Ganoderma lucidum spore oil soft capsule production line and production method

By setting up a cleaning and drying mechanism, defective products of gourd-shaped soft capsules are screened and their surfaces are cleaned. The two-stage drying process solves the problems of inadequate cleaning and adsorption, thereby improving production efficiency and drug release effect.

CN121668022APending Publication Date: 2026-03-17ANHUI JISHENGYUAN PHARM CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-24
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing technologies for soft capsule production suffer from problems such as inadequate cleaning, unstable manual quality inspection, and easy adsorption during storage. In particular, gourd-shaped soft capsules are prone to dead corners and adsorption during the cleaning process.

Method used

A cleaning mechanism is set up to screen and clean non-conforming products. A two-stage drying process is adopted. First, beeswax is wrapped at both ends of the soft capsule and then the beeswax in the middle waist is removed. The screening and surface cleaning of non-conforming products are achieved through separation and cleaning components. The middle waist is isolated and dried by the first-stage drying component, and the second-stage drying component performs secondary drying and beeswax coating.

Benefits of technology

It improves production efficiency, avoids the tediousness of manual quality inspection, ensures uniform drying and beeswax coating of soft capsules, prevents adsorption, controls disintegration rate, and achieves sustained release of the drug solution.

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Abstract

The invention relates to the technical field of soft capsule production, in particular to a ganoderma lucidum spore oil soft capsule production line and a production method.The ganoderma lucidum spore oil soft capsule production line comprises a cleaning mechanism arranged behind a soft capsule forming machine and used for cleaning newly-formed soft capsules and screening unqualified capsules; comprising a cleaning pool, a separation assembly arranged in the cleaning pool and a cleaning assembly arranged behind the separation assembly. The drying mechanism is used for drying the soft capsules and comprises a drying chamber arranged behind the cleaning mechanism, and a first-stage drying assembly and a second-stage drying assembly which are arranged in the drying chamber; and the wrapping mechanism is arranged above the cleaning mechanism and used for wrapping the specific positions of the surfaces of the soft capsules output by the first-stage drying assembly with beewax and inputting the soft capsules into the second-stage drying assembly for re-drying. The technical problems that cleaning is not in place in the calabash-shaped soft capsule production process, and adsorption is prone to occurring in the manual quality inspection and storage process are solved.
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Description

Technical Field

[0001] This invention relates to the field of soft capsule production technology, and in particular to a production line and production method for Ganoderma lucidum spore oil soft capsules. Background Technology

[0002] Ganoderma lucidum spore oil soft capsules are made from fat-soluble active ingredients extracted from Ganoderma lucidum spores. They mainly contain triterpenoids, polysaccharides, and unsaturated fatty acids, and have effects such as regulating immunity, anti-oxidation, liver protection, and improving cardiovascular function. Their efficacy is closely related to the characteristics of their components and modern pharmacological research, making them suitable for specific populations as a nutritional supplement.

[0003] Soft capsules, also known as capsules, are a type of capsule packaging commonly found in pharmaceuticals and health foods. They are capsules made by sealing liquid or liquid-solid drugs within a soft capsule material. The soft capsule material is made alone or in combination with capsule gelatin, glycerin, or other suitable pharmaceutical excipients.

[0004] However, during the actual production and use of soft capsules, it was found that manual quality inspection is required during the production process, and there is an adsorption phenomenon on the outer shell of the packaging during long-term storage. Summary of the Invention

[0005] The purpose of this invention is to address the shortcomings of existing technologies by setting up a cleaning mechanism, a drying mechanism, and a wrapping mechanism. For gourd-shaped soft capsules, the density of the cleaning solution is used to screen out defective products during the cleaning process. Then, beeswax is wrapped at both ends of the soft capsule but not in the middle. Through two drying processes, the soft capsule is dried and shaped. This solves the technical problems of inadequate cleaning, manual quality inspection, and easy adsorption during storage in the production of gourd-shaped soft capsules.

[0006] To address the above technical issues, the following technical solution is adopted: A production line for Ganoderma lucidum spore oil soft capsules includes: The cleaning mechanism is located behind the soft capsule forming machine and is used to clean the newly formed soft capsules and screen out unqualified capsules. It includes a cleaning tank, a separation component located in the cleaning tank, and a cleaning component located behind the separation mechanism. The soft capsules are screened out in the separation component and then fed into the cleaning component for cleaning. The drying mechanism is used to dry soft capsules and includes a drying chamber located after the cleaning mechanism, a primary drying component and a secondary drying component located in the drying chamber. The primary drying component dries the soft capsules output from the cleaning mechanism, and the secondary drying component dries the soft capsules output from the packaging mechanism. The wrapping mechanism, located above the cleaning mechanism, is used to wrap beeswax around specific locations on the surface of the soft capsules output from the primary drying component and then input them into the secondary drying component for re-drying.

[0007] Preferably, the separation assembly includes a conveyor belt disposed in the cleaning tank, an immersion tank disposed in the middle of the conveyor belt, an agitator roller rotatably connected to the bottom of the immersion tank, a flooding plate fixed behind the immersion tank, a discharge nozzle fixed above the immersion tank, a collection trough vertically and slidably connected to both sides of the immersion tank, and multiple sets of push blocks slidably connected below the flooding plate.

[0008] Preferably, the cleaning assembly includes multiple sets of cleaning rollers rotatably connected to the rear of the flooding plate, multiple sets of cleaning nozzles fixed above the cleaning rollers, multiple sets of cloth curtains slidably connected above the cleaning rollers, multiple sets of drainage ducts disposed behind the cleaning rollers, and a reciprocating plate disposed below the cleaning rollers.

[0009] Preferably, the primary drying assembly includes a vibratory plate located below the conveyor belt, a positioning groove fixed on the vibratory plate, an adjusting rod slidably connected to the vibratory plate, a discharge port located at the tail end of the vibratory plate, a sliding rail slidably connected to the outer end of the discharge port of the vibratory plate, an arranging rod slidably connected to the sliding rail and having multiple receiving holes cut on it, and a stop rod slidably connected to the bottom of the arranging rod.

[0010] Preferably, the primary drying assembly further includes a drying tray slidably connected to the drying chamber and divided into upper and lower layers, multiple sets of drying holes disposed in the drying tray, two sets of annular airbags disposed at both ends of the upper drying holes, and a release rod slidably connected to the lower end of the lower drying holes.

[0011] Preferably, the packaging mechanism includes a roller disposed behind the primary drying component, a large number of dense soft brushes disposed on the inner wall of the roller, spray nozzles disposed at the base of the soft brushes, and a peeling component disposed behind the roller.

[0012] Preferably, the stripping assembly includes a drop plate disposed behind the roller, multiple sets of baffles fixed to the bottom of the drop plate, an inclined plate rotatably connected to the middle of the baffles, and a flat roller rotatably connected to the bottom of the inclined plate.

[0013] Preferably, the stripping assembly further includes multiple sets of moving grooves fixed below the drop plate, a rinsing groove disposed in the middle of the moving groove, a cleaning wheel rotatably connected in the middle of the rinsing groove, a drain groove fixed at the bottom of the moving groove, a belt rotatably connected above the rinsing groove and having a lever fixed on its surface, and a rotating roller rotatably connected at the bottom of the drain groove.

[0014] Preferably, the secondary drying assembly is located behind the moving trough and includes a drying belt rotatably connected to the drying chamber, a heat insulation trough fixed to the surface of the drying belt, an isolation belt rotatably connected above the drying belt, and circular grooves for accommodating soft capsules opened on the heat insulation trough and the isolation belt.

[0015] As a further preferred embodiment, the method for producing Ganoderma lucidum spore oil soft capsules, applied to the aforementioned Ganoderma lucidum spore oil soft capsule production line, includes the following steps: Step 1, screening and cleaning: The freshly formed soft capsules are fed into the cleaning mechanism. In the separation component, the density of the cleaning liquid causes the unqualified soft capsules to float, thus achieving screening. Then, they are fed into the cleaning component for surface cleaning. Step 2, primary drying: The cleaned soft capsules are fed into the primary drying unit, where they are isolated at the waist of the middle section to dry both ends of the soft capsules. Step 3, the wrapping step: The soft capsules that have been dried once are fed into the wrapping mechanism. First, beeswax is completely and evenly wrapped on the surface of the soft capsules. Then, the beeswax in the middle waist area is washed away using the cleaning solution in the cleaning tank, so that the beeswax is wrapped in a specific position. Step four, secondary drying: The wrapped soft capsules are fed into the secondary drying unit, the two ends of the soft capsules are isolated, and the middle waist area is dried a second time. The dried soft capsules are then output from the equipment.

[0016] The beneficial effects of this invention are: (1) In this invention, a cleaning mechanism is set up to clean the surface of soft capsules after they are formed. Taking advantage of the fact that qualified soft capsules have a constant density and unqualified soft capsules have a smaller density, the soft capsules are immersed in the cleaning solution during the cleaning process. The unqualified soft capsules are screened by buoyancy, which avoids the tediousness and instability of manual quality inspection and improves production efficiency. (2) In this invention, by setting up a drying component, on the one hand, by adopting two-stage drying, and on the other hand, by adapting to the subsequent wrapping mechanism, the water content in the middle part of the soft capsule is increased by utilizing the hydrophobicity of beeswax, so that it can be removed more easily after wrapping with beeswax. On the other hand, the two-stage drying can ensure the balanced drying effect of the soft capsule, and prevent the surface from hardening too quickly, resulting in residual internal moisture or the waist from cracking due to excessive drying. (3) In this invention, by setting up a wrapping mechanism, for gourd-shaped capsules, a layer of beeswax is evenly wrapped around both ends of the soft capsule. This layer of honey can effectively prevent the shells at both ends of the soft capsule from contacting the sidewall of the packaging, thereby avoiding the adsorption phenomenon that occurs during long-term storage. At the same time, for the middle not wrapped with beeswax, the disintegration rate of the soft capsule is controlled, so that the soft capsule starts to disintegrate from the middle. After the soft capsule disintegrates, the two ends will separate, and the two ends will release the medicine outward at the same time, thereby compensating for the beeswax's obstruction of the soft capsule's disintegration. In summary, this equipment has the advantages of simple and ingenious structure, high production efficiency, and high resource and energy utilization, and is especially suitable for the field of soft capsule production technology. Attached Figure Description

[0017] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the overall structure of a Ganoderma lucidum spore oil soft capsule production line.

[0019] Figure 2 This is a schematic diagram of the cleaning mechanism.

[0020] Figure 3 for Figure 2 A magnified schematic diagram of the structure of A in the middle.

[0021] Figure 4 This is a schematic diagram of the interface of the cleaning mechanism.

[0022] Figure 5 This is a schematic diagram of the structure of the primary drying component.

[0023] Figure 6 This is a schematic diagram of the relevant structure of the drying tray.

[0024] Figure 7 This is a schematic diagram of the cross-sectional structure of the primary drying component.

[0025] Figure 8 This is a schematic diagram of the structure of the peeled-off component.

[0026] Figure 9 This is a schematic diagram of the relevant structure of the moving slot.

[0027] Figure 10 This is a schematic diagram of the cross-sectional structure of the moving groove.

[0028] Figure 11 This is a schematic diagram of the secondary drying assembly.

[0029] Figure 12 This is a flowchart illustrating the production process of Ganoderma lucidum spore oil soft capsules. Detailed Implementation

[0030] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings.

[0031] Example 1 like Figure 1 As shown, a Ganoderma lucidum spore oil soft capsule production line includes: The cleaning mechanism 1 is located behind the soft capsule forming machine and is used to clean the newly formed soft capsules and screen out unqualified capsules. It includes a cleaning tank 11, a separation component 12 located in the cleaning tank 11, and a cleaning component 13 located behind the separation mechanism. The soft capsules are screened out in the separation component 12 and then fed into the cleaning component 13 for cleaning. Drying mechanism 2, which is used to dry soft capsules, includes a drying chamber 21 after the cleaning mechanism 1, a primary drying component 22 and a secondary drying component 23 disposed in the drying chamber 21. The primary drying component 22 dries the soft capsules output from the cleaning mechanism 1, and the secondary drying component 23 dries the soft capsules output from the packaging mechanism 3. The wrapping mechanism 3 is located above the cleaning mechanism 1 and is used to wrap beeswax on specific positions on the surface of the soft capsules output from the primary drying component 22 and input them into the secondary drying component 23 for re-drying.

[0032] In this embodiment, by setting up a cleaning mechanism 1, a drying mechanism 2 and a wrapping mechanism 3, the surface treatment steps after soft capsule molding are optimized, and by wrapping the surface of the soft capsule with beeswax, the adsorption effect of the soft capsule on the packaging surface is avoided after packaging.

[0033] In detail, in existing technologies, soft capsules are formed using dripping or compression methods. After forming, the soft capsules fall into cooling wax for cooling and shaping, followed by surface cleaning, drying, and final quality inspection. However, quality inspection in existing technologies often relies on manual visual inspection, manually picking out empty capsules and leaking capsules, which is not only inefficient but also carries significant uncertainty. After packaging, soft capsules tend to absorb substances from the packaging surface during long-term storage, which is detrimental to consumption and long-term storage. Existing technologies address this by coating the soft capsules with edible beeswax to prevent this absorption effect.

[0034] In particular, for a gourd-shaped Ganoderma lucidum spore oil soft capsule, in addition to addressing the above-mentioned issues, its narrow waist makes it easy to have blind spots during the cleaning process.

[0035] This application relates to a gourd-shaped soft capsule that integrates the quality inspection and cleaning processes. By utilizing the density of the cleaning solution, defective products are caused to float to the top, thereby screening out defective products and preventing them from flowing into subsequent steps, thus avoiding waste of materials and resources. Then, targeted cleaning is performed, followed by drying and beeswax coating. The beeswax coating is applied to both ends of the soft capsule, which not only blocks the adsorption effect of the soft capsule but also controls the disintegration rate of the soft capsule, thereby controlling the sustained release effect of the drug solution.

[0036] Furthermore, such as Figure 2 , Figure 3 As shown in Figure 4, the separation assembly 12 includes a conveyor belt 121 disposed in the cleaning tank 11, an immersion tank 122 disposed in the middle of the conveyor belt 121, an agitator roller 123 rotatably connected to the bottom of the immersion tank 122, a flooding plate 124 fixed behind the immersion tank 122, a discharge nozzle 125 fixed above the immersion tank 122, a collection trough 126 vertically slidably connected to both sides of the immersion tank 122, and multiple sets of push blocks 127 slidably connected below the flooding plate 124.

[0037] The cleaning assembly 13 includes multiple sets of cleaning rollers 131 rotatably connected to the rear of the flooding plate 124, multiple sets of cleaning nozzles 132 fixed above the cleaning rollers 131, multiple sets of cloth curtains 133 slidably connected above the cleaning rollers 131, multiple sets of drainage air pipes 134 arranged behind the cleaning rollers 131, and a reciprocating plate 135 arranged below the cleaning rollers 131.

[0038] In this embodiment, by setting up a separation component 12 and a cleaning component 13, the empty capsule is first separated and then the soft capsule is cleaned. During the cleaning process, special attention is paid to cleaning the middle waist area to avoid leaving any dead corners.

[0039] In detail, the soft capsules are released onto the conveyor belt 121 and move with it into the soaking tank 122. The cleaning tank 11 contains cleaning fluid, the level of which covers the soaking tank 122. The stirring roller 123 at the bottom of the soaking tank 122 is active, causing the cleaning fluid to be stirred, which helps the empty soft capsules float to the surface. The floating empty capsules are guided by the water flow from the discharge nozzle to the collection tanks 126 on both sides for collection. The soft capsules then continue to move, passing through the flooded plate 124. Push blocks 127 are set below the flooded plate 124. Multiple sets of push blocks 127... 27. Alternating movement pushes the conveyor belt 121, causing it to vibrate and shake out excess cleaning fluid, preventing a large amount of water stains from remaining on the surface of the soft capsule. The soft capsule continues to move and enters the cleaning roller 131, which continues to move forward. During the movement, the roller rotates, and the cleaning nozzle 132 above sprays water while the cloth curtain 133 below contacts the capsule, wiping and cleaning the surface of the soft capsule. After cleaning, the capsule continues to move, and the drainage duct 134 above blows air downwards to dry all the surface water stains, ready for the next drying cycle.

[0040] In existing technologies, soft capsules are often cleaned quickly by agitating the cleaning solution. However, due to the special shape of soft capsules, they are subjected to large shear forces and are prone to breakage or leakage. Therefore, this application adopts a gentler cleaning method to avoid damaging the soft capsules.

[0041] It should be noted that the flood plate 124 separates the cleaning fluid in the separation component 12 and the cleaning component 13 and connects them through a valve. The cleaning component 13 is also equipped with a reciprocating plate 135. The reciprocating plate 135 is used to promote the flow of the cleaning fluid. That is, the level of the cleaning fluid in the cleaning component 13 rises. After rising to a certain position, the reciprocating plate 135 moves to push the level of the cleaning fluid higher. Then, the level of the cleaning fluid in the cleaning component 13 overflows the flood plate 124, and the water flows through the flood plate 124 to the separation component 12. Then it is drawn back to the cleaning component 13 by the valve. The reciprocating plate 135 makes the cleaning fluid in the cleaning tank 11 have a tidal state.

[0042] During this process, the water flows upward, which on the one hand can impact the surface of the soft capsules, improving the cleaning effect; on the other hand, because the surface of the soft capsules is wet, they may disintegrate to a certain extent, causing them to stick together. Therefore, the water flow is used to separate the soft capsules. Then the water flows from the cleaning component 13 to the separation component 12. During the flow, it further assists the flow of empty or unfilled capsules, avoiding the situation where some unqualified products are not screened out due to adhesion and other factors, and prompting the unqualified products to be flushed out and flow to the collection tanks 126 on both sides.

[0043] Ethanol can be used as the cleaning solution, and the density of the ethanol solution can be controlled to screen out substandard products.

[0044] Furthermore, such as Figure 5 , Figure 7 As shown, the primary drying assembly 22 includes a vibratory plate 221 located below the conveyor belt 121, a positioning groove 222 fixed on the vibratory plate 221, an adjusting rod 223 slidably connected to the vibratory plate 221, a discharge port 224 located at the tail end of the vibratory plate 221, a sliding rail 225 slidably connected to the outer end of the discharge port 224 of the vibratory plate 221, an arranging rod 226 slidably connected to the sliding rail 225 and having multiple receiving holes cut on it, and a stop rod 227 slidably connected to the bottom of the arranging rod 226.

[0045] Furthermore, such as Figure 6 , Figure 7 As shown, the primary drying assembly 22 also includes a drying tray 228 divided into upper and lower layers and slidably connected in the drying chamber 21, multiple sets of drying holes 229 disposed in the drying tray 228, two sets of annular airbags 230 disposed at both ends of the upper drying hole 229, and a release rod 234 slidably connected to the lower end of the lower drying hole 229.

[0046] In this embodiment, a primary drying component 22 is set up to perform a primary drying of the soft capsule. The primary drying is performed on both ends of the gourd-shaped soft capsule, while omitting the middle waist area.

[0047] In detail, the soft capsule falls onto the vibrating plate 221, and the adjusting rod 223 moves back and forth, allowing the soft capsule to be discharged from the discharge port 224 and fall into the hole of the arranging rod 226. The bottom stop rod 227 controls the soft capsule to stay on the arranging rod 226 or be released. The arranging rod 226 slides on the sliding cabinet, and the drying tray 228 moves below the arranging rod 226. The arranging rod 226 transfers the soft capsule to the drying tray 228, and the capsule falls into the drying hole 229. The annular air bag 230 inflates and blocks both ends of the drying hole 229, forming an isolation of the middle waist of the soft capsule. At this time, both ends of the soft capsule are exposed for drying. After drying is completed, the release rod 234 moves to release the soft capsule, and the soft capsule is conveyed out of the drying chamber 21 for the next step.

[0048] It should be noted that because beeswax needs to be coated on the surface of the soft capsule later, only the two ends of the soft capsule need to be coated, not the middle waist area. At the same time, a method of first coating the entire capsule and then removing the beeswax from the middle waist area is adopted. For this coating method, this application chooses to dry the two ends of the soft capsule first. After the two ends of the soft capsule are dry, the beeswax coating can be more tightly. Since the middle waist area of ​​the soft capsule is not dry and beeswax has a certain degree of hydrophobicity, the beeswax in the middle waist area is easier to remove after the entire coating is completed. This allows for a better coating method that wraps the two ends of the soft capsule while leaving the middle exposed.

[0049] It is worth mentioning that the ring-shaped airbag 230 effectively isolates the middle waist area, preventing premature drying, without affecting the shape of the capsule or causing damage to the capsule surface, thus effectively protecting the soft capsule.

[0050] Furthermore, such as Figure 1 As shown, the packaging mechanism 3 includes a roller 31 located behind the primary drying component 22, a large number of dense soft brushes arranged on the inner wall of the roller 31, a spray nozzle located at the root of the soft brushes, and a peeling component 32 located behind the roller 31.

[0051] In this embodiment, the beeswax coating on the surface of the soft capsule is achieved by setting the roller 31.

[0052] In detail, the roller 31 rotates continuously. After the soft capsule is fed into the roller 31, it comes into contact with the soft brush inside. The beeswax sprayed from the spray nozzle is applied to the surface of the soft capsule through the soft brush. Through the sliding of the roller 31, the beeswax can be efficiently and evenly covered on the surface of the soft capsule. Even for gourd-shaped capsules, the soft brush can complete the uniform and comprehensive coating. The soft brush can also protect the soft capsule and prevent damage during the packaging process.

[0053] Furthermore, such as Figure 8As shown, the peeling assembly 32 includes a drop plate 321 disposed behind the roller 31, multiple sets of baffles 322 fixed to the bottom of the drop plate 321, an inclined plate 323 rotatably connected to the middle of the baffles 322, and a flattening roller 324 rotatably connected to the bottom of the inclined plate 323.

[0054] Furthermore, such as Figure 9 , Figure 10 As shown, the peeling assembly 32 also includes multiple sets of moving grooves 325 fixed below the falling plate 321, a rinsing groove 326 disposed in the middle of the moving grooves 325, a cleaning wheel 327 rotatably connected in the middle of the rinsing groove 326, a drain groove 328 fixed at the bottom of the moving grooves 325, a belt 329 rotatably connected above the rinsing groove 326 and with a lever fixed on its surface, and a rotating roller 330 rotatably connected at the bottom of the drain groove 328.

[0055] In this embodiment, by removing the beeswax that completely encapsulates the middle waist of the soft capsule, the beeswax is only present in specific locations within the soft capsule, achieving better protection and sustained drug release.

[0056] In detail, the soft capsule falls through the drop plate 321 and enters the moving trough 325 laterally through the baffle 322 and the inclined roller. It moves within the moving trough 325 by the rotation of the belt 329 and rotates simultaneously by the rotation of the rotating roller 330. The two ends of the soft capsule are located in the moving trough 325 and the middle is located in the rinsing trough 326. The bottom of the rinsing trough 326 is hollow. Each time water flows in from the flood plate 124 below, the cleaning fluid flows into the rinsing trough 326. The cleaning fluid contacts the waist of the soft capsule and, together with the cleaning wheel 327, removes the beeswax from the waist area.

[0057] It should be noted that a drainage groove 328 is provided at the bottom of the moving tank 325. When the cleaning fluid flows into the rinsing tank 326, some of the cleaning fluid may enter the moving tank 325. Therefore, a drainage groove 328 is provided in the moving tank 325 to drain the overflowing water and prevent water stains from washing away the beeswax at both ends of the soft capsule. At the same time, a rubber pad can be provided at the edge of the moving tank 325. The soft capsule contacts the surface of the moving tank 325 through the rubber pad, which can prevent the soft capsule from being scratched and can also play a certain role in blocking the cleaning fluid.

[0058] It is worth mentioning that by wrapping both ends of the soft capsule with beeswax, on the one hand, since only the two ends of the soft capsule come into contact with the packaging, the adsorption will only occur at the two ends, so wrapping only the two ends with beeswax can achieve the effect of blocking adsorption; on the other hand, beeswax will also prevent the soft capsule from disintegrating. If the soft capsule is completely wrapped with beeswax, the disintegration will be slow, so leaving a space in the middle allows the soft capsule to disintegrate from the middle, ensuring the release effect of the liquid medicine.

[0059] Furthermore, such as Figure 11 As shown, the secondary drying component 23 is located behind the moving trough 325 and includes a drying belt 231 rotatably connected to the drying chamber 21, a heat insulation groove 232 fixed to the surface of the drying belt 231, an isolation belt 233 rotatably connected above the drying belt 231, and circular grooves for accommodating soft capsules are opened on the heat insulation groove 232 and the isolation belt 233.

[0060] In this embodiment, the drying of the middle part of the soft capsule is achieved by setting a secondary drying component 23.

[0061] In detail, the soft capsule is output through the moving groove 325 and falls onto the drying belt 231, contacts the heat insulation groove 232 and is stuck into the circular groove. The upper isolation belt 233, together with the heat insulation groove 232, seals and isolates the two ends and the middle of the soft capsule, and the middle of the soft capsule is dried by hot air to complete the processing.

[0062] It should be noted that insufficient drying of soft capsules will result in a softer capsule shell, which is prone to deformation and leakage. Over-drying will make them brittle. Therefore, when drying the middle of the soft capsule, it is necessary to isolate the already dried ends to achieve a balanced drying effect.

[0063] It is worth mentioning that the heat insulation groove 232 and the isolation strip 233 are supported by heat insulation cotton and other materials. The use of soft materials avoids damage to the soft capsule and ensures sufficient fit between them to prevent hot air leakage and excessive drying in other areas.

[0064] Simultaneously, a primary drying component and a secondary drying component are set up. The two drying effects can be set to a progressive relationship and arranged as an integrated unit. By appropriately controlling the degree of sealing of the isolation position during the two drying processes, pre-drying or drying of the isolation area can be achieved, thereby achieving overall drying of the soft capsule in two stages. That is, during the first drying, the seal on the middle position is appropriately loosened, and hot air is used to achieve moderate drying in the middle, while the degree of drying at both ends is reduced. Then, during the second drying, the seal on both ends is appropriately loosened, and the middle is thoroughly dried while the ends are supplemented with drying. The two-stage drying improves the drying effect.

[0065] Example 2 like Figure 12 As shown, components that are the same as or corresponding to those in Embodiment 1 are referred to using the same reference numerals as in Embodiment 1. For simplicity, only the differences from Embodiment 1 are described below. The difference between Embodiment 2 and Embodiment 1 is as follows: Furthermore, such as Figure 12 As shown, the method for producing Ganoderma lucidum spore oil soft capsules, applied to the aforementioned Ganoderma lucidum spore oil soft capsule production line, includes the following steps: Step 1, screening and cleaning steps: The freshly formed soft capsules are fed into the cleaning mechanism 1. In the separation component 12, the density of the cleaning liquid causes the unqualified soft capsules to float, thus achieving screening. Then, they are fed into the cleaning component 13 for surface cleaning. Step 2, primary drying: The cleaned soft capsules are fed into the primary drying assembly 22, where they are isolated at the waist of the soft capsule to dry both ends. Step 3, the wrapping step: The soft capsule that has been dried once is fed into the wrapping mechanism 3. First, beeswax is completely and evenly wrapped on the surface of the soft capsule. Then, the beeswax in the middle waist position is washed away using the cleaning liquid in the cleaning tank 11, so that the beeswax is wrapped in a specific position. Step four, secondary drying: The wrapped soft capsules are fed into the secondary drying component 23, the two ends of the soft capsules are isolated, and the middle waist area is dried a second time. The dried soft capsules are then output from the device.

[0066] In the description of this invention, it should be understood that the terms "front and back", "left and right", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the invention.

[0067] Of course, those skilled in the art should understand that the term "a" should be understood as "at least one" or "one or more". That is, in one embodiment, the number of an element can be one, while in another embodiment, the number of the element can be multiple. The term "a" should not be understood as a limitation on the quantity.

[0068] The above description is merely a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art under the technical guidance of the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.

Claims

1. Ganoderma spore oil soft capsule production line, characterized in that, The utility model relates to a soft capsule production line, which comprises a cleaning mechanism (1), a drying mechanism (2) and a wrapping mechanism (3). The separating assembly (12) comprises a conveying belt (121) arranged in the cleaning pool (11), a soaking pool (122) arranged in the middle of the conveying belt (121), an agitating roller (123) rotatably connected to the bottom of the soaking pool (122), a water-spread plate (124) fixed to the rear of the soaking pool (122), a discharge nozzle (125) fixed to the top of the soaking pool (122), a collecting groove (126) vertically and slidably connected to the two sides of the soaking pool (122), and a plurality of push blocks (127) slidably connected below the water-spread plate (124). The cleaning assembly (13) comprises a plurality of cleaning rollers (131) rotatably connected to the rear of the water-spread plate (124), a plurality of cleaning nozzles (132) fixed above the cleaning rollers (131), a plurality of cloth curtains (133) slidably connected above the cleaning rollers (131), a plurality of drainage air pipes (134) arranged behind the cleaning rollers (131), and a reciprocating plate (135) arranged below the cleaning rollers (131). The first-stage drying assembly (22) comprises a vibrating disc (221) arranged below the conveying belt (121), a positioning groove (222) fixed to the vibrating disc (221), a positioning rod (223) slidably connected to the vibrating disc (221), a discharge port (224) arranged at the tail end of the vibrating disc (221), a sliding rail (225) slidably connected to the outer end of the discharge port (224) of the vibrating disc (221), an arrangement rod (226) slidably connected to the sliding rail (225) and provided with a plurality of accommodating holes, and a blocking rod (227) slidably connected to the bottom of the arrangement rod (226).

2. The ganoderma spore oil soft capsule production line according to claim 1, characterized in that, ​ 3. The ganoderma spore oil soft capsule production line according to claim 2, characterized in that, ​ 4. The ganoderma spore oil soft capsule production line according to claim 2, characterized in that, ​ 5. The ganoderma spore oil soft capsule production line according to claim 4, characterized in that, The primary drying assembly (22) further comprises a drying disc (228) split into upper and lower layers and slidingly connected in the drying chamber (21), a plurality of drying holes (229) arranged in the drying disc (228), two groups of annular air bags (230) arranged at both ends of the upper drying holes (229), and a release rod (234) slidingly connected at the lower end of the lower drying holes (229).

6. The ganoderma spore oil soft capsule production line according to claim 1, characterized in that, The wrapping mechanism (3) comprises a roller (31) arranged behind the primary drying assembly (22), a large number of dense soft brushes arranged on the inner wall of the roller (31), a spray port arranged at the root of the soft brush, and a stripping assembly (32) arranged behind the roller (31).

7. The ganoderma spore oil soft capsule production line according to claim 6, characterized in that, The stripping assembly (32) comprises a falling disc (321) arranged behind the roller (31), a plurality of baffles (322) fixed to the bottom of the falling disc (321), an inclined plate (323) rotationally connected to the middle of the baffle (322), and a flattening roller (324) rotationally connected below the inclined plate (323).

8. The ganoderma spore oil soft capsule production line according to claim 7, characterized in that, The stripping assembly (32) further comprises a plurality of moving grooves (325) fixed below the falling disc (321), a washing groove (326) arranged in the middle of the moving groove (325), a cleaning wheel (327) rotationally connected in the middle of the washing groove (326), a drainage groove (328) fixed to the bottom of the moving groove (325), a belt (329) rotationally connected above the washing groove (326) and having a poking rod fixed on the surface, and a rotating roller (330) rotationally connected to the bottom of the drainage groove (328).

9. The ganoderma spore oil soft capsule production line according to claim 8, characterized in that, The secondary drying assembly (23) is arranged behind the moving groove (325) and comprises a drying belt (231) rotationally connected in the drying chamber (21), a heat insulation groove (232) fixed to the surface of the drying belt (231), and an isolation belt (233) rotationally connected above the drying belt (231), wherein the heat insulation groove (232) and the isolation belt (233) are provided with circular grooves for accommodating soft capsules.

10. A production method of Ganoderma lucidum spore oil soft capsules, applied to the production line of the Ganoderma lucidum spore oil soft capsules of any one of claims 1-9, characterized in that, The method comprises the following steps: Step one: screening and cleaning, the newly formed soft capsules are input into the cleaning mechanism (1), and the unqualified soft capsules are floated by the density of the cleaning liquid in the separation assembly (12) to realize screening, and then input into the cleaning assembly (13) for surface cleaning; Step two: primary drying, the cleaned soft capsules are input into the primary drying assembly (22), the soft capsules are isolated at the middle waist position to realize drying of both ends of the soft capsules; Step three: wrapping, the soft capsules after primary drying are input into the wrapping mechanism (3), the beeswax is first completely and uniformly wrapped on the surface of the soft capsules, and then the beeswax at the middle waist position is cleaned by the cleaning liquid in the cleaning tank (11) to realize the wrapping of the beeswax at the specific position; Step four: secondary drying, the wrapped soft capsules are input into the secondary drying assembly (23), the soft capsules are isolated at both ends, and the middle waist position is subjected to secondary drying, and the dried soft capsules are output from the equipment.