Explosion-proof reactor

By introducing explosion-proof components and heat dissipation components into the reactor, the problem of heat accumulation and explosion risks of traditional reactors under high loads is solved, and the safe and efficient operation of the equipment is achieved.

CN120108889AActive Publication Date: 2025-06-06HANGZHOU JINGCHENG ELECTRICAL EQUIP
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Patent Information

Application Number
CN202510240362.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-03
Publication Date
2025-06-06
Estimated Expiration
2045-03-03

AI Technical Summary

Technical Problem

Traditional reactors are prone to heat accumulation under high loads or sudden current changes, resulting in deterioration of insulation materials, leakage and even explosions, and passive heat dissipation cannot effectively reduce the internal temperature.

Method used

An explosion-proof reactor is designed, using a combination of explosion-proof components and heat dissipation components. Explosion-proof components include explosion-proof boxes and threaded rods to prevent heat accumulation and explosion risks; heat dissipation components include centrifugal air pumps and temperature sensors for active heat dissipation and real-time temperature monitoring.

Benefits of technology

The explosion-proof components effectively prevent equipment from explosion-exploding and avoid danger to outsiders; the internal temperature is actively reduced through the heat dissipation components, extend the service life of the equipment and improve operating efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

According to the technical scheme, the explosion-proof electric reactor is characterized in that the explosion-proof electric reactor comprises a base, a plurality of iron cores are fixedly installed on the top face of the base, the iron cores are sleeved with coils, and two connectors are fixedly installed on the top faces of the iron cores; when the explosion-proof box is used, the connecting holes and the iron core are arranged together in a sleeved mode, the top plate is installed on the top faces of the coils, at the moment, the explosion-proof box can surround the multiple coils, at the moment, the threaded rods can be in threaded connection with the threaded holes by rotating the threaded rods, and through supporting of the first springs, the impact resistance of the installed explosion-proof box is improved; the purposes of heat extraction and heat dissipation are achieved through the action of a double-end pipe and a telescopic pipe, meanwhile, rotation of a centrifugal air pump impeller can drive a worm to rotate through a speed reducer, so that a turbine is driven to rotate, at the moment, through cooperation of a lead screw base and a reciprocating lead screw, the lead screw base is driven to move up and down, and through cooperation of the telescopic pipe, heat dissipation is achieved. Therefore, the heat in the explosion-proof box can be fully extracted.
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Description

Technical Field

[0001] The invention relates to the technical field of reactors, and in particular to an explosion-proof reactor. Background Art

[0002] A reactor is an electrical device used to generate inductive reactance in a circuit to control current or voltage. Its main function is to limit current fluctuations by increasing inductance, thereby protecting power systems and electrical equipment. The basic working principle of a reactor is based on Faraday's law of electromagnetic induction. An inductive impedance (i.e., reactance) is generated in the circuit through an inductor coil. This inductive reactance can suppress overcurrent or regulate reactive power. In power systems, the main uses of reactors include current limiting, voltage regulation, reactive power compensation, and filtering. Current limiting reactors can limit the size of fault currents, prevent equipment damage or larger-scale faults in power systems, and are usually installed between incoming lines or busbars in substations; voltage regulating reactors are used to stabilize the voltage of the power grid and prevent voltage fluctuations; reactive power compensation reactors are used to compensate for reactive power and maintain voltage stability; and filter reactors are used to filter out harmonics of specific frequencies to prevent harmonics from affecting the system.

[0003] However, traditional reactors mostly use iron core and winding structures, which are prone to heat accumulation under high load or current mutation conditions, especially in sudden situations such as short circuit faults, which may cause insulation material degradation, leakage, and even the risk of explosion. At the same time, traditional reactors mostly use passive heat dissipation, relying on natural air cooling or ambient cooling, and cannot actively dissipate heat. When running under high load, it is easy to cause the internal temperature to rise, thereby affecting its service life and operating efficiency. To solve the above problems, we propose an explosion-proof reactor. Summary of the invention

[0004] In view of the deficiencies of the prior art, the present invention provides an explosion-proof reactor to solve the problems raised in the background technology.

[0005] The above technical objectives of the present invention are achieved through the following technical solutions: An explosion-proof reactor comprises: a base, a plurality of iron cores are fixedly mounted on the top surface of the base, a coil is sleeved outside the iron core, and two joints are fixedly mounted on the top surface of the iron core; an explosion-proof component, which is arranged on the top surface of the base for explosion-proof; and a heat dissipation component, which is arranged on the bottom surface of the base for heat dissipation.

[0006] By adopting the above technical solution, explosion-proof components are set up to prevent heat accumulation and explosion risk during operation of the equipment. At the same time, heat dissipation components are used to actively dissipate heat to reduce the problem of internal temperature increase that is easily caused during high-load operation, thereby affecting its service life and operating efficiency.

[0007] Preferably, the explosion-proof component includes: a top plate, the top plate is arranged on the top surface of the base, a plurality of connecting holes are opened on the top surface of the top plate, the connecting holes are sleeved together with the iron core, an explosion-proof box is fixedly installed on the bottom surface of the top plate, a top groove is opened on the top surface of the top plate, and the explosion-proof box is sleeved together with the top groove.

[0008] By adopting the above technical solution and setting up an explosion-proof box, when in use, the connection hole and the iron core can be set together, and the top plate can be installed on the top surface of the coil. At this time, the explosion-proof box will surround several coils to achieve the purpose of protection and prevent the equipment from exploding and injuring outside workers.

[0009] Preferably, the explosion-proof component further comprises: a plurality of top holes, wherein the plurality of top holes are all opened on the top surface of the top plate, a threaded rod is sleeved inside the top hole, a plurality of threaded holes are opened on the top surface of the base, and the threaded rod is threadedly connected to the adjacent threaded holes.

[0010] By adopting the above technical solution and setting the threaded hole, when the explosion-proof box and the top groove are sleeved together during use, the threaded rod can be rotated to be threadedly connected with the threaded hole, thereby achieving the purpose of installing the top plate and the explosion-proof box.

[0011] Preferably, the explosion-proof component also includes: a support frame, which is arranged inside the top groove, and a plurality of first springs are fixedly installed inside the support frame, and the first springs are fixedly connected to the top groove, and two air inlet holes are opened on the top surface of the top plate, and a first dustproof net is fixedly installed inside the air inlet holes.

[0012] By adopting the above technical solution and setting the first spring, when the explosion-proof box is sleeved together with the top groove, it will fit together with the support frame, and through the support of the first spring, the impact resistance of the explosion-proof box after installation can be increased. At the same time, the air inlet hole can be used to initially dissipate the heat in the explosion-proof box.

[0013] Preferably, the heat dissipation assembly comprises: a base frame, the base frame is fixedly mounted on the bottom surface of the base, the top surface of the base is provided with two heat dissipation holes, a bearing seat is fixedly mounted inside the heat dissipation hole, a turbine is fixedly mounted inside the bearing seat, a reciprocating screw is fixedly mounted on the top of the turbine, a screw seat is connected to the outside of the reciprocating screw, a limit rod is fixedly mounted on the top surface of the bearing seat, the limit rod is sleeved with the inner circular wall surface of the screw seat, a centrifugal air pump is fixedly mounted inside the base frame, a double-headed pipe is fixedly mounted on the suction end of the centrifugal air pump, the double-headed pipe is fixedly mounted on the inner circular wall surface of the adjacent bearing seat, a telescopic pipe is fixedly mounted on one end of the double-headed pipe, the telescopic pipe is fixedly mounted on the inside of the screw seat, a rotating impeller of the centrifugal air pump is fixedly mounted with a rotating shaft, a reducer is arranged inside the base frame, the right connecting end of the reducer is fixedly connected to the rotating shaft, and the left connecting end of the reducer is fixedly mounted with a worm, and the worm is meshed with the two turbines.

[0014] By adopting the above technical solution and setting up a centrifugal air pump, the centrifugal air pump can be turned on during use to extract heat through the double-headed tube and the telescopic tube to achieve the purpose of heat dissipation. At the same time, the rotation of the centrifugal air pump impeller will drive the worm to rotate through the reducer, thereby driving the turbine to rotate. At this time, the screw seat and the reciprocating screw can be used to drive the screw seat to move up and down, and the cooperation of the telescopic tube can achieve the effect of fully extracting the heat in the explosion-proof box.

[0015] Preferably, the heat dissipation assembly also includes: a side hole, the side hole is opened on one side of the explosion-proof box, a temperature sensor is fixedly installed inside the side hole, a mounting groove is opened on one side of the explosion-proof box, a PLC controller is fixedly installed inside the mounting groove, and the PLC controller is electrically connected to the temperature sensor and the centrifugal air pump.

[0016] By adopting the above technical solution and setting a temperature sensor, the temperature inside the explosion-proof box can be monitored in real time through the temperature sensor during use, so that the centrifugal air pump switch can be actively controlled through the PLC controller to achieve the purpose of autonomous heat dissipation.

[0017] Preferably, an epoxy laminated glass cloth board is wound around the outer wall of the iron core, and mounting plates are fixedly mounted on the left and right sides of the base frame respectively, and a plurality of reserved holes are opened on the top surface of the mounting plates.

[0018] By adopting the above technical solution, a mounting plate is provided to cooperate with the reserved holes to connect external bolts so as to install the equipment. At the same time, an epoxy laminated glass cloth plate can be used as a spacer to ensure that the air gap of the reactor does not change during operation, thereby increasing stability.

[0019] Preferably, a second spring is fixedly mounted on the bottom end of the threaded rod.

[0020] By adopting the above technical solution and setting a second spring, when in use, as the threaded rod is advanced, the second spring will be pressed against and contracted, applying thrust to the threaded rod to ensure the stability of the threaded rod after connection and prevent it from loosening.

[0021] In summary, the present invention mainly has the following beneficial effects: By setting up explosion-proof components, it is used to prevent the equipment from accumulating heat during operation and the risk of explosion. At the same time, the heat dissipation components are used to actively dissipate heat to reduce the problem of internal temperature rising easily during high-load operation, thereby affecting its service life and operating efficiency. By setting up an explosion-proof box, when in use, the connection hole and the iron core can be set together, and the top plate can be installed on the top surface of the coil. At this time, the explosion-proof box will surround several coils to achieve the purpose of protection and prevent the explosion of the equipment from injuring outside workers.

[0022] By setting the threaded hole, when the explosion-proof box and the top groove are sleeved together during use, the threaded rod can be rotated to be threadedly connected with the threaded hole, thereby achieving the purpose of installing the top plate and the explosion-proof box; by setting the first spring, when the explosion-proof box and the top groove are sleeved together, they will fit together with the support frame, and with the support of the first spring, the impact resistance of the explosion-proof box after installation can be increased; at the same time, the air inlet hole can be used to initially dissipate the heat in the explosion-proof box.

[0023] By setting up a centrifugal air pump, when in use, the centrifugal air pump can be turned on to extract heat through the double-headed tube and the telescopic tube to achieve the purpose of heat dissipation. At the same time, the rotation of the centrifugal air pump impeller will drive the worm to rotate through the reducer, thereby driving the turbine to rotate. At this time, the screw seat and the reciprocating screw can be used to drive the screw seat to move up and down. Through the cooperation of the telescopic tube, the effect of fully extracting the heat in the explosion-proof box can be achieved. By setting up a temperature sensor, the temperature in the explosion-proof box can be monitored in real time through the temperature sensor during use, so that the centrifugal air pump and the drive motor switch can be actively controlled through the PLC controller to achieve the purpose of autonomous heat dissipation.

[0024] By setting a mounting plate for connecting external bolts in conjunction with reserved holes, the equipment can be installed. At the same time, an epoxy laminated glass cloth plate can be used as a spacer to ensure that the air gap of the reactor does not change during operation, thereby increasing stability. By setting a second spring, when in use, as the threaded rod is advanced, the second spring will be pressed against and contracted, applying a thrust to the threaded rod to ensure the stability of the threaded rod after connection and prevent loosening. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is a three-dimensional structural schematic diagram of the present invention; Figure 2 It is a schematic diagram of the top tank structure of the present invention; Figure 3 It is a schematic diagram of the explosion-proof box structure of the present invention; Figure 4 It is a schematic diagram of the turbine structure of the present invention.

[0026] Reference numerals: 100, base; 200, iron core; 300, coil; 400, joint; 500, explosion-proof assembly; 501, top plate; 502, connecting hole; 503, explosion-proof box; 504, top groove; 505, top hole; 506, threaded rod; 507, threaded hole; 508, support frame; 509, first spring; 510, air inlet; 511, first dust screen; 600, heat dissipation assembly; 601, bottom frame; 602, heat dissipation hole; 603, Bearing seat; 604, turbine; 605, side hole; 606, temperature sensor; 607, mounting groove; 608, PLC controller; 609, rotating shaft; 610, reducer; 611, worm; 612, reciprocating screw; 613, screw seat; 614, limit rod; 615, centrifugal air pump; 616, double-headed pipe; 617, telescopic pipe; 700, epoxy laminated glass cloth board; 701, mounting plate; 702, reserved hole; 800, second spring. DETAILED DESCRIPTION

[0027] In order to make the purpose, technical solution and advantages of the embodiments of the present invention clearer, the technical solution of the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings of the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all the embodiments. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work belong to the scope of protection of the present invention.

[0028] The following examples are used to illustrate the present invention, but they cannot be used to limit the scope of protection of the present invention. The conditions in the examples can be further adjusted according to specific conditions. Simple improvements to the method of the present invention under the premise of the concept of the present invention belong to the scope of protection claimed in the present invention.

[0029] refer to Figure 1-Figure 4A kind of explosion-proof reactor includes: a base 100, a plurality of iron cores 200 are fixedly installed on the top surface of the base 100, a coil 300 is sleeved outside the iron core 200, two joints 400 are fixedly installed on the top surface of the iron core 200, an explosion-proof component 500 is arranged on the top surface of the base 100 for explosion-proof, a heat dissipation component 600 is arranged on the bottom surface of the base 100 for heat dissipation, and the explosion-proof component 500 is arranged to prevent the equipment from accumulating heat during operation and causing the risk of explosion, and the heat dissipation component 600 is used to actively dissipate heat to reduce the problem that the internal temperature is easily increased during high-load operation, thereby affecting its service life and operating efficiency, explosion-proof The component 500 includes: a top plate 501, which is arranged on the top surface of the base 100, and a plurality of connecting holes 502 are opened on the top surface of the top plate 501, and the connecting holes 502 are sleeved together with the iron core 200. An explosion-proof box 503 is fixedly installed on the bottom surface of the top plate 501, and a top groove 504 is opened on the top surface of the top plate 501, and the explosion-proof box 503 is sleeved together with the top groove 504. By setting the explosion-proof box 503, when in use, the connecting holes 502 and the iron core 200 can be sleeved together, and the top plate 501 can be installed on the top surface of the coil 300. At this time, the explosion-proof box 503 will surround a plurality of coils 300, thereby achieving the purpose of protection and preventing the explosion of the equipment from injuring outside workers.

[0030] refer to Figure 1-Figure 4 The explosion-proof assembly 500 further includes: a plurality of top holes 505, which are all provided on the top surface of the top plate 501, a threaded rod 506 is sleeved inside the top hole 505, a plurality of threaded holes 507 are provided on the top surface of the base 100, the threaded rod 506 is threadedly connected with the adjacent threaded holes 507, and by providing the threaded holes 507, when the explosion-proof box 503 and the top groove 504 are sleeved together in use, the threaded rod 506 can be rotated to be threadedly connected with the threaded holes 507, thereby achieving the purpose of installing the top plate 501 and the explosion-proof box 503, and the explosion-proof assembly 500 further includes: a support frame 508, and the support frame 508 is provided with Placed inside the top groove 504, a plurality of first springs 509 are fixedly installed inside the support frame 508, the first springs 509 are fixedly connected to the top groove 504, and two air inlet holes 510 are provided on the top surface of the top plate 501, and a first dustproof net 511 is fixedly installed inside the air inlet holes 510. By setting the first springs 509, when the explosion-proof box 503 and the top groove 504 are sleeved together, they will fit together with the support frame 508 at this time, and through the support of the first springs 509, the impact resistance of the explosion-proof box 503 after installation can be increased. At the same time, through the action of the air inlet holes 510, the heat dissipation in the explosion-proof box 503 can be initially achieved.

[0031] refer to Figure 1-Figure 4The heat dissipation assembly 600 includes: a base frame 601, the base frame 601 is fixedly installed on the bottom surface of the base 100, the top surface of the base 100 is provided with two heat dissipation holes 602, a bearing seat 603 is fixedly installed inside the heat dissipation hole 602, a turbine 604 is fixedly installed inside the bearing seat 603, a reciprocating screw 612 is fixedly installed on the top of the turbine 604, the outside of the reciprocating screw 612 is connected to a screw seat 613, a limiting rod 614 is fixedly installed on the top surface of the bearing seat 603, and the limiting rod 614 is sleeved together with the inner circular wall surface of the screw seat 613.

[0032] A centrifugal air pump 615 is fixedly installed inside the base frame 601, and a double-headed tube 616 is fixedly installed on the air suction end of the centrifugal air pump 615. The double-headed tube 616 is fixedly installed together with the inner circular wall surface of the adjacent bearing seat 603, and a telescopic tube 617 is fixedly installed at one end of the double-headed tube 616. The telescopic tube 617 is fixedly installed together with the inside of the screw seat 613, and the end of the telescopic tube 617 passes through the screw seat 613 to form an air intake port.

[0033] The rotating impeller of the centrifugal air pump 615 is fixedly installed with a rotating shaft 609, and a reducer 610 is arranged inside the base frame 601. The right connecting end of the reducer 610 is fixedly connected to the rotating shaft 609, and the left connecting end of the reducer 610 is fixedly installed with a worm 611, and the worm 611 is meshed with the two turbines 604. By setting the centrifugal air pump 615, when in use, the centrifugal air pump 615 can be turned on to extract heat through the double-headed pipe 616 and the telescopic tube 617 to achieve the purpose of heat dissipation. At the same time, the rotation of the impeller of the centrifugal air pump 615 will drive the worm 611 to rotate through the reducer 610, thereby driving the turbine 604 to rotate. At this time, the screw seat 613 and the reciprocating screw 612 can be used to drive the screw seat 613 to move up and down, and the cooperation of the telescopic tube 617 can achieve the effect of fully extracting the heat in the explosion-proof box 503.

[0034] The heat dissipation component 600 also includes: a side hole 605, which is opened on one side of the explosion-proof box 503, and a temperature sensor 606 is fixedly installed inside the side hole 605. A mounting groove 607 is opened on one side of the explosion-proof box 503, and a PLC controller 608 is fixedly installed inside the mounting groove 607. The PLC controller 608 is electrically connected to the temperature sensor 606 and the centrifugal air pump 615. By setting the temperature sensor 606, the temperature inside the explosion-proof box 503 can be monitored in real time through the temperature sensor 606 during use, so that the switch of the centrifugal air pump 615 can be actively controlled through the PLC controller 608 to achieve the purpose of autonomous heat dissipation.

[0035] refer to Figure 1-Figure 4The outer wall of the iron core 200 is wound with an epoxy laminated glass cloth board 700, and the left and right sides of the base frame 601 are respectively fixedly installed with mounting plates 701. The top surface of the mounting plate 701 is provided with a plurality of reserved holes 702. The mounting plate 701 is provided to match the reserved holes 702 to connect external bolts to install the device. At the same time, the epoxy laminated glass cloth board 700 can be used as a spacer to ensure that the air gap of the reactor does not change during operation, thereby increasing stability. The bottom end of the threaded rod 506 is fixed with a second spring 800. By providing the second spring 800, when in use, as the threaded rod 506 is advanced, the second spring 800 will be pressed against to shrink, and a thrust will be applied to the threaded rod 506 to ensure the stability of the threaded rod 506 after connection to prevent loosening.

[0036] Working principle: Please refer to Figure 1-Figure 4 As shown, when in use, the connecting hole 502 and the iron core 200 can be sleeved together, and the top plate 501 can be installed on the top surface of the coil 300. At this time, the explosion-proof box 503 will surround a plurality of coils 300 to achieve the purpose of protection. At this time, the threaded rod 506 can be rotated to make it threadedly connected with the threaded hole 507. At this time, the explosion-proof box 503 is fitted together with the support frame 508, and is supported by the first spring 509 to increase the anti-impact performance of the explosion-proof box 503 after installation. At the same time, through the action of the air inlet hole 510, the heat dissipation in the explosion-proof box 503 can be initially achieved. When in use, the centrifugal air pump 615 can be turned on, and the double-headed pipe 616 and the telescopic pipe 617 can be used to extract heat to achieve the purpose of heat dissipation. At the same time, the rotation of the impeller of the centrifugal air pump 615 will drive the worm 611 to rotate through the reducer 610, so as to achieve the purpose of heat dissipation. The turbine 604 is driven to rotate. At this time, the screw seat 613 and the reciprocating screw 612 can cooperate to drive the screw seat 613 to move up and down. Through the cooperation of the telescopic tube 617, the effect of fully extracting the heat in the explosion-proof box 503 can be achieved. By setting the temperature sensor 606, the temperature in the explosion-proof box 503 can be monitored in real time through the temperature sensor 606 during use, so that the centrifugal air pump 615 switch can be actively controlled through the PLC controller 608 to achieve the purpose of autonomous heat dissipation. The epoxy laminated glass cloth board 700 can be used as a spacer to ensure that the air gap of the inductor does not change during operation, thereby increasing stability. By setting the second spring 800, when in use, as the threaded rod 506 is pushed forward, the second spring 800 will be pressed to shrink it, and a thrust will be applied to the threaded rod 506 to ensure the stability of the threaded rod 506 after connection to prevent loosening.

[0037] Although the embodiments of the present invention have been shown and described, it is understandable to those skilled in the art that, unless otherwise defined, the technical terms or scientific terms used in the present invention shall have the usual meanings understood by persons with ordinary skills in the field to which the present invention belongs. The words "including" or "comprising" and the like used in the present invention mean that the elements or objects appearing before the word include the elements or objects listed after the word and their equivalents, without excluding other elements or objects. The words "connect" or "connected" and the like are not limited to physical or mechanical connections, but may also include electrical connections, whether direct or indirect. "Up", "down", "left", "right", etc. are only used to indicate relative position relationships. When the absolute position of the described object changes, the relative position relationship may also change accordingly.

[0038] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An explosion-proof reactor, characterized in that: include: A base (100), wherein a plurality of iron cores (200) are fixedly mounted on the top surface of the base (100), a coil (300) is sleeved outside the iron core (200), and two joints (400) are fixedly mounted on the top surface of the iron core (200); An explosion-proof component (500), the explosion-proof component (500) being arranged on the top surface of the base (100) for explosion-proofing; A heat dissipation component (600) is arranged on the bottom surface of the base (100) and is used for heat dissipation.

2. An explosion-proof reactor according to claim 1, characterized in that: The explosion-proof assembly (500) comprises: A top plate (501), the top plate (501) being arranged on the top surface of the base (100), the top surface of the top plate (501) being provided with a plurality of connection holes (502), the connection holes (502) being sleeved together with the iron core (200), an explosion-proof box (503) being fixedly mounted on the bottom surface of the top plate (501), the top surface of the top plate (501) being provided with a top groove (504), the explosion-proof box (503) being sleeved together with the top groove (504).

3. An explosion-proof reactor according to claim 2, characterized in that: The explosion-proof assembly (500) further comprises: A plurality of top holes (505), wherein the plurality of top holes (505) are all provided on the top surface of the top plate (501), a threaded rod (506) is sleeved inside the top hole (505), a plurality of threaded holes (507) are provided on the top surface of the base (100), and the threaded rod (506) is threadedly connected to adjacent threaded holes (507).

4. An explosion-proof reactor according to claim 3, characterized in that: The explosion-proof assembly (500) further comprises: A support frame (508), the support frame (508) is arranged inside the top groove (504), a plurality of first springs (509) are fixedly installed inside the support frame (508), the first springs (509) are fixedly connected to the top groove (504), the top surface of the top plate (501) is provided with two air inlet holes (510), and a first dustproof net (511) is fixedly installed inside the air inlet hole (510).

5. An explosion-proof reactor according to claim 4, characterized in that: The heat dissipation component (600) comprises: A base frame (601), wherein the base frame (601) is fixedly mounted on the bottom surface of the base (100), and the top surface of the base (100) is provided with two heat dissipation holes (602), a bearing seat (603) is fixedly mounted inside the heat dissipation hole (602), a turbine (604) is fixedly mounted inside the bearing seat (603), a reciprocating screw (612) is fixedly mounted on the top of the turbine (604), the outside of the reciprocating screw (612) is connected to the screw seat (613), a limiting rod (614) is fixedly mounted on the top surface of the bearing seat (603), the limiting rod (614) and the inner circular wall surface of the screw seat (613) are sleeved together, and a centrifugal air pump (615) is fixedly mounted inside the base frame (601), and the centrifugal air pump ( A double-headed tube (616) is fixedly mounted on the suction end of the centrifugal air pump (615), and the double-headed tube (616) is fixedly mounted together with the inner circular wall surface of the adjacent bearing seat (603); a telescopic tube (617) is fixedly mounted on one end of the double-headed tube (616), and the telescopic tube (617) is fixedly mounted together with the inside of the screw seat (613); a rotating impeller of the centrifugal air pump (615) is fixedly mounted with a rotating shaft (609); a reducer (610) is arranged inside the base frame (601), and the right connecting end of the reducer (610) is fixedly connected to the rotating shaft (609); a worm (611) is fixedly mounted on the left connecting end of the reducer (610), and the worm (611) is meshed with the two turbines (604).

6. An explosion-proof reactor according to claim 5, characterized in that: The heat dissipation assembly (600) further includes: A side hole (605), the side hole (605) is opened on one side of the explosion-proof box (503), a temperature sensor (606) is fixedly installed inside the side hole (605), a mounting groove (607) is opened on one side of the explosion-proof box (503), a PLC controller (608) is fixedly installed inside the mounting groove (607), and the PLC controller (608) is electrically connected to the temperature sensor (606) and the centrifugal air pump (615).

7. An explosion-proof reactor according to claim 6, characterized in that: An epoxy laminated glass cloth plate (700) is wound around the outer wall of the iron core (200), and mounting plates (701) are fixedly mounted on the left and right sides of the base frame (601), respectively, and a plurality of reserved holes (702) are formed on the top surface of the mounting plate (701).

8. The explosion-proof reactor according to claim 3, characterized in that: A second spring (800) is fixed to the bottom end of the threaded rod (506).

Citation Information

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