A safe ultra-high voltage reactor with reduced amplitude
Through the design of the plug-in rod and traction structure, combined with elastic support and universal connection, the problem of position instability caused by the vibration of the reactor is solved, the stability and connection stability of the reactor in both static and working states are achieved, and the vibration amplitude and the risk of wire harness detachment are reduced.
Patent Information
- Application Number
- CN202510163878.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2045-02-14
AI Technical Summary
During operation, the reactor vibrates due to magnetic saturation, current fluctuations, and excessive load, resulting in unstable position, affecting operation difficulty and connection stability.
The use of plug-in rods and traction structures enables the reactor and the supporting frame to switch freely between hard connection and elastic connection. Combined with the elastic support component and the universal connection structure, opposite pulling force is provided to stabilize the position of the reactor, and the connection stability is improved through the conductive electrode and energy storage component.
The position stability of the reactor in static and working states is improved, the vibration amplitude is reduced, the wiring harness is prevented from falling off, and the connection stability and operation convenience are enhanced.
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Figure CN119833282B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of reactors, in particular to a safe ultra-high voltage reactor with reduced amplitude. Background Art
[0002] The application scenarios of reactors are also very wide, including but not limited to substations, air conditioners, medium-frequency furnaces, power systems, capacitor cabinets, and some small household appliances such as electric fans and arc furnaces.
[0003] During operation, the reactor may vibrate due to magnetic saturation, current fluctuations, excessive loads, and other factors, thus affecting its stable operation. If bolts or other structures are used to secure the reactor, there is a risk that the bolts will loosen when vibration occurs. To address this issue, the reactor and the connecting frame are usually elastically connected to cushion the vibration force, improve the position stability of the electric controller, and reduce noise.
[0004] However, when the reactor is connected to the connecting frame by elastic connection, the reactor itself has a certain elastic mobility, so that during the line connection and debugging of the reactor, the elastic movement of the reactor will cause its position to be unstable, affecting the operator's operation and increasing the difficulty of operation during the line connection and debugging process. Summary of the Invention
[0005] The object of the present invention is to provide a safe UHV reactor with reduced amplitude to solve the problems raised in the above background technology.
[0006] To achieve the above object, the present invention provides the following technical solutions:
[0007] A safe ultra-high voltage reactor with reduced amplitude, comprising:
[0008] A receiving frame, on which a reactor body is arranged;
[0009] An elastic support assembly is connected to the receiving frame and the reactor body, and a limiting groove and a conducting groove are formed on the elastic support assembly;
[0010] An insert rod is slidably arranged on the receiving frame, and the insert rod can be inserted into the guide groove and cooperate with the limit groove to lock the elastic support assembly;
[0011] The traction structure is connected to the insertion rod. The insertion rod can be driven by the traction structure to have two states: inserted into the conducting groove and separated from the conducting groove.
[0012] As a further solution of the present invention: the elastic support assembly includes a connecting frame connected to the reactor body, the connecting frame is provided with a first connecting plate, and the supporting frame is provided with a second connecting plate;
[0013] An end of the first connecting plate away from the connecting frame and an end of the second connecting plate away from the receiving frame are connected via a tension spring;
[0014] The elastic support assembly also includes a universal connection structure connecting the connecting frame and the supporting frame.
[0015] As a further embodiment of the present invention, the universal connection structure includes a plurality of mutually corresponding connecting seats detachably mounted on the connecting frame and the receiving frame, each of the connecting seats having a spherical cavity formed therein, each of the spherical cavities containing connecting balls, and two corresponding connecting balls in two sets of the connecting seats being connected via a connecting rod.
[0016] The connecting seat arranged on the supporting frame is provided with the conducting groove, and the connecting ball head in the connecting seat is provided with the limiting groove. When the inserting rod is inserted into the conducting groove, the inserting rod can lock the connecting ball head.
[0017] As a further solution of the present invention: the insertion rod is slidably connected to a guide member fixedly installed on the receiving frame, and the guide member and the insertion rod are connected via a first cylindrical spring.
[0018] As a further solution of the present invention: the traction structure includes a slide groove provided on the insertion rod, a sliding connection portion is slidably installed in the slide groove, and the sliding connection portion is connected to a horizontal plate provided on the receiving frame;
[0019] The traction structure further comprises a guide plate arranged on the supporting frame and a convex shaft rotatably connected to the transverse plate, wherein the convex shaft is adapted to a guide groove arranged on the guide plate.
[0020] As a further solution of the present invention: the guide groove includes a horizontal groove provided on the guide plate and a vertical inclined groove connected to the horizontal groove, and the angle between the vertical inclined groove and the horizontal groove is an acute angle.
[0021] As a further solution of the present invention: it also includes:
[0022] A conductive electrode electrically connected to the reactor body;
[0023] A connecting frame is detachably mounted on the reactor body, wherein the connecting frame is provided with a quadrilateral structure, and the quadrilateral structure can press the wire onto the conductive electrode by deflection;
[0024] An energy storage component is arranged on the connecting frame, and the energy storage component cooperates with the abutment wheel connected to the quadrilateral structure to enable the quadrilateral structure to be in a state of being away from or close to the conductive electrode.
[0025] As a further solution of the present invention: the quadrilateral structure includes two groups of hinged rods rotatably mounted on the side of the connecting frame, the two groups of hinged rods are parallel, and the ends of the two groups of hinged rods away from the connecting frame are connected to a pressure plate, and the pressure plate is provided with inverted teeth on the side facing the conductive electrode.
[0026] As a further solution of the present invention: a connecting shaft is fixedly installed on the connecting frame, the connecting shaft is rotatably connected to the hinged rod, the limiting portion arranged on the connecting shaft is adapted to the arc-shaped groove arranged on the hinged rod, and when the limiting portion abuts against the side wall of the arc-shaped groove, the hinged rod is perpendicular to the pressure plate.
[0027] As a further solution of the present invention: the energy storage assembly includes a side frame fixedly installed on the side of the connecting frame, the side frame is provided with a lag groove, a slider is slidably installed in the lag groove, the slider is connected to an extrusion plate that rolls with the abutment wheel, and the extrusion plate and the side frame are connected by a second cylindrical spring.
[0028] Compared with the prior art, the present invention has the following beneficial effects:
[0029] The insertion rod and traction structure are provided so that the insertion rod has two stable position states, and the reactor body and the receiving frame can be freely switched between a hard connection and an elastic connection. On the one hand, it can improve the position stability of the reactor body during the installation and commissioning of the wiring harness, making it easier for construction workers to operate. On the other hand, it can effectively buffer the swing caused by vibration when the reactor body is working, thereby improving the stability of the reactor body operation.
[0030] By providing an elastic support assembly, the pull spring and the universal connection structure can provide the reactor body with two pulling forces in opposite directions. This not only improves the position stability of the reactor body in a stationary state, but also effectively improves the stability of the reactor body during operation. Specifically, when the reactor body deflects due to vibration, the pull spring can buffer the movement of the reactor body, thereby reducing the swing amplitude of the reactor body. It can also prevent the wiring harness connected to the reactor body from falling off due to a large degree of vibration of the reactor body, thereby ensuring the stable movement of the reactor body.
[0031] By setting up the conductive electrode, connecting frame and energy storage assembly, the abutting force between the pressure plate and the wire joint is an elastic force. Compared with the tightening force generated by the bolts in the prior art, the elastic force can ensure the connection stability during the vibration of the reactor body, and can also effectively avoid the reduction of the force of the pressure plate acting on the wire joint. Compared with the use of bolt connection, this solves the problem of the reduction of the fitting force between the wire joint and the conductive electrode due to loosening of the bolts due to vibration, and avoids the occurrence of false connection and slippage of the wire joint and the conductive electrode. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 A schematic structural diagram of an embodiment of a safe UHV reactor for reducing amplitude.
[0033] Figure 2 A schematic structural diagram from another angle of an embodiment of a safe UHV reactor for reducing amplitude.
[0034] Figure 3 A side view of an embodiment of a safe UHV reactor for reducing amplitude.
[0035] Figure 4 A schematic structural diagram of an elastic support assembly, a plug rod, and a traction structure in an embodiment of a safe ultra-high voltage reactor for reducing amplitude.
[0036] Figure 5 A schematic structural diagram of a traction structure and a universal connection structure in an embodiment of a safe ultra-high voltage reactor for reducing amplitude.
[0037] Figure 6 Exploded diagram of the traction structure in one embodiment of a safe UHV reactor for reducing amplitude.
[0038] Figure 7 for Figure 1 A magnified view of the structure at point A.
[0039] Figure 8 A schematic diagram of the quadrilateral structure of an embodiment of a safe UHV reactor for reducing amplitude.
[0040] Figure 9 Exploded diagram of the structure of the hinged rod and the connecting shaft in one embodiment of a safe UHV reactor for reducing amplitude.
[0041] Figure 10 A schematic structural diagram of the energy storage component in an embodiment of a safe ultra-high voltage reactor for reducing amplitude.
[0042] In the figure: 1. reactor body; 2. connecting frame; 3. receiving frame; 4. first connecting plate; 5. second connecting plate; 6. pulling spring; 7. connecting seat; 701. conducting groove; 8. connecting ball head; 801. limiting groove; 9. connecting rod; 10. inserting rod; 11. guide; 12. first cylindrical spring; 13. slide groove; 14. horizontal plate; 1401. sliding connection part; 15. convex shaft; 16. guide plate; 1601. horizontal groove; 1602. vertical inclined groove; 17. conductive electrode; 18. connecting frame; 19. hinged rod; 1901. arc groove; 20. pressure plate; 2001. inverted tooth; 21. abutting wheel; 22. connecting shaft; 2201. limiting part; 23. side frame; 2301. retardation groove; 24. extrusion plate; 25. slider; 26. second cylindrical spring. DETAILED DESCRIPTION
[0043] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0044] In addition, when an element in the present invention is referred to as being "fixed to" or "disposed on" another element, it may be directly on the other element or there may be an intermediate element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only implementation method.
[0045] See also Figures 1 to 10 In an embodiment of the present invention, a safety type ultra-high voltage reactor with reduced amplitude includes: a receiving frame 3, an elastic support component, a plug rod 10 and a traction structure.
[0046] The reactor body 1 is arranged on the support frame 3;
[0047] The elastic support assembly is connected to the receiving frame 3 and the reactor body 1, and a limiting groove 801 and a conducting groove 701 are formed on the elastic support assembly;
[0048] The elastic support assembly includes a connecting frame 2 connected to the reactor body 1, a first connecting plate 4 is provided on the connecting frame 2, and a second connecting plate 5 is provided on the supporting frame 3;
[0049] The end of the first connecting plate 4 away from the connecting frame 2 and the end of the second connecting plate 5 away from the supporting frame 3 are connected through a pulling spring 6. Specifically, in this embodiment, four groups of pulling springs 6 are provided, and the four groups of pulling springs 6 are distributed in the shape of a quadrangular pyramid, so that the reactor body 1 has a tendency to be pulled and move away from the supporting frame 3, and under the action of the universal connection structure, the reactor body 1 can have higher stability in a static state, thereby providing a stable physical state for the operation of the reactor body 1.
[0050] The elastic support assembly also includes a universal connection structure connecting the connecting frame 2 and the receiving frame 3, and the universal connection structure includes a plurality of connecting seats 7 detachably mounted on the connecting frame 2 and the receiving frame 3 and corresponding to each other, a spherical cavity is formed in the connecting seat 7, and a connecting ball head 8 is provided in the spherical cavity. The two groups of connecting ball heads 8 in the two corresponding groups of the connecting seats 7 are connected by a connecting rod 9;
[0051] The connecting seat 7 arranged on the supporting frame 3 is provided with the conducting groove 701, and the connecting ball head 8 in the connecting seat 7 is provided with the limiting groove 801. When the insertion rod 10 is inserted into the conducting groove 701, the insertion rod 10 can lock the connecting ball head 8.
[0052] See Figure 3 In this embodiment, two groups of connecting seats 7 are provided on the connecting frame 2 and the supporting frame 3. The height of the connecting seats 7 located on the supporting frame 3 is higher than the height of the connecting seats 7 located on the connecting frame 2. At the same time, the connecting ball head 8 in the connecting seat 7 on the supporting frame 3 is connected to the connecting ball head 8 in the connecting seat 7 on the connecting frame 2 through a connecting rod 9, so that the inductor body 1 has a force pulled toward the supporting frame 3 under the action of its own gravity. This force and the force of the pulling spring 6 acting on the inductor body 1 to cause the inductor body 1 to move away from the supporting frame 3 offset each other, thereby ensuring the position stability of the inductor body 1 in a static state.
[0053] When the reactor body 1 is working and generates vibration, the vibration force can drive the reactor body 1 to vibrate. At this time, the pulling spring 6 can buffer the amplitude of the swing of the reactor body 1 due to vibration, so as to reduce the amplitude of the swing of the reactor body 1 due to vibration, improve the stability of the reactor body 1 during operation, and avoid the phenomenon of the wiring harness connected to it falling off due to the large degree of vibration of the reactor body 1, thereby ensuring the stable movement of the reactor body 1.
[0054] Through the above-mentioned arrangement, the pulling spring 6 and the universal connection structure can provide the reactor body 1 with two pulling forces with opposite directions of action, which can not only improve the position stability of the reactor body 1 in the static state, but also effectively improve the stability of the reactor body 1 during operation. Specifically, when the reactor body 1 swings due to vibration, the pulling spring 6 can buffer the movement of the reactor body 1, thereby reducing the swing amplitude of the reactor body 1, and can also avoid the phenomenon of the wiring harness connected to it falling off due to the large degree of vibration of the reactor body 1, so as to ensure the stable movement of the reactor body 1.
[0055] See also Figures 4 to 6 The insertion rod 10 is slidably arranged on the receiving frame 3. The insertion rod 10 can be inserted into the guide groove 701 and cooperate with the limit groove 801 to lock the elastic support assembly. Specifically, the insertion rod 10 is slidably connected to the guide member 11 fixedly mounted on the receiving frame 3, and the guide member 11 and the insertion rod 10 are connected by a first cylindrical spring 12;
[0056] The traction structure is connected to the insertion rod 10. The insertion rod 10 can be inserted into the guide groove 701 and separated from the guide groove 701 under the driving of the traction structure. The traction structure includes a sliding groove 13 provided on the insertion rod 10. A sliding connection portion 1401 is slidably installed in the sliding groove 13. The sliding connection portion 1401 is connected to the horizontal plate 14 provided on the receiving frame 3.
[0057] The traction structure also includes a guide plate 16 arranged on the supporting frame 3 and a convex shaft 15 rotatably connected to the transverse plate 14, the convex shaft 15 is adapted to the guide groove arranged on the guide plate 16, and the guide groove includes a horizontal groove 1601 arranged on the guide plate 16 and a vertical inclined groove 1602 connected to the horizontal groove 1601, and the angle between the vertical inclined groove 1602 and the horizontal groove 1601 is an acute angle.
[0058] When installing the wiring harness and debugging the reactor, the insertion rod 10 is inserted into the conducting groove 701. At this time, the limit groove 801 is also in contact with the insertion rod 10. In this state, the connecting ball head 8 can be locked. At this time, the position state of the connecting rod 9 is locked, so that the elastic connection between the reactor body 1 and the supporting frame 3 is switched to a hard connection, so that the reactor body 1 can have higher stability. At this time, the connection of the wiring harness and related debugging work can be facilitated, and the difficulty in operation caused by the elastic connection relationship between the reactor body 1 and the supporting frame 3 can be avoided during the connection of the wiring harness and debugging.
[0059] Specifically, when the insertion rod 10 is inserted into the conducting groove 701, the first cylindrical spring 12 is in a stretched state. At this time, the transverse plate 14 is pulled by the insertion rod 10 and the convex shaft 15 is located in the horizontal groove 1601 away from one end of the vertical inclined groove 1602. At this time, the position of the insertion rod 10 is elastically locked, thereby improving the matching stability of the insertion rod 10 with the conducting groove 701 and the limit groove 801 in this state, thereby making the hard connection relationship between the inductor body 1 and the receiving frame 3 more stable. When the wiring harness connection and related debugging work are completed, the pull ring at one end of the transverse plate 14 is pulled so that the transverse plate 14 can move horizontally. At this time, the transverse plate 14 can drive the insertion rod 10 to separate from the conducting groove 701 through the sliding connection part 1401 and the slide groove 13. At this time, the hard connection between the inductor body 1 and the receiving frame 3 can be switched to an elastic connection. At the same time, when the transverse plate 14 is pulled to the end of the stroke, the convex shaft 15 can be When the cam 15 is in the vertical inclined groove 1602, the cam 15 will move toward the lower end of the vertical inclined groove 1602. When the cam 15 is in the vertical inclined groove 1602, the cam 15 will move toward the lower end of the vertical inclined groove 1602. When the cam 15 is in the vertical inclined groove 1602, the cam 15 will move toward the lower end of the vertical inclined groove 1602. When the cam 15 moves to the lower end of the vertical inclined groove 1602, the plug 10 can maintain a stable separation from the conductive groove 701, thereby preventing the vibration force from being transmitted to the plug 10 when the reactor body 1 is working and vibrating, causing the plug 10 to retreat back into the conductive groove 701, thereby preventing the reactor body 1 from being elastically buffered under vibration.
[0060] Furthermore, in this embodiment, only two groups of universal connection structures are provided in the vertical direction. At this time, when the connecting ball head 8 is locked, although the reactor body 1 has a certain stability, it can still swing left and right. In order to solve this technical problem, in this embodiment, four groups of universal connection structures are preferably provided, that is, the universal connection structures are arranged in two parallel rows and two columns.
[0061] Through the above-mentioned setting, the insertion rod 10 has two stable position states, so that the reactor body 1 and the supporting frame 3 can switch freely between hard connection and elastic connection. On the one hand, it can improve the position stability of the reactor body 1 during the installation and debugging of the wiring harness, and facilitate the operation of construction personnel. On the other hand, when the reactor body 1 is working, its swing caused by vibration can be effectively buffered, thereby improving the stability of the operation of the reactor body 1.
[0062] See also Figures 7 and 8, a safe ultra-high voltage reactor with reduced amplitude, also includes: a conductive electrode 17, a connecting frame 18 and an energy storage component.
[0063] The conductive electrode 17 is electrically connected to the reactor body 1;
[0064] The connecting frame 18 is detachably mounted on the reactor body 1 . The connecting frame 18 is provided with a quadrilateral structure, which can press the wire onto the conductive electrode 17 by deflection.
[0065] The quadrilateral structure includes two groups of hinged rods 19 rotatably mounted on the side of the connecting frame 18. The two groups of hinged rods 19 are parallel, and one end of the two groups of hinged rods 19 away from the connecting frame 18 is connected to a pressure plate 20. The pressure plate 20 is provided with an inverted tooth 2001 on the side facing the conductive electrode 17.
[0066] It should be noted that the hinge points of the hinged rods 19 on the connecting frame 18 are on the same vertical plane, and the two groups of hinged rods 19 are in a parallel state. At the same time, the pressure plate 20 is in a vertical state, so that the two groups of hinged rods 19, the connecting frame 18 and the pressure plate 20 can form a parallelogram structure, and thus when the hinged rod 19 moves and drives the pressure plate 20 to move, the pressure plate 20 can always remain in a vertical state, and when it abuts against the wire connector placed on the conductive electrode 17, the pressure plate 20 can be pressed on the wire connector, so that there is a larger contact area between the pressure plate 20 and the wire connector, thereby improving the stability of the wire connector when being pressed.
[0067] Furthermore, since the pressure plate 20 performs a quasi-circular motion and is provided with inverted teeth 2001, when the inverted teeth 2001 are in contact with the wire connector, there is a certain tendency to push the wire connector upward, which has the effect of better connecting the wire connector and the conductive electrode 17, while preventing the wire connector from moving downward and causing the conductive electrode 17 to detach.
[0068] See also Figures 7 to 10 A connecting shaft 22 is fixedly mounted on the connecting frame 18, and the connecting shaft 22 is rotatably connected to the hinge rod 19. A limiting portion 2201 provided on the connecting shaft 22 is adapted to an arc-shaped groove 1901 provided on the hinge rod 19. When the limiting portion 2201 abuts against the side wall of the arc-shaped groove 1901, the hinge rod 19 is perpendicular to the pressure plate 20.
[0069] The energy storage assembly is arranged on the connecting frame 18, and the energy storage assembly cooperates with the abutment wheel 21 connected to the hinged rod 19, so that the quadrilateral structure has a state of being away from or close to the conductive electrode 17. The energy storage assembly includes a side frame 23 fixedly mounted on the side of the connecting frame 18, and a retardation groove 2301 is provided on the side frame 23. A slider 25 is slidably installed in the retardation groove 2301. The slider 25 is connected to an extrusion plate 24 that rolls with the abutment wheel 21. The extrusion plate 24 is connected to the side frame 23 by a second cylindrical spring 26.
[0070] In the initial state, the hinged rod 19 is perpendicular to the pressure plate 20. At this time, the distance between the pressure plate 20 and the conductive electrode 17 is the largest, so that the wire connector can be conveniently placed on the conductive electrode 17. At the same time, in this state, the second cylindrical spring 26 is in a stretched state, and the extrusion plate 24 has a force applied to the abutment wheel 21, and the limiting portion 2201 is in abutment with the arc-shaped groove 1901, so that the hinged rod 19 can have higher stability in this position state.
[0071] When the second spring 26 is pulled back, the second spring 26 is pulled back again, and the second spring 26 is pulled back again, so that the second spring 26 is pulled back again. When the second spring 26 is pulled back, the second spring 26 is pulled back again, and the second spring 26 is pulled back again. When the second spring 26 is pulled back, the second spring 26 is pulled back again, and the second spring 26 is pulled back again. When the second spring 26 is pulled back, the second spring 26 is pulled back again, and the second spring 26 is pulled back again. When the second spring 26 is pulled back, the second spring 26 is pulled back again, and the second spring 26 is pulled back again, and the second spring 26 is pulled back again.
[0072] Furthermore, due to the presence of the second cylindrical spring 26, the abutment force between the pressure plate 20 and the wire connector is an elastic force. Compared with the tightening force generated by the bolts in the prior art, the elastic force can ensure the connection stability during the vibration of the reactor body 1 while avoiding the decrease in the force of the pressure plate 20 acting on the wire connector. Compared with the use of bolt connection, this solves the problem of the decrease in the contact force between the wire connector and the conductive electrode 17 due to the loosening of the bolts due to vibration, and avoids the occurrence of false connection and slippage between the wire connector and the conductive electrode 17.
[0073] Furthermore, the inverted teeth 2001 can prevent the wire connector from moving in the vertical direction. In order to prevent the wire connector from moving in the horizontal direction, a vertical ridge can be provided on the conductive electrode 17 to limit the horizontal sliding of the wire connector.
[0074] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
[0075] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
Claims
1. A safe UHV reactor with reduced amplitude, characterized in that: include: A receiving frame, on which a reactor body is arranged; An elastic support assembly is connected to the receiving frame and the reactor body, and a limiting groove and a conducting groove are formed on the elastic support assembly; An insert rod is slidably arranged on the receiving frame, and the insert rod can be inserted into the guide groove and cooperate with the limit groove to lock the elastic support assembly; A traction structure connected to the insertion rod, wherein the insertion rod can be driven by the traction structure to have two states: inserted into the conducting groove and separated from the conducting groove; The elastic support assembly includes a connecting frame connected to the reactor body, the connecting frame is provided with a first connecting plate, and the supporting frame is provided with a second connecting plate; An end of the first connecting plate away from the connecting frame and an end of the second connecting plate away from the receiving frame are connected via a tension spring; The elastic support assembly also includes a universal connection structure connecting the connecting frame and the receiving frame; The universal connection structure includes a plurality of connecting seats detachably mounted on the connecting frame and the receiving frame and corresponding to each other, each of the connecting seats having a spherical cavity formed therein, a connecting ball head disposed in each of the spherical cavities, and two sets of connecting ball heads in two corresponding sets of the connecting seats being connected by a connecting rod; The connecting seat arranged on the supporting frame is provided with the conducting groove, and the connecting ball head in the connecting seat is provided with the limiting groove. When the inserting rod is inserted into the conducting groove, the inserting rod can lock the connecting ball head.
2. The amplitude-reduced safety UHV reactor according to claim 1, characterized in that: The insertion rod is slidably connected to a guide piece fixedly mounted on the receiving frame, and the guide piece and the insertion rod are connected via a first cylindrical spring.
3. The amplitude-reduced safety UHV reactor according to claim 1, characterized in that: The traction structure includes a slide groove provided on the insertion rod, a sliding connection portion is slidably installed in the slide groove, and the sliding connection portion is connected to a horizontal plate provided on the receiving frame; The traction structure further comprises a guide plate arranged on the supporting frame and a convex shaft rotatably connected to the transverse plate, wherein the convex shaft is adapted to a guide groove arranged on the guide plate.
4. The amplitude-reduced safety UHV reactor according to claim 3, characterized in that: The guide groove includes a horizontal groove provided on the guide plate and a vertical inclined groove communicated with the horizontal groove, wherein an angle between the vertical inclined groove and the horizontal groove is an acute angle.
5. The amplitude-reduced safety UHV reactor according to claim 1, characterized in that: Also includes: A conductive electrode electrically connected to the reactor body; A connecting frame is detachably mounted on the reactor body, wherein the connecting frame is provided with a quadrilateral structure, and the quadrilateral structure can press the wire onto the conductive electrode by deflection; An energy storage component is arranged on the connecting frame, and the energy storage component cooperates with the abutment wheel connected to the quadrilateral structure to enable the quadrilateral structure to be in a state of being away from or close to the conductive electrode.
6. The amplitude-reduced safety UHV reactor according to claim 5, characterized in that: The quadrilateral structure includes two groups of hinged rods rotatably mounted on the side of the connecting frame, the two groups of hinged rods are parallel, and one end of the two groups of hinged rods away from the connecting frame is connected to a pressure plate, and the pressure plate is provided with inverted teeth on the side facing the conductive electrode.
7. The amplitude-reduced safety UHV reactor according to claim 6, characterized in that: A connecting shaft is fixedly installed on the connecting frame, and the connecting shaft is rotatably connected to the hinge rod. The limiting portion provided on the connecting shaft is adapted to the arc-shaped groove provided on the hinge rod. When the limiting portion abuts against the side wall of the arc-shaped groove, the hinge rod is perpendicular to the pressure plate.
8. The amplitude-reduced safety UHV reactor according to claim 5, characterized in that: The energy storage assembly includes a side frame fixedly mounted on the side of the connecting frame, the side frame is provided with a retardation groove, a slider is slidably mounted in the retardation groove, the slider is connected to an extrusion plate that rolls with the abutment wheel, and the extrusion plate is connected to the side frame via a second cylindrical spring.
Citation Information
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