Ergothioneine capsule filling device
By designing a compact rotating and folding mechanism Ergothion capsule filling device, the problem of existing devices not being fixed to the wall and being too large is solved, and flexible use and efficient filling in small spaces are achieved.
Patent Information
- Application Number
- CN202422039452.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-22
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-08-22
AI Technical Summary
The existing Ergothion capsule filling device is designed to be independent, occupying ground space, unable to be fixed on the wall, and is large in size, so it cannot be flexibly used in a narrow or specific project needs environment, which limits its application scenarios.
A ergothion capsule filling device including a rotating mechanism and a folding mechanism is designed. The device is made compact by the rotating mechanism, and the device is fixed to the wall with the folding mechanism, reducing the footprint, and capsule filling is realized through an electric telescopic rod and injector.
It realizes flexible use in small spaces, improves space utilization, and ensures the quantity and quality of filled capsules, suitable for portable and compact arrangement environments.
Smart Images

Figure CN223126909U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of capsule processing, in particular to an ergothioneine capsule filling device. Background Art
[0002] An ergothioneine capsule filling device is a mechanical device specifically designed to accurately fill ergothioneine (EGT) powder, granules or liquid materials into capsule shells. It is widely used in the pharmaceutical, health care and food industries to meet the growing market demand for ergothioneine products. This device improves production efficiency through automated and efficient operations, ensuring the consistency and accuracy of the ergothioneine content in each capsule, thereby enhancing product quality and efficacy.
[0003] The existing capsule filling devices are designed as independent units, occupying floor space and without reserved wall-mounted installation structures, so they cannot be fixed on the wall, resulting in inconvenience in use in laboratories, pharmaceutical R & D centers and small production workshops with limited space. Secondly, they are not suitable for special projects due to their large volume. The overall volume of the device is huge and it cannot be flexibly used in environments with narrow or specific project requirements, restricting its application scenarios, especially in occasions such as clinical trials, mobile medical units and small-scale customized production that require portability and compact layout.
[0004] Therefore, aiming at the problems of the existing capsule filling devices, which are designed as independent units, occupy floor space, without reserved wall-mounted installation structures and cannot be fixed on the wall, resulting in inconvenience in use in laboratories, pharmaceutical R & D centers and small production workshops with limited space. Secondly, they are not suitable for special projects due to their large volume. The overall volume of the device is huge and it cannot be flexibly used in environments with narrow or specific project requirements, restricting its application scenarios, especially in occasions such as clinical trials, mobile medical units and small-scale customized production that require portability and compact layout, it is urgently needed to be solved to improve the use scenarios of ergothioneine capsule filling devices. Content of the Utility Model
[0005] In order to overcome the problems of common ergothioneine capsule filling devices, the existing capsule filling devices are designed as independent units, occupying floor space, without reserved wall-mounted installation structures and cannot be fixed on the wall. Secondly, they are not suitable for special projects due to their large volume. The overall volume of the device is huge and it cannot be flexibly used in environments with narrow or specific project requirements, restricting its application scenarios.
[0006] The technical solution of the utility model is as follows: An ergothioneine capsule filling device, which includes a platform. At the upper end of the platform, there is a rotating mechanism, which includes a placement groove, a screw rod, a clamping plate, a positioning plate, an auxiliary wheel, a ball, a motor, a rotating wheel, a filling plate, a filling groove, and a gripping groove. A placement groove is opened at the upper end of the platform. The left and right sides of the platform are threadedly connected with screw rods. The two screw rods extend to the inner side of the placement groove and are drivingly connected with a clamping plate. The front ends of the two clamping plates are connected with a positioning plate. The inner sides of the two clamping plates are rotatably connected with an auxiliary wheel. The same auxiliary wheel is rotatably connected to the rear ends of the two positioning plates. A number of balls are rotatably connected at equal intervals at the upper end of the placement groove. The upper ends of the balls are movably connected with a filling plate. At the rear side of the lower end of the platform, there is a motor. The output end of the motor extends into the placement groove and is connected with a rotating wheel. The rotating wheel is movably connected with the filling plate. At the lower end of the platform, there is a folding mechanism, and at the upper end of the platform, there is a filling mechanism.
[0007] Preferably, by setting the rotating mechanism, while making the overall structure of the device compact, it can also ensure the amount of filled capsules. Coupled with the folding mechanism, the floor area can be greatly reduced to solve the problems of the existing capsule filling device. Since the device is designed as an independent type, it occupies floor space and there is no reserved wall-mounted installation structure, so it cannot be fixed on the wall. Secondly, it is not suitable for special projects due to its large volume. The overall volume of the device is huge and it cannot be flexibly used in a narrow or specific project environment, restricting its application scenarios.
[0008] As a preference, a number of filling grooves are opened at equal intervals at the upper end of the filling plate, and a number of gripping grooves are opened at equal intervals inside the filling plate. The filling grooves are used to place capsules, and the gripping grooves are used to conveniently grip the filling plate for easy taking of the filling plate.
[0009] As a preference, the auxiliary wheel is movably connected with the filling plate. There are four auxiliary wheels. The auxiliary wheels are used to clamp the filling plate while ensuring the rotation of the filling plate.
[0010] As a preference, the folding mechanism includes a support block and a sliding groove. The left and right sides of the lower end of the platform are connected with support blocks. The left and right sides of the two support blocks are provided with sliding grooves, and the sliding grooves are used to adjust the position of the support blocks, thereby assisting the support blocks to fold.
[0011] As a preference, the folding mechanism includes a mounting plate and a limiting rod. The lower ends of the two support blocks are movably connected with a mounting plate. A limiting rod is arranged inside the mounting plate. The mounting plate is fixed to the external wall through external mounting screws, thereby fixing the device on the wall.
[0012] As a preference, there are two mounting plates. The limiting rod is movably connected with the sliding groove, and the support block is movably connected with the mounting plate. By the limiting rod moving on the sliding groove, the folding effect of the support block on the mounting plate can be achieved.
[0013] Preferably, the filling mechanism includes an electric telescopic rod and an injector; the electric telescopic rod is connected to the left and right sides of the upper end of the platform, the upper end of the electric telescopic rod is connected to the injector, the injector and the filling slot are matched with each other, and the injector is driven by the electric telescopic rod to fill the capsules in the filling slot. When not in use, the electric telescopic rod can be used to reduce the occupied space and save space occupancy rate.
[0014] Beneficial effects of the utility model:
[0015] 1. By setting a rotating mechanism, the overall structure of the device is compact while ensuring the amount of filled capsules. Combined with the folding mechanism, the floor space can be greatly reduced to solve the problem that the existing capsule filling device is designed as an independent device, occupies ground space, and has no reserved wall-mounted installation structure and cannot be fixed on the wall. Secondly, the device is large in size and is not suitable for special projects. The overall size of the device is large and cannot be flexibly used in a narrow environment or in a specific project environment, which limits its application scenarios.
[0016] 2. By setting a rotating mechanism, the mounting plate is fixed to the wall through external positioning screws, and the platform is pushed upward, the platform drives the slide groove to move, and the support block drives the slide groove to slide on the limit rod. When sliding to the bottom of the slide groove, the platform is rotated to make the support block with the slide groove rotate on the limit rod, thereby unfolding the platform, and pressing the platform downward to make the support block cooperate with the mounting plate to resist the support block, thereby achieving the unfolding effect. This design effectively reduces the footprint of the device and improves the space utilization rate. The screws on both sides are rotated, and the screws rotate on the platform, thereby pushing the clamping plate to clamp and position the filling disk through the auxiliary wheel, and starting the electric telescopic rod. The electric telescopic rod drives the injector to rise and fall, thereby filling ergothioneine into the capsule, starting the motor, and the motor drives the rotating wheel to rotate, thereby rotating the filling disk, cooperating with the injector, so that all the capsules on the filling disk are filled. While the structure is compact and convenient to carry and the space utilization rate is reduced, it will not affect the number of filled capsules, thereby improving practicality. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 What is shown is a schematic diagram of a three-dimensional explosion structure of an ergothioneine capsule filling device of the utility model;
[0018] Figure 2 What is shown is a three-dimensional structural schematic diagram of an ergothioneine capsule filling device of the utility model;
[0019] Figure 3 What is shown is a three-dimensional exploded upward structural schematic diagram of an ergothioneine capsule filling device of the utility model;
[0020] Figure 4The figure shows a schematic diagram of the three-dimensional rear view structure of an ergothioneine capsule filling device of the present utility model.
[0021] In the figure: 1, platform; 2, rotating mechanism; 3, folding mechanism; 4, filling mechanism; 21, placement groove; 22, screw; 23, clamping plate; 24, positioning plate; 25, auxiliary wheel; 26, ball; 27, motor; 28, rotating wheel; 29, filling disc; 210, filling groove; 211, gripping groove; 31, support block; 32, sliding groove; 33, mounting plate; 34, limiting rod; 41, electric telescopic rod; 42, injector. Specific embodiments
[0022] The present utility model will be further described below in conjunction with the accompanying drawings and embodiments.
[0023] Please refer to Figures 1-4 , the present utility model provides an embodiment: an ergothioneine capsule filling device, including a platform 1, a rotating mechanism 2 is arranged at the upper end of the platform 1, the rotating mechanism 2 includes a placement groove 21, a screw 22, a clamping plate 23, a positioning plate 24, an auxiliary wheel 25, a ball 26, a motor 27, a rotating wheel 28, a filling disc 29, a filling groove 210, a gripping groove 211; a placement groove 21 is opened at the upper end of the platform 1, screws 22 are threadedly connected to the left and right sides of the platform 1, and the two screws 22 extend to the inner side of the placement groove 21 and are drivingly connected to a clamping plate 23, a positioning plate 24 is connected to the front ends of the two clamping plates 23, auxiliary wheels 25 are rotatably connected to the inner sides of the two clamping plates 23, auxiliary wheels 25 of the same kind are rotatably connected to the rear ends of the two positioning plates 24, a number of balls 26 are rotatably connected at equal intervals at the upper end of the placement groove 21, a filling disc 29 is movably connected to the upper ends of the balls 26, a motor 27 is connected to the rear side of the lower end of the platform 1, the output end of the motor 27 extends into the placement groove 21 and is connected to a rotating wheel 28, the rotating wheel 28 is movably connected to the filling disc 29, a folding mechanism 3 is arranged at the lower end of the platform 1, and a filling mechanism 4 is arranged at the upper end of the platform 1.
[0024] Please refer to Figures 1-4, in this embodiment, by setting the rotating mechanism 2, while making the overall structure of the device compact, it can also ensure the amount of filled capsules. Coupled with the folding mechanism 3, the floor area can be greatly reduced to solve the problems of the existing capsule filling device. Since the device is designed as an independent type, it occupies floor space and there is no reserved wall-mounted installation structure, so it cannot be fixed on the wall. Secondly, it is not suitable for special projects due to its large volume. The overall volume of the device is huge and it cannot be flexibly used in narrow or specific project requirement environments, restricting its application scenarios. The upper end of the filling tray 29 is provided with a number of filling grooves 210 at equal intervals, and the inside of the filling tray 29 is provided with a number of gripping grooves 211 at equal intervals. The filling grooves 210 are used to place the capsules, and the gripping grooves 211 are used to conveniently grip the filling tray 29 for easy taking of the filling tray 29. The auxiliary wheels 25 are movably connected to the filling tray 29. There are four auxiliary wheels 25. The auxiliary wheels 25 are used to clamp the filling tray 29 and can also ensure the rotation of the filling tray 29. The folding mechanism 3 includes a support block 31 and a sliding groove 32. The left and right sides of the lower end of the platform 1 are connected with the support block 31, and the left and right sides of the two support blocks 31 are provided with sliding grooves 32. The sliding grooves 32 are used to adjust the position of the support block 31, thereby assisting the support block 31 to fold.
[0025] Please refer to Figures 2-4 , in this embodiment, the folding mechanism 3 includes a mounting plate 33 and a limiting rod 34. The lower ends of the two support blocks 31 are movably connected with the mounting plate 33. The inside of the mounting plate 33 is provided with a limiting rod 34. The mounting plate 33 is fixed to the external wall through external mounting screws, thereby fixing the device on the wall. There are two mounting plates 33. The limiting rod 34 is movably connected with the sliding groove 32, and the support block 31 is movably connected with the mounting plate 33. By the limiting rod 34 moving on the sliding groove 32, the folding effect of the support block 31 on the mounting plate 33 can be achieved. The filling mechanism 4 includes an electric telescopic rod 41 and a filler 42. The left and right sides of the upper end of the platform 1 are connected with the electric telescopic rod 41, and the upper end of the electric telescopic rod 41 is connected with the filler 42. The filler 42 is matched with the filling groove 210. The electric telescopic rod 41 drives the filler 42 to fill the capsules in the filling groove 210. In the unused state, the electric telescopic rod 41 can be used to reduce the occupied space and save the space occupancy rate.
[0026] When working, first fix the mounting plate 33 to the wall through the external positioning screws, push the platform 1 upward, the platform 1 drives the slide groove 32 to move, and the support block 31 drives the slide groove 32 to slide on the limit rod 34. When sliding to the bottom of the slide groove 32, rotate the platform 1 to make the support block 31 with the slide groove 32 rotate on the limit rod 34, so as to unfold the platform 1, press the platform 1 downward, so that the support block 31 cooperates with the mounting plate 33 and presses against the support block 31, so as to achieve the unfolding effect, put the bottom of the capsule into the filling groove 210 on the filling tray 29, and grab the grip groove 22. 11 is convenient for placing the filling tray 29, pushing the filling tray 29 into the placement groove 21 through the ball bearing 26, rotating the screw rods 22 on both sides, and the screw rods 22 rotate on the platform 1, thereby pushing the clamping plate 23 to clamp and position the filling tray 29 through the auxiliary wheel 25, and then starting the electric telescopic rod 41, the electric telescopic rod 41 drives the injector 42 to rise and fall, so that ergothioneine is filled into the capsule, starting the motor 27, and the motor 27 drives the rotating wheel 28 to rotate, so that the filling tray 29 rotates, and cooperates with the injector 42, so that all the capsules on the filling tray 29 are filled.
[0027] Through the above steps, the rotating mechanism 2 is used to make the overall structure of the device compact while ensuring the amount of filled capsules. Combined with the folding mechanism 3, the floor space can be greatly reduced to solve the problem that the existing capsule filling device is designed to be independent, occupies ground space, and has no reserved wall-mounted installation structure and cannot be fixed on the wall. Secondly, the large size is not suitable for special projects. The overall size of the device is large and cannot be flexibly used in a small environment or in an environment with specific project requirements, which limits its application scenarios.
[0028] The embodiments of the present invention are described in detail above in conjunction with the accompanying drawings, but the present invention is not limited to the above embodiments, and various changes can be made within the knowledge scope of those skilled in the art without departing from the purpose of the present invention.
Claims
1. An ergothioneine capsule filling device, comprising a platform (1), characterized in that: At the upper end of the platform (1), a rotating mechanism (2) is provided. The rotating mechanism (2) includes a placement groove (21), a screw rod (22), a clamping plate (23), a positioning plate (24), an auxiliary wheel (25), a ball (26), a motor (27), a rotating wheel (28), a filling plate (29), a filling groove (210), and a gripping groove (211). A placement groove (21) is opened at the upper end of the platform (1). Screw rods (22) are threadedly connected to the left and right sides of the platform (1). The two screw rods (22) extend to the inner side of the placement groove (21) and are drivingly connected to a clamping plate (23). A positioning plate (24) is connected to the front ends of the two clamping plates (23). Auxiliary wheels (25) are rotatably connected to the inner sides of the two clamping plates (23). The same auxiliary wheels (25) are rotatably connected to the rear ends of the two positioning plates (24). A number of balls (26) are rotatably connected at equal intervals at the upper end of the placement groove (21). The upper ends of the balls (26) are movably connected to a filling plate (29). A motor (27) is connected to the rear side of the lower end of the platform (1). The output end of the motor (27) extends into the placement groove (21) and is connected to a rotating wheel (28). The rotating wheel (28) is movably connected to the filling plate (29). A folding mechanism (3) is provided at the lower end of the platform (1), and a filling mechanism (4) is provided at the upper end of the platform (1).
2. The ergothioneine capsule filling device according to claim 1, wherein: A number of filling grooves (210) are opened at equal intervals at the upper end of the filling plate (29). A number of gripping grooves (211) are opened at equal intervals inside the filling plate (29).
3. The ergothioneine capsule filling device according to claim 2, wherein: The auxiliary wheels (25) are movably connected to the filling plate (29), and there are four auxiliary wheels (25).
4. A ergothioneine capsule filling device according to claim 1, wherein: The folding mechanism (3) includes a support block (31) and a sliding groove (32). Support blocks (31) are connected to the left and right sides of the lower end of the platform (1). Sliding grooves (32) are opened on the left and right sides of the two support blocks (31).
5. A ergothioneine capsule filling device according to claim 4, characterized in that: The folding mechanism (3) includes a mounting plate (33) and a limiting rod (34). A mounting plate (33) is movably connected to the lower ends of the two support blocks (31). A limiting rod (34) is provided inside the mounting plate (33).
6. The ergothioneine capsule filling device according to claim 5, wherein: There are two mounting plates (33). The limiting rod (34) is movably connected to the sliding groove (32), and the support block (31) is movably connected to the mounting plate (33).
7. The ergothioneine capsule filling device according to claim 2, characterized in that: The filling mechanism (4) includes an electric telescopic rod (41) and a filler (42). Electric telescopic rods (41) are connected to the left and right sides of the upper end of the platform (1). The upper ends of the electric telescopic rods (41) are connected to a filler (42), and the filler (42) is matched with the filling groove (210).