Lock spring propelling assembly with deformation reducing function

Through the combined design of the bracket, turntable, slide and propulsion mechanism, and the use of progressive thrust and slot positioning, the problem of lock spring deformation in the lock spring assembly mechanism is solved, and stable propulsion and efficient installation of the lock spring are achieved.

CN223353427UActive Publication Date: 2025-09-19SUZHOU ZHONGXINSHENG AUTOMATION EQUIP CO LTD
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Patent Information

Application Number
CN202422020883.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-20
Publication Date
2025-09-19
Estimated Expiration
2034-08-20

AI Technical Summary

Technical Problem

The existing lock spring assembly mechanism mainly relies on the cylinder to expand, which causes the lock spring to deform and affects its functional effect.

Method used

The bracket, turntable, slide and propulsion mechanism are used to reduce the deformation of the lock spring through progressive thrust. The propulsion mechanism is pushed by the cylinder to slide on the slide, applying uniform thrust. Combined with the slot and carrier design, the stability and precise positioning of the lock spring are ensured.

Benefits of technology

The deformation probability of the lock spring during the advancement process is reduced, the installation efficiency and quality of the lock spring are improved, the reliability and stability of the component are enhanced, and it is suitable for automated equipment and production lines.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a lock spring propelling assembly with a deformation reducing function, which comprises a support and a turntable, the turntable is arranged on the side edge of the support and is used for positioning a lock spring, a slide way is arranged on the support, and the slide way is arranged above the turntable; a slide way is arranged on the turntable, a pushing mechanism is arranged on the slide way, the pushing mechanism is connected with the slide way in a sliding manner, a pushing plate is arranged on the pushing mechanism, the pushing plate is positioned above the turntable, one end of the pushing plate is in contact with the turntable, the lock spring is arranged on the turntable, and the pushing plate is used for pushing the lock spring on the turntable. According to the lock spring pushing assembly, the sliding way and the pushing mechanism are arranged, the pushing mechanism is pushed by the air cylinder to slide on the sliding way, and therefore progressive pushing force is applied to the lock spring, the lock spring is evenly stressed, the probability that the lock spring deforms is reduced to a certain degree, the working efficiency of the lock spring pushing assembly is improved, and the mounting efficiency and quality of the lock spring are improved to a certain degree.
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Description

Technical Field

[0001] The utility model relates to the technical field of lock spring installation, in particular to a lock spring advancing component with a deformation reducing function. Background Art

[0002] The process of attaching a lock spring to a workpiece typically involves automated and mechanized assembly. A pneumatic cylinder is a pneumatic actuator that converts compressed air pressure into mechanical energy. It controls the position and speed of the actuator by controlling the flow and pressure of compressed air. Pneumatic cylinders play a vital role in industrial automation and are widely used in various mechanical devices, such as production lines, assembly lines, and robotics. Lock springs, on the other hand, possess a certain degree of elasticity and can deform to a certain degree under a certain force.

[0003] The mainstream lock spring assembly mechanism currently on the market mainly relies on cylinders to open the lock spring. However, the force of cylinders is relatively large. Although this process can be completed, it is also easy to cause the lock spring to deform, causing the lock spring to lose its original function. Utility Model Content

[0004] The purpose of the present invention is to solve the above-mentioned shortcomings and provide a lock spring propulsion group with the function of reducing deformation, hoping to improve the existing lock spring assembly mechanism, which is mostly supported by the cylinder and causes the lock spring to deform.

[0005] In order to solve the above technical problems, the present invention adopts the following technical solutions:

[0006] A lock spring propulsion assembly with a deformation reducing function includes a bracket and a turntable, the turntable is arranged on the side of the bracket, the turntable is used to position the lock spring, the bracket is provided with a slide, and the slide is arranged above the turntable; the slide is provided with a propulsion mechanism, the propulsion mechanism is slidably connected to the slide, the propulsion mechanism is provided with a push plate, the push plate is located above the turntable, and one end of the push plate is in contact with the turntable, the lock spring is arranged on the turntable, and the push plate is used to push the lock spring on the turntable.

[0007] A further technical solution is: a first cylinder is further provided on the bracket, the first cylinder is arranged on one side of the slide, and the first cylinder is used to push the propulsion mechanism to move.

[0008] A further technical solution is: a first groove is provided on the side of the propulsion mechanism close to the first cylinder, and a protruding rod is provided on the side of the first cylinder close to the slide, the first groove is adapted to the protruding rod, and the propulsion mechanism is driven by the first cylinder to move along the direction of the slide setting.

[0009] A further technical solution is: the push plate includes a connecting part and a pushing part, one end of the connecting part is connected to the propulsion mechanism, and the other end is connected to the pushing part; and the connecting part is arranged vertically to the propulsion mechanism; the pushing part is arranged in an L shape, and the pushing part is located in the middle of the turntable.

[0010] A further technical solution is: a card slot is provided on the turntable, and there are multiple card slots, a second groove is opened on the card slot, the lock spring is horizontally arranged in the second groove, the shape of the second groove is adapted to the lock spring, and the lock spring is arranged in the second groove.

[0011] A further technical solution is: a first protrusion is formed at one end of the pushing portion, and the first protrusion is adapted to the second groove.

[0012] A further technical solution is: a carrier is provided on one side of the turntable, the carrier is used to load the workpiece, and the workpiece is used to be connected to the locking spring.

[0013] A further technical solution is: a transverse groove is provided on the workpiece, and the locking spring is pushed into the transverse groove by the propulsion mechanism.

[0014] Compared with the prior art, the beneficial effects of the present invention are:

[0015] The utility model provides a slideway and a propulsion mechanism, and utilizes a cylinder to push the propulsion mechanism to slide on the slideway, thereby applying a progressive thrust to the lock spring, so that the lock spring is evenly stressed, which reduces the probability of deformation of the lock spring to a certain extent, improves the working efficiency of the lock spring propulsion assembly, and also improves the efficiency and quality of lock spring installation to a certain extent. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a schematic diagram of the overall structure of the utility model;

[0017] Figure 2 This is a schematic diagram of the propulsion mechanism structure of the utility model;

[0018] Figure 3 This is a top view of the utility model;

[0019] Figure 4 This is a schematic diagram of the turntable structure of the utility model;

[0020] Figure 5 This is a schematic diagram of the card slot structure of the utility model;

[0021] Figure 6 This is a schematic diagram of the structure of the push part of the utility model;

[0022] Figure 7 This is a schematic diagram of the structure of the vehicle of the present utility model;

[0023] Figure 8 This is a schematic diagram of the workpiece structure of the utility model;

[0024] Figure 9 This is a schematic diagram of the installation of the card slot and lock spring of the utility model.

[0025] Description of labels: 1. Bracket; 2. Turntable; 3. First cylinder; 31. Protruding rod; 4. Slide; 5. Propelling mechanism; 6. Push plate; 61. Connecting part; 62. Pushing part; 7. First groove; 8. Slot; 10. Second groove; 11. First protrusion; 12. Carrier; 13. Horizontal groove; 888. Workpiece; 999. Lock spring. DETAILED DESCRIPTION

[0026] The present invention will be further described below in conjunction with the accompanying drawings.

[0027] Example 1.

[0028] like Figure 1 As shown, one embodiment of the present invention is a lock spring advancing assembly, which aims to reduce the deformation of the lock spring during the advancement process through progressive thrust. The assembly mainly includes the following parts:

[0029] The bracket 1 serves as the basic supporting structure of the entire assembly, ensuring the stability and reliability of the entire assembly; the turntable 2 is arranged on the side of the bracket 1, and is designed to position and fix the lock spring 999. The turntable 2 is rotated by a motor; the slide 4 is arranged above the turntable 2 and remains parallel to the turntable 2. The slide 4 is firmly connected to the bracket 1 by fasteners such as bolts to ensure that it does not move during operation. The design of the slide 4 allows the propulsion mechanism 5 to slide smoothly on it; the propulsion mechanism 5 is slidably connected to the slide 4 and can move freely on the slide 4. The propulsion mechanism 5 receives the thrust from the power mechanism and converts it into linear motion along the slide 4; the push plate 6 is installed on the propulsion mechanism 5, and is designed to directly contact and push the lock spring 999 on the turntable 2. The shape and size of the push plate 6 are optimized according to the specific size and shape of the lock spring 999 to ensure effective and stable thrust transmission.

[0030] In the initial state, the propulsion mechanism 5 is located at the starting position of the slide 4, and the push plate 6 maintains a certain distance from the locking spring 999 on the turntable 2. The power mechanism is in the standby state;

[0031] When the lock spring 999 needs to be advanced, the power mechanism starts to work, generating thrust and acting on the propulsion mechanism 5. Under the action of the thrust, the propulsion mechanism 5 starts to slide along the slideway 4;

[0032] As the propulsion mechanism 5 slides on the slideway 4, the push plate 6 gradually approaches and contacts the lock spring 999 on the turntable 2. Because the thrust generated by the propulsion mechanism 5 sliding on the slideway 4 is progressive (i.e., the thrust gradually increases as the propulsion mechanism 5 moves), the force applied by the push plate 6 to the lock spring 999 is also progressive. This progressive thrust transmission method helps reduce the instantaneous impact and deformation of the lock spring 999 when it is subjected to the thrust.

[0033] Under the continuous push of the push plate 6, the lock spring 999 is smoothly pushed to the designated position. During the entire pushing process, the force applied to the lock spring 999 is always kept within a controllable range, thereby greatly reducing the probability of deformation thereof.

[0034] After the lock spring 999 arrives at the designated position, the power mechanism stops working, and the propulsion mechanism 5 and the push plate 6 also stop moving thereupon. At this moment, the lock spring propulsion assembly has completed a working cycle and is ready to enter the next work.

[0035] This embodiment adopts a progressive thrust transmission method to effectively reduce the probability of deformation of the lock spring during the advancement process. The assembly has a simple structure, easy operation, and high reliability, and is suitable for various automated equipment and production lines that require precise control of the lock spring position.

[0036] Example 2.

[0037] like Figure 2 As shown, another embodiment of the present utility model is that a first cylinder 3 is further provided on the bracket 1, the first cylinder 3 is arranged on one side of the slide 4, and a protruding rod 31 is provided on the side of the first cylinder 3 close to the slide 4, and the first cylinder 3 is used to push the propulsion mechanism 5 to move.

[0038] The first cylinder 3 is mounted on the bracket 1 and is located on one side of the slideway 4. A protruding rod 31 is provided on the side of the first cylinder 3 near the slideway 4. This protruding rod 31 is directly or indirectly connected to the propulsion mechanism 5. When the first cylinder 3 is in operation, its piston rod is connected to the propulsion mechanism 5 via the protruding rod 31, pushing the propulsion mechanism 5 to slide on the slideway 4.

[0039] In the initial state, the first cylinder 3 is in an inoperative state, the propulsion mechanism 5 is located at the starting position of the slideway 4, and the push plate 6 maintains a certain distance from the locking spring 999 on the turntable 2;

[0040] When the locking spring 999 needs to be advanced, the first cylinder 3 is activated, the piston rod of the first cylinder 3 begins to extend, and contacts the propulsion mechanism 5 through the protruding rod 31, thereby pushing the propulsion mechanism 5 to slide along the slide 4;

[0041] As the propulsion mechanism 5 moves, the push plate 6 gradually approaches and contacts the lock spring 999 on the turntable 2. Because the thrust provided by the first cylinder 3 is smooth and controllable, the force applied by the push plate 6 to the lock spring 999 is also gradual, which helps to reduce the deformation of the lock spring.

[0042] Under the continuous push of the first cylinder 3, the propulsion mechanism 5 drives the push plate 6 to smoothly push the lock spring 999 to the specified position. During the whole process, the force on the lock spring 999 is always kept within a controllable range;

[0043] When the locking spring 999 arrives at the designated position, the work of the first cylinder 3 is stopped. At this time, the propulsion mechanism 5 and the push plate 6 also stop moving therewith, and the whole propulsion process is completed.

[0044] This embodiment utilizes the first cylinder 3 as a power source, achieving direct and efficient propulsion of the propulsion mechanism 5. The smooth, controllable thrust provided by the first cylinder 3 helps reduce the risk of deformation of the lock spring 999 during propulsion, improving the reliability and stability of the entire assembly. This design also simplifies the power transmission mechanism, making the entire assembly more compact and easier to maintain.

[0045] Example 3.

[0046] like Figure 1 As shown, one embodiment of the present utility model is that a first groove 7 is provided on the side of the propulsion mechanism 5 close to the first cylinder 3, the first groove 7 is adapted to the protruding rod 31, and the propulsion mechanism 5 is driven by the first cylinder 3 to move along the setting direction of the slide 4.

[0047] The propulsion mechanism 5 is provided with a first groove 7 , the shape and size of the first groove 7 are completely adapted to the protruding rod 31 of the first cylinder 3 , ensuring that the protruding rod 31 can be smoothly inserted and drive the propulsion mechanism 5 to move.

[0048] In the initial state, the first cylinder 3 is in an inoperative state, and the protruding rod 31 is not inserted into the first groove 7 of the propulsion mechanism 5. The propulsion mechanism 5 is located at the starting position of the slideway 4, and the push plate 6 maintains a certain distance from the lock spring 999 on the turntable 2.

[0049] When it is necessary to advance the locking spring 999, the first cylinder 3 is started. As the cylinder piston rod extends, the protruding rod 31 is gradually inserted into the first groove 7 of the propulsion mechanism 5.

[0050] Once the protruding rod 31 is fully inserted into the first groove 7, further extension of the first cylinder 3 will directly drive the propulsion mechanism 5 to move along the direction set by the slide 4. Due to the close fit between the first groove 7 and the protruding rod 31, the stability and accuracy of the propulsion mechanism 5 during movement are ensured.

[0051] When necessary, the first cylinder 3 can work in the reverse direction to withdraw the protruding rod 31 from the first groove 7, and the propulsion mechanism 5 returns to the initial position to prepare for the next propulsion operation.

[0052] This embodiment achieves close fit and synchronized movement between the propulsion mechanism 5 and the protrusion 31 of the first cylinder 3 by providing a first groove 7 on the propulsion mechanism 5 that mates with the protrusion 31 of the first cylinder 3. This design not only improves the stability and accuracy of the propulsion mechanism 5 during movement but also simplifies the power transmission mechanism, making the entire assembly operate more smoothly and reliably. Furthermore, this design facilitates the repositioning and relocation of the propulsion mechanism 5, improving the assembly's flexibility and maintainability.

[0053] Example 4.

[0054] like Figure 2 As shown, another embodiment of the present invention is that the push plate 6 includes a connecting portion 61 and a pushing portion 62, one end of the connecting portion 61 is connected to the propulsion mechanism 5, and the other end is connected to the pushing portion 62; and the connecting portion 61 is arranged perpendicular to the propulsion mechanism 5; the pushing portion 62 is arranged in an L-shape, and the pushing portion 62 is located in the middle of the turntable 2.

[0055] Push plate 6 consists of a connecting portion 61 and a pushing portion 62. One end of connecting portion 61 is securely connected to propulsion mechanism 5, while the other end is perpendicularly connected to pushing portion 62. This makes push plate 6 more structurally stable and better able to withstand the forces and moments during propulsion. Pushing portion 62 is L-shaped, with its long arm located in the middle of turntable 2, ensuring direct and effective propulsion of locking spring 999 on turntable 2.

[0056] As the propulsion mechanism 5 moves, the connection portion 61 of the push plate 6 drives the pushing portion 62 to move synchronously. Since the pushing portion 62 is L-shaped and located in the middle of the turntable 2, it can directly and stably contact and push the locking spring 999.

[0057] The lock spring 999 is smoothly pushed to the designated position by the continuous pushing of the pushing portion 62. The L-shaped pushing portion 62 design helps to maintain the stability and directionality of the lock spring 999 during the pushing process.

[0058] By dividing the push plate 6 into a connecting portion 61 and an L-shaped push portion 62, the push plate 6 is more stable and reliable during the advancement process. The L-shaped push portion 62 is located directly in the center of the turntable 2, which can more effectively advance the lock spring 999 and reduce the risk of deformation caused by uneven thrust. This design improves the efficiency and accuracy of the entire lock spring advancement assembly and is suitable for applications requiring high lock spring positioning accuracy.

[0059] Example 5.

[0060] like Figure 9As shown, one embodiment of the present invention is that a card slot 8 is provided on the turntable 2, and there are multiple card slots 8, and the card slot 8 is used to place the locking spring 999; a second groove 10 is opened on the card slot 8, and the locking spring 999 is arranged at the protrusion of the second groove 10.

[0061] The turntable 2 is arranged on the side of the bracket 1 for accurately positioning and supporting the lock spring 999. The turntable 2 is provided with a plurality of slots 8, each of which is designed with a specific shape and size to accommodate lock springs 999 of different specifications and types.

[0062] The slots 8 are regularly spaced on the turntable 2. Each slot 8 accommodates a locking spring 999, ensuring stability and directionality during advancement. The slots 8 are designed with the shape and size of the locking springs 999 in mind, ensuring a snug fit and preventing them from falling out.

[0063] The second groove 10 is formed in the middle of the card slot 8 and is designed to be low in the middle and high on both sides. The shape and depth of the second groove 10 are designed according to the shape of the lock spring 999 to ensure that the lock spring 999 can be placed on the protrusion of the second groove 10. A magnet or other component can be provided in the groove of the second groove 10 to further fix the lock spring 999. This can further increase the stability and positioning accuracy of the lock spring 999 in the card slot 8.

[0064] The locking spring 999 is placed in the second groove 10 of the card slot 8 . Due to the guiding effect of the second groove 10 , the locking spring 999 can be quickly and accurately positioned in the card slot 8 .

[0065] In the initial state, the propulsion mechanism 5 is located at the starting position of the slideway 4 , and the push plate 6 maintains a certain distance from the locking spring 999 on the turntable 2 .

[0066] When the locking spring 999 needs to be advanced, the first cylinder 3 starts to work, pushing the propulsion mechanism 5 to move along the slideway 4.

[0067] As the propulsion mechanism 5 moves, the push plate 6 gradually approaches and contacts the lock spring 999 on the turntable 2. Since the second groove 10 is provided on the card slot 8, the push plate 6 can be adapted to the second groove 10, thereby pushing the lock spring 999 to combine with the workpiece 888.

[0068] Under the continuous push of the push plate 6, the lock spring 999 is smoothly pushed out of the draw groove 8 and pushed to the specified position. Due to the supporting effect of the draw groove 8 and the second groove 10, the lock spring 999 remains stable and not easily deformed during the advancement process.

[0069] This embodiment, by adding a retaining slot 8 and a second groove 10 to the turntable 2, provides a more stable and precise placement for the lock spring 999. This not only improves the stability and directionality of the lock spring 999 during advancement, but also simplifies its placement and repositioning. Furthermore, the matching retaining slot 8 and the second groove 10 ensure that the push plate 6 can accurately engage the specific position of the lock spring 999, improving the efficiency and accuracy of the entire lock spring advancement assembly.

[0070] Example 6.

[0071] like Figure 2 As shown, this embodiment further optimizes the design of the pushing portion 62 of the push plate 6 by adding a first protrusion 11 to precisely fit the second groove 10 of the locking slot 8 on the turntable 2, thereby enhancing the pushing effect of the push plate 6 on the lock spring 999. The following is the detailed structure of this component:

[0072] The push plate 6 is mounted on the propulsion mechanism 5 and includes a connecting portion 61 and a pushing portion 62. One end of the pushing portion 62 is provided with a first protrusion 11, the shape, size and position of which are adapted to the second groove 10 of the clamping slot 8 on the turntable 2.

[0073] As the propulsion mechanism 5 moves, the pushing portion 62 of the push plate 6 gradually approaches the lock spring 999 on the turntable 2. When the first protrusion 11 of the pushing portion 62 contacts the second groove 10 of the locking slot 8, the two form a precise fit, ensuring that the push plate 6 can accurately act on the specific position of the lock spring 999.

[0074] Under the continuous push of the push plate 6, especially through the close fit between the first protrusion 11 and the second groove 10, the lock spring 999 is smoothly pushed out of the slot 8 and pushed to the specified position.

[0075] This embodiment significantly improves the effectiveness and stability of the push plate 6 in pushing the lock spring 999 by adding a first protrusion 11 to the pushing portion 62 of the push plate 6, which precisely mates with the second groove 10 of the latching slot 8 on the turntable 2. This design not only ensures the accuracy and smoothness of the lock spring 999 during advancement, but also simplifies its placement and repositioning. Furthermore, the close fit between the first protrusion 11 and the second groove 10 reduces friction and resistance during advancement, improving the efficiency and reliability of the entire lock spring advancement assembly.

[0076] Example 7.

[0077] like Figure 1 As shown, in this embodiment, a carrier 12 is added to the turntable 2 to load the workpiece 888 so that the workpiece 888 can be connected to the locking spring 999 at a suitable position. The following is the detailed composition of the assembly:

[0078] The carrier 12 is fixedly or detachably mounted on one side of the turntable 2, and its shape, size, and position are designed according to the specific requirements of the workpiece 888. The carrier 12 is used to load the workpiece 888 and ensure that the workpiece 888 is in the correct position and posture when connected to the locking spring 999.

[0079] The workpiece 888 is a component placed on the carrier 12 and needs to be connected to the locking spring 999. The specific shape, size and connection method of the workpiece 888 are determined according to application requirements.

[0080] First, place the workpiece 888 on the carrier 12 on one side of the turntable 2 and ensure that it is stable and in the correct connection posture; then, place the locking spring 999 in the slot 8 of the turntable 2 and may accurately position it through the second groove 10.

[0081] In the initial state, the propulsion mechanism 5 is located at the starting position of the slideway 4 , and the push plate 6 maintains a certain distance from the locking spring 999 on the turntable 2 .

[0082] When the locking spring 999 and the workpiece 888 need to be connected, the power mechanism starts to work, pushing the propulsion mechanism 5 to move along the slideway 4.

[0083] As the propulsion mechanism 5 moves, the pushing portion 62 of the push plate 6 gradually approaches and pushes the locking spring 999 on the turntable 2. The locking spring 999 moves toward the workpiece 888 under the action of the driving force until the two reach the connection position.

[0084] Reset Preparation: After the connection is completed, the propulsion mechanism 5 and the push plate 6 can be reset to the initial position and ready for the next operation. At the same time, the workpiece 888 on the carrier 12 and the locking spring 999 on the turntable 2 can be replaced or adjusted as needed.

[0085] This embodiment, by adding a carrier 12 to the turntable 2, provides a stable loading platform for the workpiece 888, allowing the workpiece 888 to be conveniently connected to the locking spring 999. This design not only improves the accuracy and efficiency of the connection, but also simplifies the entire connection process. Furthermore, the flexibility and adjustability of the carrier 12 provide good adaptability to workpieces 888 of varying shapes, sizes, and connection methods.

[0086] Example 8.

[0087] like Figure 2 As shown, another embodiment of the present invention is that a transverse groove 13 is opened on the workpiece 888, and the locking spring 999 is pushed into the transverse groove 13 by the propulsion mechanism 5.

[0088] In this embodiment, a transverse groove 13 is provided on the workpiece 888 to provide a precise accommodation space for the lock spring 999, thereby simplifying the connection process between the lock spring and the workpiece.

[0089] The workpiece 888 is provided with a transverse groove 13 . The shape, size and position of the transverse groove 13 are designed according to the specific size and connection requirements of the lock spring 999 to ensure that the lock spring 999 can be completely and firmly accommodated in the transverse groove 13 .

[0090] This embodiment, by providing a transverse groove 13 in the workpiece 888, provides a precise accommodation for the locking spring 999, thereby simplifying the connection process and improving the stability and accuracy of the connection. This design not only reduces errors and uncertainties during the connection operation, but also improves the reliability and durability of the entire assembly. Furthermore, the flexibility and adjustability of the transverse groove 13 provide good adaptability to locking springs 999 of varying shapes, sizes, and connection requirements.

[0091] Example 9.

[0092] On the basis of the above-mentioned embodiment, the present invention can also adopt the following setting method. In order to improve the stability of the lock spring on the turntable, a magnet can be set on the card slot of the turntable, and the magnet is distributed along the card slot. The magnetism of the magnet is controlled according to the switch. When the lock spring needs to be moved, the magnetic pin of the magnet is closed, so that the lock spring can be moved at will. When the lock spring needs to be fixed, the magnetism of the magnet is turned on to ensure the stability of the lock spring fixation.

[0093] References in this specification to "one embodiment," "another embodiment," "an embodiment," etc., refer to specific features, structures, or characteristics described in conjunction with that embodiment as included in at least one embodiment generally described in this application. The appearance of the same expression in multiple places in the specification does not necessarily refer to the same embodiment. Furthermore, when a specific feature, structure, or characteristic is described in conjunction with any embodiment, it is intended that such feature, structure, or characteristic, when implemented in conjunction with other embodiments, also fall within the scope of the present invention.

[0094] Although the present invention has been described herein with reference to a number of illustrative embodiments thereof, it will be understood that numerous other modifications and implementations may be devised by those skilled in the art that fall within the scope and spirit of the principles disclosed herein. More specifically, within the scope of the present disclosure, the drawings, and the claims, numerous variations and modifications may be made to the components and / or arrangement of the subject combination arrangement. In addition to variations and modifications to the components and / or arrangement, other uses will also be apparent to those skilled in the art.

Claims

1. A lock spring advancing assembly with a deformation reducing function, comprising a bracket (1) and a turntable (2), wherein the turntable (2) is arranged on the side of the bracket (1), and the turntable (2) is used to position the lock spring (999), characterized in that: The bracket (1) is provided with a slideway (4), and the slideway (4) is arranged above the turntable (2); The slideway (4) is provided with a propulsion mechanism (5), the propulsion mechanism (5) is slidably connected to the slideway (4), the propulsion mechanism (5) is provided with a push plate (6), the push plate (6) is located above the turntable (2), and one end of the push plate (6) is in contact with the turntable (2), the locking spring (999) is provided on the turntable (2), and the push plate (6) is used to push the locking spring (999) on the turntable (2).

2. The lock spring advancing assembly with deformation reduction function according to claim 1, characterized in that: The bracket (1) is further provided with a first cylinder (3), which is arranged on one side of the slideway (4). The first cylinder (3) is used to push the propulsion mechanism (5) to move.

3. The lock spring advancing assembly with deformation reduction function according to claim 2, characterized in that: A first groove (7) is provided on the side of the propulsion mechanism (5) close to the first cylinder (3), and a protruding rod (31) is provided on the side of the first cylinder (3) close to the slideway (4). The first groove (7) is adapted to the protruding rod (31), and the propulsion mechanism (5) is driven by the first cylinder (3) to move along the direction in which the slideway (4) is set.

4. The lock spring advancing assembly with deformation reduction function according to claim 1, characterized in that: The push plate (6) includes a connecting portion (61) and a pushing portion (62), wherein one end of the connecting portion (61) is connected to the propulsion mechanism (5), and the other end is connected to the pushing portion (62); The connecting portion (61) and the propulsion mechanism (5) are arranged perpendicularly; The pushing portion (62) is arranged in an L-shape, and the pushing portion (62) is located in the middle of the turntable (2).

5. The lock spring advancing assembly with deformation reduction function according to claim 1, characterized in that: The rotating disk (2) is provided with a card slot (8), and the card slot (8) is provided with a plurality of cards. The card slot (8) is provided with a second groove (10), and the locking spring (999) is horizontally arranged in the second groove (10). In the embodiment, the shape of the second groove (10) is adapted to the locking spring (999), and the locking spring (999) is arranged in the second groove (10).

6. A lock spring advancing assembly with deformation reduction function according to claim 4 or 5, characterized in that: A first protrusion (11) is formed at one end of the pushing portion (62), and the first protrusion (11) is adapted to fit the second groove (10).

7. The lock spring advancing assembly with deformation reduction function according to claim 1, characterized in that: A carrier (12) is provided on one side of the turntable (2), and the carrier (12) is used to load a workpiece (888), and the workpiece (888) is used to be connected to a locking spring (999).

8. The lock spring advancing assembly with deformation reduction function according to claim 7, characterized in that: A transverse groove (13) is provided on the workpiece (888), and the locking spring (999) is pushed into the transverse groove (13) by the propulsion mechanism (5).