Rapid feeding and discharging component for rhinestones

By introducing a partition rotation and vibration component into the water drill feeding and unloading component, the problem of limited gravity feeding speed was solved, enabling stable and rapid water drill feeding, and improving production efficiency and equipment life.

CN223962602UActive Publication Date: 2026-03-03JIANGXI YINZHUANG NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202520520582.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2026-03-03
Estimated Expiration
2035-03-24

AI Technical Summary

Technical Problem

The existing water drill feeding and unloading components rely on gravity, which limits the sliding speed and makes it impossible to quickly push a sufficient number of water drills to the processing position, thus affecting production efficiency.

Method used

The water drill is separated by a rotating baffle in the storage tank and combined with a vibration component. The rotating shaft is driven by a motor and gear meshing, which pushes the water drill to slide out of the discharge chute. At the same time, a spiral block and vibration component are installed in the discharge cylinder to extend the falling time and prevent blockage.

Benefits of technology

It achieves stable and rapid material feeding for water drills, avoids jamming, improves overall production efficiency and smoothness, and extends the service life of the feed cylinder.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of rhinestone processing, and discloses a rhinestone rapid feeding and discharging component which comprises a storage barrel, a discharging groove is formed in the storage barrel, a connecting sleeve is fixedly connected to the lower surface of the storage barrel, a discharging barrel is fixedly connected to the side wall of the connecting sleeve, and a discharging pipe is fixedly connected to the lower surface of the discharging barrel. A material pouring assembly is arranged in the material storage barrel, and a vibration assembly is arranged on the side wall of the discharging barrel. And the material pouring assembly comprises a rotating shaft and a partition plate, the side wall of the rotating shaft is rotationally connected to the interior of the material storage barrel, and the side wall of the partition plate is fixedly connected to the side wall of the rotating shaft. According to the feeding device, the rhinestone is divided into a plurality of parts through the partition plates, the first gear is made to rotate by starting the motor, the second gear is driven to rotate through the meshing relation, then the rotating shaft drives the partition plates to rotate, and therefore the rhinestone in the partition plates is pushed to slide out of the discharging groove, and the effect of stably supplying materials to the discharging barrel is achieved; through the structure, the feeding stability is improved.
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Description

Technical Field

[0001] This utility model relates to the field of water drill processing technology, and in particular to a water drill rapid feeding and unloading component. Background Technology

[0002] In the field of rhinestone processing and production, an efficient and precise material feeding and unloading process plays a crucial role in improving overall production efficiency. Due to the widespread application of rhinestones in various industries such as clothing, jewelry, and handicrafts, market demand continues to grow, which places higher demands on the performance of rhinestone processing equipment, especially the performance of the material feeding and unloading components. As a key link in the rhinestone processing production line, the technological innovation and optimization of the rapid material feeding and unloading components directly affect the smoothness of the entire production process and product quality.

[0003] Currently, in terms of material feeding for water drills, some existing technologies employ a relatively traditional gravity-feeding mechanical structure. This structure relies primarily on the water drill's own weight, using inclined slides or hoppers to allow the drill to slide naturally to the processing position under gravity. The technical principle is to convert the water drill's gravitational potential energy into kinetic energy to transport the material. In simple manual processing scenarios or small workshops where production efficiency requirements are not high, this method can meet basic material feeding needs to a certain extent.

[0004] Existing rapid feeding and unloading mechanisms for water drills rely on gravity, and the sliding speed of the water drills is constrained by various factors such as the inclination angle of the slide, the friction between the water drills, and the stacking situation. In actual production, when it is necessary to accelerate the production pace, gravity feeding cannot quickly push a sufficient number of water drills to the processing position, resulting in insufficient material supply to the unloading cylinder and affecting overall production efficiency. Therefore, a rapid feeding and unloading mechanism for water drills is proposed to solve the above problems. Utility Model Content

[0005] To overcome the above shortcomings, this utility model provides a rapid feeding and unloading component for water drills, which aims to improve the problem in the existing technology where gravity feeding results in an inability to quickly push a sufficient number of water drills to the processing position, leading to insufficient material supply from the unloading cylinder and affecting overall production efficiency.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] A water drill rapid feeding and unloading component includes a storage tank, an unloading chute inside the storage tank, a connecting sleeve fixedly connected to the lower surface of the storage tank, an unloading cylinder fixedly connected to the side wall of the connecting sleeve, an unloading pipe fixedly connected to the lower surface of the unloading cylinder, a pouring component inside the storage tank, and a vibration component on the side wall of the unloading cylinder.

[0008] The material pouring assembly includes a rotating shaft and a partition. The side wall of the rotating shaft is rotatably connected to the inside of the storage bin. The side wall of the partition is fixedly connected to the side wall of the rotating shaft. A fixing plate is fixedly connected to the bottom of the storage bin. A motor is fixedly connected to the lower surface of the fixing plate. A gear one is fixedly connected to the output end of the motor. One end of the rotating shaft passes through the storage bin and is fixedly connected to a gear two.

[0009] As a further description of the above technical solution:

[0010] The vibration assembly includes a mounting plate, a fixing sleeve, a connecting block, and a striking block. The side wall of the mounting plate is fixedly connected to the side wall of the feed cylinder. The lower surface of the fixing sleeve is fixedly connected to the upper surface of the mounting plate in the middle. The side wall of the connecting block is slidably connected inside the fixing sleeve. The side wall of the striking block is fixedly connected to the side wall of the connecting block.

[0011] As a further description of the above technical solution:

[0012] The storage hopper is fixedly connected to a mounting ring on its side wall for installing the equipment to the unloading position. The gear is rotatably connected to the inside of the storage hopper on one side wall, and gear one meshes with gear two.

[0013] As a further description of the above technical solution:

[0014] A spiral block is fixedly connected inside the feed cylinder, and the spiral block is used to extend the falling time of the water drill;

[0015] As a further description of the above technical solution:

[0016] A motor is fixedly connected to the lower surface of the mounting plate, and an eccentric wheel is fixedly connected to the output end of the motor. The side wall of the eccentric wheel is rotatably connected inside the mounting plate.

[0017] As a further description of the above technical solution:

[0018] The sidewall of the eccentric wheel is rotatably connected to a rotating block, and the sidewall of the rotating block is rotatably connected inside the connecting block.

[0019] As a further description of the above technical solution:

[0020] The upper mounting plate and the lower mounting plate are both fixedly connected to the upper surface of the mounting plate. A sliding rod is slidably connected inside the fixed sleeve. One end of the sliding rod is fixedly connected to the side wall of the striking block.

[0021] As a further description of the above technical solution:

[0022] The striking block is made of rubber to reduce direct impact on the feed cylinder.

[0023] This utility model has the following beneficial effects:

[0024] 1. In this utility model, the water drill is divided into multiple parts by a partition. The motor is started to rotate gear one, which drives gear two to rotate through meshing. This causes the shaft to rotate the partition, thereby pushing the water drill inside the partition to slide out of the discharge chute. This achieves a stable feeding effect to the discharge cylinder. This solves the problem that some water drill feeding components rely on gravity feeding, and the sliding speed of the water drill is restricted by various factors such as the tilt angle of the slide, the friction between the water drills, and the accumulation situation. This results in the inability to quickly push a sufficient number of water drills to the processing position, leading to insufficient feeding of the discharge cylinder and affecting the overall production efficiency. The above structure improves the stability of the feeding.

[0025] 2. In this utility model, by installing a spiral block inside the feeding cylinder, the water drill moves along the spiral path during its descent, prolonging the descent time of the water drill and playing a buffering role. At the same time, the motor drives the eccentric wheel to rotate, causing the rotating block to drive the connecting block to reciprocate, thereby allowing the striking block to strike the feeding cylinder and generate vibration, thus preventing the water drill from being blocked or stuck in the channel during the feeding process. Attached Figure Description

[0026] Figure 1 This is a three-dimensional schematic diagram of the water drill rapid feeding and unloading component proposed in this utility model;

[0027] Figure 2 This is a schematic diagram of the internal structure of the storage tank of the water drill rapid feeding and unloading component proposed in this utility model.

[0028] Figure 3 This is a schematic diagram of the bottom of the storage tank of the water drill rapid feeding and unloading component proposed in this utility model.

[0029] Figure 4 This is a schematic diagram of the internal structure of the feeding bucket of the water drill rapid feeding and unloading component proposed in this utility model;

[0030] Figure 5 This is a schematic diagram of the mounting plate of the water drill rapid feeding and unloading component proposed in this utility model.

[0031] Legend:

[0032] 1. Storage hopper; 2. Feeding cylinder; 3. Feeding pipe; 4. Mounting ring; 5. Rotating shaft; 6. Partition plate; 7. Discharge chute; 8. Connecting sleeve; 9. Fixing plate; 10. Motor; 11. Gear 1; 12. Gear 2; 13. Spiral block; 14. Mounting plate; 15. Motor; 16. Eccentric wheel; 17. Rotating block; 18. Fixing sleeve 1; 19. Connecting block; 20. Striking block; 21. Fixing sleeve 2; 22. Slide rod. Detailed Implementation

[0033] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0034] Reference Figures 1-4 This utility model provides an embodiment of a rapid material feeding and unloading component for water drills, comprising a storage tank 1, an internal discharge chute 7, a connecting sleeve 8 fixedly connected to the lower surface of the storage tank 1, a discharge cylinder 2 fixedly connected to the side wall of the connecting sleeve 8, a discharge pipe 3 fixedly connected to the lower surface of the discharge cylinder 2, a pouring assembly inside the storage tank 1, and a vibration assembly on the side wall of the discharge cylinder 2; the pouring assembly includes a rotating shaft 5 and a partition 6, the side wall of the rotating shaft 5 being rotatably connected to the inside of the storage tank 1, and the side wall of the partition 6 being fixedly connected to the side wall of the rotating shaft 5. A fixed plate 9 is fixedly connected to the bottom of the storage tank 1. A motor 10 is fixedly connected to the lower surface of the fixed plate 9. A gear 11 is fixedly connected to the output end of the motor 10. One end of the rotating shaft 5 passes through the storage tank 1 and is fixedly connected to a gear 12. An installation ring 4 is fixedly connected to the side wall of the storage tank 1 for installing the equipment to the unloading position. The side wall of the gear 11 is rotatably connected to the inside of the storage tank 1. The gear 11 meshes with the gear 12. A spiral block 13 is fixedly connected inside the unloading cylinder 2. The spiral block 13 is used to extend the falling time of the water drill.

[0035] When using this equipment, first start the motor 10. After the motor 10 starts running, it drives the gear 11 to rotate. The teeth of the gear 11 mesh with the gear 12. Because the gear 11 and gear 12 are meshing, the gear 12 rotates accordingly, thereby driving the rotating shaft 5 to rotate synchronously. As the rotating shaft 5 rotates, the partition 6 also rotates. The partition 6 is located inside the storage tank 1. Its main function is to separate the large number of water drills stored in the storage tank 1, preventing the water drills from piling up disorderly in the storage tank 1. When the partition 6 rotates, it can push the water drills in the separated area to slide out of the discharge chute 7 in an orderly manner. Compared with the traditional gravity feeding method, this pushing method can more accurately and efficiently control the discharge rhythm and number of water drills. The water drill slides out of the discharge chute 7 and enters the discharge cylinder 2 through the connecting sleeve 8. The connecting sleeve 8 serves as a transition link, ensuring that the water drill can be smoothly transferred from the discharge chute 7 to the discharge cylinder 2, preventing the water drill from getting stuck or falling during the transfer process. After entering the discharge cylinder 2, the water drill then passes through the spiral block 13. The spiral structure design of the spiral block 13 can further guide and accelerate the water drill, allowing it to move downwards in a more stable and faster state under the guidance of the rotating spiral. Finally, the water drill is discharged from the discharge pipe 3, transporting the water drill required for processing to the subsequent processing position, ensuring the smooth operation of the entire water drill processing production process.

[0036] Reference Figures 4-5 The vibration assembly includes a mounting plate 14, a fixing sleeve 18, a connecting block 19, and a striking block 20. The side wall of the mounting plate 14 is fixedly connected to the side wall of the feed cylinder 2. The lower surface of the fixing sleeve 18 is fixedly connected to the upper surface of the middle mounting plate 14. The side wall of the connecting block 19 is slidably connected to the inside of the fixing sleeve 18. The side wall of the striking block 20 is fixedly connected to the side wall of the connecting block 19. A motor 15 is fixedly connected to the lower surface of the mounting plate 14. An eccentric wheel 16 is fixedly connected to the output end of the motor 15. The side wall of the eccentric wheel 16 is rotatably connected to the inside of the mounting plate 14. A rotating block 17 is rotatably connected to the side wall of the eccentric wheel 16. The side wall of the rotating block 17 is rotatably connected to the inside of the connecting block 19. Fixing sleeves 21 are fixedly connected to the upper surfaces of both the upper and lower mounting plates 14. A sliding rod 22 is slidably connected inside the fixing sleeve 21. One end of the sliding rod 22 is fixedly connected to the side wall of the striking block 20. The striking block 20 is made of rubber and is used to reduce direct impact on the feed cylinder 2.

[0037] During the process of the water drill entering the feed cylinder 2, the motor 15 is started, driving the eccentric wheel 16 to rotate. When the eccentric wheel 16 rotates around the axis, the rotating block 17 can generate a motion trajectory different from the conventional circular motion, causing the connecting block 19 to reciprocate within the fixed sleeve 18. The fixed sleeve 18 provides a constraint on the movement of the connecting block 19, ensuring that the connecting block 19 can only reciprocate in a limited straight direction, preventing its movement from deviating or shaking. The reciprocating sliding of the connecting block 19 causes the striking block 20 to continuously strike the side wall, upper and lower sliding rods 22 of the feed cylinder 2, playing an important role in stabilizing the movement trajectory of the striking block 20. The sliding rod 22 cooperates with the fixed sleeve 21. When the striking block 20 is driven by the connecting block 19 to perform the striking action, the sliding rod 22 slides synchronously within the fixed sleeve 21. The movement of the striking block 20 is constrained from the side, thereby improving the stability and reliability of the striking action. The striking block 20 is made of rubber. When the striking block 20 strikes the side wall of the feeding cylinder 2, the rubber material has good buffering performance, which can reduce the direct impact on the feeding cylinder 2, reduce the risk of wear and damage to the side wall of the feeding cylinder 2 caused by frequent striking, and extend the service life of the feeding cylinder 2. At the same time, the elastic deformation of the rubber material during striking will cause micro-vibrations. These vibrations are transmitted to the inside through the side wall of the feeding cylinder 2, which makes the water drills in the feeding cylinder 2 fall more smoothly, breaking the adhesion, jamming and other obstacles between the water drills. The energy of the vibration makes the water drills move more efficiently to the discharge end under the action of gravity, improving the smoothness and efficiency of the entire feeding process.

[0038] Working principle: When using this equipment, first start the motor 10, which drives gear 11 to rotate. Since gear 11 meshes with gear 12, gear 12 rotates accordingly, thereby driving the rotating shaft 5 to rotate synchronously. As the rotating shaft 5 rotates, the partition 6 also rotates. The water drills stored inside the storage tank 1 are separated by the partition 6. When the partition 6 rotates, it pushes the water drills inside to slide out of the discharge chute 7, realizing the feeding of materials to the connecting sleeve 8 and the feeding cylinder 2. After sliding out of the discharge chute 7, the water drills enter the feeding cylinder 2 through the connecting sleeve 8, then pass through the spiral block 13, and finally complete the final feeding from the feeding pipe 3. During the material cylinder 2 process, the motor 15 is started, which drives the eccentric wheel 16 to rotate. When the eccentric wheel 16 rotates, the rotating block 17 drives the connecting block 19 to slide back and forth in the fixed sleeve 18. The back and forth sliding of the connecting block 19 causes the striking block 20 to continuously strike the side wall of the material cylinder 2. The sliding rod 22, which is slidably connected in the fixed sleeve 21 on the upper and lower mounting plates 14, plays a role in stabilizing the movement trajectory of the striking block 20. The striking block 20 is made of rubber, which reduces the direct impact on the material cylinder 2 when striking the side wall of the material cylinder 2. At the same time, the vibration generated makes the water drill in the material cylinder 2 fall more smoothly.

[0039] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A rapid feeding and discharging component for water-drill, comprising a storage barrel (1), characterized in that: The inside of the storage barrel (1) is provided with a discharge chute (7), the lower surface of the storage barrel (1) is fixedly connected with a connecting sleeve (8), the side wall of the connecting sleeve (8) is fixedly connected with a discharging cylinder (2), the lower surface of the discharging cylinder (2) is fixedly connected with a discharging pipe (3), the inside of the storage barrel (1) is provided with a pouring assembly, and the side wall of the discharging cylinder (2) is provided with a vibration assembly. The pouring assembly comprises a rotating shaft (5) and a partition plate (6), the side wall of the rotating shaft (5) is rotatably connected in the inside of the storage barrel (1), the side wall of the partition plate (6) is fixedly connected with the side wall of the rotating shaft (5), the bottom of the storage barrel (1) is fixedly connected with a fixed plate (9), the lower surface of the fixed plate (9) is fixedly connected with a motor (10), the output end of the motor (10) is fixedly connected with a gear one (11), and one end of the rotating shaft (5) penetrates through the storage barrel (1) and is fixedly connected with a gear two (12).

2. The quick feed and laydown member for simulated diamonds of claim 1, wherein: The vibration assembly comprises a mounting plate (14), a fixed sleeve one (18), a connecting block (19) and a knocking block (20), the side wall of the mounting plate (14) is fixedly connected with the side wall of the discharging cylinder (2), the lower surface of the fixed sleeve one (18) is fixedly connected with the upper surface of the mounting plate (14) in the middle, the side wall of the connecting block (19) is slidably connected in the inside of the fixed sleeve one (18), and the side wall of the knocking block (20) is fixedly connected with the side wall of the connecting block (19).

3. The quick feed and laydown member for simulated diamonds of claim 1, wherein: The side wall of the storage barrel (1) is fixedly connected with a mounting ring (4) for mounting the equipment to a discharging position, the side wall of the gear one (11) is rotatably connected in the inside of the storage barrel (1), and the gear one (11) is engaged with the gear two (12).

4. The quick feed and laydown member for simulated diamonds of claim 1, wherein: The inside of the discharging cylinder (2) is fixedly connected with a spiral block (13), and the spiral block (13) is used for prolonging the falling time of a water drill.

5. The quick feed and laydown member for simulated diamonds of claim 2, wherein: The lower surface of the mounting plate (14) is fixedly connected with a motor (15), the output end of the motor (15) is fixedly connected with an eccentric wheel (16), and the side wall of the eccentric wheel (16) is rotatably connected in the inside of the mounting plate (14).

6. The quick feed and laydown member for simulated diamonds of claim 5, wherein: The side wall of the eccentric wheel (16) is rotatably connected with a rotating block (17), and the side wall of the rotating block (17) is rotatably connected in the inside of the connecting block (19).

7. The quick feed and laydown member for simulated diamonds of claim 2, wherein: The upper mounting plate (14) and the upper surface of the lower mounting plate (14) are both fixedly connected with a fixed sleeve two (21), the inside of the fixed sleeve two (21) is slidably connected with a sliding rod (22), and one end of the sliding rod (22) is fixedly connected with the side wall of the knocking block (20).

8. The quick feed and laydown member for simulated diamonds of claim 2, wherein: The knocking block (20) is made of rubber material and is used for reducing the direct impact on the discharging cylinder (2).