A vacuum adsorption device for a rotary feeding mechanism
By using a vacuum adsorption device in the rotary feeding mechanism, the problem of low material distribution efficiency was solved, enabling rapid product movement and precise positioning, and improving detection efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- MINGWEIKE ELECTRONICS (SUZHOU) CO LTD
- Filing Date
- 2025-06-20
- Publication Date
- 2026-05-26
AI Technical Summary
In the prior art, when small injection molded parts are conveyed to the rotary feeding mechanism, there is a problem of low material distribution efficiency, which affects the product inspection efficiency.
The vacuum adsorption device uses a vacuum suction connector and vacuum suction channel to quickly move the product into the slot, and the sensing component ensures that the product is adsorbed in place, thereby improving the efficiency and accuracy of material distribution.
It enables rapid product movement and precise positioning, improving the material distribution efficiency of the turntable feeding mechanism and the efficiency of subsequent testing.
Smart Images

Figure CN224278922U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of rotary feeding mechanisms, specifically a vacuum adsorption device for rotary feeding mechanisms. Background Technology
[0002] Smaller injection molded parts often suffer from material shortages at the head due to bottlenecks in the injection molding process, requiring CCD inspection. During inspection, the vibratory feeder transports the product to the turntable feeding mechanism so that it can be moved to the CCD inspection position for testing.
[0003] Currently, when vibratory feeders transport products to the turntable mechanism, they usually rely on the squeezing between products to push the end products into the slots of the turntable mechanism. This results in a certain amount of time required to completely move the products into the turntable mechanism, leading to low overall material distribution efficiency and affecting product testing efficiency. Utility Model Content
[0004] The purpose of this invention is to provide a vacuum adsorption device for a rotary feeding mechanism to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a vacuum adsorption device for a rotary feeding mechanism, comprising a support arm, one end of which is connected to an adsorption component, and the adsorption component comprising a mounting base, a vacuum suction connector, a through hole, a rotary feeding seat, a slot, and a vacuum suction channel. A vacuum suction connector is disposed on one side of the mounting base, and a through hole is provided inside the lower end of the mounting base. A rotary feeding seat is slidably connected to one side of the vacuum suction connector, and a slot is provided on one side of the rotary feeding seat. A vacuum suction channel is provided inside the rotary feeding seat.
[0006] Furthermore, the support arm is right-angled and fixedly connected to the mounting base.
[0007] Furthermore, the centerline of the slot coincides with the centerline of the vacuum suction channel, and the vacuum suction channel is connected to the interior of the vacuum suction connector through a through hole.
[0008] Furthermore, a sensing component is provided in the middle of the support arm, and the sensing component includes an adjustment block and an incoming material sensing optical fiber. An adjustment block is provided at the lower middle part of the support arm, and an incoming material sensing optical fiber is installed inside the lower end of the adjustment block.
[0009] Furthermore, the sensing component also includes an adjustment hole and a connection hole, with the adjustment hole located at the top of the support arm and the connection hole located at the top of the adjustment block.
[0010] Furthermore, the sensing component also includes a groove and a fastening hole, with the bottom of the adjusting block having a groove and the side of the adjusting block having a fastening hole.
[0011] Furthermore, the width of the top groove of the adjusting block is equal to the width of the support arm, and the connecting holes are symmetrically distributed about the top of the adjusting block.
[0012] Furthermore, the length of the groove is the same as the length of the adjusting block, and the upper end of the groove is higher than the fastening hole.
[0013] This utility model provides a vacuum adsorption device for a rotary feeding mechanism, which has the following beneficial effects:
[0014] 1. By setting up the adsorption component, when the vibratory plate transports the product to the turntable distribution seat, the vacuum suction connector is connected to the external vacuum generator through the pipe. Therefore, the product can be adsorbed through the through hole and the vacuum suction channel, so that the product can move quickly into the slot without waiting for a long time. This achieves rapid feeding and helps to improve the efficiency of subsequent testing.
[0015] 2. This utility model, through the setting of the sensing component, after the product is adsorbed into the slot, the product will block the light emitted by the incoming material sensing fiber, thus sensing whether the product is adsorbed in place, ensuring the accuracy during subsequent transfer. At the same time, when installing the incoming material sensing fiber, the fasteners are installed in the fastening holes to lock the two sides of the adjusting block, causing the groove to deform and clamp the incoming material sensing fiber. Therefore, it is also very convenient to disassemble and maintain the incoming material sensing fiber. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall three-dimensional structure of a vacuum adsorption device for a rotary feeding mechanism according to the present invention.
[0017] Figure 2 This is a schematic cross-sectional view of the adsorption component of a vacuum adsorption device for a rotary feeding mechanism according to the present invention.
[0018] Figure 3 This is a three-dimensional structural diagram of the sensing component of a vacuum adsorption device for a rotary feeding mechanism according to the present invention.
[0019] In the diagram: 1. Support arm; 2. Adsorption assembly; 201. Mounting base; 202. Vacuum suction connector; 203. Through hole; 204. Turntable material distribution seat; 205. Slot; 206. Vacuum suction channel; 3. Sensing assembly; 301. Adjusting block; 302. Incoming material sensing fiber optic cable; 303. Adjusting hole; 304. Connecting hole; 305. Groove; 306. Fastening hole. Detailed Implementation
[0020] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.
[0021] like Figure 1 and Figure 2 As shown, a vacuum adsorption device for a rotary feeding mechanism includes a support arm 1, one end of which is connected to an adsorption component 2. The adsorption component 2 includes a mounting base 201, a vacuum suction connector 202, a through hole 203, a rotary feeding base 204, a slot 205, and a vacuum suction channel 206. The vacuum suction connector 202 is disposed on one side of the mounting base 201, and a through hole 203 is provided inside the lower end of the mounting base 201. The support arm 1 is right-angled and fixedly connected to the mounting base 201. The vacuum adsorption device is fixed to the base of the rotary feeding mechanism by the support arm 1. A sliding joint is provided on one side of the vacuum suction connector 202. The device is dynamically connected to a turntable distribution seat 204, and a slot 205 is provided on one side of the turntable distribution seat 204. A vacuum suction channel 206 is provided inside the turntable distribution seat 204. The center line of the slot 205 coincides with the center line of the vacuum suction channel 206, and the vacuum suction channel 206 is connected to the inside of the vacuum suction connector 202 through a through hole 203. When the vibratory feeder transports the product to the turntable distribution seat 204, the vacuum suction connector 202 is connected to an external vacuum generator through a pipe, so the product can be adsorbed through the through hole 203 and the vacuum suction channel 206, allowing the product to move quickly into the slot 205.
[0022] like Figure 1 and Figure 3As shown, a sensing component 3 is provided in the middle of the support arm 1. The sensing component 3 includes an adjusting block 301 and an incoming material sensing fiber optic cable 302. The adjusting block 301 is located at the lower middle part of the support arm 1, and the incoming material sensing fiber optic cable 302 is installed inside the lower end of the adjusting block 301. After the product is attracted into the slot 205, the product will block the light emitted by the incoming material sensing fiber optic cable 302, thus sensing whether the product is attracted in place and ensuring the accuracy during subsequent transfer. The sensing component 3 also includes an adjusting hole 303 and a connecting hole 304. The adjusting hole 303 is provided at the top of the support arm 1, and the connecting hole 304 is provided at the top of the adjusting block 301. The longer adjusting hole 303 facilitates changing the installation position and improves the adaptability of the equipment. The top of the adjusting block 301... The width of the groove is equal to the width of the support arm 1, and the connecting holes 304 are symmetrically distributed about the top of the adjusting block 301. The adjusting block 301 and the support arm 1 can be easily connected and fixed by bolts and connecting holes 304. The sensing component 3 also includes a groove 305 and a fastening hole 306. The bottom of the adjusting block 301 has a groove 305, and the side of the adjusting block 301 has a fastening hole 306. The length of the groove 305 is the same as the length of the adjusting block 301, and the upper end of the groove 305 is higher than the fastening hole 306. By installing fasteners in the fastening hole 306, the two sides of the adjusting block 301 are locked, so that the groove 305 deforms and clamps the incoming material sensing fiber 302. Therefore, it is very convenient to disassemble and maintain the incoming material sensing fiber 302.
[0023] In summary, when using this vacuum adsorption device for the rotary feeding mechanism, firstly according to... Figure 1 , Figure 2 and Figure 3 The structure shown first involves fixing the support arm 1 to the base of the turntable feeding mechanism. Then, the adjusting block 301 is fixed to the support arm 1 using bolts and connecting holes 304. Next, the incoming material sensing fiber optic cable 302 is inserted into the groove 305, and fasteners are installed in the fastening holes 306 to lock both sides of the adjusting block 301, causing the groove 305 to deform and clamp the incoming material sensing fiber optic cable 302. Then, when the vibratory feeder transports the product to the turntable distribution seat 204, the vacuum suction connector 202 is connected to an external vacuum generator through a pipe, allowing the product to be adsorbed through the through hole 203 and the vacuum suction channel 206, enabling the product to move quickly into the slot 205. Finally, after the product is adsorbed into the slot 205, the product will block the light emitted by the incoming material sensing fiber optic cable 302, thus sensing whether the product has been adsorbed properly and transmitting the signal to the controller via a cable to ensure accuracy during subsequent transfer.
[0024] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.
Claims
1. A vacuum adsorption device for a rotary feeding mechanism, comprising a support arm (1), characterized in that, One end of the support arm (1) is connected to an adsorption component (2), and the adsorption component (2) includes a mounting base (201), a vacuum suction connector (202), a through hole (203), a turntable dispensing seat (204), a slot (205), and a vacuum suction channel (206). The vacuum suction connector (202) is installed on one side of the mounting base (201), and a through hole (203) is opened inside the lower end of the mounting base (201). The turntable dispensing seat (204) is slidably connected to one side of the vacuum suction connector (202), and a slot (205) is opened on one side of the turntable dispensing seat (204). A vacuum suction channel (206) is opened inside the turntable dispensing seat (204).
2. The vacuum adsorption device for a rotary feeding mechanism according to claim 1, characterized in that, The support arm (1) is right-angled and is fixedly connected to the mounting base (201).
3. The vacuum adsorption device for a rotary feeding mechanism according to claim 1, characterized in that, The centerline of the slot (205) coincides with the centerline of the vacuum suction channel (206), and the vacuum suction channel (206) is connected to the interior of the vacuum suction connector (202) through the through hole (203).
4. A vacuum adsorption device for a rotary feeding mechanism according to claim 1, characterized in that, The arm (1) is provided with a sensing component (3) in the middle, and the sensing component (3) includes an adjustment block (301) and a material sensing fiber (302). The adjustment block (301) is provided below the middle part of the arm (1), and the material sensing fiber (302) is installed inside the lower end of the adjustment block (301).
5. A vacuum adsorption device for a rotary feeding mechanism according to claim 4, characterized in that, The sensing component (3) also includes an adjustment hole (303) and a connection hole (304). The top of the support arm (1) is provided with an adjustment hole (303), and the top of the adjustment block (301) is provided with a connection hole (304).
6. A vacuum adsorption device for a rotary feeding mechanism according to claim 5, characterized in that, The sensing component (3) further includes a groove (305) and a fastening hole (306). The bottom of the adjusting block (301) is provided with a groove (305), and the side of the adjusting block (301) is provided with a fastening hole (306).
7. A vacuum adsorption device for a rotary feeding mechanism according to claim 6, characterized in that, The width of the top groove of the adjusting block (301) is equal to the width of the support arm (1), and the connecting holes (304) are symmetrically distributed about the top of the adjusting block (301).
8. A vacuum adsorption device for a rotary feeding mechanism according to claim 6, characterized in that, The length of the groove (305) is the same as the length of the adjusting block (301), and the upper end of the groove (305) is higher than the fastening hole (306).