Crimping device and crimping device

By designing automated crimping equipment, and utilizing the cooperation of mechanical rods and abutment posts, automated and tight crimping of chip caps is achieved, solving the problems of high cost and low efficiency caused by manual operation, and improving yield and production efficiency.

CN223844304UActive Publication Date: 2026-01-27CHENGDU WANYING MICRO ELECTRONICS CO LTD
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Patent Information

Application Number
CN202520227600.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-13
Publication Date
2026-01-27
Estimated Expiration
2035-02-13

AI Technical Summary

Technical Problem

In existing technologies, the chip capping process relies on manual operation, which leads to problems such as high labor time costs, worker fatigue, low yield, and low production efficiency.

Method used

Design a crimping device that, through the mechanical structure of the first and second crimping components, utilizes the cooperation of a mechanical rod and an abutment post to achieve automated and tight crimping of the parts to be joined. Combined with the design of a placement box and ball groove, stability and accuracy are ensured, and efficiency is improved through the lever principle.

Benefits of technology

It improves the automation level of operation, reduces labor time costs, reduces worker fatigue, increases the yield of capping and sealing products and overall production efficiency, and extends the service life of equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides crimping equipment and a crimping device, and relates to the technical field of crimping devices. The crimping equipment comprises a first crimping part and a second crimping part, the first crimping part is configured to place a first to-be-combined part; the second crimping part is configured to place a second to-be-combined part; the first crimping part comprises a placing plate, a first abutting column and a second abutting column; the first abutting column and the second abutting column are arranged on the same side of the placing plate; the first abutting column and the second abutting column are configured to be in butt joint with the second crimping part; the placing plate is provided with a hollow part; the hollow part is configured to place a first to-be-combined piece; the second crimping part comprises a first mechanical rod and a second mechanical rod; the first mechanical rod comprises a first end and a second end; the first end is configured to be in contact with the first abutting column; the second end is connected with the second mechanical rod; the first end of the first mechanical rod drives the second mechanical rod to move in the direction close to the first crimping part under the condition that the first end of the first mechanical rod is pressed by the first abutting column. The labor time cost is reduced, and the production efficiency is improved.
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Description

Technical Field

[0001] This application relates to the field of crimping device technology, and more specifically, to a crimping device and a crimping apparatus. Background Technology

[0002] In manufacturing processes involving joining two components together before proceeding with subsequent steps, traditional techniques largely rely on manual labor. While manual operation is relatively simple, it has several drawbacks: firstly, it is extremely time-consuming; secondly, prolonged repetitive tasks can lead to worker fatigue, affecting accuracy and reducing the yield of finished products. Ultimately, these factors combine to cause a decline in overall production efficiency.

[0003] In the field of chip manufacturing, chip capping refers to the process of bonding a cover plate to the chip casing using a high-temperature baking oven. The successful bonding of the cover plate and chip casing is a prerequisite for the normal operation of the entire process. Currently, most companies use a vacuum suction pen to place a single cover plate into the chip casing, clamp it with a spring clip, and then place it in the high-temperature baking oven. While this process is simple, it is extremely time-consuming and labor-intensive. According to feedback from the field, it takes an employee one minute to complete the bonding of a single chip cover plate, with 80% of the time spent just fitting the cover plate to the chip casing. Such a process and tools significantly increase labor time costs, easily exacerbate worker fatigue, result in low capping yield, and ultimately reduce production efficiency. Utility Model Content

[0004] In view of this, the purpose of this application is to provide a crimping device to improve the problem of reduced production efficiency in the prior art.

[0005] The crimping device includes: a first crimping member and a second crimping member; the first crimping member is configured to place a first part to be joined; the second crimping member is configured to place a second part to be joined; the first crimping member includes: a placement plate, a first abutting post and a second abutting post; the first abutting post and the second abutting post are disposed on the same side of the placement plate; the first abutting post and the second abutting post are configured to abut against the second crimping member; the placement plate has a hollow portion; the hollow portion is configured to place the first part to be joined; the second crimping member includes: a first mechanical rod and a second mechanical rod; the first mechanical rod includes a first end and a second end; the first end is configured to contact the first abutting post; the second end is connected to the second mechanical rod; when the first end of the first mechanical rod is subjected to pressure from the first abutting post, it drives the second mechanical rod to move towards the first crimping member.

[0006] In the above process, the first component to be joined is placed inside the hollow portion of the first pressing component to ensure its stable position. Then, the second component to be joined is placed on the second pressing component. When the first and second pressing components align, the first abutment post on the first pressing component contacts the first end of the first mechanical rod on the second pressing component. As pressure is applied by the first abutment post, the first end of the first mechanical rod, under pressure, moves the second mechanical rod closer to the first pressing component, thus achieving a tight press-fit between the two components. This improves the automation level of the operation, reduces labor time costs, and reduces worker fatigue, thereby increasing the yield rate of the caps and improving overall production efficiency.

[0007] Optionally, the second crimping member further includes: a placement box; the placement box forms a placement cavity; the placement cavity is configured to place the second member to be joined; the bottom of the placement box moves towards the first crimping member when subjected to an upward force from the second mechanical rod.

[0008] In the above process, the second part to be joined is placed in the placement cavity of the second pressing component. The structure of the placement box ensures that the part to be joined remains stable and does not easily shift during the pressing process. When the second mechanical rod moves upward under the drive of the first mechanical rod, its upward force acts on the bottom of the placement box, causing the entire placement box to move closer to the first pressing component. By setting the placement box in the second pressing component, the second part to be joined can be better fixed, reducing displacement or shaking caused by external forces during the pressing process, thereby improving the accuracy and reliability of the pressing. At the same time, the placement box can accommodate parts to be joined of different sizes, enhancing the versatility and flexibility of the equipment, improving the degree of automation of the operation, and thus improving the yield rate of the capping and the overall production efficiency.

[0009] Optionally, the second crimping member further includes: a ball groove; the ball groove is adjacent to the placement cavity; the ball groove is a closed structure; a plurality of balls are arranged in the ball groove, and the balls are configured to assist the placement box in moving towards / away from the first crimping member.

[0010] In the above-described process, when the second mechanical rod moves upward and pushes the placement box closer to the first pressing component, the movement path of the placement box is assisted by the balls in the ball groove. The ball groove is located adjacent to the placement cavity, and the balls inside are arranged in an orderly manner within the closed structure. As the placement box moves, the balls roll within the ball groove, thereby reducing the friction between the placement box and the second pressing component, allowing the placement box to move closer to or away from the first pressing component more smoothly. This auxiliary rolling mechanism reduces the frictional resistance of the placement box during movement, enabling the placement box to complete the docking or separation action with the first pressing component more smoothly and quickly. This not only improves the overall operating efficiency of the pressing equipment but also reduces mechanical wear caused by friction, extending the service life of the equipment. Simultaneously, it further enhances the stability and reliability of the pressing process, with particularly significant advantages in production environments with frequent operations.

[0011] Optionally, the second pressing member further includes: a support column; the support column is located near the second mechanical rod and away from the first mechanical rod; the support column is configured to support the second mechanical rod.

[0012] In the above implementation process, when the first end of the first mechanical rod is pressed by the first abutment post and moves towards the first pressing member, the second mechanical rod also begins to move under the drive of the first mechanical rod. At this time, the support post acts as a lever fulcrum, supporting the movement of the second mechanical rod. Because the support post is close to the second mechanical rod and far from the first mechanical rod, it ensures that it will not interfere with the movement of the first mechanical rod, while converting the force transmitted from the first mechanical rod into a lever force, enabling the second mechanical rod to push the placement box towards the first pressing member more efficiently. Through the lever principle, a smaller input force can be amplified into a larger output force, thereby achieving a more efficient pressing action. This not only improves the mechanical efficiency of the equipment but also reduces the dependence on drive components, lowering the energy consumption and complexity of the equipment. At the same time, the stability of the lever structure further enhances the reliability of the pressing process, enabling the equipment to maintain stability and durability during long-term operation.

[0013] Optionally, the second mechanical rod includes: a first arc surface and a second arc surface; the first arc surface is connected to the support column; the second arc surface is disposed near the bottom of the placement box.

[0014] In the above-described process, when the first end of the first mechanical rod is pressed by the first abutment post and moves towards the first pressing member, the second mechanical rod also begins to move under the drive of the first mechanical rod. At this time, the first arc surface of the second mechanical rod is in close contact with the support post. Utilizing the shape advantage of the arc surface, the second mechanical rod can smoothly rotate around the support post during movement, forming a stable lever effect, reducing vibration and noise caused by uneven contact, and improving the stability of equipment operation. Simultaneously, the second arc surface of the second mechanical rod is located near the bottom of the placement box, and its curvature conforms to the shape of the bottom of the placement box, ensuring uniform force transmission and reducing the possibility of tilting or jamming of the placement box during movement. When the second mechanical rod moves upward, the second arc surface can fit against the bottom of the placement box and apply an upward thrust, pushing the placement box towards the first pressing member. This not only optimizes the efficiency of mechanical movement but also extends the service life of the equipment and reduces maintenance costs, making it particularly suitable for high-precision, high-frequency production environments.

[0015] Optionally, the placement box further includes a limiting structure; the limiting structure is an outward-facing bend at the opening of the placement box.

[0016] In the above implementation process, the limiting structure is located at the opening of the placement box, and its outward bending design forms a natural barrier. When the second mechanical rod pushes the placement box upward, the placement box gradually approaches the first pressing member. During the movement, the placement box can stably engage with the first pressing member after reaching the predetermined position, reducing the possibility of the placement box continuing to move or deviating due to the inertia of mechanical movement or external forces.

[0017] Optionally, the first pressing member further includes: a snap-fit ​​structure; the snap-fit ​​structure includes: an elastic element and an arc-shaped block; the elastic element is correspondingly connected to the arc-shaped block; the snap-fit ​​structure is disposed opposite to the first abutment post and the second abutment post.

[0018] In the above process, when the first end of the first mechanical rod is pressed by the first abutment post, the second mechanical rod drives the placement box to move upward. As the placement box moves, its limiting structure gradually approaches the snap-fit ​​structure of the first pressing member. When the placement box reaches the predetermined position, the bend of the limiting structure contacts the arc-shaped block in the snap-fit ​​structure. At this time, the elasticity of the elastic element allows the arc-shaped block to fit tightly against the bend of the limiting structure, thereby achieving a stable connection between the first pressing member and the placement box. The combination of the elastic element and the arc-shaped block enables the two pressing members to achieve adaptive tight fit during the docking process, avoiding loosening or failure of the connection due to mechanical errors or movement deviations. Furthermore, the buffering effect of the elastic element reduces the impact force during mechanical movement, protecting the mechanical components of the equipment.

[0019] This application also provides a crimping device, which includes a plurality of crimping devices as described above.

[0020] In the above-described process, the crimping device integrates multiple crimping equipment to achieve synchronous crimping of multiple parts to be joined. Each crimping equipment has an independent first and second crimping component, as well as corresponding key components such as a locking structure, a limiting structure, ball grooves, and support columns. When multiple parts to be joined are placed into the placement boxes of each crimping equipment, the second mechanical rod of each crimping equipment, driven by the first mechanical rod, pushes the placement box closer to the first crimping component. During this process, the balls in the ball grooves assist the placement box in moving smoothly, and the support column acts as a lever fulcrum, making the movement of the mechanical rod efficient and stable. When the placement box reaches the predetermined position, the limiting structure cooperates with the locking structure of the first crimping component to firmly fix the placement box (or the second crimping component) onto the first crimping component, completing the crimping operation. The entire device, by coordinating the actions of multiple crimping equipment, achieves efficient and stable batch crimping, improves the automation level of the operation, reduces labor time costs, and reduces worker fatigue, thereby improving the yield rate of capping and overall production efficiency.

[0021] Optionally, the crimping device includes: a first crimping plate and a second crimping plate; the first crimping members in the crimping device are arranged on the first crimping plate, and the second crimping members in the crimping device are arranged on the second crimping plate; wherein the spacing between two adjacent first crimping members in the same direction is the same as the spacing between two adjacent second crimping members.

[0022] In the above-described process, the crimping device achieves efficient crimping of multiple parts to be joined by arranging the first and second crimping components of multiple crimping devices on a first crimping plate and a second crimping plate, respectively. The first and second crimping components are arranged at a certain interval on their respective crimping plates, and the distance between two adjacent first crimping components is consistent with the distance between two adjacent second crimping components. When the crimping device is activated, the crimping devices on the first and second crimping plates will operate sequentially or simultaneously according to a preset program, improving the versatility and flexibility of the equipment and providing a reliable solution for large-scale production.

[0023] Optionally, the first pressing plate includes a plurality of positioning holes; the second pressing plate includes a plurality of positioning posts; the positioning holes and the positioning posts are arranged opposite to each other and configured to assist in positioning the first pressing plate and the second pressing plate.

[0024] In the above-described process, the first pressing plate is provided with multiple positioning holes, while the second pressing plate is provided with multiple corresponding positioning posts. During the assembly or operation of the pressing device, the positioning posts are inserted into the corresponding positioning holes, thereby achieving precise alignment and fixation between the first and second pressing plates, reducing pressing failures or quality problems caused by positional deviations between the plates. Attached Figure Description

[0025] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments of this application will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0026] Figure 1 This is a cross-sectional view of the crimping device provided in an embodiment of this application;

[0027] Figure 2 This is a first schematic diagram of the crimping device provided in an embodiment of this application;

[0028] Figure 3 This is a second schematic diagram of the crimping device provided in an embodiment of this application.

[0029] Icons: 100-First pressing component; 110-First abutting post; 120-Second abutting post; 130-Placement plate; 140-Arc-shaped block; 150-Elastic component; 160-Hollow part; 200-Second pressing component; 210-First mechanical rod; 220-Second mechanical rod; 230-Placement box; 231-Limiting structure; 240-Ball groove; 250-Supporting post; 260-Pressing block; 310-First pressing plate; 311-Positioning post; 320-Second pressing plate; 321-Positioning hole. Detailed Implementation

[0030] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of the embodiments of this application.

[0031] This application provides a crimping device capable of tightly crimping two components to be joined, such as a chip housing and a chip cover, an optical fiber and an optical fiber connector, or a circuit board and an electronic component. This increases the automation level of the operation, reduces labor time costs, and decreases worker fatigue, thereby improving the yield rate of capping and overall production efficiency.

[0032] Optionally, please refer to Figure 1 , Figure 1 This is a cross-sectional view of the crimping device provided in an embodiment of this application.

[0033] The crimping device includes: a first crimping member 100 and a second crimping member 200; the first crimping member 100 is configured to place a first component to be joined (not shown); the second crimping member 200 is configured to place a second component to be joined (not shown).

[0034] The first pressing member 100 includes: a placement plate 130, a first abutting post 110 and a second abutting post 120; the first abutting post 110 and the second abutting post 120 are disposed on the same side of the placement plate 130; the first abutting post 110 and the second abutting post 120 are configured to mate with the second pressing member 200; the placement plate 130 is provided with a hollow portion 160; the hollow portion 160 is configured to place the first member to be joined.

[0035] The first pressing member 100 further includes a snap-fit ​​structure; the snap-fit ​​structure includes an elastic member 150 and an arc-shaped block 140; the elastic member 150 is correspondingly connected to the corresponding arc-shaped block 140; the snap-fit ​​structure is disposed opposite to the first abutting post 110 and the second abutting post 120.

[0036] Optionally, the curved block 140 can be made of metallic materials, such as aluminum alloy, steel, or iron; it can also be made of composite materials such as PEEK (polyether ether ketone), nylon, or alumina ceramics; in some cases, wood can also be used as the material for the curved block, without specific limitations. When selecting the material for the curved block, the most suitable material type needs to be determined based on specific application requirements (such as strength, wear resistance, corrosion resistance, weight, etc.). For example, in environments requiring high mechanical stress, materials with high strength and good toughness, such as high-strength alloy steel or titanium alloy, should be selected; in corrosive environments, corrosion-resistant materials, such as stainless steel or nickel-based alloys, should be selected; in high-temperature environments, materials with high melting points and good thermal stability, such as high-temperature alloys or ceramics, should be selected.

[0037] In one embodiment of this application, the curvature design of the arc-shaped block 140 matches the shape of the limiting structure, enabling them to fit tightly together upon contact, reducing contact stress and improving connection stability. The shape of the arc-shaped block 140 can be designed as a semi-circle, ellipse, or other suitable arc shape to accommodate different limiting structure shapes. The length and width of the arc-shaped block 140 should be designed according to the dimensions of the limiting structure and the requirements of the pressing operation.

[0038] Optionally, the elastic element 150 can be a component with good elasticity, durability, and adaptability, such as a spring, elastic rubber, elastic plastic, or elastic metal. When selecting an elastic element, the most suitable material type needs to be determined based on the specific requirements of the crimping equipment / device (such as load, speed, environmental conditions, etc.). For example, under high-temperature conditions, materials with high heat resistance, such as alloy steel or nickel-based alloys, should be selected; in environments requiring high mechanical stress, high-strength materials, such as spring steel or alloy steel, should be selected; and in humid or corrosive environments, corrosion-resistant materials, such as stainless steel or nickel-based alloys, should be selected.

[0039] The second pressing member 200 includes: a first mechanical rod 210 and a second mechanical rod 220; the first mechanical rod 210 includes a first end and a second end; the first end is configured to contact the first abutment post 110; the second end is connected to the second mechanical rod 220; when the first end of the first mechanical rod 210 is subjected to pressure from the first abutment post 110, it drives the second mechanical rod 220 to move closer to the first pressing member 100. The second mechanical rod 220 includes: a first arc surface and a second arc surface; the first arc surface is in contact with the support post 250; the second arc surface is disposed near the bottom of the placement box 230.

[0040] The second crimping member 200 further includes: a placement box 230; the placement box 230 forms a placement cavity; the placement cavity is configured to place the second member to be joined; the bottom of the placement box 230 moves towards the first crimping member 100 under the upward force of the second mechanical rod 220. The placement box 230 also includes: a limiting structure 231; the limiting structure 231 is an outward bending section at the opening of the placement box 230.

[0041] The second crimping member 200 further includes: a ball groove 240; the ball groove 240 is adjacent to the placement cavity; the ball groove 240 is a closed structure; multiple balls are arranged in the ball groove 240, and the balls are configured to assist the placement box 230 in moving towards / away from the first crimping member 100. The second crimping member 200 also includes: a support post 250; the support post 250 is located near the second mechanical rod 220 and away from the first mechanical rod 210; the support post 250 is configured to support the second mechanical rod 220.

[0042] In the above-described process, the first component to be joined is placed in the hollow portion 160 of the first pressing member 100. The hollow portion 160 of the placement plate 130 ensures that the component to be joined will not shift during subsequent pressing. The second component to be joined is placed in the placement box 230 of the second pressing member 200. This ensures that the second component to be joined remains stable during pressing, preventing displacement or slippage due to external forces, and providing a solid foundation for subsequent pressing operations.

[0043] In the above implementation process, the first abutment post 110 and the second abutment post 120 on the first pressing member 100 are disposed on the same side of the placement plate 130, and their relative positions and dimensions are measured to mate with relevant components (such as mechanical rods) on the second pressing member 200. When the first pressing member 100 mates with the second pressing member 200, the first abutment post 110 on the first pressing member 100 contacts the first end of the first mechanical rod 210 of the second pressing member 200. Similarly, the second abutment post 120 of the first pressing member 100 contacts another corresponding hole in the second pressing member 200 to maintain its subsequent stable fixation. The first end of the first mechanical rod 210 is configured to contact the first abutment post 110, while the second end is connected to the second mechanical rod 220. At this time, the second mechanical rod 220 is in a ready state, ready to move closer to the first pressing member 100 under the drive of the first mechanical rod 210.

[0044] In the above implementation process, the support column 250 is positioned close to the second mechanical rod 220 and away from the first mechanical rod 210. In the motion system composed of the first mechanical rod 210, the second mechanical rod 220, and the support column 250, the support column 250 acts as the fulcrum of the lever, enabling the system to complete efficient and labor-saving movements. When the crimping device is activated, the first end of the first mechanical rod 210 is subjected to the pressure of the first abutment column 110, which is transmitted to the second mechanical rod 220 through the lever principle, causing the second mechanical rod 220 to begin moving towards the first crimping member 100. As the second mechanical rod 220 moves upward, the bottom of the placement box 230 is subjected to the upward force of the second mechanical rod 220, thereby driving the placement box 230 towards the first crimping member 100. At this time, the balls in the ball groove 240 assist the movement of the placement box 230, reducing friction and allowing the placement box 230 to move more smoothly towards or away from the first crimping member 100. This also maintains the smooth and efficient movement of the placement box 230, reducing mechanical wear.

[0045] In the above-described process, when the placement box 230 moves to the predetermined position, the snap-fit ​​structure on the first pressing member 100 begins to function. With the external force removed, the arc-shaped block 140 in the snap-fit ​​structure, under the action of the elastic member 150, can flexibly and tightly fit against the limiting structure 231 of the second pressing member 200. The elastic properties of the elastic member 150 allow the arc-shaped block 140 to expand and contract within a certain range, thereby adapting to different mechanical movements and dimensional deviations. This not only ensures a stable connection between the first pressing member 100 and the second pressing member 200, but also reduces the impact force during mechanical movement through elastic buffering, protecting the mechanical components of the equipment. Under the fixing action of the snap-fit ​​structure, the first pressing member 100 and the second pressing member 200 are tightly connected, forming a stable pressing system. At this time, the first and second parts to be joined complete the pressing operation under the action of the pressing device, forming a strong bond.

[0046] In one embodiment of this application, the first component to be bonded is a chip cover plate, and the second component to be bonded is a chip housing. The chip cover plate is placed on the hollow portion 160 of the first pressing member 100, the size of the hollow portion 160 being adapted to the size of the target chip cover plate; similarly, the size of the placement box 230 is adapted to the size of the target chip housing. A protrusion (not shown) may be provided at the bottom of the placement cavity of the placement box 230. The protrusion is used to cooperate with the bottom of the chip housing, playing a supporting and limiting role, further defining the position of the second component to be bonded (chip housing). It is understood that the shape of the placement cavity of the placement box is not limited, and the placement cavity can be fixed according to the shape of the component to be bonded.

[0047] In one embodiment of this application, a pressing block 260 is added at the junction of the first abutment post 110 and the first mechanical rod 210. During the crimping operation, when the first end of the first mechanical rod 210 contacts the first abutment post 110, the pressing block 260 functions as a connecting component. The addition of the pressing block 260 increases the contact area between the first abutment post 110 and the first mechanical rod 210. As the first mechanical rod 210 moves, the pressing block 260 evenly transmits the applied pressure to the first abutment post 110, dispersing the pressure applied at the connection point, reducing local stress concentration, and thereby reducing the risk of wear and damage to the mechanical components.

[0048] In one embodiment of this application, the bottom of the balls in the ball groove 240 is fixed to the outer sidewall of the placement box 230 to reduce ball displacement and detachment during movement. Under this premise, the arrangement of the balls can be designed to maximize the reduction of friction and reduce manufacturing costs.

[0049] This application also provides a crimping device; please refer to the embodiments thereof. Figure 1 See Figure 2 and Figure 3 , Figure 2 This is a first schematic diagram of the crimping device provided in an embodiment of this application; Figure 3 This is a second schematic diagram of the crimping device provided in an embodiment of this application.

[0050] The crimping device consists of multiple crimping devices. After integration, it can be seen that the crimping device includes: a first crimping plate 310 (e.g., ...). Figure 2 (as shown) and the second pressing plate 320 (as shown) Figure 3 (As shown); the first pressing member 100 in the pressing device is arranged on the first pressing plate 310, and the second pressing member 200 in the pressing device is arranged on the second pressing plate 320; wherein, the spacing between two adjacent first pressing members 100 in the same direction is the same as the spacing between two adjacent second pressing members 200.

[0051] In the above-described process, when the crimping device is activated, the crimping devices on the first crimping plate 310 and the second crimping plate 320 begin to work together. The first crimping member 100 and the second crimping member 200 in each crimping device perform crimping operations according to a preset procedure. Specifically, after being pressed by the first abutment post 110, the first mechanical rod 210 in the second crimping member 200 drives the second mechanical rod 220 closer to the first crimping member 100, pushing the placement box 230 towards the first crimping member 100. The support post 250, acting as a lever fulcrum, provides support to the second mechanical rod 220 while also enabling it to efficiently apply force to the bottom of the placement box 230. When the placement box 230 moves to a predetermined position, its limiting structure 231 corresponds to the locking structure on the first crimping member 100. At this time, the position of the placement box 230 allows the limiting structure 231 to contact the arc-shaped block 140 in the locking structure and trigger the locking action. In the snap-fit ​​structure, the arc-shaped block 140, under the action of the elastic element 150, tightly fits against the limiting structure 231 of the second pressing member 200, firmly fixing the placement box 230 onto the first pressing member 100. At this time, the first and second parts to be joined complete the pressing operation under the action of the pressing device, forming a strong joint. Under the action of the elastic element 150, the arc-shaped block 140 further moves into the limiting structure, completing the snap-fit ​​action. The elastic characteristics of the elastic element 150 enable the arc-shaped block 140 to fit tightly against the limiting structure, providing a stable fixing force. Through the triggering of the snap-fit ​​structure, the placement box 230 is firmly fixed, preventing it from shifting or falling off during the pressing process. Furthermore, multiple pressing devices on the pressing device can realize the pressing operation of multiple parts to be joined. In one embodiment of this application, the pressing device realizes the pressing of multiple chip shells and chip covers.

[0052] In one embodiment of this application, the arrangement of the pressing components on the pressing plate can be along a straight line, forming a single or multiple rows of linear layout, which is easy to design and manufacture, suitable for continuous production, and facilitates automated operation; it can also be arranged in a matrix form, forming a two-dimensional grid layout, which has high space utilization, is suitable for large-scale production, and facilitates modular design and expansion; or it can be arranged in an interlaced manner, forming an interlaced layout, which can effectively reduce mechanical interference, improve space utilization, and is suitable for complex processes. The arrangement method is not specifically limited here.

[0053] Optionally, the first pressing plate 310 includes a plurality of positioning holes 321; the second pressing plate 320 includes a plurality of positioning posts 311; the positioning holes 321 and the positioning posts 311 are arranged opposite to each other and configured to assist in positioning the first pressing plate 310 and the second pressing plate 320.

[0054] In the above implementation process, the first pressing plate 310 has multiple positioning holes 321, while the second pressing plate 320 has multiple corresponding positioning posts 311. The number, position and size of the positioning holes 321 and positioning posts 311 are calculated and designed so that the first pressing plate 310 and the second pressing plate 320 can be aligned.

[0055] In summary, this application proposes a highly efficient and stable crimping device that integrates multiple crimping devices to achieve simultaneous crimping of multiple parts to be joined. The core components of the crimping device include a first crimping plate 310 and a second crimping plate 320. First crimping parts 100 are arranged on the first crimping plate 310, and second crimping parts 200 are arranged on the second crimping plate 320. Through ingenious mechanical design and a reasonable structural layout, the crimping device ensures high efficiency and reliability in the crimping operation and is suitable for various industrial applications.

[0056] The above description is merely an embodiment of this application and is not intended to limit the scope of protection of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of protection of this application. It should be noted that similar reference numerals and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.

[0057] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any changes or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application.

[0058] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising..." does not exclude the presence of additional identical elements in the process, method, article, or apparatus that includes said element.

Claims

1. A crimping device, characterized in that, The crimping device includes: a first crimping member and a second crimping member; the first crimping member is configured to hold a first component to be joined; the second crimping member is configured to hold a second component to be joined. The first pressing member includes: a placement plate, a first abutment post, and a second abutment post; the first abutment post and the second abutment post are disposed on the same side of the placement plate; the first abutment post and the second abutment post are configured to mate with the second pressing member; the placement plate is provided with a hollow portion; the hollow portion is configured to place the first part to be joined. The second pressing member includes: a first mechanical rod and a second mechanical rod; the first mechanical rod includes a first end and a second end; the first end is configured to contact the first abutment post; the second end is connected to the second mechanical rod; when the first end of the first mechanical rod is subjected to pressure from the first abutment post, it drives the second mechanical rod to move towards the first pressing member.

2. The crimping device according to claim 1, characterized in that, The second crimping component further includes: a placement box; The placement box surrounds to form a placement cavity; the placement cavity is configured to place the second component to be joined; the bottom of the placement box moves towards the first pressing component when subjected to an upward force from the second mechanical rod.

3. The crimping device according to claim 2, characterized in that, The second crimping member further includes: a ball groove; The ball groove is adjacent to the placement cavity; the ball groove is a closed structure; a plurality of balls are arranged in the ball groove, and the balls are configured to assist the placement box in moving towards / away from the first pressing member.

4. The crimping device according to claim 2, characterized in that, The second pressing component further includes: a support column; The support column is located close to the second mechanical rod and away from the first mechanical rod; the support column is configured to support the second mechanical rod.

5. The crimping device according to claim 4, characterized in that, The second mechanical rod includes: a first arc surface and a second arc surface; the first arc surface is connected to the support column; the second arc surface is disposed near the bottom of the placement box.

6. The crimping device according to claim 2, characterized in that, The placement box further includes a limiting structure; the limiting structure is an outward-facing bend at the opening of the placement box.

7. The crimping device according to claim 1, characterized in that, The first crimping member further includes: a snap-fit ​​structure; the snap-fit ​​structure includes: an elastic element and an arc-shaped block; The elastic element is correspondingly connected to the arc-shaped block; the snap-fit ​​structure is disposed opposite to the first abutment post and the second abutment post.

8. A crimping device, characterized in that, The apparatus includes a plurality of crimping devices as described in any one of claims 1 to 7.

9. The crimping device according to claim 8, characterized in that, The crimping device includes: a first crimping plate and a second crimping plate; the first crimping member in the crimping equipment is arranged on the first crimping plate, and the second crimping member in the crimping equipment is arranged on the second crimping plate; The spacing between two adjacent first crimping members in the same direction is the same as the spacing between two adjacent second crimping members.

10. The crimping device according to claim 9, characterized in that, The first pressing plate includes a plurality of positioning holes; the second pressing plate includes a plurality of positioning posts; the positioning holes and the positioning posts are arranged opposite to each other and configured to assist the positioning of the first pressing plate and the second pressing plate.