An electric heating system and a horizontal gallium nitride reactor
Through the connection mechanism composed of reference pipes and rotating sleeves, convenient disassembly and assembly of the electric heating wire and the power supply end is achieved, the problem of inconvenient connection in the existing technology is solved, the inspection and maintenance efficiency and connection stability are improved, and mechanical damage and production risks are reduced.
Patent Information
- Application Number
- CN202510663725.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-22
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-05-22
AI Technical Summary
In the prior art, the connection method between the electric heating wire and the power supply end is inconvenient to disassemble, resulting in inconvenient inspection and maintenance, and difficult to ensure connection stability and power supply safety.
The connection mechanism consisting of a reference tube, a rotating sleeve and a positioning pipe is adopted to lock and unlock the power supply end by rotating the rotating sleeve, which facilitates the separation and reinstallation of the electric heating wire and the power supply end.
It improves the convenience of inspection and maintenance between the heating wire and the power supply end, ensures the stability and safety of the connection, reduces mechanical damage, and reduces the probability of unexpected production interruptions.
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Figure CN120186822B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of industrial electric heating, and in particular to an electric heating system and a horizontal gallium nitride reactor. Background Art
[0002] For electric heating devices, especially those with higher power, it is necessary to regularly inspect the power supply end of the heating wire to ensure that it is properly powered and that safe operation is met. In the prior art, the connection between the heating wire and the power supply end is not easy to disassemble, making it difficult to inspect the connection stability and power supply safety between the heating wire and the power supply end.
[0003] In view of this, this application is hereby filed. Summary of the Invention
[0004] The first purpose of the present invention is to provide an electric heating system, which can easily realize the disassembly and reassembly between the heating wire and the power supply end, greatly improving the convenience of inspection and maintenance, while realizing a stable connection between the heating wire and the power supply end, and reducing the mechanical damage to the power supply end during the connection process.
[0005] The second object of the present invention is to provide a horizontal gallium nitride reactor that can easily realize the disassembly and reassembly between the heating wire and the power supply end, greatly improving the convenience of inspection and maintenance, helping to ensure the stability and safety of the gallium nitride production process, and effectively reducing the probability of accidental production interruption due to failure of the electric heating module, thereby reducing unexpected losses in production.
[0006] The embodiment of the present invention is achieved as follows:
[0007] An electric heating system includes a heating chamber, a heating wire, a heating power supply module, a connecting mechanism, and a controller. The heating wire is disposed in the heating chamber and electrically connected to the heating power supply module via the connecting mechanism. The heating power supply module is electrically connected to the controller.
[0008] The connecting mechanism includes: a reference tube, a rotating sleeve and a positioning tube.
[0009] The side wall of the heating chamber is provided with a mounting through hole. A positioning tube is accommodated in the mounting through hole. The positioning tube is made of conductive material. The end of the heating wire fits inside the positioning tube and is electrically connected to the positioning tube.
[0010] The reference tube extends from the outside of the heating chamber to the middle of the mounting through hole, and is connected to the positioning tube. The inner side wall of the reference tube has a conductive layer, and the conductive layer is electrically connected to the positioning tube.
[0011] The reference tube has an installation inner cavity and an installation groove that are axially spaced along it. The installation inner cavity is located on the side of the installation groove away from the heating chamber. A first through hole is provided in the groove wall of the installation groove close to the installation inner cavity. The first through hole extends along the axial direction of the reference tube and communicates the installation groove and the installation inner cavity.
[0012] On the inner wall of the installation inner cavity close to the central axis of the reference tube, a fitting notch is provided. The fitting notch penetrates through to the lumen of the reference tube, and a slider is fitted in the fitting notch. Radially along the reference tube, the slider is slidably fitted in the fitting notch. On the side of the slider close to the central axis of the reference tube, there is a conductive block. The slider is provided with a second through hole arranged along the axial direction of the reference tube.
[0013] A moving part is accommodated in the installation groove. Axially along the reference tube, the moving part is slidably fitted in the installation groove. Circumferentially along the reference tube, the moving part is fixedly fitted in the installation groove. The moving part is connected with a pushing arm. The pushing arm is slidably fitted in the first through hole, and the end of the pushing arm is wedge-shaped.
[0014] The moving part is also connected with a control rope. The control rope passes through the second through hole and is fixedly connected to the inner wall of the installation inner cavity on the side away from the installation groove.
[0015] A rotating sleeve is sleeved on the end of the reference tube away from the heating chamber and is rotatably fitted on the reference tube. The rotating sleeve has an internal thread, and the moving part has an external thread. The rotating sleeve is in threaded fit with the moving part.
[0016] The end of the reference tube away from the heating chamber is for the power supply end of the heating and power supply module to be inserted.
[0017] The moving part has a first sliding stop point and a second sliding stop point. When the moving part is at the first sliding stop point, the moving part is at the end of the installation groove close to the installation inner cavity, and the pushing arm abuts against the slider to push the slider towards the power supply end, so that the slider clamps the power supply end, and the conductive block is electrically connected to the conductive layer. When the moving part is at the second sliding stop point, the moving part is at the end of the installation groove away from the installation inner cavity, the pushing arm is separated from the slider, and the control rope is tightened, so that the slider is pulled by the control rope towards the side away from the power supply end, so that the slider is separated from the power supply end.
[0018] Furthermore, the side of the slider away from the power supply end is arc-shaped.
[0019] Furthermore, circumferentially along the reference tube, the installation groove continuously extends into a ring shape, and the moving part is ring-shaped.
[0020] Furthermore, the reference tube is made of an insulating and heat-insulating material, and the conductive layer is made of a conductive and heat-insulating material.
[0021] Furthermore, the reference tube is filled with heat-insulating blocks, and the heat-insulating blocks are located at the end of the reference tube close to the positioning tube.
[0022] Further, the positioning tube is made of a material that is electrically and thermally conductive.
[0023] The side wall of the heating chamber includes a heat insulation layer and a protective layer, and the protective layer is located outside the heat insulation layer. The positioning tube extends to the protective layer.
[0024] The protective layer has a heat dissipation inner cavity, the heat dissipation inner cavity is cylindrical, and the heat dissipation inner cavity is coaxially arranged with the installation through hole.
[0025] A heat conduction sleeve is arranged in the heat dissipation inner cavity, the heat conduction sleeve is rotationally matched with the positioning tube, and the inner side wall of the heat conduction sleeve fits against the outer side wall of the positioning tube. The heat conduction sleeve is fixedly connected with a fan blade, and the fan blade is made of a heat conductive material.
[0026] The heat dissipation inner cavity is provided with an air inlet and an air outlet, the air inlet and the air outlet are arranged side by side and at intervals, and both the air inlet and the air outlet are arranged tangentially to the heat dissipation inner cavity. The air inlet is configured with a air supply component so that when the air supply component supplies air to the heat dissipation inner cavity from the air inlet, the heat conduction sleeve can rotate relative to the positioning tube.
[0027] Further, the moving part is provided with a third through hole arranged along the axial direction of the reference tube, a control rod is fitted in the third through hole, the control rod is slidably fitted in the third through hole with damping, and the control rope is connected to the control rod.
[0028] One end wall of the installation groove away from the installation inner cavity is provided with a fourth through hole and a fifth through hole, the fourth through hole and the fifth through hole are arranged in parallel and at intervals, and both of them penetrate through to the end wall of the reference tube.
[0029] One side of the moving part away from the installation inner cavity is fixedly connected with a push rod, and the push rod extends along the axial direction of the reference tube.
[0030] One end of the heat conduction sleeve close to the reference tube is coaxially and fixedly connected with a fitting ring, a limiting ring is arranged in the fitting ring, the limiting ring is coaxially and fixedly connected with the fitting ring, and the limiting ring is arranged at an interval from the heat conduction sleeve.
[0031] The positioning tube is also sleeved with a control ring, the control ring is fitted on the positioning tube, and the control rod extends to the end face of the reference tube through the fourth through hole. The end of the control rod has a telescopic joint, and in the natural state, the telescopic joint is received in the control rod, and the telescopic joint is fixedly connected with the control ring. Among them, the elastic force of the telescopic joint is greater than the sliding damping force of the control rod in the third through hole.
[0032] The limiting ring has internal threads.
[0033] The control ring is provided with a radial blind hole, a fitting block is slidably fitted in the radial blind hole, and a second elastic member is abutted between the fitting block and the bottom of the radial blind hole. The outer end of the fitting block is provided with an inclined groove for adapting to the internal threads of the limiting ring.
[0034] The mating block is provided with a mating through-hole which is arranged along the axial direction of the control ring. A wedge block is provided on the hole wall of the mating through-hole close to the positioning tube.
[0035] The control ring is also provided with an axial through-hole which is communicated with the radial blind hole to expose the mating through-hole.
[0036] Wherein, the distance between the limiting ring and the heat-conducting sleeve matches the axial length of the control ring.
[0037] When the moving part is at the first sliding stop point, the control ring is in contact with the end face of the reference tube, the control ring is in contact with the end face of the control rod, and the mating block is in contact with one end of the limiting ring close to the reference tube. During operation, the air supply component supplies air to the heat dissipation inner cavity from the air inlet, and the heat-conducting sleeve rotates relative to the positioning tube, thereby driving the control ring to the side away from the reference tube. When the mating block moves to the side of the limiting ring away from the reference tube, the control rope is tightened and the telescopic joint is pulled out.
[0038] During the process of the moving part moving towards the second sliding stop point, when the pushing arm is separated from the slider, the telescopic joint pulls the control rod towards the control ring, and the conductive block is separated from the power supply end.
[0039] When the moving part moves to the second sliding stop point, the push rod is inserted into the axial through-hole through the fifth through-hole and further inserted into the mating through-hole. The push rod pushes the mating block into the radial blind hole through the wedge block, so that the mating block is separated from the limiting ring, and the control ring is pulled towards the control rod by the telescopic joint.
[0040] Furthermore, a sealing ring is arranged in the rotating sleeve. The sealing ring is rotationally matched with the rotating sleeve and is adapted to the insulating layer of the power supply end.
[0041] A horizontal gallium nitride reactor, the electric heating module of the horizontal gallium nitride reactor includes the above-mentioned electric heating system.
[0042] The beneficial effects of the technical solution of the embodiment of the present invention include:
[0043] When the electric heating system provided by the embodiment of the present invention is in use, only by rotating the rotating sleeve, the moving part can be adjusted between the first sliding stop point and the second sliding stop point, so as to realize the locking and unlocking of the power supply end. In this way, the disassembly and assembly of the power supply end can be conveniently realized, and the maintenance efficiency is greatly improved.
[0044] Using multiple sliders to lock the power supply end not only improves the locking strength, but also can avoid the deformation of the power supply end and reduce the mechanical damage to the power supply end.
[0045] Generally speaking, the electric heating system provided by the embodiments of the present invention can conveniently realize the disassembly and reinstallation between the heating wire and the power supply end, greatly improving the convenience of inspection and maintenance. At the same time, it can realize the stable connection between the heating wire and the power supply end, and can reduce the mechanical damage to the power supply end during the connection process.
[0046] The horizontal gallium nitride reaction furnace provided by the embodiments of the present invention can conveniently realize the disassembly and reinstallation between the heating wire and the power supply end, greatly improving the convenience of inspection and maintenance, contributing to ensuring the stability and safety of the gallium nitride production process, effectively reducing the probability of accidental interruption of production due to the failure of the electric heating module, and reducing the accidental losses in production. Brief Description of the Drawings
[0047] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for use in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention, and thus should not be regarded as a limitation of the scope. For those of ordinary skill in the art, other related drawings can be obtained based on these drawings without creative efforts.
[0048] Figure 1 It is a schematic diagram of the overall structure of the electric heating system provided by the embodiments of the present invention;
[0049] Figure 2 It is a schematic diagram of the state at the reference tube (when the moving part is at the first sliding stop point);
[0050] Figure 3 It is a schematic diagram of the cooperation between the slider and the power supply end;
[0051] Figure 4 It is a schematic diagram of the structure of the heat dissipation cavity;
[0052] Figure 5 It is a schematic diagram of the structure of the connection between the reference tube and the positioning tube;
[0053] Figure 6 It is a schematic diagram of the external structure of the control ring;
[0054] Figure 7 It is a schematic diagram of the internal structure of the control ring;
[0055] Figure 8 It is a schematic diagram of the internal structure of the control ring from another perspective;
[0056] Figure 9 It is a schematic diagram of the state at the reference tube (when the mating block moves to the side of the limit ring away from the reference tube);
[0057] Figure 10 It is a schematic diagram of the state at the reference tube (when the moving part is separated from the slider);
[0058] Figure 11 Schematic diagram when the push rod triggers the mating block;
[0059] Figure 12 Schematic diagram of the state at the reference tube (when the moving part is at the second sliding stop point).
[0060] Description of reference numerals:
[0061] Mounting through hole 110; heating wire 120; heat insulation layer 130; protective layer 140; heat dissipation cavity 141; air inlet 142; air outlet 143; heat conducting sleeve 150; mating ring 151; limiting ring 152; fan blade 153; reference tube 200; conductive layer 210; mounting cavity 220; slider 222; conductive block 223; mounting groove 230; moving part 240; pushing arm 241; control rope 250; heat insulation block 260; rotating sleeve 300; sealing ring 310; positioning tube 400; first through hole 510; second through hole 520; third through hole 530; fourth through hole 540; fifth through hole 550; control rod 610; telescopic joint 611; push rod 620; control ring 630; radial blind hole 631; mating block 632; second elastic member 633; mating through hole 634; wedge block 635; axial through hole 636; power supply end 700; insulating layer 710. Detailed implementation manners
[0062] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some but not all of the embodiments of the present invention. Usually, the components of the embodiments of the present invention described and illustrated in the accompanying drawings here can be arranged and designed in various different configurations.
[0063] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed present invention, but merely represents selected embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.
[0064] It should be noted that: similar reference numerals and letters denote similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.
[0065] The terms "first", "second", "third", "fourth", "fifth", etc. are only used for distinguishing descriptions and cannot be construed as indicating or implying relative importance.
[0066] In addition, the term "parallel" does not mean that the components are required to be absolutely parallel, but can be slightly inclined.
[0067] In the description of the present invention, it should also be noted that unless otherwise clearly specified and defined, the terms "arrangement", "installation", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected, or indirectly connected through an intermediate medium, and can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0068] To overcome the deficiencies in the prior art, please refer to Figures 1 - 3 , this embodiment provides an electric heating system, which includes: a heating chamber, a heating wire 120, a heating power supply module (not shown in the figure), a connection mechanism, and a controller (not shown in the figure).
[0069] The heating wire 120 is arranged in the heating chamber for heating the heating chamber. It can be understood that in the actual use process, whether to encapsulate the heating wire 120 can be flexibly selected according to actual needs.
[0070] Regardless of whether the heating wire 120 is encapsulated, the end of the heating wire 120 is electrically connected to the heating power supply module through the connection mechanism. The heating power supply module is electrically connected to the controller, so that the controller can adjust the working temperature of the heating wire 120 by regulating the power supply power of the heating power supply module.
[0071] The connection mechanism includes: a reference tube 200, a rotating sleeve 300, and a positioning tube 400.
[0072] An installation through-hole 110 is formed in the side wall of the heating chamber, and the installation through-hole 110 penetrates the side wall of the heating chamber. The positioning tube 400 is received in the installation through-hole 110, and the positioning tube 400 extends from the inner end of the installation through-hole 110 to its outer end. The outer tube wall of the positioning tube 400 is in contact with and fixedly connected to the hole wall of the installation through-hole 110. There is a gap between the outer end wall of the positioning tube 400 and the outer end of the installation through-hole 110.
[0073] The positioning tube 400 is made of a conductive material, and the end of the heating wire 120 is fitted inside the positioning tube 400 and electrically connected to the positioning tube 400.
[0074] The reference tube 200 extends from the outside of the heating chamber into the installation through-hole 110. The end wall of the reference tube 200 is in contact with and fixedly connected to the end wall of the positioning tube 400, and the reference tube 200 is fixedly connected to the side wall of the heating chamber.
[0075] The inner wall of the reference tube 200 has a conductive layer 210. The conductive layer 210 extends from one end of the reference tube 200 close to the positioning tube 400 towards the other end, and the conductive layer 210 is electrically connected to the positioning tube 400.
[0076] The reference tube 200 has an installation inner cavity 220 and an installation groove 230 that are arranged at intervals along its axial direction. The installation inner cavity 220 is located on the side of the installation groove 230 away from the heating chamber. Both the installation inner cavity 220 and the installation groove 230 extend along the axial direction of the reference tube 200.
[0077] On the groove wall of the installation groove 230 close to the installation inner cavity 220, a first through hole 510 is provided. The first through hole 510 extends along the axial direction of the reference tube 200 and communicates the installation groove 230 and the installation inner cavity 220.
[0078] On the inner wall of the installation inner cavity 220 close to the central axis of the reference tube 200, a fitting notch is provided. The fitting notch penetrates through to the lumen of the reference tube 2, and the fitting notch is arranged along the radial direction of the reference tube 200. A slider 222 is fitted in the fitting notch.
[0079] Along the radial direction of the reference tube 200, the slider 222 is slidably fitted in the fitting notch. On the side of the slider 222 close to the central axis of the reference tube 200, there is a conductive block 223. The slider 222 is provided with a second through hole 520 arranged along the axial direction of the reference tube 200.
[0080] A moving member 240 is disposed in the installation groove 230. Along the axial direction of the reference tube 200, the moving member 240 is slidably fitted in the installation groove 230. Along the circumferential direction of the reference tube 200, the moving member 240 is fixedly fitted in the installation groove 230.
[0081] The moving member 240 is connected with a pushing arm 241. The pushing arm 241 is slidably fitted in the first through hole 510, and the end of the pushing arm 241 is wedge-shaped.
[0082] The moving member 240 is further connected with a control rope 250. The control rope 250 passes through the second through hole 520 and is fixedly connected to the inner wall of the installation inner cavity 220 on the side away from the installation groove 230. The control rope 250 is made of a low-elastic material.
[0083] A rotating sleeve 300 is sleeved on one end of the reference tube 200 away from the heating chamber and is rotatably fitted on the reference tube 200. Along the axial direction of the reference tube 200, the rotating sleeve 300 is fixedly fitted on the reference tube 200.
[0084] The rotating sleeve 300 has an internal thread. The internal thread of the rotating sleeve 300 is located at the installation groove 230. The moving member 240 has an external thread. The rotating sleeve 300 is in threaded engagement with the moving member 240.
[0085] The conductive layer 210 of the reference tube 200 extends to the mating notch.
[0086] One end of the reference tube 200 away from the heating chamber is for inserting the power supply end 700 of the heating power supply module.
[0087] The moving part 240 has a first sliding stop point and a second sliding stop point.
[0088] When the moving part 240 is at the first sliding stop point, the moving part 240 is located at one end of the installation groove 230 close to the installation inner cavity 220. The pushing arm 241 abuts against the slider 222. The pushing arm 241 uses the wedge-shaped structure at its end to push the slider 222 towards the power supply end 700, so that the slider 222 clamps the power supply end 700. In this state, the conductive block 223 is attached to and electrically connected to the conductive layer 210.
[0089] When the moving part 240 is at the second sliding stop point, the moving part 240 is located at one end of the installation groove 230 away from the installation inner cavity 220. The pushing arm 241 is separated from the slider 222, and the control rope 250 is straightened, so that the slider 222 is pulled by the control rope 250 towards the side away from the power supply end 700, so that the slider 222 is separated from the power supply end 700. In this state, there is a gap between the slider 222 and the inner wall of the installation inner cavity 220 on the side away from the central axis of the reference tube 200.
[0090] In this embodiment, along the circumferential direction of the reference tube 200, the installation groove 230 continuously extends into a ring shape, and the moving part 240 is also in a ring shape. The installation inner cavity 220 also continuously extends into a ring shape along the circumferential direction of the reference tube 200. A plurality of mating notches are provided in the installation inner cavity 220. The plurality of mating notches are evenly spaced along the circumferential direction of the reference tube 200, and each mating notch is fitted with a slider 222.
[0091] Through this design, by simply rotating the rotating sleeve 300, the moving part 240 can be adjusted between the first sliding stop point and the second sliding stop point, so as to realize the locking and unlocking of the power supply end 700. In this way, the disassembly and assembly of the power supply end 700 can be conveniently realized, and the maintenance efficiency is greatly improved.
[0092] Using a plurality of sliders 222 to lock the power supply end 700 not only improves the locking strength, but also can prevent the power supply end 700 from deforming and reduce the mechanical damage to the power supply end 700.
[0093] Generally speaking, the electric heating system provided in this embodiment can conveniently realize the disassembly and reassembly between the heating wire 120 and the power supply end 700, greatly improving the convenience of inspection and maintenance. At the same time, it can realize the stable connection between the heating wire 120 and the power supply end 700, and can reduce the mechanical damage to the power supply end 700 during the connection process.
[0094] In this embodiment, the side of the slider 222 away from the power supply end 700 is arc-shaped. The arc-shaped structure design on the side of the slider 222 away from the power supply end 700 cooperates with the wedge-shaped structure at the end of the push arm 241, enabling the push arm 241 to drive the push arm 241 more smoothly.
[0095] The reference tube 200 is made of an insulating and heat-insulating material, and the conductive layer 210 is made of a conductive and heat-insulating material.
[0096] The reference tube 200 is filled with a heat-insulating block 260. The heat-insulating block 260 is located at one end of the reference tube 200 close to the positioning tube 400, and the heat-insulating block 260 is made of an insulating material.
[0097] Furthermore, the positioning tube 400 is made of a conductive and heat-conductive material.
[0098] The side wall of the heating chamber includes a heat-insulating layer 130 and a protective layer 140. The protective layer 140 is located outside the heat-insulating layer 130. The positioning tube 400 extends from the heat-insulating layer 130 to the protective layer 140.
[0099] Please refer to Figure 4 , the protective layer 140 has a heat dissipation inner cavity 141. The heat dissipation inner cavity 141 is cylindrical, and the heat dissipation inner cavity 141 is coaxially arranged with the installation through hole 110, that is: both the positioning tube 400 and the reference tube 200 are coaxially arranged with the heat dissipation inner cavity 141.
[0100] A heat conduction sleeve 150 is arranged in the heat dissipation inner cavity 141. The heat conduction sleeve 150 is rotationally fitted to the positioning tube 400, and the inner side wall of the heat conduction sleeve 150 is attached to the outer side wall of the positioning tube 400. Optionally, a heat conduction lubricant is filled between the heat conduction sleeve 150 and the positioning tube 400, including but not limited to: heat conduction oil, grease.
[0101] The heat conduction sleeve 150 is fixedly connected with a fan blade 153, and the fan blade 153 is made of a heat conductive material.
[0102] The heat dissipation inner cavity 141 is provided with an air inlet 142 and an air outlet 143. The air inlet 142 and the air outlet 143 are arranged side by side and at intervals, and both the air inlet 142 and the air outlet 143 are arranged tangentially to the heat dissipation inner cavity 141. The air inlet 142 is configured with a air supply component (not shown in the figure), so that when the air supply component supplies air to the heat dissipation inner cavity 141 from the air inlet 142, the air flow can drive the heat conduction sleeve 150 to rotate relative to the positioning tube 400 through the fan blade 153.
[0103] Through this design, the temperature at the positioning tube 400 can be effectively controlled, thereby avoiding the connection strength between the heating wire 120 and the positioning tube 400 being affected due to excessive temperature.
[0104] Furthermore, please refer to Figures 1 - 8, the moving member 240 is provided with a third through hole 530 axially arranged along the reference tube 200. A control rod 610 is fitted in the third through hole 530. The control rod 610 is slidably fitted in the third through hole 530 with damping. The control rope 250 is connected to the control rod 610.
[0105] One end wall of the installation groove 230 away from the installation inner cavity 220 is provided with a fourth through hole 540 and a fifth through hole 550. The fourth through hole 540 and the fifth through hole 550 are arranged in parallel at intervals, and both penetrate to the end face of the reference tube 200.
[0106] One side of the moving member 240 away from the installation inner cavity 220 is fixedly connected with a push rod 620, and the push rod 620 extends along the axis of the reference tube 200.
[0107] One end of the heat conducting sleeve 150 close to the reference tube 200 is coaxially and fixedly connected with a fitting ring 151. The inner diameter of the fitting ring 151 is larger than the inner diameter of the heat conducting sleeve 150. A limiting ring 152 is arranged in the fitting ring 151. The limiting ring 152 is coaxially and fixedly connected with the fitting ring 151. The limiting ring 152 is arranged at an interval from the heat conducting sleeve 150. The inner diameter of the limiting ring 152 is larger than the inner diameter of the heat conducting sleeve 150.
[0108] The positioning tube 400 is also sleeved with a control ring 630, and the control ring 630 is fitted to the positioning tube 400. Along the axis of the positioning tube 400, the control ring 630 is slidably fitted to the positioning tube 400. Along the circumferential direction of the positioning tube 400, the control ring 630 is fixedly fitted to the positioning tube 400.
[0109] The end of the control rod 610 is provided with a telescopic joint 611. The telescopic joint 611 is fitted with a first elastic member (not shown in the figure). In the natural state, the telescopic joint 611 is received in the control rod 610 under the tension of the first elastic member. The telescopic joint 611 is fixedly connected to the control ring 630. That is to say, in the natural state, the control ring 630 abuts against the end of the control rod 610.
[0110] Wherein, the elastic force provided by the first elastic member to the telescopic joint 611 is greater than the sliding damping force received by the control rod 610 in the third through hole 530.
[0111] The limiting ring 152 has internal threads.
[0112] The control ring 630 is provided with a radial blind hole 631. A fitting block 632 is slidably fitted in the radial blind hole 631. A second elastic member 633 abuts between the fitting block 632 and the bottom of the radial blind hole 631. The outer end of the fitting block 632 is provided with an inclined groove for adapting to the internal threads of the limiting ring 152. The inclined groove can be regarded as a part of the external threads adapted to the internal threads of the limiting ring 152. The fitting block 632 is arranged on both opposite sides of the control ring 630.
[0113] The mating block 632 is provided with a mating through hole 634 which is arranged along the axial direction of the control ring 630. A wedge block 635 is provided on the hole wall of the mating through hole 634 on the side close to the positioning tube 400.
[0114] The control ring 630 is further provided with an axial through hole 636 which communicates with the radial blind hole 631 so as to expose the mating through hole 634.
[0115] Wherein, the limiting ring 152 extends from the end of the mating ring 151 away from the heat conducting sleeve 150 towards the end close to the heat conducting sleeve 150. There is a gap between the limiting ring 152 and the heat conducting sleeve 150, and the gap between the limiting ring 152 and the heat conducting sleeve 150 matches the axial length of the control ring 630.
[0116] When the moving part 240 is at the first sliding stop point, the control ring 630 is in contact with the end face of the reference tube 200, the control ring 630 is in contact with the end face of the control rod 610, and the mating block 632 is in contact with the end of the limiting ring 152 close to the reference tube 200, as Figure 2 shown. During operation, the air supply assembly supplies air to the heat dissipation inner cavity 141 from the air inlet 142. The heat conducting sleeve 150 rotates relative to the positioning tube 400. After the heat conducting sleeve 150 rotates, the control ring 630 is driven towards the side away from the reference tube 200 through the thread until the mating block 632 moves to the side of the limiting ring 152 away from the reference tube 200. In this state, even if the heat conducting sleeve 150 continues to rotate, the control ring 630 will not move further. At this time, the control rope 250 is tightened. Since the slider 222 is still in contact with the power supply end 700, the control rope 250 cannot be fully straightened, and the telescopic joint 611 is partially pulled out from the control rod 610, as Figure 9 shown.
[0117] When the rotating sleeve 300 is rotated to unlock the power supply end 700, during the process of the moving part 240 moving towards the second sliding stop point, when the pushing arm 241 just separates from the slider 222, the telescopic joint 611 pulls the control rod 610 towards the control ring 630, thereby straightening the control rope 250, and the slider 222 is driven towards the side away from the power supply end 700, and the conductive block 223 separates from the power supply end 700, as Figure 10 shown. At this time, a part of the telescopic joint 611 is still outside the control rod 610.
[0118] When the moving part 240 moves to the second sliding stop point, the push rod 620 is inserted into the axial through hole 636 through the fifth through hole 550 and further inserted into the mating through hole 634. The push rod 620 pushes the mating block 632 towards the radial blind hole 631 through the wedge block 635, so as to separate the mating block 632 from the limiting ring 152, as Figure 11 and Figure 12As shown, at this time, the limiting ring 152 can no longer limit the mating block 632, and the control ring 630 is pulled towards the control rod 610 by the telescopic joint 611 so that the control ring 630 is reattached to the control rod 610.
[0119] When the rotating sleeve 300 is rotated to re-lock the power supply end 700, during the process of the moving member 240 moving towards the first sliding stop point, the moving member 240 drives the control rod 610 to move together, so that the control rope 250 on the side of the moving member 240 close to the slider 222 has a surplus length until the control ring 630 is reattached to the reference tube 200. After the control ring 630 is attached to the reference tube 200, even if the moving member 240 continues to move, the control rod 610 can smoothly slide relative to the moving member 240 until the pushing arm 241 abuts the slider 222 against the power supply end 700 again (i.e., until it moves back to the first sliding stop point).
[0120] Through the above design, it can be ensured that no excessive torque is required when locking the slider 222, which is convenient for quick tightening. On the other hand, after locking, it can be ensured that the control rope 250 smoothly enters the tensioned state, so that when unlocking, it can be ensured that the control rope 250 can smoothly drive the slider 222 to separate from the power supply end 700.
[0121] Optionally, a sealing ring 310 is provided inside the rotating sleeve 300. The sealing ring 310 is rotationally fitted to the rotating sleeve 300 and is adapted to the insulating layer 710 of the power supply end 700.
[0122] This embodiment also provides a horizontal gallium nitride reactor, and the electric heating module of the horizontal gallium nitride reactor adopts the above-mentioned electric heating system.
[0123] In summary, the electric heating system provided by the embodiment of the present invention can conveniently realize the disassembly and reinstallation between the heating wire 120 and the power supply end 700, greatly improving the convenience of inspection and maintenance. At the same time, it can realize the stable connection between the heating wire 120 and the power supply end 700 and can reduce the mechanical damage to the power supply end 700 during the connection process.
[0124] The horizontal gallium nitride reactor provided by the embodiment of the present invention can conveniently realize the disassembly and reinstallation between the heating wire 120 and the power supply end 700, greatly improving the convenience of inspection and maintenance, contributing to ensuring the stability and safety of the gallium nitride production process, effectively reducing the probability of accidental interruption of production due to electric heating module failures, and reducing accidental losses in production.
[0125] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, various modifications and variations can be made to the present invention. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. An electric heating system, characterized in that, Comprising: A heating chamber, heating wires, a heating power supply module, a connection mechanism, and a controller; the heating wires are arranged in the heating chamber, and the heating wires are electrically connected to the heating power supply module through the connection mechanism; The heating power supply module is electrically connected to the controller; The connection mechanism includes: a reference tube, a rotating sleeve, and a positioning tube; An installation through-hole is formed in the side wall of the heating chamber; the positioning tube is accommodated in the installation through-hole, the positioning tube is made of a conductive material, and the end of the heating wire is fitted inside the positioning tube and electrically connected to the positioning tube; The reference tube extends from the outside of the heating chamber into the installation through-hole, and the reference tube is connected to the positioning tube; a conductive layer is provided on the inner side wall of the reference tube, and the conductive layer is electrically connected to the positioning tube; The reference tube has an installation inner cavity and an installation groove arranged at intervals along its axial direction, the installation inner cavity is located on the side of the installation groove away from the heating chamber, a first through-hole is formed in the side wall of the installation groove close to the installation inner cavity, and the first through-hole extends along the axial direction of the reference tube and communicates the installation groove and the installation inner cavity; A fitting notch is formed in the inner wall of the installation inner cavity close to the central axis of the reference tube, the fitting notch penetrates through the tube cavity of the reference tube, and a slider is fitted in the fitting notch; in the radial direction of the reference tube, the slider is slidably fitted in the fitting notch; a conductive block is provided on the side of the slider close to the central axis of the reference tube; a second through-hole is formed in the slider along the axial direction of the reference tube; A moving member is accommodated in the installation groove; in the axial direction of the reference tube, the moving member is slidably fitted in the installation groove; in the circumferential direction of the reference tube, the moving member is fixedly fitted in the installation groove; the moving member is connected with a pushing arm, the pushing arm is slidably fitted in the first through-hole, and the end of the pushing arm is wedge-shaped; The moving member is further connected with a control rope, and the control rope passes through the second through-hole and is fixedly connected to the inner wall of the installation inner cavity away from the installation groove; The rotating sleeve is sleeved on one end of the reference tube away from the heating chamber and is rotatably fitted on the reference tube, the rotating sleeve has an internal thread, the moving member has an external thread, and the rotating sleeve is in threaded fit with the moving member; One end of the reference tube away from the heating chamber is for inserting the power supply end of the heating power supply module; The moving member has a first sliding stop point and a second sliding stop point; when the moving member is at the first sliding stop point, the moving member is at one end of the installation groove close to the installation inner cavity, the pushing arm abuts against the slider to push the slider towards the power supply end, so that the slider clamps the power supply end, and the conductive block is electrically connected to the conductive layer; when the moving member is at the second sliding stop point, the moving member is at one end of the installation groove away from the installation inner cavity, the pushing arm is separated from the slider, and the control rope is tightened, so that the slider is pulled by the control rope towards the side away from the power supply end, so that the slider is separated from the power supply end.
2. The electric heating system according to claim 1, characterized in that, One side of the slider away from the power supply end is arc-shaped.
3. The electric heating system according to claim 1, characterized in that, Along the circumferential direction of the reference tube, the installation groove continuously extends into a ring shape, and the moving part is ring-shaped.
4. The electric heating system according to claim 1, characterized in that The reference tube is made of an insulating and heat-insulating material, and the conductive layer is made of a conductive and heat-insulating material.
5. The electric heating system according to claim 1, characterized in that, The reference tube is filled with heat-insulating blocks, and the heat-insulating blocks are located at one end of the reference tube close to the positioning tube.
6. The electric heating system according to claim 1, wherein The positioning tube is made of a conductive and heat-conductive material; The side wall of the heating chamber includes a heat-insulating layer and a protective layer, and the protective layer is located outside the heat-insulating layer; the positioning tube extends to the protective layer; The protective layer has a heat-dissipating inner cavity, the heat-dissipating inner cavity is cylindrical, and the heat-dissipating inner cavity is coaxially arranged with the installation through hole; A heat-conductive sleeve is arranged in the heat-dissipating inner cavity, the heat-conductive sleeve is rotationally fitted to the positioning tube, and the inner side wall of the heat-conductive sleeve is attached to the outer side wall of the positioning tube; a fan blade is fixedly connected to the heat-conductive sleeve, and the fan blade is made of a heat-conductive material; The heat-dissipating inner cavity is provided with an air inlet and an air outlet, the air inlet and the air outlet are arranged side by side and at intervals, and both the air inlet and the air outlet are arranged tangentially along the heat-dissipating inner cavity; the air inlet is configured with a air supply component so that when the air supply component supplies air to the heat-dissipating inner cavity from the air inlet, the heat-conductive sleeve can rotate relative to the positioning tube.
7. The electric heating system according to claim 6, characterized in that The moving part is provided with a third through hole arranged along the axial direction of the reference tube, a control rod is fitted in the third through hole, the control rod is slidably fitted in the third through hole with damping, and the control rope is connected to the control rod; One end wall of the installation groove away from the installation inner cavity is provided with a fourth through hole and a fifth through hole, the fourth through hole and the fifth through hole are arranged in parallel and at intervals, and both penetrate to the end wall of the reference tube; One side of the moving part away from the installation inner cavity is fixedly connected with a push rod, and the push rod extends along the axial direction of the reference tube; One end of the heat-conductive sleeve close to the reference tube is coaxially fixedly connected with a fitting ring, a limiting ring is arranged in the fitting ring, the limiting ring is coaxially fixedly connected with the fitting ring, and the limiting ring is arranged at an interval from the heat-conductive sleeve; The positioning tube is also sleeved with a control ring, the control ring is fitted to the positioning tube, and the control rod extends to the end face of the reference tube through the fourth through hole; the end of the control rod has a telescopic joint, and in the natural state, the telescopic joint is received in the control rod, and the telescopic joint is fixedly connected with the control ring; wherein, the elastic force of the telescopic joint is greater than the sliding damping force of the control rod in the third through hole; The limiting ring has an internal thread; The control ring is provided with a radial blind hole, a fitting block is slidably fitted in the radial blind hole, and a second elastic member is abutted between the fitting block and the bottom of the radial blind hole; an inclined groove for adapting to the internal thread of the limiting ring is arranged at the outer end of the fitting block; The fitting block is provided with a fitting through hole, the fitting through hole is arranged along the axial direction of the control ring, and a wedge-shaped block is arranged on the hole wall of the fitting through hole close to the positioning tube; The control ring is also provided with an axial through hole, and the axial through hole is communicated with the radial blind hole to expose the mating through hole; Wherein, the distance between the limiting ring and the heat conducting sleeve matches the axial length of the control ring; When the moving part is at the first sliding stop point, the control ring is in contact with the end face of the reference tube, the control ring is in contact with the end face of the control rod, and the mating block is in contact with one end of the limiting ring close to the reference tube; During operation, the air supply component supplies air to the heat dissipation inner cavity from the air inlet, and the heat conducting sleeve rotates relative to the positioning tube, thereby driving the control ring to the side away from the reference tube; When the mating block moves to the side of the limiting ring away from the reference tube, the control rope is tightened, and the telescopic joint is pulled out; During the process of the moving part moving towards the second sliding stop point, when the pushing arm is separated from the slider, the telescopic joint pulls the control rod towards the control ring, and the conductive block is separated from the power supply end; When the moving part moves to the second sliding stop point, the push rod is inserted into the axial through hole through the fifth through hole and further inserted into the mating through hole, and the push rod pushes the mating block into the radial blind hole through the wedge block, so that the mating block is separated from the limiting ring, and the control ring is pulled towards the control rod by the telescopic joint.
8. The electric heating system according to claim 1, characterized in that, A sealing ring is arranged in the rotating sleeve, the sealing ring is rotationally matched with the rotating sleeve, and the sealing ring is adapted to the insulating layer of the power supply end.
9. A horizontal gallium nitride reactor, characterized in that, The electric heating module of the horizontal gallium nitride reactor includes the electric heating system according to any one of claims 1 to 8.
Citation Information
Patent Citations
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