Tapered pipe packaging machine

By designing an automated conical tube packaging machine, the automatic stacking and conveying of conical tubes is achieved by using the combination of vibration loading and multi-port clamping parts, the problem of inefficient manual stacking in the prior art is solved and an efficient automated packaging process is achieved.

CN223187758UActive Publication Date: 2025-08-05WUHU ZHUOYUE AIR CONDITIONING PARTS CO LTD
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Patent Information

Application Number
CN202422230282.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-12
Publication Date
2025-08-05
Estimated Expiration
2034-09-12

AI Technical Summary

Technical Problem

In the prior art, the tapered tube packaging process requires a large amount of manual stacking, which is inefficient.

Method used

A conical pipe packaging machine is designed to automatically complete the stacking and conveying of conical pipes using vibrating loading trays, multi-port clamping parts and pushing components, including vibrating loading, lifting and lowering of multi-port clamping parts and moving the slider, and realize automatic stacking and conveying with the rotation of the carrier frame.

Benefits of technology

The tapered pipe packaging process is automated, saving time and effort, improving efficiency, reducing manual operation and improving production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a conical pipe packing machine, which relates to the technical field of conical pipe production and comprises a rack and a conveyor, the rack is arranged at one end of the conveyor, a vibration feeding disc is arranged at the top of the rack, a baffle is arranged at one end of the rear side of the conveyor, and the baffle is connected with the conveyor. A material receiving frame corresponding to an output port of the vibration feeding disc is arranged below the front side of the baffle, a guide plate is arranged above the front side of the baffle, and a sliding plate is movably arranged on the guide plate. The conical pipes are conveyed to the output port to the material receiving frame one by one through the vibration feeding disc, the multi-port clamping piece is located above the material receiving frame through movement of the sliding plate, the multi-port clamping piece is driven to ascend and descend through the action of the air cylinder, after multiple sets of conical pipes are clamped, the conical pipes are moved to be placed in the bearing groove, and after multiple times of clamping, the conical pipes are conveyed to the conveying device through the conveying device. The needed pipe stacks are stacked on the bearing grooves, at the moment, the pipe stacks can be conveyed to the conveyor through rotation of the bearing frame and cooperation with the effect of the pushing assembly, manual operation is not needed in the whole packaging process, and time and labor are saved.
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Description

Technical Field

[0001] The utility model relates to the technical field of tapered tube production, in particular to a tapered tube packaging machine. Background Art

[0002] The tapered tube on the air conditioning compressor housing is primarily used for air intake. This design allows air or refrigerant to enter the compressor through the tapered tube, helping the compressor work more efficiently. The shape of the tapered tube helps guide the flow of gas, improving compression efficiency, while also aiding in heat dissipation, ensuring the compressor maintains an appropriate temperature while operating efficiently. This design is particularly common in air conditioning compressors, where the intake duct is usually covered with a filter to ensure that the air or refrigerant entering the compressor is clean and prevent impurities from entering the compressor and causing damage.

[0003] In the production of conical tubes, multiple groups of conical tubes need to be stacked into stacks, and then the conical tubes are packaged in stacks. In this process, the most critical step is stacking the conical tubes. In the existing technology, the conical tubes are generally stacked manually, and then the stacked tube stacks are placed on a conveyor and transported to the next process to complete the packaging. The entire process requires a lot of manpower and material resources and is inefficient. Therefore, the utility model proposes a conical tube packaging machine to solve the problems existing in the existing technology. Summary of the Invention

[0004] In view of the above problems, the utility model proposes a conical tube packaging machine, which does not require manual stacking during the entire packaging process, saving time and labor.

[0005] To achieve the purpose of the utility model, the utility model is implemented through the following technical solutions: a conical tube packaging machine, including a stand and a conveyor, the stand is arranged at one end of the conveyor, and a vibrating loading tray is provided on the top of the stand, a baffle is provided at one end of the rear side of the conveyor, and a receiving rack corresponding to the output port of the vibrating loading tray is provided below the front side of the baffle, a guide plate is provided above the front side of the baffle, and a slide is movably provided on the guide plate, a first cylinder is provided on the front side of the slide, a connecting plate is provided at the output end of the first cylinder, and a second cylinder is provided below the connecting plate, and a multi-port clamp is provided at the output end of the second cylinder;

[0006] An axis plate is provided at one end of the top of the conveyor, and a bearing frame is rotatably provided on the inner side of the axis plate. A bearing groove is provided at the top of the bearing frame, and a pushing assembly is provided at the bottom of the bearing frame.

[0007] A further improvement is that: the vibrating loading tray is provided with two groups, and the second cylinder and the multi-port clamping member are each provided with two groups.

[0008] A further improvement lies in that: a guide rail is provided on the guide plate, the sliding plate is movably installed on the guide rail through a slider, a third cylinder is provided at one end of the guide plate, and the output end of the third cylinder is connected to the sliding plate.

[0009] A further improvement lies in that: the multi-port clamping member includes a claw plate and claw arms. Claw arms are movably provided at both ends of the bottom of the claw plate, and clamping plates are provided below the inner sides of the claw arms. Clamping grooves are provided on the inner sides of the clamping plates, and at least four groups of both the clamping grooves and the bearing grooves are provided.

[0010] A further improvement lies in that: bottom grooves are provided at both ends of the bottom of the claw plate, and a bidirectional screw rod is rotatably provided inside the two bottom grooves. The bidirectional screw rod is driven to rotate by a motor. The upper ends of the two claw arms respectively extend into the bottom grooves at both ends and are threadedly adapted to both ends of the bidirectional screw rod.

[0011] A further improvement lies in that: a motor is provided on one side of the shaft plate, and the output end of the motor is connected to the carrier.

[0012] A further improvement lies in that: the pusher assembly includes a support plate and a support block. Electric telescopic rods are provided on both sides inside the carrier. The support plate is provided below the carrier, and the support plate is connected to the output end of the electric telescopic rod. The support block is provided on the top of the support plate, and the support block is adapted to the bearing groove.

[0013] The beneficial effects of the present utility model are as follows:

[0014] 1. In the present utility model, conical tubes are sent to the output port to the receiving rack one by one through the vibrating feeding tray. Through the movement of the sliding plate, the multi-port clamping member is located above the receiving rack. The multi-port clamping member is driven to lift and lower by the action of the first cylinder and the second cylinder. After clamping multiple groups of conical tubes, with the movement of the sliding plate, the conical tubes are placed at the bearing groove. After multiple clamps, the required tube stack is stacked on the bearing groove. At this time, through the rotation of the carrier and the cooperation of the pusher assembly, the tube stack can be sent to the conveyor to be transferred to the next process. The entire packaging process does not require manual stacking, saving time and effort.

[0015] 2. Two groups of vibrating feeding trays are provided in the present utility model, and two groups of both the second cylinder and the multi-port clamping member are provided. The two multi-port clamping members can alternately clamp the conical tubes sent by the two vibrating feeding trays respectively. Through the independent drive of the second cylinder, while one multi-port clamping member is clamping, the other multi-port clamping member can discharge the materials onto the bearing groove, and thus alternate operation, with higher efficiency.

[0016] 3. When the conical tubes are placed in the bearing groove of the present utility model, the support block seals the bottom of the bearing groove. When it is necessary to unload the materials to the conveyor after stacking, after the carrier rotates in place, the electric telescopic rod pulls the support plate, so that the support block extends into the bearing groove, and then the tube stack can be pushed out, which is more convenient and reliable to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is the front view of the present utility model;

[0018] Figure 2 is the schematic structural view of the upper part of the slide plate of the present utility model;

[0019] Figure 3 is the schematic view of the bottom of the claw plate of the present utility model;

[0020] Figure 4 is the schematic structural view of the inner side of the shaft plate of the present utility model;

[0021] Figure 5 is the schematic view of the carrier frame of the present utility model;

[0022] Figure 6 is the schematic view after the conical tubes of the present utility model are stacked.

[0023] Where: 1, bench; 2, conveyor; 3, vibrating loading tray; 4, baffle; 5, material receiving frame; 6, guide plate; 7, slide plate; 8, first cylinder; 9, connecting plate; 10, second cylinder; 11, shaft plate; 12, carrier frame; 13, carrier groove; 14, third cylinder; 15, claw plate; 16, claw arm; 17, clamping plate; 18, clamping groove; 19, bottom groove; 20, bidirectional screw rod; 21, motor; 22, electric machine; 23, electric telescopic rod; 24, supporting plate; 25, supporting block; 26, conical tube. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0024] In order to deepen the understanding of the present utility model, the following will further elaborate on the present utility model in combination with embodiments. These embodiments are only used to explain the present utility model and do not constitute a limitation to the protection scope of the present utility model. Embodiment 1

[0025] According to Figure 1 、 2 、3, 4, 5, 6 shown, this embodiment proposes a conical tube packaging machine, including a bench 1 and a conveyor 2. The bench 1 is arranged at one end of the conveyor 2, and a vibrating loading tray 3 is provided on the top of the bench 1. A baffle 4 is provided at one end of the rear side of the conveyor 2, and a material receiving frame 5 corresponding to the output port of the vibrating loading tray 3 is provided below the front side of the baffle 4. A guide plate 6 is provided above the front side of the baffle 4, and a slide plate 7 is movably arranged on the guide plate 6. A first cylinder 8 is provided on the front side of the slide plate 7. The output end of the first cylinder 8 is provided with a connecting plate 9, and a second cylinder 10 is provided below the connecting plate 9. The output end of the second cylinder 10 is provided with a multi-port clamping member;

[0026] One end of the top of the conveyor 2 is provided with a shaft plate 11, and a bearing frame 12 is rotatably arranged inside the shaft plate 11. A bearing groove 13 is arranged at the top of the bearing frame 12, and a material pushing component is arranged at the bottom of the bearing frame 12. During use, the vibrating feeding tray 3 sends the conical tubes 26 one by one to the output port onto the receiving frame 5. The vibrating feeding tray 3 is a prior art for vibrating feeding. By moving the sliding plate 7, the multi-port clamping component is located above the receiving frame 5. Through the action of the first cylinder 8 and the second cylinder 10, the multi-port clamping component is driven to lift and lower. After clamping multiple groups of conical tubes, with the movement of the sliding plate 7, the conical tubes 26 are placed at the bearing groove 13. After multiple clamps, the required tube stack is stacked on the bearing groove 13. At this time, by rotating the bearing frame 12 and cooperating with the action of the material pushing component, the tube stack can be sent onto the conveyor 2 and transported to the next process.

[0027] There are two sets of the vibrating feeding trays 3, and there are two sets of the second cylinders 10 and the multi-port clamping components respectively. There are two sets of the vibrating feeding trays 3, two sets of the second cylinders 10 and two sets of the multi-port clamping components respectively. The two sets of multi-port clamping components can alternately clamp the conical tubes 26 sent by the two sets of vibrating feeding trays 3 respectively. Through the independent drive of the second cylinder 10, while one set of multi-port clamping components is clamping, the other set of multi-port clamping components can place the materials onto the bearing groove 13. Thus, by operating alternately, the efficiency is higher.

[0028] A guide rail is arranged on the guide plate 6, and the sliding plate 7 is movably installed on the guide rail through a slider. One end of the guide plate 6 is provided with a third cylinder 14, and the output end of the third cylinder 14 is connected to the sliding plate 7. During use, the third cylinder 14 pushes the sliding plate 7 to move along the guide rail, and the position of the multi-port clamping component below can be changed.

[0029] The multi-port clamping component includes a claw plate 15 and claw arms 16. Claw arms 16 are movably arranged at both ends of the bottom of the claw plate 15, and a clamping plate 17 is arranged below the inner side of the claw arms 16. A clamping groove 18 is arranged inside the clamping plate 17, and there are four sets of the clamping grooves 18 and the bearing grooves 13 respectively. Bottom grooves 19 are arranged at both ends of the bottom of the claw plate 15, and a bidirectional screw rod 20 is rotatably arranged inside the two bottom grooves 19. The bidirectional screw rod 20 is driven to rotate by a motor 21. The upper ends of the two claw arms 16 respectively extend into the inner parts of the two ends of the bottom grooves 19 and are threadedly adapted to the two ends of the bidirectional screw rod 20. During use, the motor 21 drives the bidirectional screw rod 20 to rotate, driving the two claw arms 16 to move relatively along the bottom grooves 19, so that the clamping grooves 18 on the two clamping plates 17 clamp the four conical tubes 26 and place them into the four bearing grooves 13, and multiple clamps are performed for four-group stacking. Embodiment 2

[0030] According to Figure 1 、 2As shown in FIGS. 3, 4, 5, and 6, in this embodiment, a conical tube packaging machine is proposed, which includes a frame 1 and a conveyor 2. The frame 1 is provided at one end of the conveyor 2, and a vibrating feeding tray 3 is provided on the top of the frame 1. At one end of the rear side of the conveyor 2, a baffle 4 is provided, and below the front side of the baffle 4, a receiving rack 5 corresponding to the output port of the vibrating feeding tray 3 is provided. Above the front side of the baffle 4, a guide plate 6 is provided, and a sliding plate 7 is movably provided on the guide plate 6. On the front side of the sliding plate 7, a first cylinder 8 is provided. The output end of the first cylinder 8 is provided with a connecting plate 9, and below the connecting plate 9, a second cylinder 10 is provided. The output end of the second cylinder 10 is provided with a multi-port clamping member;

[0031] At one end of the top of the conveyor 2, a shaft plate 11 is provided, and a carrier 12 is rotatably provided inside the shaft plate 11. On the top of the carrier 12, a carrier groove 13 is provided, and a pushing component is provided at the bottom of the carrier 12. During use, through the vibrating feeding tray 3, conical tubes 26 are sent to the output port onto the receiving rack 5. The vibrating feeding tray 3 is a prior art for vibrating feeding. By moving the sliding plate 7, the multi-port clamping member is located above the receiving rack 5. Through the action of the first cylinder 8 and the second cylinder 10, the multi-port clamping member is driven to lift and lower. After clamping multiple groups of conical tubes, as the sliding plate 7 moves, the conical tubes 26 are placed at the carrier groove 13. After multiple clamps, a required tube stack is stacked on the carrier groove 13. At this time, by rotating the carrier 12 and cooperating with the action of the pushing component, the tube stack can be sent onto the conveyor 2 and transported to the next process.

[0032] On one side of the shaft plate 11, a motor 22 is provided, and the output end of the motor 22 is connected to the carrier 12. The pushing component includes a support plate 24 and a support block 25. On both sides inside the carrier 12, electric telescopic rods 23 are provided. The support plate 24 is provided below the carrier 12, and the support plate 24 is connected to the output end of the electric telescopic rod 23. The support block 25 is provided on the top of the support plate 24, and the support block 25 is adapted to the carrier groove 13. When unloading onto the conveyor 2, the motor 22 drives the carrier 12 to rotate, making the tube stack face downwards. Due to the characteristics of the conical tubes 26, they are clamped tightly after stacking and will not easily disperse. When placing the conical tubes in the carrier groove 13, the support block 25 seals the bottom of the carrier groove 13. When it is necessary to unload the tube stack onto the conveyor 2 after stacking, as the carrier 12 rotates in place, the electric telescopic rod 23 pulls the support plate 24, making the support block 25 extend into the carrier groove 13, and then the tube stack can be ejected.

[0033] The conical tube packing machine sends one by one conical tubes 26 to the output port onto the receiving rack 5 through the vibrating feeding tray 3. Through the movement of the sliding plate 7, the multi-port clamping member is located above the receiving rack 5. The first cylinder 8 and the second cylinder 10 drive the multi-port clamping member to lift and lower. After clamping multiple groups of conical tubes, with the movement of the sliding plate 7, the conical tubes 26 are placed at the bearing groove 13. After multiple clamps, the required tube stack is stacked on the bearing groove 13. At this time, by rotating the bearing frame 12 and cooperating with the pushing component, the tube stack can be sent to the conveyor 2 and conveyed to the next process. The entire packing process does not require manual stacking, saving time and effort. And there are two groups of vibrating feeding trays 3, two groups of second cylinders 10 and multi-port clamping members. The two groups of multi-port clamping members can alternately clamp the conical tubes 26 sent by the two groups of vibrating feeding trays 3 respectively. Through the independent drive of the second cylinder 10, while one group of multi-port clamping members is clamping, the other group of multi-port clamping members can discharge the materials onto the bearing groove 13, and thus operate alternately with higher efficiency. At the same time, when the bearing groove 13 places the conical tubes, the supporting block 25 seals the bottom of the bearing groove 13. When it is necessary to unload the materials to the conveyor 2 after stacking, after the bearing frame 12 rotates in place, the electric telescopic rod 23 pulls the supporting plate 24, so that the supporting block 25 extends into the interior of the bearing groove 13, and then the tube stack can be ejected, which is more convenient and reliable to use.

[0034] The above shows and describes the basic principles, main features and advantages of the present utility model. Those skilled in the art of this industry should understand that the present utility model is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.

Claims

1. A conical tube packaging machine, comprising a stand (1) and a conveyor (2), characterized in that: The stand (1) is arranged at one end of the conveyor (2), and a vibrating loading tray (3) is provided on the top of the stand (1), a baffle (4) is provided at one end of the rear side of the conveyor (2), and a receiving rack (5) corresponding to the output port of the vibrating loading tray (3) is provided below the front side of the baffle (4), a guide plate (6) is provided above the front side of the baffle (4), and a slide plate (7) is movably provided on the guide plate (6), a first cylinder (8) is provided on the front side of the slide plate (7), a connecting plate (9) is provided at the output end of the first cylinder (8), and a second cylinder (10) is provided below the connecting plate (9), and a multi-port clamping member is provided at the output end of the second cylinder (10); An axis plate (11) is provided at one end of the top of the conveyor (2), and a bearing frame (12) is rotatably provided inside the axis plate (11), a bearing groove (13) is provided at the top of the bearing frame (12), and a pushing assembly is provided at the bottom of the bearing frame (12).

2. The conical tube packaging machine according to claim 1, characterized in that: The vibrating loading tray (3) is provided with two groups, and the second cylinder (10) and the multi-port clamping piece are each provided with two groups.

3. The conical tube packaging machine according to claim 1, characterized in that: A guide rail is provided on the guide plate (6), and the slide plate (7) is movably mounted on the guide rail via a slider. A third cylinder (14) is provided at one end of the guide plate (6), and an output end of the third cylinder (14) is connected to the slide plate (7).

4. The conical tube packaging machine according to claim 1, characterized in that: The multi-port clamping member comprises a claw plate (15) and a claw arm (16), wherein claw arms (16) are movably provided at both ends of the bottom of the claw plate (15), and a clamping plate (17) is provided below the inner side of the claw arm (16), and a clamping groove (18) is provided on the inner side of the clamping plate (17), and the clamping groove (18) and the bearing groove (13) are both provided with at least four groups.

5. The conical tube packaging machine according to claim 4, characterized in that: Both ends of the bottom of the claw plate (15) are provided with bottom grooves (19), and two sets of the bottom grooves (19) are internally provided with bidirectional screw rods (20) for rotation. The bidirectional screw rods (20) are driven to rotate by a motor (21). The upper ends of the two sets of claw arms (16) extend to the inside of the bottom grooves (19) at both ends respectively and are adapted to the threads at both ends of the bidirectional screw rods (20).

6. The conical tube packaging machine according to claim 1, characterized in that: A motor (22) is provided on one side of the shaft plate (11), and an output end of the motor (22) is connected to the supporting frame (12).

7. The conical tube packaging machine according to claim 6, characterized in that: The pusher assembly includes a support plate (24) and a support block (25). Electric telescopic rods (23) are provided on both sides of the interior of the carrier (12). The support plate (24) is provided below the carrier (12) and is connected to the output end of the electric telescopic rod (23). The support block (25) is provided on the top of the support plate (24) and is adapted to the bearing groove (13).