Seamless soft capsule titration forming device

Through the seamless soft capsule titration molding device with integrated molding structure and intelligent control system, the problem of unstable capsule molding in the prior art is solved, and efficient and stable soft capsule production is achieved.

CN223081975UActive Publication Date: 2025-07-11XIAN LE JIAN KANG KE JI (GUANG DONG) YOU XIAN GONG SI
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Patent Information

Application Number
CN202421611292.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-09
Publication Date
2025-07-11
Estimated Expiration
2034-07-09

AI Technical Summary

Technical Problem

Due to manual assembly and connection, the existing seamless soft capsule molding device cannot guarantee the stability of the diameter of the capsule molding product, resulting in low production efficiency and insufficient sealing.

Method used

A seamless soft capsule titration molding device with an integrated molding structure is designed, including the first channel and the second channel, which are used for the circulation of core material and glue liquid respectively. The channel design ensures that the glue liquid evenly wraps the core material, and improves production stability and efficiency through thermally conductive materials and intelligent control systems.

Benefits of technology

实现了软胶囊的外观和成品稳定性,提高了生产效率,保证了产品的气密性和质量,适应不同规格的生产需求,并降低了人力成本。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a seamless soft capsule titration forming device which is of an integrally-formed structure, and a first feeding port and a second feeding port are formed in the side face or the top of the seamless soft capsule titration forming device respectively. A first feeding port and a second feeding port are formed in the bottom of the seamless soft capsule titration forming device, a first discharging port and a second discharging port surrounding the peripheral side of the first discharging port are formed in the bottom of the seamless soft capsule titration forming device, a first channel and a second channel are formed in the seamless soft capsule titration forming device, one end of the first channel communicates with the first feeding port, and the other end of the first channel communicates with the first discharging port; the second channel is arranged around the peripheral side of the first channel, the first discharging port is used for core materials to pass through, and the second discharging port is used for glue liquid to pass through. By means of the integrally-formed device, the stability of the overall structure is kept, the stability of the production quality of products is guaranteed, the production efficiency is improved, the integrally-formed structure also has good air tightness, and the production quality of the products is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of health food manufacturing, in particular to a seamless soft capsule titration molding device. Background Art

[0002] Soft capsules belong to a type of packaging for capsules, commonly seen in pharmaceuticals or health foods; it is a type of capsule in which a liquid or liquid medicine is processed and sealed in a soft capsule material; the soft capsule material is made of gelatin for capsules, glycerin or other suitable pharmaceutical excipients alone or in combination, and refers to a capsule in which a certain amount of liquid medicine is directly encapsulated, or a solid medicine is dissolved or dispersed in a suitable excipient to form a solution, suspension, emulsion or semi-solid and sealed in a spherical or oval soft capsule material.

[0003] During the molding process of seamless soft capsules, the glue liquid and the core material need to flow out through the molding device. In the existing molding device, the glue liquid discharging mechanism and the core material discharging mechanism are combined and manually fixed for processing and manufacturing. Since this molding device is assembled and connected manually, it is impossible to ensure the stability of the diameter of the capsule molding product, and the long assembly and debugging time results in low production efficiency, and it is impossible to ensure the airtightness of the device. Summary of the Utility Model

[0004] The utility model aims to solve at least one of the problems in the related art to some extent. For this reason, one of the purposes of the utility model is to provide a seamless soft capsule titration molding device, which uses an integrally formed device to maintain the stability of the overall structure, ensure the stability of the product production quality, improve the production efficiency, and the integrally formed structure also has good airtightness to ensure the production quality of the product.

[0005] A seamless soft capsule titration molding device, the seamless soft capsule titration molding device is an integrally formed structure, a first feed port and a second feed port are respectively opened on the side or top of the seamless soft capsule titration molding device, a first discharge port and a second discharge port surrounding the outer peripheral side of the first discharge port are opened at the bottom, a first channel and a second channel are formed inside the seamless soft capsule titration molding device, one end of the first channel communicates with the first feed port, and the other end communicates with the first discharge port, one end of the second channel communicates with the second feed port, and the other end communicates with the second discharge port, the second channel surrounds the circumferential side of the first channel, the first discharge port is for the core material to pass through, and the second discharge port is for the glue liquid to pass through.

[0006] Further, the center lines of the first discharge port and the second discharge port are located on the same straight line.

[0007] Such a design ensures that the glue liquid can evenly wrap around the core material during discharging, guaranteeing the appearance and finished product stability of the product.

[0008] Furthermore, the first feed inlet is opened on the side of the seamless soft capsule titration molding device, and the second feed inlet is opened on the top of the seamless soft capsule titration molding device.

[0009] Such a design conforms to the fact that the first feed inlet has a smaller feed volume and the second feed inlet has a larger feed volume, ensuring the accuracy and stability of the feeding process.

[0010] Furthermore, the cross-sectional shape of the first channel is circular, and the cross-sectional shape of the second channel is annular.

[0011] The cooperation between the second channel and the first channel can achieve a production mode in which the glue liquid can evenly wrap around the core material.

[0012] Furthermore, the diameter of the first channel gradually decreases along the direction from the first feed inlet to the first discharge outlet;

[0013] And / or, the diameter of the second channel gradually decreases along the direction from the second feed inlet to the second discharge outlet.

[0014] With such a setting, the discharge diameters of the first discharge outlet and the second discharge outlet are both the diameters required for the product, and a certain storage space can also be formed inside the second channel.

[0015] Furthermore, the material of the seamless soft capsule titration molding device is a heat-conducting material.

[0016] Using a heat-conducting material can ensure that the seamless soft capsule titration molding device maintains a stable temperature during operation, maintaining the quality and stability of the product.

[0017] Furthermore, the seamless soft capsule titration molding device includes a first control valve, the first control valve is connected to the first feed inlet, and the first control valve is used to control the flow rate of the first feed inlet.

[0018] The first control valve is used to control the flow rate of the first feed inlet, and can accurately control the flow rate of the first feed inlet.

[0019] Furthermore, the seamless soft capsule titration molding device includes a second control valve, the second control valve is connected to the second feed inlet, and the second control valve is used to control the flow rate of the second feed inlet.

[0020] The second control valve is used to control the flow rate of the second feed inlet, and can accurately control the flow rate of the second feed inlet.

[0021] Further, the seamless soft capsule titration forming device is provided with a plurality of first feed inlets, and the plurality of first feed inlets are arranged at intervals along the circumferential side. The plurality of first feed inlets are all communicated with the first channel.

[0022] The arrangement of a plurality of first feed inlets can adapt to products with a variety of different core material feeds. Different first feed inlets are used to feed one material, and they are all mixed through the first channel, improving the adaptability of the device.

[0023] Further, an external thread is provided on the outer periphery of the top of the seamless soft capsule titration forming device, and the external thread is used for threaded connection between the seamless soft capsule titration forming device and the glue delivery pipe.

[0024] In the design of the seamless soft capsule titration forming device, the addition of the external thread not only enhances the stability of its connection with the glue delivery pipe, but also improves the production efficiency and operation convenience.

[0025] The above technical solution provided by the embodiment of the present application has the following advantages compared with the prior art: In the present application, the seamless soft capsule titration forming device is set as an integral forming structure. After the device is produced, it is an integral structure. A first channel and a second channel are arranged in the device. The first channel communicates the first feed inlet and the second discharge outlet. The first feed inlet is used for the core material to pass through. The second channel communicates the second feed inlet and the second discharge outlet. The second discharge outlet is used for the glue solution to pass through. The second channel is arranged around the circumferential side of the first channel. The second discharge outlet is arranged along the outer circumferential side of the first discharge outlet. The second discharge outlet is located outside the first discharge outlet. After the materials are discharged from the two discharge outlets, the glue solution can wrap around the core material to realize the manufacture of soft capsules. In the device, the positions of the first channel and the second channel are structures formed synchronously during the production of the device. Through debugging and designing for fine production, the stability of the overall structure is maintained, and the stability of the product production quality is also ensured; in addition, no additional assembly and cooperation are required during production and use, improving the production efficiency. The integral forming structure also has good airtightness, ensuring the production quality of the product. Description of the Drawings

[0026] The drawings here are incorporated into the description and form a part of this description, showing embodiments consistent with the present invention and used together with the description to explain the principles of the present invention.

[0027] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, for those of ordinary skill in the art, other drawings can also be obtained based on these drawings without creative labor.

[0028] In the drawings:

[0029] Figure 1 This is a schematic structural diagram of an embodiment of a seamless soft capsule titration molding device of the present application;

[0030] Figure 2 This is a schematic structural diagram of the first channel and the second channel in a seamless soft capsule titration molding device of the present application;

[0031] Figure 3 is Figure 2 A schematic structural diagram of another perspective of the seamless soft capsule titration molding device shown;

[0032] Figure 4 This is a cross-sectional schematic diagram of a seamless soft capsule titration molding device of the present application;

[0033] Figure 5 This is a partial cross-sectional structural schematic diagram of a seamless soft capsule titration molding device of the present application;

[0034] Figure 6 This is a bottom view of a seamless soft capsule titration molding device of the present application.

[0035] Reference numerals: 1, seamless soft capsule titration molding device; 10a, first feed inlet; 10b, first discharge outlet; 11, first channel; 20a, second feed inlet; 20b, second discharge outlet; 21, second channel; 30, external thread. Detailed implementation manners

[0036] The preferred embodiments of the present invention will be described in more detail below with reference to the accompanying drawings. Although the preferred embodiments of the present invention are shown in the drawings, it should be understood that the present invention can be implemented in various forms and should not be limited by the embodiments set forth herein. On the contrary, these embodiments are provided to make the present invention more thorough and complete, and to fully convey the scope of the present invention to those skilled in the art.

[0037] As Figure 1 - Figure 6 shown, a seamless soft capsule titration molding device 1 provided by the present application is an integrally formed structure. A first feed inlet 10a and a second feed inlet 20a are respectively provided on the side or top of the seamless soft capsule titration molding device 1, and a first discharge outlet 10b and a second discharge outlet 20b provided around the outer peripheral side of the first discharge outlet 10b are provided at the bottom. A first channel 11 and a second channel 21 are formed inside the seamless soft capsule titration molding device 1. One end of the first channel 11 communicates with the first feed inlet 10a, and the other end communicates with the first discharge outlet 10b. One end of the second channel 21 communicates with the second feed inlet 20a, and the other end communicates with the second discharge outlet 20b. The second channel 21 is provided around the circumferential side of the first channel 11. The first discharge outlet 10b is for the core material to pass through, and the second discharge outlet 20b is for the glue solution to pass through.

[0038] The integrated molding structure of the seamless soft capsule titration molding device 1 ensures its stability and durability during the production process. The positions of the first channel 11 and the second channel 21, as well as the relative positions of the first channel 11 and the second channel 21, are maintained, thereby maintaining the relative positions of the first discharge port 10b and the second discharge port 20b, ensuring the stability of the appearance, mixing ratio, and discharge position of the soft capsule during discharge from the first discharge port 10b and the second discharge port 20b. Whether it is the first feed port 10a or the second feed port 20a, they are precisely designed to ensure that the core material and the glue solution can flow smoothly into the first channel 11 and the second channel 21. At the same time, the settings of the first discharge port 10b and the second discharge port 20b enable the core material and the glue solution of the soft capsule to be precisely mixed in a preset ratio, thereby ensuring the uniformity and stability of the soft capsule.

[0039] Secondly, the second channel 21 is arranged around the circumferential side of the first channel 11. This design not only makes full use of the space but also ensures that the glue solution can evenly wrap around the core material. During the production process of the soft capsule, this step is particularly crucial as it directly affects the appearance and efficacy of the soft capsule.

[0040] In addition, the seamless soft capsule titration molding device 1 also has a high degree of adjustability. By adjusting the feeding speeds of the first feed port 10a and the second feed port 20a, as well as the discharge speeds of the first discharge port 10b and the second discharge port 20b, the size, shape, and the ratio of the core material to the glue solution of the soft capsule can be precisely controlled. This high degree of adjustability enables the device to adapt to the production of soft capsules with different specifications and requirements.

[0041] Finally, the seamless soft capsule titration molding device 1 also has the advantages of high automation and simple operation. It can be directly used after production without secondary assembly and combination. During the production process, only the core material and the glue solution need to be respectively added to the first feed port 10a and the second feed port 20a, and then the corresponding parameters are set, and the device can automatically complete the titration molding of the soft capsule. This not only reduces the labor cost but also improves the production efficiency.

[0042] The above technical solution provided by the embodiments of the present application has the following advantages compared with the prior art: By setting the seamless soft capsule titration molding device 1 into an integrated molding structure, the device is an integrated structure after production. There are a first channel 11 and a second channel 21 inside the device. The first channel 11 communicates with the first feed port 10a and the second discharge port 20b. The first feed port 10a is for the core material to pass through. The second channel 21 communicates with the second feed port 20a and the second discharge port 20b. The second discharge port 20b is for the glue solution to pass through. The second channel 21 is arranged around the circumference of the first channel 11. The second discharge port 20b is arranged along the outer circumference of the first discharge port 10b. The second discharge port 20b is located outside the first discharge port 10b. After the materials are discharged from the two discharge ports, the glue solution can wrap around the core material to realize the manufacture of soft capsules. In the device, the positions of the first channel 11 and the second channel 21 are the molding structures during the production of the device. Through debugging and refined production design, the stability of the overall structure is maintained, and the stability of the product production quality is also ensured. In addition, no additional assembly and coordination are required during production and use, improving production efficiency. The integrated molding structure also has good airtightness, ensuring the production quality of the product.

[0043] As Figure 1 - Figure 6 As shown, a seamless soft capsule titration molding device 1 provided by the present application is an integrated molding structure. A first feed port 10a and a second feed port 20a are respectively opened on the side or top of the seamless soft capsule titration molding device 1. A first discharge port 10b and a second discharge port 20b arranged around the outer circumference of the first discharge port 10b are opened at the bottom. A first channel 11 and a second channel 21 are formed inside the seamless soft capsule titration molding device 1. One end of the first channel 11 communicates with the first feed port 10a, and the other end communicates with the first discharge port 10b. One end of the second channel 21 communicates with the second feed port 20a, and the other end communicates with the second discharge port 20b. The second channel 21 is arranged around the circumference of the first channel 11. The first discharge port 10b is for the core material to pass through, and the second discharge port 20b is for the glue solution to pass through.

[0044] Specifically, the center lines of the first discharge port 10b and the second discharge port 20b are on the same straight line. Such a design ensures that the glue solution can evenly wrap around the core material during discharging, guaranteeing the appearance and finished product stability of the product.

[0045] In another embodiment, the size and shape of the discharge ports can also be optimized. The first discharge port 10b is designed as a wide oval shape so that the materials can flow out quickly and smoothly, reducing the risk of blockage. The second discharge port 20b adopts a slightly smaller circular design to more precisely control the material flow rate to meet the requirements of different production links.

[0046] Meanwhile, to further improve the automation level of the equipment, intelligent sensors such as temperature sensors, flow sensors, pressure sensors, etc. are equipped at both the first discharge port 10b and the second discharge port 20b, and the sensors are electrically connected to the central system. These sensors can monitor the flow rate and status of the material in real time and transmit the data to the central control system in real time. Through data analysis, the system can automatically adjust the opening and closing degree of the discharge port and the distribution ratio of the material, thus ensuring the stability and efficiency of the production process.

[0047] Furthermore, the first feed port 10a is opened on the side of the seamless soft capsule titration molding device 1, and the second feed port 20a is opened on the top of the seamless soft capsule titration molding device 1.

[0048] In the design of the seamless soft capsule titration molding device 1, in addition to the feed ports on the side and the top, the device also particularly considers the operation convenience and production efficiency. Therefore, at the bottom of the device, an adjustable third feed port is added. This third feed port can not only be opened or closed according to the production requirements, but also be finely adjusted according to the size and shape of the soft capsule to ensure the accuracy and stability of the feeding process.

[0049] In addition, to further improve the production efficiency and product quality, the device is optimized in the internal structure of the seamless soft capsule titration molding device 1. The device adopts an advanced hydrodynamic design, enabling the soft capsule to be evenly heated and quickly cooled during the molding process, thus ensuring the regular shape and smooth surface of the soft capsule.

[0050] Meanwhile, the device also enhances the safety performance of the device. Protective devices are installed at the key parts of the feed port and the molding cavity to prevent operators from being injured due to misoperation. In addition, an emergency stop button is set. Once an abnormal situation occurs, the operator can immediately press the button to make the device stop running quickly and avoid the occurrence of accidents.

[0051] In addition to the improvements in hardware, the device is equipped with an intelligent control system for the seamless soft capsule titration molding device 1. This system can automatically adjust parameters such as the feeding speed and molding temperature according to the production requirements, realizing the automation and intelligence of the production process. At the same time, the system also has a fault self-diagnosis function. Once an abnormal situation is detected, it can immediately issue an alarm and automatically handle the fault.

[0052] Furthermore, as Figure 2 - Figure 6As shown, the cross-sectional shape of the first channel 11 is circular, and the cross-sectional shape of the second channel 21 is annular. The first channel 11 with a circular cross-section is characterized by the stability and efficiency during fluid flow. Due to the characteristics of the circle, the fluid encounters less resistance when flowing through the channel, thus achieving higher flow rate and lower energy consumption. In addition, the symmetry of the circle also enables it to maintain stable performance in various complex environments.

[0053] For the second channel 21, its annular cross-sectional design provides greater flexibility. The central part of the ring can be used for the setting of the first channel 11, and the cooperation between the second channel 21 and the first channel 11 can achieve a production mode where the glue can evenly wrap around the core material. At the same time, the outer part of the ring also serves as the main fluid channel, and through its larger contact area, efficient heat exchange or mass exchange can be achieved. This design not only improves the integration of the system but also enhances its functionality.

[0054] In practical applications, these two channel designs can also be used to produce other types of products. For example, in some systems that require efficient fluid transmission, the first channel 11 can serve as the main fluid channel, while the second channel 21 is used for heat exchange or mass exchange. And in some systems that need to handle multiple fluids, the second channel 21 can, through its annular design, achieve the parallel transmission and processing of multiple fluids.

[0055] In addition, it is worth noting that the designs of these two channels can be further combined with other technologies to achieve more advanced functions. For example, by introducing nanotechnology, a special coating can be formed on the channel surface to achieve functions such as anti-corrosion, anti-wear, or improving heat exchange efficiency. Or, by introducing intelligent control technology, precise control of the fluid flow in the channel can be achieved to meet various complex process requirements.

[0056] Furthermore, as Figure 2 - Figure 5 shown, the diameter of the first channel 11 gradually decreases along the direction from the first feed port 10a to the first discharge port 10b; with such a setting, the discharge diameter of the first discharge port 10b is the diameter required for the product, and a certain storage space can also be formed inside the first channel 11.

[0057] And / or, the diameter of the second channel 21 gradually decreases along the direction from the second feed port 20a to the second discharge port 20b. With such a setting, the discharge diameter of the second discharge port 20b is the diameter required for the product, and a certain storage space can also be formed inside the second channel 21.

[0058] To optimize the fluidity of materials in the channels and the processing efficiency, we can also set multiple stepped structures with different diameters in the channels. These stepped structures can gradually compress and refine the materials while ensuring the smooth flow of the materials. Specifically, in the first channel 11, starting from the first feed port 10a, a stepped structure with a slightly smaller diameter is set at regular intervals until the first discharge port 10b. Such a design can cause the materials to be slightly squeezed when flowing through each step, thereby achieving gradual refinement. The same design also applies to the second channel 21, from the second feed port 20a to the second discharge port 20b, to gradually compress and refine the materials through the stepped structure.

[0059] In addition to the above structural design, we can further optimize the material processing effect by controlling parameters such as the temperature and pressure of the channels. For example, in materials that require high-temperature treatment, we can increase the temperature in the channel by heating the channel wall surface, thereby accelerating the reaction rate of the materials. In materials that require low-pressure treatment, we can reduce the pressure in the channel to reduce the volatilization loss of the materials.

[0060] Furthermore, the material of the seamless soft capsule titration forming device 1 is a heat-conducting material. The heat-conducting material can be stainless steel, silica gel, or alloy materials, etc. The alloy material can be copper-molybdenum alloy or nickel-based alloy. Copper-molybdenum alloy is an alloy material that performs very well in high-temperature environments. It has excellent heat-conducting performance, as well as certain antioxidant and corrosion resistance properties. Currently, copper-molybdenum alloy is widely used in equipment such as deep fryers and hot soup buckets in the food processing and fast food industries. Nickel-based alloy is an alloy material with high strength and good antioxidant and corrosion resistance properties at high temperatures. This alloy is widely used in equipment such as frying and steaming in the fast food industry because it has high temperature resistance, good antioxidant performance, and can maintain the stability of the material under high-temperature pressure. Using a heat-conducting material can ensure that the seamless soft capsule titration forming device 1 maintains a stable temperature during operation, maintaining the quality and stability of the product. The heat-conducting material not only ensures the high heat transfer efficiency of the device but also ensures the uniform distribution of heat inside the device. This means that during the titration forming process of the soft capsule, each drop of the soft capsule can be solidified under the same temperature conditions, avoiding the quality difference of the soft capsules caused by uneven temperature.

[0061] In addition, the antioxidant and corrosion resistance properties of the heat-conducting material also greatly extend the service life of the seamless soft capsule titration forming device 1. During the long-term production process, the device will inevitably come into contact with various chemical substances and high-temperature environments. If the material is not corrosion-resistant or has poor antioxidant performance, it is easy to cause device damage or performance degradation. By using heat-conducting materials such as copper-molybdenum alloy or nickel-based alloy, it can effectively resist the erosion of these adverse factors and ensure the long-term stable operation of the device.

[0062] Furthermore, the seamless soft capsule titration molding device 1 includes a first control valve, which is connected to the first feed port 10a, and the first control valve is used to control the flow rate of the first feed port 10a. The flow rate of the first feed port 10a can be precisely controlled.

[0063] Furthermore, the seamless soft capsule titration molding device 1 includes a second control valve, which is connected to the second feed port 20a, and the second control valve is used to control the flow rate of the second feed port 20a. The flow rate of the second feed port 20a can be precisely controlled.

[0064] In the design of the seamless soft capsule titration molding device 1, fine control is the key to ensuring product quality and production efficiency. In addition to the first and second control valves mentioned above, the device is also equipped with a series of advanced control elements to achieve more precise and flexible operation. Among them, the device is equipped with a temperature control system, which can monitor and adjust the temperature inside and outside the soft capsule in real time. This is because the molding and curing processes of the soft capsule have strict requirements for temperature, and too high or too low temperature may affect the quality and performance of the soft capsule. By precisely controlling the temperature, it can ensure that the soft capsule is molded and cured under the best conditions, thereby improving the overall quality of the product. In addition, the device also has a pressure regulation system. During the molding process of the soft capsule, appropriate pressure can ensure that the shape and size of the soft capsule meet the design requirements. The pressure regulation system can adjust the pressure size in real time according to production needs to ensure the stability and reliability of the soft capsule molding process.

[0065] As Figure 1 - Figure 6 shown, a seamless soft capsule titration molding device 1 provided by the present application is an integrally formed structure. The side or top of the seamless soft capsule titration molding device 1 is respectively provided with a first feed port 10a and a second feed port 20a, and the bottom is provided with a first discharge port 10b and a second discharge port 20b arranged around the outer peripheral side of the first discharge port 10b. A first channel 11 and a second channel 21 are formed inside the seamless soft capsule titration molding device 1. One end of the first channel 11 communicates with the first feed port 10a, and the other end communicates with the first discharge port 10b. One end of the second channel 21 communicates with the second feed port 20a, and the other end communicates with the second discharge port 20b. The second channel 21 is arranged around the circumference of the first channel 11. The first discharge port 10b is for the core material to pass through, and the second discharge port 20b is for the glue solution to pass through.

[0066] Specifically, the seamless soft capsule titration forming device 1 is provided with a plurality of first feeding ports 10a. The plurality of first feeding ports 10a are arranged at intervals along the circumferential side, and the plurality of first feeding ports 10a are all communicated with the first channel 11. Considering that different soft capsules may require different drugs or components, a plurality of second feeding ports 20a are also provided on the second channel 21 of the device. These second feeding ports 20a are also distributed at intervals along the circumferential side to ensure that each component can be introduced evenly and accurately.

[0067] At the same time, in order to monitor the manufacturing process of the soft capsule in real time, a high-definition camera system is installed inside the device. This system can capture every detail of the soft capsule titration in real time and transmit the images to the display screen of the control center. In this way, the operator can understand the forming state of the soft capsule at any time to ensure that every step in the production process meets the expectations.

[0068] Furthermore, an external thread 30 is provided on the outer periphery of the top of the seamless soft capsule titration forming device 1. The external thread 30 is used for the threaded connection between the seamless soft capsule titration forming device 1 and the glue delivery pipe. In the design of the seamless soft capsule titration forming device 1, the addition of the external thread 30 not only enhances the firmness of its connection with the glue delivery pipe, but also improves the production efficiency and operation convenience. When the glue delivery pipe is tightly screwed with the external thread 30 of the titration forming device, a closed and stable system is formed, effectively preventing the leakage of the glue liquid during the transmission process, ensuring the cleanliness of the production environment and the purity of the product. Further, the connection mode between the device and the glue delivery pipe can also be a fitting connection, a clamping connection, etc., which is not limited herein.

[0069] It can be understood that the above embodiments only represent the preferred embodiments of the present invention, and the description is relatively specific and detailed, but it should not be construed as a limitation to the scope of the patent of the present invention; it should be noted that for those of ordinary skill in the art, without departing from the concept of the present invention, the above technical features can be freely combined, and several deformations and improvements can also be made, and these all belong to the protection scope of the present invention; therefore, all equivalent transformations and modifications made to the scope of the claims of the present invention shall fall within the scope covered by the claims of the present invention.

Claims

1. A seamless soft capsule titration forming device, characterized in that, The seamless soft capsule titration forming device is of an integrally formed structure. A first feed inlet and a second feed inlet are respectively provided on the side or top of the seamless soft capsule titration forming device, and a first discharge outlet and a second discharge outlet surrounding the outer peripheral side of the first discharge outlet are provided at the bottom. A first channel and a second channel are formed inside the seamless soft capsule titration forming device. One end of the first channel communicates with the first feed inlet, and the other end communicates with the first discharge outlet. One end of the second channel communicates with the second feed inlet, and the other end communicates with the second discharge outlet. The second channel surrounds the circumferential side of the first channel. The first feed inlet is for the core material to pass through, and the second feed inlet is for the glue solution to pass through.

2. The seamless soft capsule titration forming device according to claim 1, wherein, The center lines of the first discharge outlet and the second discharge outlet are on the same straight line.

3. The seamless soft capsule titration forming device according to claim 2, characterized in that, The first feed inlet is provided on the side of the seamless soft capsule titration forming device, and the second feed inlet is provided on the top of the seamless soft capsule titration forming device.

4. A seamless soft capsule titration molding device according to claim 3, characterized in that, The cross-sectional shape of the first channel is circular, and the cross-sectional shape of the second channel is annular.

5. A seamless soft capsule titration forming device according to claim 4, characterized in that, The diameter of the first channel gradually decreases along the direction from the first feed inlet to the first discharge outlet; and / or, the diameter of the second channel gradually decreases along the direction from the second feed inlet to the second discharge outlet.

6. A seamless soft capsule titration molding device according to any one of claims 1 to 5, characterized in that, The material of the seamless soft capsule titration forming device is a heat-conducting material.

7. A seamless soft capsule titration forming device according to any one of claims 1 to 5, characterized in that, The seamless soft capsule titration forming device includes a first control valve, which is connected to the first feed inlet, and the first control valve is used to control the flow rate of the first feed inlet.

8. A seamless soft capsule titration molding device according to any one of claims 1 to 5, characterized in that, The seamless soft capsule titration forming device includes a second control valve, which is connected to the second feed inlet, and the second control valve is used to control the flow rate of the second feed inlet.

9. A seamless soft capsule titration forming device according to any one of claims 1 to 5, characterized in that, The number of the first feed inlets provided on the seamless soft capsule titration forming device is multiple, and the multiple first feed inlets are arranged at intervals along the circumferential side, and the multiple first feed inlets are all communicated with the first channel.

10. A seamless soft capsule titration forming device according to any one of claims 1 to 5, characterized in that, External threads are provided on the outer periphery of the top of the seamless soft capsule titration forming device, and the external threads are used for the seamless soft capsule titration forming device to be threadedly connected with the glue delivery pipe.