Concave battery holder patch suction nozzle
By designing a concave battery holder patching nozzle, and adopting a fixed boss and adsorption column structure, combined with negative pressure adsorption, the problem of automated patching of button battery holders was solved, improving product quality and production efficiency, and reducing manual intervention.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-24
- Publication Date
- 2026-03-13
AI Technical Summary
The existing automated placement of button battery holders is difficult, manual picking is inefficient, inaccurate, and has poor quality consistency. It also requires additional manual operation, which affects production efficiency and yield.
Design a U-shaped battery holder patching nozzle. The adsorption head consists of a fixed boss and two adsorption columns. A clearance groove is provided between the adsorption columns to stabilize the flat surface of the adsorption battery holder. Combined with negative pressure adsorption, it enables automatic patching by a robotic arm.
This technology enables the robotic arm to firmly attach to the battery holder, improving production efficiency, enhancing the stability of the robotic arm, increasing the consistency of the battery holder's surface mount product quality, and reducing the number of operators.
Smart Images

Figure CN223993833U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of adsorption device technology, and in particular to a concave battery holder patch nozzle. Background Technology
[0002] Button batteries are widely used in computers due to their small size. They are typically installed in a battery holder on the computer motherboard to power the memory. Existing battery holders include an insulating base, a positive terminal, and a negative terminal. The insulating base has a battery housing area. The positive terminal includes a fixing part fixed to the side wall of the battery housing area. Both sides of the fixing part bend and extend along the inner wall of the battery housing area to form arc-shaped contact pieces. The two ends of the contact pieces extend to form contact portions. Each contact portion, connected to the contact piece, extends in the opposite direction to form an inwardly curved spring. The curved spring has a large curvature, and its end forms a protruding contact point. Both the contact pieces and the curved spring are located within the battery housing area. When the button battery is installed vertically in the battery housing area, the contact pieces and the curved spring contact the side surface of the button battery, and the negative terminal contacts the bottom surface of the button battery.
[0003] When assembling button battery holders, they need to be flat against the PCB board. The machine's pick-up point is on the irregular surface inside the battery holder, and the area that can be picked up is very small. The general-purpose nozzle cannot pick up the component. After multiple verifications, it was changed to manual placement. However, when using button battery holders for manual placement, the following disadvantages exist:
[0004] 1. Irregularly shaped materials result in low production efficiency due to manual handling;
[0005] 2. Manual picking and moving of the chip results in low accuracy and inconsistent quality, which can easily lead to reversed placement and the risk of defective products due to chipping.
[0006] 3. The production line needs to add one manual labeling worker;
[0007] 4. The workload is heavy and the technical requirements for personnel are high, which directly affects the efficiency of the production line.
[0008] Therefore, it is necessary to propose a concave-shaped battery holder patch nozzle to firmly adsorb the battery holder, so that the robot can automatically patch the battery holder, thereby improving the consistency of patch product quality, increasing production efficiency and yield, and reducing the number of operators. Utility Model Content
[0009] To address the aforementioned issues, this invention proposes a concave-shaped battery holder patch suction nozzle to securely adsorb the battery holder, enabling a robotic arm to automatically patch the battery holder, thereby improving the consistency of patch product quality, increasing production efficiency and yield, and reducing the number of operators.
[0010] This utility model is achieved through the following technical solution:
[0011] This utility model proposes a concave-shaped battery holder patch nozzle, including a main body. One end of the main body is provided with an adsorption part for adsorbing the battery holder. The adsorption part is connected to the other end of the main body. The adsorption part is provided with an adsorption head. The adsorption head includes a fixed boss and two adsorption columns. The two adsorption columns are fixedly connected to and connected to the fixed boss. An avoidance groove is provided between the two adsorption columns.
[0012] Furthermore, each of the two adsorption columns is provided with an adsorption hole, and the fixed boss is provided with a connecting channel, with the two adsorption holes respectively connected to both ends of the connecting channel.
[0013] Furthermore, one end of the adsorption column is provided with a suction dispersion groove, which is connected to the adsorption hole.
[0014] Furthermore, the suction dispersion groove has an elliptical structure.
[0015] Furthermore, the adsorption part is also provided with an extended protrusion. One end of the extended protrusion is fixedly connected to and in communication with the main body, and the other end of the extended protrusion is fixedly connected to the fixed protrusion. The extended protrusion is in communication with the middle of the connecting channel.
[0016] Furthermore, the protruding boss is provided with a negative pressure channel, one end of which is connected to the middle of the connecting channel, and the other end of which is connected to the main body.
[0017] Furthermore, the height of the adsorption section is 10–11 mm.
[0018] Furthermore, one end of the main body is provided with a connection end for connecting to a vacuum tube, and the connection end is in communication with the adsorption part.
[0019] Furthermore, the connecting end is provided with an adsorption channel, which is connected to the adsorption part.
[0020] The beneficial effects of this utility model are:
[0021] This invention uses a main body as the suction nozzle for adsorbing battery holders. An adsorption section is provided at one end of the main body, and an adsorption head protrudes from this section. The adsorption head consists of a fixed boss and two adsorption pillars, forming a U-shaped structure. A clearance groove is provided between the two adsorption pillars. When adsorbing the battery holder, both adsorption pillars extend into the battery holder, while the conductive elastic sheet in the middle of the battery holder extends into the clearance groove, thus avoiding obstruction by the conductive elastic sheet. After applying negative pressure, the two adsorption pillars simultaneously adsorb the flat surface inside the battery holder, facilitating the robot arm to perform the next step of patch placement, which is convenient and fast. In summary, this U-shaped battery holder patching nozzle can stably adsorb the battery holder, enabling the robot arm to automatically place patches on the battery holder, thereby improving the consistency of patch product quality, increasing production efficiency and yield, and reducing the number of operators. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the main body and battery holder of the U-shaped battery holder patch nozzle of this utility model;
[0023] Figure 2 This is a schematic diagram of the main structure of the U-shaped battery holder patch nozzle of this utility model;
[0024] Figure 3 This is a cross-sectional view of the main body of the U-shaped battery holder patch nozzle of this utility model.
[0025] The attached figures are labeled as follows:
[0026] Main body 1, adsorption part 2, adsorption head 21, fixed boss 211, connecting channel 2111, adsorption column 212, adsorption hole 2121, suction dispersion groove 2122, clearance groove 213, outward boss 22, negative pressure channel 221, connecting end 3, adsorption channel 31, battery holder 101, conductive elastic sheet 102. Detailed Implementation
[0027] To more clearly and completely illustrate the technical solution of this utility model, the following description, in conjunction with the accompanying drawings, will further explain this utility model.
[0028] Please refer to Figures 1-3 This utility model proposes a concave-shaped battery holder patch nozzle, including a main body 1. One end of the main body 1 is provided with an adsorption part 2 for adsorbing the battery holder 101. The adsorption part 2 is connected to the other end of the main body 1. The adsorption part 2 is provided with an adsorption head 21. The adsorption head 21 includes a fixed boss 211 and two adsorption columns 212. The two adsorption columns 212 are fixedly connected to and connected to the fixed boss 211. An avoidance groove 213 is provided between the two adsorption columns 212.
[0029] In this embodiment, the main body 1 is used as the suction nozzle for adsorbing the battery holder 101. The main body 1 can be fixed on the robotic arm. An adsorption part 2 is provided on one end of the main body 1. An adsorption head 21 protrudes from the adsorption part 2. The adsorption head 21 is composed of a fixed boss 211 and two adsorption columns 212, making the adsorption head 21 have a U-shaped structure. An avoidance groove 213 is provided between the two adsorption columns 212. When adsorbing the battery holder 101, the two adsorption columns 212 extend into the battery holder 101 together. The conductive elastic sheet 102 in the middle of the battery holder 101 extends into the avoidance groove 213, so as to avoid the obstruction of the conductive elastic sheet 102. After the negative pressure is introduced, the negative pressure enters the adsorption head 21 from the main body 1 and then enters the adsorption column 212. The two adsorption columns 212 simultaneously adsorb the plane inside the battery holder 101, and the battery holder 101 is adsorbed and fixed, which facilitates the robotic arm to perform the next step of patching, which is convenient and fast.
[0030] In summary, this concave battery holder patch nozzle can firmly adhere to the battery holder, allowing the robotic arm to automatically patch the battery holder, thereby improving the consistency of patch product quality, increasing production efficiency and yield, and reducing the number of operators.
[0031] In this embodiment, each of the two adsorption columns 212 is provided with an adsorption hole 2121, and the fixed boss 211 is provided with a connecting channel 2111. The two adsorption holes 2121 are respectively connected to the two ends of the connecting channel 2111. After negative pressure is introduced into the main body 1, the negative pressure enters the adsorption hole 2121 from the connecting channel 2111 to adsorb the plane inside the battery holder 101.
[0032] In this embodiment, one end of the adsorption column 212 is provided with a suction dispersion groove 2122, which is connected to the adsorption hole 2121. The size of the suction dispersion groove 2122 is larger than the size of the adsorption hole 2121. The suction dispersion groove 2122 has an elliptical structure. After one end of the adsorption column 212 contacts the plane inside the battery holder 101, the suction dispersion groove 2122 adheres to the plane inside the battery holder 101. After negative pressure is introduced, the negative pressure extends from the adsorption hole 2121 into the suction dispersion groove 2122. Since the size of the suction dispersion groove 2122 is larger than the size of the adsorption hole 2121, the negative pressure exerted by the suction dispersion groove 2122 on the plane inside the battery holder 101 increases, thereby increasing the fixing force of the adsorption head 21 on the battery holder 101.
[0033] In this embodiment, the adsorption part 2 is also provided with an outward protrusion 22. One end of the outward protrusion 22 is fixedly connected to and communicates with the main body 1, and the other end of the outward protrusion 22 is fixedly connected to the fixed protrusion 211. The outward protrusion 22 communicates with the middle part of the connecting channel 2111. The outward protrusion 22 is used to provide the adsorption head 21 with a structure that extends outward a greater distance, while improving the stability of the fixed protrusion 211.
[0034] In this embodiment, a negative pressure channel 221 is provided inside the protruding boss 22. One end of the negative pressure channel 221 is connected to the middle of the connecting channel 2111, and the other end of the negative pressure channel 221 is connected to the main body 1. The negative pressure channel 221 is arranged vertically, and the connecting channel 2111 is arranged horizontally. After the negative pressure channel 221 is connected to the middle of the connecting channel 2111, a three-way structure is formed, so that the negative pressure can be evenly distributed to the two adsorption holes 2121.
[0035] In this embodiment, the height of the adsorption part 2 is 10 to 11 mm. This height ensures that the adsorption part 2 is large enough and can also stably adsorb the battery holder 101.
[0036] In this embodiment, one end of the main body 1 is provided with a connecting end 3 for connecting to a vacuum tube. The connecting end 3 is connected to the adsorption part 2. After the main body 1 is installed on the robotic arm, the vacuum tube can be sleeved on the connecting end 3 to allow the main body 1 to be connected to negative pressure. The connecting end 3 is provided with an adsorption channel 31, which is connected to the adsorption part 2. After negative pressure is introduced, the negative pressure enters from the adsorption channel 31 and then enters into the negative pressure channel 221. Finally, the negative pressure is diverted by the connecting channel 2111 and then enters into the two adsorption holes 2121 to adsorb the plane inside the battery holder 101.
[0037] Of course, there may be other implementations of this utility model. Based on this implementation, other implementations obtained by those skilled in the art without any creative effort are all within the scope of protection of this utility model.
Claims
1. A concave battery holder tip, characterized by, The utility model provides a battery holder, including a main body, one end of the main body is equipped with an adsorption part for adsorbing the battery holder, the adsorption part is communicated with the other end of the main body, the adsorption part is protrudingly provided with an adsorption head, the adsorption head includes a fixed boss, two adsorption columns, two adsorption columns are fixedly connected with the fixed boss and are communicated, and an avoiding slot is arranged between the two adsorption columns.
2. The concave battery holder puffer according to claim 1, wherein, Two adsorption columns are provided with adsorption holes, the fixed boss is provided with a connecting channel, and two adsorption holes are communicated with two ends of the connecting channel.
3. The concave battery holder puffer according to claim 2, wherein, One end of the adsorption column is provided with a suction force dispersion groove, and the suction force dispersion groove is communicated with the adsorption hole.
4. The concave battery holder puffer of claim 3, wherein, The suction force dispersion groove is in an oval structure.
5. The concave battery holder puffer of claim 2, wherein, The adsorption part is further provided with an outward extension boss, one end of the outward extension boss is fixedly connected with the main body and is communicated, the other end of the outward extension boss is fixedly connected with the fixed boss, and the outward extension boss is communicated with the middle part of the connecting channel.
6. The concave battery holder puffer of claim 5, wherein, The outward extension boss is provided with a negative pressure channel, one end of the negative pressure channel is communicated with the middle part of the connecting channel, and the other end of the negative pressure channel is communicated with the main body.
7. The concave battery holder puffer of claim 1, wherein, The height of the adsorption part is 10-11mm.
8. The concave battery holder puffer of claim 1, wherein, One end of the main body is provided with a connecting end for connecting a vacuum tube externally, and the connecting end is communicated with the adsorption part.
9. The concave battery holder puffer of claim 8, wherein, The connecting end is provided with an adsorption channel, and the adsorption channel is communicated with the adsorption part.