Energy storage electric operating mechanism and linkage device thereof
By designing a detachable buffer pad and limiting block structure, combined with a plug-in slot and drive mechanism, the problem of difficulty in replacing and fixing the buffer pad after damage is solved, thus improving the buffering effect of the energy storage electric operating mechanism.
Patent Information
- Application Number
- CN202423130558.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-12-17
AI Technical Summary
In existing energy storage electric operating mechanisms, the buffer pads are easily damaged after prolonged impact, resulting in reduced buffering effect and difficulty in effective replacement and fixation.
A linkage device was designed, which uses a detachable buffer pad and a limiting block structure, and utilizes a plug-in block and a drive mechanism to realize the convenient replacement and fixation of the buffer pad and the limiting block, and uses a plug-in slot and a drive mechanism for positioning and fixation.
It enables convenient replacement and fixing of buffer pads, improves the buffering effect, and ensures the stable operation of the energy storage electric operating mechanism.
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Figure CN223743570U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of circuit breaker especially is concerned with a kind of energy storage electric operating mechanism and its linkage device. BACKGROUND
[0002] Energy storage electric operating mechanism is a kind of key equipment widely used in electrical field, and its core function is to convert electrical energy into mechanical energy or other forms of energy storage, and quickly release when needed to complete specific operation action.
[0003] The prior art can refer to the Chinese patent with the authorization announcement No.CN115642061A, which discloses a spring energy storage type electric circuit breaker operating mechanism, comprising a base, a storage mechanism is installed on the base, the storage mechanism includes a fixed seat, an energy storage spring, a moving seat, a positioning rod and a moving block, the fixed seat is arranged at one side of the top end of the base, the energy storage spring is arranged on the side of the fixed seat, the moving seat is arranged at one end of the energy storage spring away from the fixed seat, the positioning rod is arranged on both sides of the energy storage spring, the moving block is arranged on the positioning rod, the moving block and the positioning rod are slidably connected, the moving block and the moving seat are fixedly connected, the storage mechanism further comprises a buffer pad, the buffer pad is arranged on the inner side of the moving block and the limiting block respectively, and the buffer pad is fixedly connected between the moving block and the limiting block respectively.
[0004] However, when the buffer pad is impacted for a long time, it may no longer play a buffering role due to damage, thereby possibly reducing the buffering effect of the buffer pad. UTILITY MODEL CONTENT
[0005] The present application provides an energy storage electric operating mechanism and its linkage device, which can improve the buffering effect of the buffer pad.
[0006] The energy storage electric operating mechanism provided by the present application adopts the following technical scheme:
[0007] An energy storage electric operating mechanism, comprising a base, a fixed seat is arranged on the base, two positioning rods are arranged on the fixed seat, a moving block is slidably arranged on the positioning rod, the moving block is sleeved on the positioning rod, a limiting block is arranged at one end of the positioning rod away from the fixed seat, the moving block can abut against the limiting block, a buffer pad is sleeved on the positioning rod, the buffer pad is detachably arranged on the positioning rod, the limiting block is detachably arranged on the end portion of the positioning rod, and a linkage device is arranged on the positioning rod for fixing the buffer pad and the limiting block.
[0008] By adopting the technical scheme, when the buffer gasket is damaged, the fixing effect of the limiting block and the buffer gasket by the linkage device is cancelled first, then the new buffer gasket is sleeved on the positioning rod, and the limiting block is placed, and finally the limiting block and the buffer gasket are fixed by the linkage device, so that the damaged buffer gasket can be replaced conveniently, and the buffering effect of the buffer gasket can be improved conveniently.
[0009] The utility model discloses still provide a kind of linkage device of energy storage electric operating mechanism, using following technical scheme:
[0010] A kind of linkage device of energy storage electric operating mechanism, the linkage device includes first plug-in block and second plug-in block, the outer side wall of the positioning rod is equipped with first sliding slot, the first plug-in block is slidably arranged in the inner wall of the first sliding slot, the inner wall of the buffer gasket is equipped with first plug-in slot, the first plug-in block can be inserted in the inner wall of the first plug-in slot, first drive mechanism is arranged in the positioning rod for driving the first plug-in block to be inserted in the first plug-in slot;The end of the positioning rod close to the limiting block is fixedly connected with lug, the side of the limiting block close to the positioning rod is equipped with recess, the lug can be inserted in the inner wall of the recess, the inner wall of the recess is equipped with second sliding slot, the second plug-in block is slidably arranged in the inner wall of the second sliding slot, the lug is equipped with second plug-in slot, the second plug-in block can be inserted in the inner wall of the second plug-in slot, the limiting block is arranged with second drive mechanism for driving the second plug-in block to be inserted in the inner wall of the second plug-in slot.
[0011] By adopting the technical scheme, when the buffer gasket is damaged, the fixing effect of the limiting block and the buffer gasket by the linkage device is cancelled first, then the new buffer gasket is sleeved on the positioning rod, and the limiting block is placed, and finally the limiting block and the buffer gasket are fixed by the linkage device, so that the damaged buffer gasket can be replaced conveniently, and the buffering effect of the buffer gasket can be improved conveniently.
[0012] Preferably, the first driving mechanism comprises a linkage block, the positioning rod is provided with a third sliding groove on one side close to the limiting block, the linkage block is slidingly arranged in the third sliding groove, a first spring is arranged in the third sliding groove, one end of the first spring is fixedly connected to the linkage block, the other end of the first spring is fixedly connected to the inner wall of the third sliding groove, the linkage block can abut against the limiting block, the inner wall of the third sliding groove is provided with a linkage groove, the linkage groove is in communication with the first sliding groove, a connecting rod is arranged in the linkage groove, one end of the connecting rod is hingedly connected to the linkage block, and the other end of the connecting rod is hingedly connected to the first plug-in block.
[0013] By adopting the above technical scheme, when it is required to drive the first plug-in block to be plugged into the inner wall of the first plug-in groove, the limiting block is first driven to move to the positioning rod, when the limiting block abuts against the linkage block, the limiting block drives the linkage block to move, at this time, the first spring is in a compressed state, and the first plug-in block moves towards the first plug-in groove under the action of the connecting rod, so that the first plug-in block can be conveniently driven to be plugged into the inner wall of the first plug-in groove.
[0014] Preferably, the second driving mechanism comprises a second spring, the second spring is arranged on the inner wall of the second sliding groove, one end of the second spring is fixedly connected to the inner wall of the second sliding groove, and the other end of the second spring is fixedly connected to the second plug-in block.
[0015] By adopting the above technical scheme, when it is required to drive the second plug-in block to be plugged into the inner wall of the second plug-in groove, at this time, the second spring is in a compressed state, the blocking effect of the blocking assembly on the second plug-in block is first cancelled, at this time, the second plug-in block moves under the elastic force of the second spring and abuts against the outer side wall of the protruding block, when the second plug-in block is aligned with the inner wall of the second plug-in groove, the second plug-in block is plugged into the inner wall of the second plug-in groove under the elastic force of the second spring.
[0016] Preferably, the blocking assembly comprises a sliding block, the sliding block is slidingly arranged on the inner wall of the groove, the second plug-in block can abut against the outer side wall of the sliding block, a third spring is arranged in the groove, one end of the third spring is fixedly connected to the inner wall of the groove, the other end of the third spring is fixedly connected to the sliding block, the sliding block can abut against the protruding block, and the limiting block is provided with a separating component for driving the second plug-in block to separate from the second plug-in groove.
[0017] By adopting the technical scheme, when the second plug-in block needs to be blocked, the second plug-in block is abutted against the outer side wall of the sliding block, so that the second plug-in block can be conveniently blocked; when the second plug-in block is plugged into the inner wall of the second plug-in slot, the third spring is in a compressed state; when the second plug-in block needs to be reset, the second plug-in block is first separated from the second plug-in slot by the separating component, at this time, the sliding block moves to the second plug-in block under the elastic force of the third spring, and the second plug-in block is abutted against the sliding block again.
[0018] Preferably, the separating component comprises a pressing block, an outer side wall of the limiting block is provided with a pressing groove, the pressing block is slidingly arranged on the inner wall of the pressing groove, a connecting rod is fixedly connected to the pressing block, a linkage rope is arranged on the connecting rod, a mounting groove is arranged on one side of the second sliding groove away from the second plug-in block, one end of the linkage rope is fixedly connected to the connecting rod, and the other end of the linkage rope is arranged through the mounting groove and fixedly connected to the second plug-in block.
[0019] By adopting the technical scheme, when the second plug-in block needs to be driven to be separated from the second plug-in slot, an operator can manually press the pressing block, the pressing block drives the connecting rod to move, at this time, the second plug-in block moves away from the second plug-in slot under the action of the linkage rope, so that the second plug-in block can be conveniently driven to be separated from the second plug-in slot.
[0020] Preferably, a guide wheel is rotatably arranged in the mounting groove, and the guide wheel cooperates with the linkage rope.
[0021] By adopting the technical scheme, when the linkage rope moves in the mounting groove, the guide wheel can conveniently guide the linkage rope, so that the possibility of damage of the linkage rope to the inner wall of the mounting groove is reduced, and the movement of the linkage rope is facilitated.
[0022] Preferably, a stop block is fixedly connected to the pressing block, a stop groove is arranged on the inner wall of the pressing groove, and the stop block can abut against the inner wall of the stop groove.
[0023] By adopting the technical scheme, when the pressing block moves on the inner wall of the pressing groove, the stop block and the stop groove can conveniently reduce the possibility of separation of the pressing block from the pressing groove.
[0024] In summary, the present application has at least one of the following beneficial technical effects:
[0025] 1. When the buffer gasket is damaged, first cancel the fixing effect of the linkage device on the limiting block and the buffer gasket, then set the new buffer gasket on the positioning rod, and place the limiting block, and finally fix the limiting block and the buffer gasket through the linkage device, so that the damaged buffer gasket can be replaced, thereby improving the buffering effect of the buffer gasket;
[0026] 2. When the buffer gasket needs to be fixed, first set the buffer gasket on the outer side wall of the positioning rod, align the first insertion block with the first insertion slot, and then drive the first insertion block to be inserted into the inner wall of the first insertion slot through the first driving mechanism, so that the buffer gasket can be fixed; when the limiting block needs to be fixed, first drive the limiting block to move to one end of the positioning rod, when the protrusion is aligned with the groove, drive the limiting block to move so that the protrusion is inserted into the inner wall of the groove, when the second insertion block is aligned with the second insertion slot, drive the second insertion block to be inserted into the inner wall of the second insertion slot through the second driving mechanism, so that the limiting block can be fixed;
[0027] 3. When the second insertion block needs to be blocked, the second insertion block is abutted to the outer side wall of the sliding block through the setting of the sliding block, so that the second insertion block can be blocked; when the second insertion block is inserted into the inner wall of the second insertion slot, the third spring is in a compressed state, when the second insertion block needs to be reset, first separate the second insertion block from the second insertion slot through the separating part, at this time the sliding block moves to the second insertion block under the elastic force of the third spring, and the second insertion block is abutted to the sliding block again. BRIEF DESCRIPTION OF DRAWINGS
[0028] Figure 1 is the overall structure schematic view of the utility model;
[0029] Figure 2 is the sectional view of the display linkage device in the utility model;
[0030] Figure 3 is Figure 2 the local enlarged view of A in
[0031] Figure 4 is Figure 2 the local enlarged view of B in
[0032] Explanation of reference numerals in the attached drawings: 1. Base; 11. Fixed seat; 12. Positioning rod; 13. Moving block; 14. Limiting block; 15. Buffer pad; 2. Linkage device; 211. First insertion block; 212. Second insertion block; 213. First sliding groove; 214. First insertion groove; 215. Protrusion; 216. Groove; 217. Second sliding groove; 218. Second insertion groove; 22. First drive mechanism; 221. Linkage block; 222. Third sliding groove; 223. First spring; 224. Linkage groove; 225. Connecting rod; 23. Second drive mechanism; 231. Second spring; 24. Blocking assembly; 241. Sliding block; 242. Third spring; 25. Separation component; 251. Pressing block; 252. Pressing groove; 253. Connecting rod; 254. Linkage rope; 255. Mounting groove; 256. Guide wheel; 261. Stop block; 262. Stop groove. Detailed Implementation
[0033] The following is in conjunction with the appendix Figures 1-4 An energy storage electric operating mechanism, such as Figure 1 As shown, the system includes a base 1, which is square and horizontally oriented. A fixed seat 11 is mounted on the base 1, which is also square and vertically oriented. Two positioning rods 12 are fixedly connected to the fixed seat 11. The positioning rods 12 have a circular cross-section and are oriented along the width of the base 1. A movable block 13, which is square, is slidably mounted on the positioning rods 12 along the width of the base 1. The movable block 13 is sleeved on the positioning rods 12. A limiting block 14, which is circular, is mounted on the end of the positioning rods 12 away from the fixed seat 11. The movable block 13 can abut against the side of the limiting block 14 near the positioning rods 12. A buffer pad 15 is mounted on the positioning rods 12 and is detachably mounted on the positioning rods 12. The limiting block 14 is detachably mounted on the end of the positioning rods 12. A linkage device 2 is provided on the positioning rods 12 for fixing the buffer pad 15 and the limiting block 14.
[0034] When the buffer pad 15 is damaged, the fixing effect of the linkage device 2 on the limit block 14 and the buffer pad 15 is first canceled. Then, the new buffer pad 15 is put on the positioning rod 12 and the limit block 14 is placed. Finally, the linkage device 2 is used to fix the limit block 14 and the buffer pad 15. This makes it easy to replace the damaged buffer pad 15 and improve the buffering effect of the buffer pad 15.
[0035] This utility model also discloses a linkage device 2 for an energy storage electric operating mechanism, such as... Figure 2As shown, the linkage device 2 comprises a first plug block 211 and a second plug block 212, both of which are square-shaped and arranged in the vertical direction. The outer side wall of the positioning rod 12 is provided with a first sliding groove 213 which is square-shaped in cross section and extends in the vertical direction. The first plug block 211 is slidingly arranged on the inner wall of the first sliding groove 213 in the vertical direction. The inner wall of the buffer gasket 15 is provided with a first plug groove 214 which is square-shaped in cross section and extends in the vertical direction. The first plug block 211 can be plugged into the inner wall of the first plug groove 214. The positioning rod 12 is provided with a first driving mechanism 22 for driving the first plug block 211 to be plugged into the first plug groove 214.
[0036] As shown in Figure 2 and Figure 3 , the end of the positioning rod 12 close to the limiting block 14 is fixedly connected with a protrusion 215 which is circular in cross section. The side of the limiting block 14 close to the positioning rod 12 is provided with a groove 216 which is circular in cross section and extends in the axial direction of the positioning rod 12. The protrusion 215 can be plugged into the inner wall of the groove 216. The inner wall of the groove 216 is provided with a second sliding groove 217 which is square-shaped in cross section and extends in the vertical direction. The second plug block 212 is slidingly arranged on the inner wall of the second sliding groove 217 in the vertical direction. The outer side wall of the protrusion 215 is provided with a second plug groove 218 which is square-shaped in cross section and extends in the vertical direction. The second plug block 212 can be plugged into the inner wall of the second plug groove 218. The limiting block 14 is provided with a second driving mechanism 23 for driving the second plug block 212 to be plugged into the inner wall of the second plug groove 218.
[0037] When it is necessary to fix the buffer gasket 15, the buffer gasket 15 is first sleeved on the outer side wall of the positioning rod 12, and the first plug block 211 is aligned with the first plug groove 214. Then the first plug block 211 is driven by the first driving mechanism 22 to be plugged into the inner wall of the first plug groove 214, thereby facilitating the fixation of the buffer gasket 15. When it is necessary to fix the limiting block 14, the limiting block 14 is first driven to move to one end of the positioning rod 12. When the protrusion 215 is aligned with the groove 216, the limiting block 14 is driven to move so that the protrusion 215 is plugged into the inner wall of the groove 216. When the second plug block 212 is aligned with the second plug groove 218, the second plug block 212 is driven by the second driving mechanism 23 to be plugged into the inner wall of the second plug groove 218, thereby facilitating the fixation of the limiting block 14.
[0038] As shown in Figure 2 and Figure 4As shown, the first drive mechanism 22 includes a linkage block 221, which is square and horizontally oriented. A third sliding groove 222 is provided on the side of the positioning rod 12 near the limiting block 14. The third sliding groove 222 has a square cross-section and extends horizontally. The linkage block 221 is slidably disposed on the inner wall of the third sliding groove 222 along the axial direction of the positioning rod 12. A first spring 223 is disposed within the third sliding groove 222, which is axially oriented along the positioning rod 12. One end of the first spring 223 is fixedly connected to the linkage block 221 away from the limiting block 14. On one side of 4, the other end of the first spring 223 is fixedly connected to the inner wall of the third sliding groove 222. The linkage block 221 can abut against the side of the limiting block 14 near the positioning rod 12. The inner wall of the third sliding groove 222 is provided with a linkage groove 224. The linkage groove 224 extends in the horizontal direction and is connected to the first sliding groove 213. A connecting rod 225 is provided in the linkage groove 224. The cross-section of the connecting rod 225 is square. One end of the connecting rod 225 is hinged to the bottom of the linkage block 221, and the other end of the connecting rod 225 is hinged to the top of the first plug-in block 211.
[0039] When it is necessary to drive the first plug block 211 to be inserted into the inner wall of the first plug slot 214, the limiting block 14 is first driven to move to the positioning rod 12. When the limiting block 14 abuts against the linkage block 221, the limiting block 14 drives the linkage block 221 to move. At this time, the first spring 223 is in a compressed state. Under the action of the connecting rod 225, the first plug block 211 moves towards the first plug slot 214, so that it is easy to drive the first plug block 211 to be inserted into the inner wall of the first plug slot 214.
[0040] like Figure 2 and Figure 3 As shown, the second drive mechanism 23 includes a second spring 231, which is arranged vertically and disposed on the inner wall of the second sliding groove 217. One end of the second spring 231 is fixedly connected to the inner wall of the second sliding groove 217, and the other end of the second spring 231 is fixedly connected to the side of the second plug block 212 away from the protrusion 215. A blocking component 24 for blocking the second plug block 212 is provided in the groove 216.
[0041] When the second plug block 212 needs to be inserted into the inner wall of the second plug groove 218, the second spring 231 is in a compressed state. The blocking component 24 first cancels the blocking effect on the second plug block 212. At this time, the second plug block 212 moves under the elastic force of the second spring 231 and abuts against the outer wall of the protrusion 215. When the second plug block 212 is aligned with the inner wall of the second plug groove 218, the second plug block 212 is inserted into the inner wall of the second plug groove 218 under the elastic force of the second spring 231.
[0042] likeFigure 2 and Figure 3 As shown, the blocking assembly 24 includes a sliding block 241 with a circular cross-section and arranged along the axial direction of the positioning rod 12. The sliding block 241 is slidably disposed on the inner wall of the groove 216 along the axial direction of the positioning rod 12. The second insertion block 212 can abut against the outer wall of the sliding block 241. A third spring 242 is disposed in the groove 216 and is arranged along the axial direction of the positioning rod 12. One end of the third spring 242 is fixedly connected to the inner wall of the groove 216, and the other end of the third spring 242 is fixedly connected to the side of the sliding block 241 away from the protrusion 215. The sliding block 241 can abut against the protrusion 215. A separation component 25 is disposed in the limiting block 14 for driving the second insertion block 212 to separate from the second insertion groove 218.
[0043] When it is necessary to block the second plug-in block 212, the second plug-in block 212 abuts against the outer wall of the sliding block 241 through the setting of the sliding block 241, thereby facilitating the blocking of the second plug-in block 212; when the second plug-in block 212 is inserted into the inner wall of the second plug-in groove 218, the third spring 242 is in a compressed state; when it is necessary to reset the second plug-in block 212, the second plug-in block 212 is first driven to separate from the second plug-in groove 218 through the separation component 25. At this time, the sliding block 241 moves to the second plug-in block 212 under the elastic force of the third spring 242, and the second plug-in block 212 abuts against the sliding block 241 again.
[0044] like Figure 2 and Figure 3 As shown, the separating component 25 includes a pressing block 251, which is square in shape. A pressing groove 252 is provided on the outer wall of the limiting block 14. The pressing groove 252 has a square cross-section and extends vertically. The pressing block 251 is slidably disposed on the inner wall of the pressing groove 252 in the vertical direction. A connecting rod 253 is fixedly connected to the top of the pressing block 251. The connecting rod 253 has a circular cross-section and is disposed vertically. A linkage rope 254 is provided on the connecting rod 253. An installation groove 255 is provided on the side of the second sliding groove 217 away from the second plug-in block 212. The installation groove 255 extends horizontally. One end of the linkage rope 254 is fixedly connected to the top of the connecting rod 253. The other end of the linkage rope 254 passes through the installation groove 255 and is fixedly connected to the bottom of the second plug-in block 212. A second spring 231 is sleeved on the linkage rope 254.
[0045] When it is necessary to drive the second plug block 212 to separate from the second plug slot 218, the operator can manually press the push block 251. The push block 251 drives the connecting rod 253 to move. At this time, the second plug block 212 moves away from the second plug slot 218 under the action of the linkage rope 254, which makes it easier to drive the second plug block 212 to separate from the second plug slot 218.
[0046] As shown in Figure 2 and Figure 3 shown, the guide wheel 256 is rotatably arranged in the installation slot 255 through a bearing, and the guide wheel 256 cooperates with the linkage rope 254. When the linkage rope 254 moves in the installation slot 255, the guide wheel 256 can facilitate the guiding of the linkage rope 254, thereby facilitating the movement of the linkage rope 254 and reducing the possibility of damage caused by the friction between the linkage rope 254 and the inner wall of the installation slot 255.
[0047] As shown in Figure 2 and Figure 3 shown, the pressing block 251 is fixedly connected with a stop block 261, the stop block 261 is square, the inner wall of the pressing slot 252 is provided with a stop slot 262, the cross section of the stop slot 262 is square and extends in the vertical direction, and the stop block 261 can abut against the inner wall of the stop slot 262. When the pressing block 251 moves in the inner wall of the pressing slot 252, the stop block 261 and the stop slot 262 can facilitate the reduction of the possibility of separation of the pressing block 251 and the pressing slot 252.
[0048] The implementation principle of the energy storage electric operating mechanism and the linkage device 2 of the embodiment of the present application is as follows:
[0049] When the buffer gasket 15 is damaged, the fixing effect of the linkage device 2 on the limiting block 14 and the buffer gasket 15 is cancelled first, then the new buffer gasket 15 is sleeved on the positioning rod 12, the limiting block 14 is placed, and finally the limiting block 14 and the buffer gasket 15 are fixed by the linkage device 2, so that the damaged buffer gasket 15 can be replaced, and the buffering effect of the buffer gasket 15 can be improved.
[0050] The above are the preferred embodiments of the present application, which do not limit the protection scope of the present application, so that: any equivalent changes made according to the structure, shape, principle of the present application should be covered within the protection scope of the present application.
Claims
1. An energy storage electric operating mechanism and its linkage device, comprising a base (1), a fixing seat (11) is arranged on the base (1), two positioning rods (12) are arranged on the fixing seat (11), a moving block (13) is slidably arranged on the positioning rods (12), the moving block (13) is sleeved on the positioning rods (12), a limiting block (14) is arranged on the end of the positioning rods (12) away from the fixing seat (11), and the moving block (13) can abut against the limiting block (14), characterized in that: The positioning rod (12) is sleeved with a buffer gasket (15), the buffer gasket (15) is detachably arranged on the positioning rod (12), the limiting block (14) is detachably arranged on the end of the positioning rod (12), and the positioning rod (12) is provided with a linkage device (2) for fixing the buffer gasket (15) and the limiting block (14). 2. A power storage motor operating mechanism and its linkage according to claim 1, characterized in that: The linkage device (2) comprises a first plug-in block (211) and a second plug-in block (212), the outer side wall of the positioning rod (12) is provided with a first sliding groove (213), the first plug-in block (211) is slidably arranged on the inner wall of the first sliding groove (213), the inner wall of the buffer gasket (15) is provided with a first plug-in groove (214), the first plug-in block (211) can be plugged into the inner wall of the first plug-in groove (214), and the positioning rod (12) is provided with a first driving mechanism (22) for driving the first plug-in block (211) to be plugged into the first plug-in groove (214); one end of the positioning rod (12) near the limiting block (14) is fixedly connected with a protruding block (215), one side of the limiting block (14) near the positioning rod (12) is provided with a groove (216), the protruding block (215) can be plugged into the inner wall of the groove (216), the inner wall of the groove (216) is provided with a second sliding groove (217), the second plug-in block (212) is slidably arranged on the inner wall of the second sliding groove (217), the protruding block (215) is provided with a second plug-in groove (218), and the second plug-in block (212) can be plugged into the inner wall of the second plug-in groove (218). The limiting block (14) is provided with a second driving mechanism (23) for driving the second plug-in block (212) to be plugged into the inner wall of the second plug-in groove (218).
3. A power storage motor operating mechanism and its linkage according to claim 2, characterized in that: The first driving mechanism (22) comprises a linkage block (221), one side of the positioning rod (12) near the limiting block (14) is provided with a third sliding groove (222), the linkage block (221) is slidably arranged in the third sliding groove (222), the third sliding groove (222) is provided with a first spring (223), one end of the first spring (223) is fixedly connected with the linkage block (221), the other end of the first spring (223) is fixedly connected with the inner wall of the third sliding groove (222), the linkage block (221) can abut against the limiting block (14), the inner wall of the third sliding groove (222) is provided with a linkage groove (224), the linkage groove (224) is communicated with the first sliding groove (213), the linkage groove (224) is provided with a connecting rod (225), one end of the connecting rod (225) is hinged to the linkage block (221), and the other end of the connecting rod (225) is hinged to the first plug-in block (211).
4. A power storage electric operating mechanism and its linkage according to claim 2, characterized in that: The second driving mechanism (23) comprises a second spring (231), which is arranged on the inner wall of the second sliding groove (217), one end of the second spring (231) is fixedly connected to the inner wall of the second sliding groove (217), the other end of the second spring (231) is fixedly connected to the second plug-in block (212), and the recess (216) is provided with a blocking assembly (24) for blocking the second plug-in block (212).
5. A power storage motor operating mechanism and its linkage according to claim 4, characterized in that: The blocking assembly (24) comprises a sliding block (241) which is slidingly arranged on the inner wall of the recess (216), the second plug-in block (212) can abut against the outer side wall of the sliding block (241), the recess (216) is provided with a third spring (242), one end of the third spring (242) is fixedly connected to the inner wall of the recess (216), the other end of the third spring (242) is fixedly connected to the sliding block (241), the sliding block (241) can abut against the protrusion (215), and the limiting block (14) is provided with a separation component (25) for driving the second plug-in block (212) to separate from the second plug-in groove (218).
6. A power storage motor operating mechanism and its linkage according to claim 5 wherein: The separation component (25) comprises a pressing block (251), the outer side wall of the limiting block (14) is provided with a pressing groove (252), the pressing block (251) is slidingly arranged on the inner wall of the pressing groove (252), the pressing block (251) is fixedly connected with a connecting rod (253), the connecting rod (253) is provided with a linkage rope (254), one side of the second sliding groove (217) away from the second plug-in block (212) is provided with a mounting groove (255), one end of the linkage rope (254) is fixedly connected to the connecting rod (253), and the other end of the linkage rope (254) is arranged through the mounting groove (255) and fixedly connected to the second plug-in block (212).
7. A power storage motor operating mechanism and its linkage according to claim 6 wherein: The mounting groove (255) is rotationally provided with a guide wheel (256), and the guide wheel (256) is matched with the linkage rope (254).
8. A power storage motor operating mechanism and its linkage according to claim 7, characterized in that: The pressing block (251) is fixedly connected with a stop block (261), the inner wall of the pressing groove (252) is provided with a stop groove (262), and the stop block (261) can abut against the inner wall of the stop groove (262).
Citation Information
Patent Citations
Spring energy storage type electric circuit breaker operating mechanism
CN115642061A