spring inside the main body 1 has been heat-treated, the operator turns off the device and then activates the sliding assembly to move the placement rack 101 out of the main body 1, and then takes out the heat-treated disc spring.
[0033] In use, the worker first places the pre-processed disc spring into the placement rack 101, and then starts the conveying device at the bottom of the main body 1 to move the placement rack 101 into the main body 1. When the placement rack 101 moves into the main body 1, the entrance of the main body 1 is closed, and the inside of the main body 1 is continuously heated to heat-treat the disc spring in the placement rack 101. During this process, the fan 113 at the top of the main body 1 is started simultaneously. The fan 113 uses an internal motor to draw air into the main body 1 through the air intake 111. After the hot air enters the air supply pipe 112 through the air intake 111, the fan 113 guides the hot air through the bottom of the air supply pipe 112 into the main body 1, thereby completing the airflow circulation and heat treatment of the disc spring during the heat treatment process.
[0034] After the fan 113 starts, the absorbed hot air flows into the main body 1 through the bottom of the air supply pipe 112. Since the conical plate 213 is conical and its sidewall contacts the outlet of the air supply pipe 112, the hot air flowing out of the air supply pipe 112 will flow into the conical cylinder 121 through the channel in the middle of the conical plate 213. Because the flow area of the channel in the middle of the conical plate 213 is small, when the airflow passes through this channel, the gas will accelerate into the conical cylinder 121, increasing both the pressure and velocity of the hot air delivered by the fan 113 into the main body 1. Simultaneously, as the airflow continues into the conical cylinder 121, it will contact multiple inclined plates 215 inside the conical cylinder 121. At this time, the hot air will be guided and diverted by the inclined surfaces of the inclined plates 215. The gas flow path is as follows: Figure 11 As shown, the diverted hot air contacts the disc springs inside the placement rack 101 layer by layer, so that the disc springs placed at the bottom of the placement rack 101 can also be heated evenly by the hot air blowing during the hot air circulation. This reduces the situation where the hot air circulating inside the main body 1 disperses after contacting the side wall of the placement rack 101 due to the slow flow rate, which would prevent the disc springs at the bottom of the placement rack 101 from being heat-treated. This ensures that the disc springs placed inside the placement rack 101 are heated evenly, improving the overall quality of the device when heat-treating the disc springs.
[0035] It should be noted that when the airflow flows through the conical plate 213 into the conical cylinder 121, since the conical plate 213 is not pushed by an external force, there will be no relative sliding between the conical plate 213 and the conical cylinder 121, and there is no gap between the two.
[0036] When the conveying device inside the main body 1 moves the placement frame 101 into the main body 1, the side wall of the placement frame 101 will contact the side wall of the sliding block 224. Then, the placement frame 101 will continue to move, thereby pushing the sliding block 224 to move. When the sliding block 224 moves, it will push the swing plate 222 to swing upward around the connecting shaft 221. During the swing of the swing plate 222, it will apply a pushing force to the spring 223, causing it to contract and accumulate potential energy. During the swing of the swing plate 222, it will apply a pushing force to the connecting plate 211 in contact with it. After the connecting plate 211 is pushed, it will drive the annular plate 212 to move and slide inside the sliding groove 122. During the sliding of the connecting plate 211, it will drive the conical plate 213 to move towards the inclined plate 215. At the same time, the connecting plate 211 will apply a pushing force to the spring 214, causing it to contract and accumulate potential energy, thereby generating heat. After the air enters the conical cylinder 121, it is diverted by the conical plate 213. Part of it enters the conical cylinder 121 through the outside of the conical plate 213 and then flows out into the main body 1 after being diverted by the inclined plate 215. Part of it flows out into the main body 1 through the inside of the conical plate 213 and then flows out into the main body 1 after being diverted by the inclined plate 215. This ensures that when the placement rack 101 moves closer to the main body 1, the circulating airflow is directly dispersed to heat-treat the disc springs inside the placement rack 101. When the placement rack 101 is farther from the conical cylinder 121, the hot air is first pressurized and accelerated by the conical plate 213 and then diverted to contact the disc springs inside the placement rack 101. This reduces the impact of different distances on the heat treatment effect of the disc springs inside the placement rack 101 when the placement rack 101 moves to different positions, thus ensuring the heat treatment effect of the disc springs and improving the efficiency of the device in heat-treating the disc springs.
[0037] When the connecting plate 211 is pushed and slides inside the sliding groove 122, since the sliding block 124 inside the connecting plate 211 is slidably connected to the connecting plate 211, when the connecting plate 211 slides, the sliding block 124 slides in the auxiliary groove 123, and the connecting plate 211 slides relative to the sliding block 124. At the same time, the movement of the connecting plate 211 will simultaneously drive the top connecting plate 211 to move synchronously through the annular plate 212. At this time, since the annular plate 212 is a circle, the movement of the connecting plate 211 will be limited by the annular plate 212. This mechanism ensures that the connecting plate 211 slides horizontally within the sliding groove 122, and that the oscillating plate 222 keeps the conical plate 213 stable as it moves by pushing the connecting plate 211. This reduces the swaying of the conical plate 213 when it moves under the influence of the connecting plate 211, which is caused by the inclined state of the sliding groove 122. This stabilizes the operation of both the conical plate 213 and the connecting plate 211, further improving the overall quality of the device during the heat treatment of the disc spring.
[0038] When the fan 113 absorbs the hot air inside the main body 1 through the air supply pipe 112, part of the hot air located at the bottom of the air inlet 111 will flow into the air supply pipe 112 through the conical hole 313 under the obstruction of the rectangular plate 312, and the other part will be dispersed inside the main body 1 and flow into the air supply pipe 112 from both sides of the rectangular plate 312. At the same time, when the hot air is transported into the main body 1 through the conical cylinder 121 and the inclined plate 215, the suction force generated from the air inlet 111 to the bottom is weakened. As a result, when the hot air comes into contact with the disc springs of the placement rack 101, it can make better contact with the disc springs inside the placement rack 101. This reduces the situation where the part of the disc springs far from the conical cylinder 121 does not make sufficient contact with the hot air due to the suction force generated at the top of the air inlet 111 when the hot air is transported into the main body 1 for heat treatment. This increases the circulation distance of the hot air inside the main body 1 and further improves the efficiency of the device in heat treating the disc springs.
[0039] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
Claims
1. A high-efficiency heat treatment system for disc springs, comprising a main body (1), wherein a mounting frame (101) is slidably connected inside the main body (1), characterized in that, Also includes: The moving mechanism (2) is installed inside the main body (1) and is used to guide the flow of hot air when heat treating the disc spring in the placement rack (101); The suction mechanism (3) is installed on the top inner wall of the main body (1) and is used to assist in absorbing hot air when the disc spring is heat-treated by hot air circulation.
2. The high-efficiency heat treatment system for disc springs according to claim 1, characterized in that: The main body (1) includes: A circulation assembly (11) is installed on the top of the main body (1) for guiding hot air to circulate inside the main body (1) during heat treatment of the disc spring; An auxiliary component (12) is installed inside the main body (1) and is used to operate the auxiliary circulation component (11).
3. The high-efficiency heat treatment system for disc springs according to claim 2, characterized in that: The moving mechanism (2) includes: A flow-guiding component (21) is installed inside the auxiliary component (12) to guide hot air into the interior of the main body (1) when the circulation component (11) is working; Pushing component (22), which is installed on the bottom inner wall of the main body (1), is used to apply a pushing force to the drainage component (21) when the placement frame (101) moves.
4. The high-efficiency heat treatment system for disc springs according to claim 3, characterized in that: The air intake mechanism (3) includes: The diversion component (31) is installed on the top inner wall of the main body (1) to block the suction component of the circulation component (11) so as to disperse the suction force generated by the circulation component (11).
5. The high-efficiency heat treatment system for disc springs according to claim 4, characterized in that: The circulation component (11) includes an air inlet (111) opened on the top of the main body (1), and an air supply pipe (112) is fixedly connected to the inner wall of the air inlet (111), and a fan (113) is fixedly connected to the outer surface of the air supply pipe (112). The end of the air supply pipe (112) away from the air inlet (111) is fixedly connected to the side wall of the main body (1), and the bottom of the fan (113) is fixedly connected to the top of the main body (1).
6. The high-efficiency heat treatment system for disc springs according to claim 5, characterized in that: The auxiliary component (12) includes a conical cylinder (121) fixedly connected to the end of the gas supply pipe (112) away from the air inlet (111), and two sliding grooves (122) are formed on the outer surface of the conical cylinder (121). The side wall of the sliding groove (122) is provided with an auxiliary groove (123), and a sliding block (124) is slidably connected inside the auxiliary groove (123).
7. The high-efficiency heat treatment system for disc springs according to claim 6, characterized in that: The outer surface of the sliding block (124) is slidably connected to a connecting plate (211), and an annular plate (212) is fixedly connected to one end of the two connecting plates (211) that are far apart from each other. A tapered plate (213) is fixedly connected between the two connecting plates (211), and a spring (214) is fixedly connected to the side wall of the connecting plate (211). The inner wall of the conical cylinder (121) is fixedly connected with several inclined plates (215); The side wall of the connecting plate (211) is slidably connected to the inner wall of the sliding groove (122), the outer surface of the conical plate (213) is in contact with the inner wall of the conical cylinder (121), and the end of the spring (214) away from the connecting plate (211) is fixedly connected to the inner wall of the sliding groove (122).
8. The high-efficiency heat treatment system for disc springs according to claim 3, characterized in that: The pushing component (22) includes a connecting shaft (221) fixedly connected to the inner wall of the main body (1), and a swing plate (222) is slidably connected to the outer surface of the connecting shaft (221). The side wall of the swing plate (222) is fixedly connected to a spring two (223), and the bottom of the swing plate (222) is rotatably connected to a sliding block two (224). The top of the swing plate (222) is in contact with the side wall of the connecting plate (211), the end of the second spring (223) away from the swing plate (222) is fixedly connected to the inner wall of the main body (1), and the bottom of the second sliding block (224) is slidably connected to the bottom inner wall of the main body (1).
9. The high-efficiency heat treatment system for disc springs according to claim 4, characterized in that: The diversion component (31) includes several fixing blocks (311) fixedly connected to the inner wall of the top of the main body (1), and a rectangular plate (312) is fixedly connected to the bottom of the several fixing blocks (311). The rectangular plate (312) has several conical holes (313) inside.
10. A method of using a high-efficiency heat treatment system for disc springs, characterized in that: The method using the disc spring high-efficiency heat treatment system as described in claim 9 includes the following steps: S1: Conveying disc springs: First, the processed disc springs are piled up inside the placement rack (101), and then the placement rack (101) is pushed to move into the body (1). When the placement rack (101) moves to the designated position, the device body (1) is closed. S2: Heating cycle: Start the heating components inside the main body (1). When the components inside the main body (1) gradually heat the disc spring in the placement rack (101), the fan (113) will absorb the hot air through the air inlet (111) and discharge it into the interior of the main body (1) through the air pipe (112) to realize the hot air circulation in the heat treatment process. S3: Recycling: After the disc spring inside the main body (1) has been heat-treated, the operator closes the device and then starts the sliding assembly to move the placement rack (101) out of the main body (1), and then takes out the heat-treated disc spring.