High insulation leakage-proof type smoothing reactor and using method
By using the connection components and buffer mechanism of the high-insulation, leakage-proof smoothing reactor, the problems of loosening and vibration caused by uneven installation are solved, enabling rapid positioning and vibration buffering, and improving the stability and maintenance convenience of the equipment.
Patent Information
- Application Number
- CN202511199890.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-26
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2045-08-26
AI Technical Summary
When installing multiple smoothing reactors, uneven distribution or inconsistent tightening may cause them to loosen, resulting in mechanical noise or poor electrical contact. Furthermore, dense installation makes maintenance difficult.
The high-insulation, leakage-proof smoothing reactor is adopted, and rapid positioning and vibration buffering are achieved through connecting components and buffering mechanisms, including positioning components, locking components and buffer blocks, to ensure the stability of the reactor device and reduce the impact of vibration.
This enables rapid positioning and installation of the reactor, reduces the risk of jamming and displacement during installation, effectively buffers vibration, and improves the stability of equipment operation and ease of maintenance.
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Figure CN120748890B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of smoothing reactors, in particular to a high-insulation anti-creeping type smoothing reactor and a use method. BACKGROUND
[0002] The smoothing reactor is an inductive element connected in series in a direct current circuit, used for suppressing direct current fluctuation and improving direct current waveform quality. The core function is to smooth the pulsating component in the direct current by utilizing the characteristic of inductance hindering current change, and to limit current mutation during system failure. The high-insulation anti-creeping type smoothing reactor is a power electronic device suitable for high-safety and high-insulation scenarios based on the traditional smoothing reactor, through strengthening the insulation design and anti-creeping structure. The core function is to smooth the direct current pulsation and suppress harmonics, while having excellent insulation performance and anti-creeping ability.
[0003] When installing the smoothing reactor, the installation strip is generally installed at the installation position, then the support frame mounting hole at the bottom of the smoothing reactor is aligned with the mounting hole of the installation strip, and finally fastened by bolts. In some scenarios, multiple smoothing reactors are often installed to suppress the direct current fluctuation of the equipment. Multiple reactors need to be fixed independently. If the installation points are unevenly distributed or the fastening force is inconsistent, loosening may occur in the vibration environment, causing mechanical noise or poor electrical contact. During the loosening process, the metal collision between the reactor shell and the installation strip, and the friction between the bolt and the mounting hole will produce continuous noise, affecting the overall equipment operating environment. In addition, dense installation may result in insufficient maintenance space, making it difficult to overhaul and replace later. SUMMARY
[0004] The purpose of the present application is to provide a high-insulation anti-creeping type smoothing reactor and a use method to solve the problems raised in the background art.
[0005] The technical solution adopted by the present application to solve its technical problems is: a high-insulation anti-creeping type smoothing reactor and a use method, comprising: a reactor device, a connection assembly is provided on the reactor device, the connection assembly comprises a set of installation strips and installation side plates fixed symmetrically on both sides of the installation strips, a through hole is symmetrically provided on the installation strip, and the connection assembly further comprises:
[0006] An installation mechanism is provided on the installation side plate, the installation mechanism comprises a positioning assembly and a locking assembly, the positioning assembly comprises a positioning frame fixedly provided on the installation side plate, the locking assembly comprises a connecting hole symmetrically provided on the positioning frame, a limiting column is slidably arranged in the connecting hole, and the installation mechanism is used for quick positioning and installation of the reactor device.
[0007] The buffering mechanism is arranged on the mounting strip, and the buffering mechanism comprises a buffering block one arranged in the through hole, and the top of the buffering block one is attached to the bottom of the reactor device, and the buffering mechanism is used for buffering the vibration after the reactor device is installed.
[0008] Preferably, the reactor device comprises an upper support frame, a lower support frame, an insulating support column and a core coil, the upper support frame and the lower support frame are connected through the insulating support column, and the core coil is fixedly arranged between the upper support frame and the lower support frame.
[0009] Preferably, a connecting lug plate is symmetrically fixed on the reactor device, a through hole is symmetrically and through arranged on the connecting lug plate, a positioning inclined surface is arranged on the side of the connecting lug plate away from the reactor device, and the size of the connecting lug plate is adapted to the positioning frame.
[0010] Preferably, a limiting groove is arranged on the positioning frame, and the connecting lug plate is limitingly connected with the positioning frame through the limiting groove.
[0011] Preferably, a fixing cylinder is symmetrically and fixedly arranged at the bottom of the positioning frame, the fixing cylinder is concentric with the connecting hole, an installation cavity is arranged on the fixing cylinder, a fixing block is fixedly arranged on the inner wall of the installation cavity at the end of the fixing cylinder, a movable rod is slidably arranged in the middle of the fixing block, one end of the movable rod is fixedly connected with the limiting column, a telescopic spring is sleeved on the outer surface of the movable rod, and the telescopic spring is located between the limiting column and the fixing block.
[0012] Preferably, a connecting shaft is symmetrically and fixedly connected with the movable rod, a rotating block is rotatably connected with the connecting shaft, a horizontal surface and a circular surface are arranged on the rotating block, and the horizontal surface is attached to the fixing block under the limitation of the telescopic spring.
[0013] Preferably, a notch groove is arranged on one side of the rotating block close to the connecting shaft, and a connecting rod is fixedly arranged between the opposite surfaces of the rotating block.
[0014] Preferably, a cushion block is symmetrically and fixedly arranged at the bottom of the mounting strip, the positions of the cushion blocks correspond to the positions of the through holes, and a buffering block two is fixedly arranged on the cushion block.
[0015] Preferably, a buffering cavity is arranged on the buffering block two, a buffering rod is slidably arranged in the buffering cavity, a buffering spring is sleeved on the outer surface of the buffering rod, one end of the buffering rod is fixedly connected with the buffering block one, and the buffering spring is located between the buffering block one and the cushion block.
[0016] Preferably, a use method of the high-insulation anti-creeping flat wave reactor comprises the following steps:
[0017] S1: installation stage, by aligning the locking assembly of the installation mechanism with the positioning assembly, the quick alignment installation of the reactor device is realized, and then the position locking of the reactor device is realized by inserting the limiting column of the locking assembly into the connecting hole in the positioning assembly to prevent displacement;
[0018] S2: buffer stage, after the installation mechanism is installed, the bottom of the reactor device is in close contact with the buffer block one, and the vibration force in the operation of the reactor is evenly dispersed through the buffer mechanism arranged at the four corners of the reactor device;
[0019] S3: disassembly stage, the locking assembly is actuated to make the limiting column disengage from the connecting hole, at this time the reactor device is extracted from the positioning frame, realizing the quick unlocking and disassembly of the device.
[0020] The beneficial effects of the present application are:
[0021] The high insulation anti-creeping flat wave reactor and the use method provided by the present application can quickly determine the installation position of the reactor through the contour constraint of the positioning frame after embedding the corresponding parts of the reactor device into the positioning frame, avoiding the trouble of repeated alignment in traditional installation. The connecting lug plate of the reactor device can be directly embedded into the positioning frame due to the size adaptation of the connecting lug plate and the positioning frame. The positioning bevel on the connecting lug plate plays a guiding role in this process, which can reduce the jamming during embedding. When the edge of the connecting lug plate contacts the entrance of the positioning frame, the positioning bevel will naturally correct the installation direction through the inclination angle, so that the connecting lug plate smoothly slides into the positioning frame.
[0022] The high insulation anti-creeping flat wave reactor and the use method provided by the present application can promote the rotation of the rotating block on the connecting shaft by actuating the connecting rod downward, at this time the circular surface of the rotating block extrudes the outer surface of the fixed block, at this time the extension spring is compressed, and the limiting column is pulled by the movable rod, so that the limiting column is located in the connecting hole, at this time the connecting lug plate can be inserted into the limiting groove of the positioning frame, when inserted in place, the connecting rod is actuated in the opposite direction, at this time the horizontal surface of the rotating block will gradually approach and adhere to the fixed block, promoting the limiting column of the movable rod to penetrate into the penetration hole of the connecting lug plate, and the connecting lug plate is multi-dimensionally locked to prevent displacement.
[0023] The high insulation anti-creeping flat wave reactor and the use method provided by the present application can promote the rotation of the rotating block on the connecting shaft by actuating the connecting rod downward, at this time the circular surface of the rotating block extrudes the outer surface of the fixed block, at this time the extension spring is compressed, and the limiting column is pulled by the movable rod, so that the limiting column is located in the connecting hole, at this time the connecting lug plate can be inserted into the limiting groove of the positioning frame, when inserted in place, the connecting rod is actuated in the opposite direction, at this time the horizontal surface of the rotating block will gradually approach and adhere to the fixed block, promoting the limiting column of the movable rod to penetrate into the penetration hole of the connecting lug plate, and the connecting lug plate is multi-dimensionally locked to prevent displacement.
[0024] In addition to the purposes, features and advantages described above, the present application has other purposes, features and advantages. The present application will be described in further detail below with reference to the drawings. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 is a schematic diagram of the overall structure of the present application;
[0026] Figure 2 is a schematic diagram of the enlarged structure at A in the present application Figure 1
[0027] Figure 3 is a schematic diagram of the structure of the present application after removal of the reactor device;
[0028] Figure 4 is a schematic diagram of the exploded structure of the mounting mechanism of the present application;
[0029] Figure 5 is a schematic diagram of the transverse cross-section of the mounting mechanism of the present application;
[0030] Figure 6 is a schematic diagram of the longitudinal cross-section of the mounting mechanism of the present application;
[0031] Figure 7 is a schematic diagram of the cross-section of the mounting mechanism of the present application after hiding the limiting column;
[0032] Figure 8 is a schematic diagram of the cross-section of the buffering mechanism of the present application.
[0033] FIG. NO. EXPLANATION:
[0034] 1, reactor device; 2, upper support frame; 3, lower support frame; 4, insulating support column; 5, core coil; 6, connecting assembly; 7, mounting strip; 8, through hole; 9, mounting side plate; 10, mounting mechanism; 11, positioning assembly; 12, connecting ear plate; 13, through hole; 14, positioning slope; 15, positioning frame; 16, limiting groove; 17, locking assembly; 18, connecting hole; 19, fixing cylinder; 20, mounting cavity; 21, fixing block; 22, movable rod; 23, limiting column; 24, extension spring; 25, connecting shaft; 26, rotating block; 27, horizontal surface; 28, circular arc surface; 29, notch groove; 30, connecting rod; 31, buffering mechanism; 32, buffering block one; 33, pad block; 34, buffering block two; 35, buffering cavity; 36, buffering rod; 37, buffering spring. DETAILED DESCRIPTION
[0035] It should be noted that the embodiments in the present application and the features in the embodiments can be combined with each other without conflict. The present application will be described in further detail below with reference to the drawings and in combination with the embodiments.
[0036] In order for those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described in the following with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor should belong to the scope of protection of the present application.
[0037] With reference to Figures 1 to 8 A high insulation anti-creeping flat wave reactor, comprising: a reactor device 1, a connecting assembly 6 is arranged on the reactor device 1, the connecting assembly 6 comprises a set of mounting strips 7 and mounting side plates 9 symmetrically fixed on both sides of the mounting strips 7, through holes 8 are symmetrically arranged on the mounting strips 7, the reactor device 1 comprises an upper support frame 2, a lower support frame 3, an insulation support column 4 and a core coil 5, the upper support frame 2 and the lower support frame 3 are connected through the insulation support column 4, and the core coil 5 is fixedly arranged between the upper support frame 2 and the lower support frame 3. The connecting assembly 6 is installed on an inductive element which needs to suppress DC current fluctuation and improve DC waveform quality, and then the reactor device 1 is quickly installed and connected through the connecting assembly 6.
[0038] The upper support frame 2 and the lower support frame 3 are integrally formed by using an insulating material, and the outer surfaces thereof are covered with a high-voltage-resistant insulating coating, which can effectively block possible leakage paths. The insulation support column 4 has a columnar structure and is uniformly distributed at the edge positions of the upper support frame 2 and the lower support frame 3, thereby not only playing a connecting and supporting role, but also completely isolating the upper support frame 2 and the lower support frame 3 through the insulation characteristics of the insulation support column 4, so as to avoid the risk of leakage due to contact between the two. The core coil 5 is wrapped with a plurality of layers of insulating film, and the films are filled with insulating glue, thereby forming a sealed insulating protective layer to prevent the internal current of the coil from leaking out. Insulating gaskets are arranged at the connecting parts of the core coil 5, the upper support frame 2 and the lower support frame 3, the gaskets are made of high-temperature-resistant insulating materials, thereby not only ensuring the stability of the coil installation, but also further strengthening the insulation effect.
[0039] With reference to Figures 1 to 7 The high insulation anti-creeping flat wave reactor further comprises: a mounting mechanism 10 arranged on the mounting side plate 9, the mounting mechanism 10 comprises a positioning assembly 11 and a locking assembly 17, the positioning assembly 11 comprises a positioning frame 15 fixedly arranged on the mounting side plate 9, the locking assembly 17 comprises connecting holes 18 symmetrically arranged on the positioning frame 15, and a limiting column 23 is slidably arranged in the connecting hole 18, and the mounting mechanism 10 is used for quickly positioning and installing the reactor device 1.
[0040] Specifically, the reactance device 1 is symmetrically fixed with a connecting lug plate 12, the through hole 13 is symmetrically and through provided on the connecting lug plate 12, the connecting lug plate 12 is provided with a positioning inclined surface 14 on the side away from the reactance device 1, and the size of the connecting lug plate 12 is adapted to the positioning frame 15. The positioning frame 15 is provided with a limiting groove 16, and the connecting lug plate 12 is limitedly connected with the positioning frame 15 through the limiting groove 16.
[0041] By embedding the positioning frame 15 in the corresponding part of the reactance device 1, the installation position of the reactance device can be quickly determined through the contour constraint of the positioning frame 15, and the trouble of repeated alignment in traditional installation can be avoided. The connecting lug plate 12 of the reactance device 1 can be directly embedded in the positioning frame 15 due to the size adaptation of the connecting lug plate 12 and the positioning frame 15. The positioning inclined surface 14 on the connecting lug plate 12 plays a guiding role in this process, which can reduce the jamming during embedding. When the edge of the connecting lug plate 12 contacts the entrance of the positioning frame 15, the positioning inclined surface 14 will naturally correct the installation direction through the inclination angle, so that the connecting lug plate 12 smoothly slides into the positioning frame 15. At the same time, the limiting groove 16 on the positioning frame 15 matches the contour of the connecting lug plate 12, and the connecting lug plate 12 will form a clamping with the limiting groove 16 after being completely embedded, which further constrains the transverse and longitudinal displacement of the reactance device 1, and completes the preliminary positioning.
[0042] Further, the positioning frame 15 is fixedly and symmetrically provided with a fixed cylinder 19 at the bottom, the fixed cylinder 19 is concentric with the connecting hole 18, the fixed cylinder 19 is provided with an installation cavity 20, the fixed cylinder 19 is fixedly provided with a fixed block 21 on the inner wall of the installation cavity 20, a movable rod 22 is slidingly arranged in the fixed block 21, one end of the movable rod 22 is fixedly connected with a limiting column 23, a telescopic spring 24 is sleeved on the outer surface of the movable rod 22, and the telescopic spring 24 is located between the limiting column 23 and the fixed block 21. The movable rod 22 is fixedly connected with a connecting shaft 25, the connecting shaft 25 is rotatably connected with a rotating block 26, the rotating block 26 is provided with a horizontal surface 27 and a circular surface 28, and the horizontal surface 27 is in close contact with the fixed block 21 under the limitation of the telescopic spring 24. The rotating block 26 is provided with a notch groove 29 on one side close to the connecting shaft 25, and a connecting rod 30 is fixedly arranged between the opposite surfaces of the rotating block 26.
[0043] The operator promotes the rotation of the rotating block 26 on the connecting shaft 25 by pulling down the connecting rod 30, at this time the arc surface 28 of the rotating block 26 extrudes the outer surface of the fixed block 21, at this time the extension spring 24 is compressed, and the movable rod 22 pulls the limiting column 23, promotes the limiting column 23 to be located in the connecting hole 18, at this time the connecting lug plate 12 can be inserted into the limiting slot 16 of the positioning frame 15, when inserted, the connecting rod 30 is pulled in the opposite direction, at this time the horizontal surface 27 of the rotating block 26 gradually approaches and fits the fixed block 21, promotes the limiting column 23 of the movable rod 22 to penetrate into the penetrating hole 13 of the connecting lug plate 12, and the connecting lug plate 12 is multi-dimensionally locked to prevent displacement.
[0044] Referring to Figure 1 , Figure 3 and Figure 8 , the high insulation anti-creeping flat wave reactor further comprises a buffer mechanism 31 arranged on the mounting strip 7, the buffer mechanism 31 comprises a buffer block one 32 arranged in the through hole 8, the top of the buffer block one 32 is in close contact with the bottom of the reactor device 1, and the buffer mechanism 31 is used for vibration buffering after the reactor device 1 is installed. Specifically, the bottom of the mounting strip 7 is symmetrically provided with a pad 33, the positions of the pads 33 correspond to the positions of the through holes 8, and the pads 33 are fixedly provided with buffer blocks two 34. The buffer block two 34 is provided with a buffer cavity 35, a buffer rod 36 is slidably arranged in the buffer cavity 35, a buffer spring 37 is sleeved on the outer surface of the buffer rod 36, one end of the buffer rod 36 is fixedly connected with the buffer block one 32, and the buffer spring 37 is located between the buffer block one 32 and the pad 33.
[0045] When the reactor device 1 is installed, the bottom of the lower support frame 3 extrudes the buffer block one 32, so that the buffer rod 36 is pressed downward and the buffer spring 37 is compressed and stored. The vibration generated during the operation of the reactor device 1 is transmitted to the buffer block one 32 through the lower support frame 3. The upward vibration impact force promotes the buffer spring 37 to release part of the elastic potential energy, pushes the buffer block one 32 upward through the buffer rod 36, and offsets part of the impact force; the downward vibration further compresses the buffer spring 37, absorbs energy through the deformation of the spring, and buffers the vibration amplitude.
[0046] A use method of a high insulation anti-creeping flat wave reactor, applied to a high insulation anti-creeping flat wave reactor, comprising the following steps:
[0047] S1: installation stage, by aligning the locking assembly 17 of the mounting mechanism 10 with the positioning assembly 11, the quick alignment and installation of the reactor device 1 can be realized, and then the limiting column 23 of the locking assembly 17 is inserted into the connecting hole 18 in the positioning assembly 11 to positionally lock the reactor device 1 to prevent displacement;
[0048] S2: Buffering stage, after the installation mechanism 10 is installed, the bottom of the reactor device 1 is attached to the buffer block one 32 of the buffering mechanism 31, and the buffering mechanism 31 arranged at the four corners of the reactor device 1 evenly disperses the vibration force during the operation of the reactor;
[0049] S3: Disassembly stage, the locking assembly 17 is actuated to make the limiting column 23 disengage from the connecting hole 18, at this time the reactor device 1 can be pulled out from the positioning frame 15, realizing quick unlocking and disassembly of the device.
[0050] Through all the above embodiments, the working principle of the present application is:
[0051] The operator first actuates the connecting rod 30 downward to make the rotating block 26 rotate on the connecting shaft 25, at this time the circular arc surface 28 of the rotating block 26 extrudes the outer surface of the fixed block 21, at this time the extension spring 24 is compressed, and the limiting column 23 is pulled by the movable rod 22, so that the limiting column 23 is located in the connecting hole 18, at this time the operator inserts the connecting lug plate 12 of the reactor device 1 into the positioning frame 15, the positioning inclined surface 14 on the connecting lug plate 12 plays a guiding role in this process, which can reduce the jamming during embedding, when the edge of the connecting lug plate 12 contacts the entrance of the positioning frame 15, the positioning inclined surface 14 will naturally correct the installation direction through the inclination angle, so that the connecting lug plate 12 smoothly slides into the positioning frame 15. At the same time, the limiting groove 16 on the positioning frame 15 matches the profile of the connecting lug plate 12, and after the connecting lug plate 12 is completely embedded, it will form a clamping with the limiting groove 16, further restricting the transverse and longitudinal displacement of the reactor device 1, completing the preliminary positioning, when inserted in place, actuate the connecting rod 30 in the opposite direction, at this time the horizontal surface 27 of the rotating block 26 will gradually approach and attach to the fixed block 21, so that the limiting column 23 of the movable rod 22 penetrates into the penetration hole 13 of the connecting lug plate 12, and the connecting lug plate 12 is multi-dimensionally locked to prevent displacement. When the reactor device 1 needs to be disassembled, the connecting rod 30 is actuated downward, so that the limiting column 23 disengages from the penetration hole 13, at this time the limiting of the connecting lug plate 12 is released, and the reactor device 1 can be pulled out for maintenance operation. Further, when the reactor device 1 is installed, the bottom of the lower support frame 3 extrudes the buffer block one 32, so that the buffer rod 36 is pressed downward and the buffer spring 37 is compressed and stored, and the vibration generated during the operation of the reactor device 1 is transmitted to the buffer block one 32 through the lower support frame 3. The upward vibration impact force will make the buffer spring 37 release part of the elastic potential energy, and the buffer block one 32 is pushed upward by the buffer rod 36 to reset, which offsets part of the impact force.
[0052] Those skilled in the art should understand: the discussion of the above any embodiment is only exemplary, and the technical features in the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other changes of different aspects of the application as described above. In order to be brief, they are not provided in details.
[0053] The present application is intended to cover all such alternatives, modifications, and variations as fall within the broad scope of the appended claims. Accordingly, any one of the above-described and other features can be employed in any feasible combination, and any omission, substitution, or change in any of the above-described features or any other technical features can be made without departing from the spirit and scope of the present application.
Claims
1. A high-insulation, leakage-proof smoothing reactor, comprising: A reactor device (1), wherein a connecting assembly (6) is provided on the reactor device (1), the connecting assembly (6) includes a set of mounting strips (7), mounting side plates (9) are symmetrically arranged on both sides of the mounting strips (7), and through holes (8) are symmetrically arranged on the mounting strips (7), characterized in that it further includes: The installation mechanism (10) is mounted on the mounting side plate (9). The installation mechanism (10) includes a positioning component (11) and a locking component (17). The positioning component (11) includes a positioning frame (15) fixedly mounted on the mounting side plate (9). The locking component (17) includes connecting holes (18) symmetrically opened on the positioning frame (15). A limit post (23) is slidably provided in the connecting hole (18). The installation mechanism (10) is used for the rapid positioning and installation of the reactor device (1). The buffer mechanism (31) is set on the mounting strip (7). The buffer mechanism (31) includes a buffer block (32) set in the through hole (8). The top of the buffer block (32) is in contact with the bottom of the reactor device (1). The buffer mechanism (31) is used for vibration buffering after the reactor device (1) is installed. The bottom of the positioning frame (15) is fixedly and symmetrically provided with a fixing cylinder (19). The fixing cylinder (19) is concentric with the connecting hole (18). Each fixing cylinder (19) is provided with an installation cavity (20). The end of the fixing cylinder (19) is fixedly provided with a fixing block (21) on the inner wall of the installation cavity (20). A movable rod (22) is slidably provided through the middle of the fixing block (21). One end of the movable rod (22) is fixedly connected to the limiting post (23). A telescopic spring (24) is sleeved on the outer surface of the movable rod (22). The telescopic spring (24) is located between the limiting post (23) and the fixing block (21). Each of the movable rods (22) is symmetrically fixed with a connecting shaft (25), and a rotating block (26) is rotatably connected to the connecting shaft (25). The rotating block (26) is provided with a horizontal surface (27) and an arc surface (28). The horizontal surface (27) is in contact with the fixed block (21) under the limit of the telescopic spring (24).
2. The high-insulation, leakage-proof smoothing reactor according to claim 1, characterized in that, The reactor device (1) includes an upper support frame (2), a lower support frame (3), an insulating support column (4), and an iron core coil (5), etc. The upper support frame (2) and the lower support frame (3) are connected by the insulating support column (4), and the iron core coil (5) is fixedly installed between the upper support frame (2) and the lower support frame (3).
3. A high-insulation, leakage-proof smoothing reactor according to claim 2, characterized in that, The reactor device (1) is symmetrically fixed with connecting lugs (12), and the connecting lugs (12) are symmetrically perforated with through holes (13). The connecting lugs (12) are provided with a positioning slope (14) on the side away from the reactor device (1). The size of the connecting lugs (12) is compatible with the positioning frame (15).
4. A high-insulation, leakage-proof smoothing reactor according to claim 3, characterized in that, Each positioning frame (15) is provided with a limiting groove (16), and the connecting ear plate (12) is limited to the positioning frame (15) through the limiting groove (16).
5. A high-insulation, leakage-proof smoothing reactor according to claim 4, characterized in that, The rotating block (26) has a notch (29) on the side near the connection of the connecting shaft (25), and a connecting rod (30) is fixedly provided between the opposite surfaces of the rotating block (26).
6. A high-insulation, leakage-proof smoothing reactor according to claim 1, characterized in that, The bottom of the mounting strip (7) is symmetrically fixed with pads (33), the positions of the pads (33) correspond to the positions of the through holes (8), and buffer blocks (34) are fixedly installed on the pads (33).
7. A high-insulation, leakage-proof smoothing reactor according to claim 6, characterized in that, The buffer block 2 (34) has a buffer cavity (35) and a buffer rod (36) is slidably arranged in the buffer cavity (35). A buffer spring (37) is sleeved on the outer surface of the buffer rod (36). One end of the buffer rod (36) is fixedly connected to the buffer block 1 (32). The buffer spring (37) is located between the buffer block 1 (32) and the pad block (33).
8. A method of using a high-insulation, leakage-proof smoothing reactor, applied to the high-insulation, leakage-proof smoothing reactor described in any one of claims 1-7, characterized in that, Includes the following steps: S1: During the installation phase, by aligning the locking component (17) of the installation mechanism (10) with the positioning component (11), the reactor device (1) can be quickly aligned and installed. Then, by inserting the limiting post (23) of the locking component (17) into the connecting hole (18) in the positioning component (11), the reactor device (1) is locked in position to prevent displacement. S2: Buffering stage. After the installation mechanism (10) is installed, the bottom of the reactor device (1) and the buffer block (32) of the buffer mechanism (31) fit together. The vibration force during the operation of the reactor is evenly distributed by the buffer mechanism (31) set at the four corners of the reactor device (1). S3: During the disassembly stage, the locking component (17) is turned to cause the limiting post (23) to disengage from the connection hole (18). At this time, the reactor device (1) can be pulled out from the positioning frame (15) to achieve quick unlocking and disassembly of the device.
Citation Information
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