Apparatus and method for producing a hair growth promoting composition
Patent Information
- Application Number
- CN202311757243.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-20
- Publication Date
- 2026-09-04
- Estimated Expiration
- 2043-12-20
AI Technical Summary
[0003]然而现有技术仍存在不足之处,例如专利号为:CN202110037859.X的一种一种贻贝蛋白的提取方法及装置,包括安装架、粉碎箱、处理箱、离心机、过滤器和干燥箱,安装架顶部连接有顶板,顶板顶部一侧安装有粉碎箱,该装置在对原料进行搅拌的过程中,无法及时的清理搅拌机构,易造成搅拌效率的下降
[0015]在本发明的方案中:
Smart Images

Figure CN117732329B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of biopharmaceutical technology, and in particular to an apparatus and method for producing a hair growth-promoting composition. Background Technology
[0002] The mussel adhesive protein complex contains exosomes, mussel adhesive protein, repair factors, and growth factors. Mussel adhesive protein (MAP) can undergo self-oxidative cross-linking upon contact with oxygen, body temperature, human tissue, and body fluids to form a polymer scaffold membrane. This polymer protective membrane acts as a physical barrier, providing a microecological environment conducive to skin wound healing. By physically forming a film to block the external environment, it protects the wound from external disturbances and creates a favorable moist healing environment. It can be used for: repairing and promoting the proliferation of superficial hair follicle wounds after hair transplantation on the scalp; promoting the repair and proliferation of hair follicle damage in scarred, pathological, inflammatory, seborrheic, and infected skin; promoting the repair of superficial hair follicle wounds; facilitating the healing and repair of superficial hair follicle mucosal barrier defects in scalp wounds; and promoting wound healing.
[0003] However, existing technologies still have shortcomings. For example, a method and apparatus for extracting mussel protein with patent number CN202110037859.X includes a mounting frame, a crushing box, a processing box, a centrifuge, a filter, and a drying box. The top of the mounting frame is connected to a top plate, and the crushing box is installed on one side of the top of the top plate. During the process of stirring the raw materials, this device cannot clean the stirring mechanism in time, which easily leads to a decrease in stirring efficiency. Summary of the Invention
[0004] The present invention provides an apparatus and method for producing a hair growth promoting composition to address the issues raised in the background art.
[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solution: a production apparatus for a hair growth promoting composition, comprising: a pulverizer, a tank, an air guide, and a stirrer. The tank is mounted on a workbench, with its top end connected to the output end of the pulverizer. An air guide is rotatably connected to the tank, with its top end rotatably connected to the end of an air inlet pipe. A stirrer is provided inside the tank, and the stirrer and the air guide slide together. The output end of the stirrer faces the inner wall of the tank, and the bottom end of the tank is connected to a drying device.
[0006] Preferably, the air guiding component includes: a guide tube, an exhaust port, a mounting ring, and a sleeve. A motor is mounted on the top of the tank. The gear at the output end of the motor meshes with the driven gear on the side wall of the guide tube. The side wall of the guide tube is rotatably connected to the inner wall of the mounting hole at the top of the tank. Multiple exhaust ports are opened on the side wall of the guide tube, and the exhaust ports are located below the top wall of the tank. The mounting ring at the bottom of the guide tube is connected to the bottom end of a return spring. The top end of the return spring is connected to the top wall of the limiting hole of the sleeve. The limiting hole is slidably engaged with the mounting ring. A through hole is opened at the top end of the limiting hole, and the through hole is slidably connected to the side wall of the guide tube. A stirring component is mounted on the side wall of the sleeve.
[0007] Preferably, the inner wall of the through hole is equipped with a plurality of sliders arranged in a circumferential array, and the sliders slide in cooperation with the longitudinal grooves on the sidewall of the guide tube.
[0008] Preferably, the stirring component includes: an upper mounting frame and stirring columns. The sidewall of the conduit is circumferentially arrayed with the ends of multiple upper mounting frames. The bottom end of the upper mounting frame is connected to the top end of multiple stirring columns. The stirring columns are arranged parallel to the conduit. The bottom end of each stirring column is connected to the top end of a lower mounting frame. The end of the lower mounting frame is connected to the sidewall of the conduit.
[0009] Preferably, the inner wall of the conduit has a circumferential array of multiple connection holes, one end of which is located above the exhaust hole, and the other end of which is connected to the end of the adapter hole in the upper mounting bracket. The stirring column has a diversion hole, the top of which is connected to the bottom of the adapter hole. The side wall of the stirring column has multiple cleaning holes, the bottom of which is connected to the side wall of the diversion hole, and a one-way valve is installed in the cleaning hole.
[0010] Preferably, the bottom end of the lower mounting bracket is equipped with a vibration block, the inner wall of the tank is connected to the side wall of the vibration ring, the top end of the vibration ring has multiple grooves, the bottom surface of the vibration block is in frictional engagement with the top surface of the vibration ring, and the side wall of the vibration block is in frictional engagement with the side wall of the groove.
[0011] Preferably, the bottom end of the tank is connected to the top end of the unloading pipe, the bottom end of the unloading pipe is connected to the drying device, a gate valve is inserted into the unloading pipe, and the end of the gate valve that extends out to the side wall of the unloading pipe is connected to the output end of the cylinder, and the cylinder is installed on the workbench.
[0012] Preferably, the crushing component includes: a crushing roller, a crushing shell, and a discharge hopper. The top of the tank is connected to the bottom of the discharge hopper, and the top of the discharge hopper is connected to the bottom of the crushing shell. Two crushing rollers are rotatably connected inside the crushing shell. A first gear and a second gear are respectively mounted on the two crushing rollers. The first gear and the second gear are meshed together. One crushing roller is connected to the output end of a second motor, and the second motor is mounted on the side wall of the crushing shell.
[0013] Preferably, the inner wall of the crushing shell is rotatably connected to the bottom side wall of the filter screen, the filter screen is inclinedly arranged below the crushing roller, the bottom surface of the other end of the filter screen is in rolling contact with the side wall of the vibrating roller, the vibrating roller is rotatably connected to the inner wall of the crushing shell, the end of the vibrating roller extending out of the side wall of the crushing shell is connected to the output end of the vibrating motor, the vibrating motor is mounted on the side wall of the crushing shell, a collection groove is provided below the bottom end of the filter screen, the output end of the collection groove extending out of the end wall of the crushing shell is connected to the bottom end of the auger mechanism, the auger mechanism is mounted on the end wall of the crushing shell, the top end of the auger mechanism is connected to the end of the guide groove, the output end of the guide groove is set towards the collection hopper on the top surface of the crushing shell, and the collection hopper is set above the crushing roller.
[0014] The beneficial effects of this invention are as follows:
[0015] In the solution of this invention:
[0016] 1. The air supply device can supply air to the mixing components through ducts and air guides, promptly removing the mixed material adhering to the mixing, realizing the periodic self-cleaning of the mixing components, and thus improving the mixing efficiency of the device.
[0017] 2. By setting the top of the air guide to be rotatably connected to the end of the air inlet pipe, and the agitator and the air guide slidingly engaged, the air guide can provide rotational power for the agitator. Attached image description:
[0018] Figure 1 This is a schematic diagram of the main structure of the present invention;
[0019] Figure 2 This is a cross-sectional view of the tank body of the present invention;
[0020] Figure 3 For the present invention Figure 2 A magnified view of a section at point A in the middle;
[0021] Figure 4 For the present invention Figure 2 A magnified view of a section at point B in the middle;
[0022] Figure 5 This is a schematic diagram of the filter installation position according to the present invention;
[0023] Figure 6 This is a schematic diagram showing the installation location of the collection tank in this invention;
[0024] Figure 7 This is a cross-sectional view of the crushing roller of the present invention;
[0025] Figure 8 For the present invention Figure 7 A magnified view of a section at point C.
[0026] The components include: 1. Crushing component; 2. Tank body; 3. Air guide component; 4. Stirring component; 5. Conduit; 6. Exhaust port; 7. Mounting ring; 8. Sleeve; 9. Slider; 10. Upper mounting bracket; 11. Stirring column; 12. Transfer hole; 13. Diverting hole; 14. Cleaning hole; 15. Vibrating block; 16. Vibrating ring; 17. Discharge pipe; 18. Crushing roller; 19. Crushing shell; 20. Discharge hopper; 21. Filter screen; 22. Vibrating roller; 23. Collection trough; 24. Roller body; 25. Hollow shaft; 26. Crushing column; 27. Second through hole; 28. Second cleaning hole. Detailed Implementation
[0027] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0028] Example: Reference Figures 1-8 A production apparatus for a hair growth promoting composition includes: a crusher 1, a tank 2, an air guide 3, and a stirrer 4. The tank 2 is mounted on a workbench, and the top of the tank 2 is connected to the output end of the crusher 1. The air guide 3 is rotatably connected to the tank 2, and the top of the air guide 3 is rotatably connected to the end of the air inlet pipe. The stirrer 4 is provided inside the tank 2, and the stirrer 4 and the air guide 3 are slidably engaged. The output end of the stirrer 4 is set towards the inner wall of the tank 2, and the bottom of the tank 2 is connected to a drying device.
[0029] The principles and beneficial effects of the above scheme are as follows:
[0030] After being crushed by the crusher 1, the raw materials enter the tank 2 and are mixed with the auxiliary materials. The tank 2 contains a stirring element 4, which slides in conjunction with the air guide element 3. When the air guide element 3 is activated, it rotates, causing the stirring element 4 to mix the raw materials and auxiliary materials into a mixture within the tank 2. As the mass of the mixture on the stirring element 4 increases, the mixing effect decreases, and the stirring element 4 moves downwards relative to the air guide element 3. The top of the air guide element 3 is connected to an air supply device via an air inlet pipe. The air supply device supplies air into the air guide element 3, which in turn supplies air to the stirring element 4. The outlet cleans the mixture adhering to the agitator 4 to remove the mixture from the agitator 4, allowing the mixture to fall onto the bottom wall of the tank 2. The agitator 4 continues to agitate the mixture by rotating. The top of the air guide 3 is rotatably connected to the end of the air inlet pipe, and the agitator 4 and the air guide 3 slide together, with the air guide 3 providing rotational power for the agitator 4. At the same time, the air supply device supplies air to the agitator 4 through the duct and the air guide 3, promptly removing the mixture adhering to the agitator 4, achieving periodic self-cleaning of the agitator 4, and thus improving the agitation efficiency of the device.
[0031] The air guiding component 3 includes: a guide tube 5, an exhaust port 6, a mounting ring 7, and a sleeve 8. A motor is installed at the top of the tank body 2. The gear at the output end of the motor meshes with the driven gear on the side wall of the guide tube 5. The side wall of the guide tube 5 is rotatably connected to the inner wall of the mounting hole at the top of the tank body 2. Multiple exhaust ports 6 are opened on the side wall of the guide tube 5. The exhaust ports 6 are located below the top wall of the tank body 2. The mounting ring at the bottom end of the guide tube 5 is connected to the bottom end of the return spring. The top end of the return spring is connected to the top wall of the limiting hole of the sleeve 8. The limiting hole is slidably engaged with the mounting ring. A through hole is opened at the top end of the limiting hole. The through hole is slidably connected to the side wall of the guide tube 5. A stirring component 4 is installed on the side wall of the sleeve 8.
[0032] The principles and beneficial effects of the above scheme are as follows:
[0033] A mounting ring is provided at the bottom end of the conduit 5. The top end of the mounting ring is connected to the top wall of the limiting hole of the sleeve 8 through a return spring. The side wall of the sleeve 8 is equipped with a stirring element 4. When the mass of the mixture on the stirring element 4 increases, the sleeve 8 moves downward relative to the conduit 5 and the return spring extends. When the mass of the mixture on the stirring element 4 decreases, the sleeve 8 moves upward under the action of the return spring. During the upward movement of the sleeve 8, the bottom wall of the limiting hole collides with the bottom end of the conduit 5, vibrating the stirring element 4, which can clean the mixed material on the stirring element 4.
[0034] The inner wall of the through hole is equipped with a circumferential array of multiple sliders 9, which slide in conjunction with the longitudinal grooves on the side wall of the guide tube 5.
[0035] The principles and beneficial effects of the above scheme are as follows:
[0036] Multiple grooves are arranged in a circumferential array on the side wall of the conduit 5. A slider 9 is slidably connected in the groove. The slider 9 is installed on the inner wall of the through hole of the sleeve 8. When the sleeve 8 moves upward or downward relative to the conduit 5, the groove provides longitudinal guidance for the slider 9, so that the sleeve 8 always moves in a straight line relative to the conduit 5. This avoids axial offset between the conduit 5 and the sleeve 8 during relative movement, which would cause wear on the sleeve 8 or the conduit 5 and extend the service life of the mechanism. When the motor output drives the gear to rotate, the gear drives the driven gear that meshes with it to rotate. The driven gear drives the conduit 5 to rotate. The inner wall of the groove and the side wall of the slider 9 fit together, so that the sleeve 8 and the conduit 5 rotate synchronously and simplify the arrangement of parts.
[0037] The stirring component 4 includes an upper mounting frame 10 and stirring columns 11. The sidewall of the conduit 5 is circumferentially arrayed with the ends of multiple upper mounting frames 10. The bottom end of the upper mounting frame 10 is connected to the top end of multiple stirring columns 11. The stirring columns 11 are arranged parallel to the conduit 5. The bottom end of each stirring column 11 is connected to the top end of a lower mounting frame. The end of the lower mounting frame is connected to the sidewall of the conduit 5.
[0038] The principles and beneficial effects of the above scheme are as follows:
[0039] The circumferential array of the sidewalls of the conduit 5 is connected to the ends of multiple upper mounting brackets 10. The bottom end of the upper mounting bracket 10 is connected to the top end of multiple stirring columns 11. The stirring columns 11 are arranged parallel to the conduit 5. The bottom end of each stirring column 11 is connected to the top end of a lower mounting bracket. The end of the lower mounting bracket is connected to the sidewall of the conduit 5. By installing multiple upper mounting brackets 10 and lower mounting brackets on the sidewall of the conduit 5, and setting stirring columns 11 on the upper mounting brackets 10 and lower mounting brackets, the structural stability of the stirring columns 11 after installation is improved. By setting multiple stirring columns 11 on the upper mounting brackets 10 and lower mounting brackets, the stirring efficiency of the mechanism is improved.
[0040] The inner wall of the conduit 5 has a circumferential array of multiple connection holes. One end of the connection hole is located above the exhaust hole 6, and the other end of the connection hole is connected to the end of the adapter hole 12 in the upper mounting bracket 10. The stirring column 11 has a diversion hole 13, the top end of the diversion hole 13 is connected to the bottom end of the adapter hole 12, and the side wall of the stirring column 11 has a plurality of cleaning holes 14, the bottom end of the cleaning hole 14 is connected to the side wall of the diversion hole 13, and the cleaning hole 14 is equipped with a one-way valve.
[0041] The principles and beneficial effects of the above scheme are as follows:
[0042] The stirring column 11 inside the tank 2 continuously stirs the mixture. The uniformly stirred mixture has strong fluidity and gradually moves towards the lower part of the tank 2. The unevenly stirred mixture has poor fluidity and high viscosity, adhering to the upper part of the stirring column 11 in the tank 2. When the mass of the mixture adhering to the stirring column 11 and the lower mounting bracket increases, the upper mounting bracket 10 and the lower mounting bracket move downward relative to the tank 2. One end of the connecting hole is connected to the exhaust port 6. The air supply device supplies compressed gas to the conduit 5 through the conduit. The compressed gas enters the connecting hole and the transition hole 12 through the exhaust port 6. The transition hole 12 guides the compressed gas to the diversion hole 13, and then guides the compressed gas to the cleaning hole 14 through the diversion hole 13. It is discharged outside the device through the one-way valve in the cleaning hole 14. The compressed gas cleans the mixture adhering to the side wall of the stirring column 11. When the mass of the mixture adhering to the stirring column 11 and the lower mounting bracket decreases, the upper mounting bracket 10 and the lower mounting bracket move upward relative to the tank 2. One end of the connecting hole is connected to the exhaust port 6. The connection is terminated, and the compressed gas discharge from the cleaning hole 14 is stopped. By setting a one-way valve in the cleaning hole 14, the mixture is prevented from entering the cleaning hole 14 when the stirring column 11 is stirring the mixture. This also avoids the mixture entering the cleaning hole 14 and causing a decrease in the quality of the mixture, and ensures that the mechanism always operates under hygienic conditions. The exhaust hole 6 is connected to the connection hole, which is connected to the transfer hole 12, the diversion hole 13 and the cleaning hole 14 in sequence. The device can clean the stirring column 11 according to the actual situation, which improves the automation effect of the device and reduces the manufacturing cost of the device. During the stirring process of the stirring column 11, the uniformly stirred mixture has strong fluidity and moves downward relative to the tank 2. The unevenly stirred mixture is pushed to the top of the stirring column 11 by the rotation of the stirring column 11. By setting the stirring column 11, the stirring space is increased, and the unevenly stirred mixture can be continuously circulated from bottom to top until all the mixture meets the usage requirements.
[0043] The bottom of the lower mounting bracket is equipped with a vibration block 15. The inner wall of the tank body 2 is connected to the side wall of the vibration ring 16. The top of the vibration ring 16 has multiple grooves. The bottom surface of the vibration block 15 is in frictional engagement with the top surface of the vibration ring 16, and the side wall of the vibration block 15 is in frictional engagement with the side wall of the groove.
[0044] The principles and beneficial effects of the above scheme are as follows:
[0045] When the lower mounting frame rotates and the weight of the unevenly mixed material adhering to the mixing column 11 increases, the lower mounting frame moves downward relative to the tank 2. The bottom surface of the vibrating block 15 at the bottom of the lower mounting frame rubs against the top surface of the vibrating ring 16, and the side wall of the vibrating block 15 rubs against the inner wall of the groove, causing the vibrating block 15 to vibrate up and down. Driven by the vibrating block 15, the lower mounting frame vibrates, which speeds up the cleaning of the mixed material adhering to the mixing column 11.
[0046] The bottom end of the tank 2 is connected to the top end of the unloading pipe 17, the bottom end of the unloading pipe 17 is connected to the drying device, a gate valve is inserted into the unloading pipe 17, and the end of the gate valve that extends out to the side wall of the unloading pipe 17 is connected to the output end of the cylinder. The cylinder is installed on the workbench.
[0047] The diameter of the unloading pipe 17 is greater than the inner diameter of the sleeve 8.
[0048] The principles and beneficial effects of the above scheme are as follows:
[0049] The well-stirred mixture flows into the discharge pipe 17. As the mass of the mixture adhering to the stirring column 11 increases, the sleeve 8 is inserted into the discharge pipe 17. Due to the frictional engagement between the vibrating block 15 and the multiple grooves on the vibrating ring 16, the lower mounting bracket drives the sleeve 8 to reciprocate within the discharge pipe 17. The bottom end of the sleeve 8 repeatedly squeezes the mixture located on the gate valve, ensuring that the mixture in the discharge pipe 17 does not clump. By installing a gate valve in the discharge pipe 17, the sealing effect of the discharge pipe 17 is improved, and the mixture is discharged efficiently.
[0050] The crushing component 1 includes: a crushing roller 18, a crushing shell 19, and a discharge hopper 20. The top end of the tank body 2 is connected to the bottom end of the discharge hopper 20, and the top end of the discharge hopper 20 is connected to the bottom end of the crushing shell 19. Two crushing rollers 18 are rotatably connected inside the crushing shell 19. A first gear and a second gear are respectively mounted on the two crushing rollers 18. The first gear and the second gear are meshed and connected. One crushing roller 18 is connected to the output end of a second motor. The second motor is installed on the side wall of the crushing shell 19.
[0051] The principles and beneficial effects of the above scheme are as follows:
[0052] The output of the second motor drives one crushing roller 18 to rotate. The first gear on the crushing roller 18 meshes with the second gear on the other crushing roller 18, and the two crushing rollers 18 rotate in opposite directions. The raw material is added between the two crushing rollers 18. After being crushed by the crushing rollers 18, the raw material passes through the filter screen 21 and the discharge hopper 20 in sequence and enters the tank 2. The effect of continuous operation of the device is improved by setting the crushing component 1 in the device.
[0053] The inner wall of the crushing shell 19 is rotatably connected to the bottom side wall of the filter screen 21. The filter screen 21 is inclinedly arranged below the crushing roller 18. The bottom surface of the other end of the filter screen 21 is in rolling cooperation with the side wall of the vibrating roller 22. The vibrating roller 22 is rotatably connected to the inner wall of the crushing shell 19. The end of the vibrating roller 22 that extends out of the side wall of the crushing shell 19 is connected to the output end of the vibrating motor. The vibrating motor is installed on the side wall of the crushing shell 19. A collection groove 23 is provided below the bottom end of the filter screen 21. The output end of the collection groove 23 that extends out of the end wall of the crushing shell 19 is connected to the bottom end of the auger mechanism. The auger mechanism is installed on the end wall of the crushing shell 19. The top end of the auger mechanism is connected to the end of the guide groove. The output end of the guide groove is set towards the collection hopper on the top surface of the crushing shell 19. The collection hopper is set above the crushing roller 18.
[0054] The principles and beneficial effects of the above scheme are as follows:
[0055] The crushed raw material falls onto the top surface of the filter screen 21. Smaller diameter materials pass through the filter screen 21 into the tank 2, while larger diameter materials are guided by the filter screen 21 into the collection trough 23. From there, they enter the bottom of the auger mechanism. Guided by the auger mechanism, the raw material is transported to the top and then falls into the collection hopper through a guide trough. Two crushing rollers 18 then re-crush the raw material. By using the filter screen 21 and collection trough 23 to feed uncrushed raw material to the auger mechanism, the utilization rate of the raw material is improved. It saves production costs; the bottom surface of the filter screen 21 rolls with the side wall of the vibrating roller 22, and the end of the vibrating roller 22 is connected to the output end of the vibrating motor on the side wall of the crushing shell 19. When there is residue of raw material clogging the mesh of the filter screen 21, the vibration of the vibrating roller 22 on the filter screen 21 can accelerate the filtration of raw materials, improve the utilization rate of raw materials, and reduce the complexity of cleaning the device in the later stage. When there is raw material that has not been crushed on the surface of the filter screen 21, the vibrating roller 22 can accelerate the conveying speed of the raw material that has not been crushed, and improve the efficiency of raw material circulation.
[0056] The crushing roller 18 includes a roller body 24, a hollow shaft 25, and a crushing column 26. Two roller bodies 24 are rotatably connected to the inner wall of the crushing shell 19. A first gear and a second gear are respectively installed at the ends of the two roller bodies 24. One end of one roller body 24 is connected to the output end of a second motor. The central positioning hole on the inner wall of one end of the roller body 24 is rotatably engaged with the rotating shaft at the end of the hollow shaft 25. A central positioning through hole is opened on the inner wall of the other end of the roller body 24. The other end of the hollow shaft 25 is connected to one end of a transfer tube. The central positioning through hole is rotatably engaged with the transfer tube. The other end of the transfer tube is placed outside the side wall of the crushing shell 19. The side wall of the other end of the transfer tube is connected to the side wall of the crushing shell 19 through a connecting frame. The bottom end of the hollow shaft 25 has an arc-shaped groove in the longitudinal direction. The side wall of the roller body 24 has multiple guide holes. The guide holes are slidably connected to the crushing column 26. The positioning ring on the crushing column 26 is connected to the inner wall of the roller body 24 through a second reset spring. The spherical top end of the crushing column 26 is slidably engaged with the side wall of the hollow shaft 25. The spherical top end of the crushing column 26 is inserted into the top wall of the arc-shaped groove. The bottom ends of the two side walls of the arc-shaped groove are rounded.
[0057] The principles and beneficial effects of the above scheme are as follows:
[0058] When the raw material is being crushed, the second motor rotates, driving one roller 24 to rotate. A first gear on one roller 24 meshes with a second gear on the other roller 24, causing the two rollers 24 to rotate relative to each other. The spherical tip of the crushing column 26 slides and rubs along the side wall of the hollow shaft 25, while the bottom end of the crushing column 26 engages with the bottom end of the other crushing column 26 to crush the raw material. When the spherical tip of the crushing column 26 reaches the arc-shaped groove at the bottom of the hollow shaft 25, the crushing column 26 is ejected from the arc-shaped groove under the elastic force of the second return spring. The tip of the crushing column 26 then engages with the arc-shaped groove. As the roller 24 continues to rotate, the tip of the roller 24 disengages from the arc-shaped groove, compressing the second return spring. An arc-shaped groove is provided at the bottom of the body 24. The crushing column 26 is inserted into the arc-shaped groove. Under the action of the second return spring, the crushing column 26 is inserted into the arc-shaped groove. The second return spring also pushes the crushing column 26 into the arc-shaped groove, vibrating the residual material on the crushing column 26 to the top surface of the filter screen 21. This improves the self-cleaning effect of the mechanism and prevents too much material from adhering to the crushing column 26, which would reduce the crushing effect. By providing a spherical top on the crushing column 26, and the spherical top engaging with the rounded corners at the bottom of the side walls of the arc-shaped groove, the crushing column 26 is prevented from jamming during movement, improving the rationality of the mechanism. At the same time, by providing rounded corners, the friction between parts is reduced, increasing the service life of the device.
[0059] The transfer pipe passes through the end located outside the crushing shell 19 and is connected to the air supply device. The top wall of the arc-shaped groove has multiple second connection holes. The crushing column 26 has a second through hole 27 longitudinally. The top of the second through hole 27 is connected to the second connection hole. The bottom of the second through hole 27 is equipped with a second one-way valve. The side wall of the crushing column 26 has multiple second cleaning holes 28. The second cleaning holes 28 are located outside the side wall of the roller body 24. The bottom of the second cleaning holes 28 is connected to the side wall of the second through hole 27. The second cleaning holes 28 are equipped with a third one-way valve.
[0060] The principles and beneficial effects of the above scheme are as follows:
[0061] When the second through hole 27 at the spherical tip of the crushing column 26 is connected to the second connecting hole on the top wall of the arc-shaped groove, air is supplied to the transfer pipe through the air supply device, and the transfer pipe supplies air to the hollow shaft 25. This cools the shaft, hollow shaft 25, and transfer pipe, and further cools the roller body 24. While cooling the roller body 24, the heat generated by the sliding friction between the guide hole and the crushing column 26 is dissipated. At the same time, when part of the spherical tip of the crushing column 26 is inserted into the arc-shaped groove, the axis of the second cleaning hole 28 on the crushing column 26 is tangent to the side wall of the roller body 24. Compressed gas supplied by the air supply device is discharged from the second cleaning hole 28, cleaning the side wall of the roller body 24. Cleaning; a second one-way valve is installed at the bottom of the second through hole 27, and a third one-way valve is installed in the second cleaning hole 28 to prevent the crushed material from entering the second through hole 27 or the second cleaning hole 28 during the crushing process; when the compressed gas is discharged from the second through hole 27, the heat generated by the friction between the guide hole and the crushing column 26 can be further dissipated; the compressed gas discharged from the second through hole 27 can provide compressed gas to the material stuck in the mesh of the filter screen 21, accelerating the cleaning of the mesh; at the same time, it provides air pressure from top to bottom for larger materials, so that the larger materials are quickly recovered by air pressure and the guidance of the inclined filter screen 21.
[0062] A method for producing a hair growth promoting composition, applicable to the production apparatus of any one of the above-described hair growth promoting compositions, includes the following steps:
[0063] A. Select mussel meat and grind it into initial raw material using grinder 1;
[0064] B. Inject the initial raw materials into tank 2, and add distilled water into tank 2 to obtain the raw material solution;
[0065] C. Add 4-11 times the mass of the extractant and protease reagent to the raw material solution, stir clockwise for 2.5 hours using a stirring column 11, and then continue stirring counterclockwise for 2.5 hours to obtain a protein solution. Heat the protein solution to 93.2-95.8℃ using a drying device for 13-16 minutes to obtain the enzymatic hydrolysate.
[0066] D. Add sodium alginate, potassium sorbate and polysorbate 80 to the enzymatic hydrolysate in sequence, and stir again to obtain the composition.
[0067] The principles and beneficial effects of the above scheme are as follows:
[0068] The initial raw material is prepared by crushing the raw material in crusher 1. This initial raw material is then mixed with distilled water in tank 2 to obtain a low-viscosity raw material solution, facilitating thorough and uniform contact with subsequent reagents. Adding an extraction agent at 4-11 times the mass of the raw material solution facilitates rapid extraction of the desired protein from the raw material mixture. After contact with the protease reagent, the protein is broken down into shorter peptide chains or amino acids. The mixture is then stirred clockwise for 2.5 hours using stirring column 11, followed by counter-clockwise stirring for another 2.5 hours to obtain the protein solution. The process ensures that the raw material mixture solution comes into full contact with the extractant and protease reagent, allowing for a complete reaction. The protein solution is then heated to 93.2-95.8℃ for 13-16 minutes using a drying device to further inactivate the protease and obtain an enzymatic hydrolysate. Subsequently, sodium alginate, potassium sorbate, and polysorbate 80 are added to the hydrolysate to form a composition, which thickens the composition, improves the preservative effect, and increases surface activity. The hair growth promoting composition prepared by the above method allows for a more complete and thorough utilization of the raw materials, resulting in a fast production speed and high production efficiency.
[0069] Although embodiments of the present invention have been disclosed above, they are not limited to the applications listed in the specification and embodiments. They can be applied to various fields suitable for the present invention. Other modifications can be easily made by those skilled in the art. Therefore, without departing from the general concept defined by the claims and their equivalents, the present invention is not limited to the specific details and illustrations shown and described herein.
Claims
1. An apparatus for producing a hair growth promoting composition, characterized in that, include: Tank (2), the tank (2) is installed on the workbench, the top of the tank (2) is connected to the output end of the crushing component (1), the air guide component (3) is rotatably connected to the tank (2), the top of the air guide component (3) is rotatably connected to the end of the air inlet pipe, the tank (2) is provided with a stirring component (4), the stirring component (4) and the air guide component (3) are slidably engaged, the output end of the stirring component (4) is set towards the inner wall of the tank (2), and the bottom of the tank (2) is connected to the drying device; The air guide (3) includes: a guide tube (5), a motor is installed at the top of the tank (2), the gear at the output end of the motor meshes with the driven gear on the side wall of the guide tube (5), the side wall of the guide tube (5) is rotatably connected to the inner wall of the mounting hole at the top of the tank (2), the side wall of the guide tube (5) has multiple exhaust holes (6), the exhaust holes (6) are located below the top wall of the tank (2), the mounting ring at the bottom of the guide tube (5) is connected to the bottom end of the reset spring, the top end of the reset spring is connected to the top wall of the limiting hole of the sleeve (8), the limiting hole is slidably fitted with the mounting ring, the top end of the limiting hole has a through hole, the through hole is slidably connected to the side wall of the guide tube (5), and the side wall of the sleeve (8) is equipped with a stirring element (4). The inner wall of the through hole is equipped with a circumferential array of multiple sliders (9), and the sliders (9) slide in cooperation with the longitudinal grooves on the side wall of the guide tube (5); The stirring component (4) includes: an upper mounting bracket (10), the sleeve (8) is circumferentially arrayed with the ends of multiple upper mounting brackets (10), the bottom end of the upper mounting bracket (10) is connected to the top end of multiple stirring columns (11), the stirring columns (11) are arranged parallel to the guide tube (5), the bottom end of each stirring column (11) is connected to the top end of the lower mounting bracket, and the end of the lower mounting bracket is connected to the side wall of the sleeve (8); The bottom end of the lower mounting frame is equipped with a vibration block (15), the inner wall of the tank (2) is connected to the side wall of the vibration ring (16), the top of the vibration ring (16) has multiple grooves, the bottom surface of the vibration block (15) is in frictional fit with the top surface of the vibration ring (16), and the side wall of the vibration block (15) is in frictional fit with the side wall of the groove. The bottom end of the tank (2) is connected to the top end of the unloading pipe (17), the bottom end of the unloading pipe (17) is connected to the drying device, a gate valve is inserted in the unloading pipe (17), and the end of the gate valve that extends out to the side wall of the unloading pipe (17) is connected to the cylinder output end. The cylinder is installed on the workbench. The crushing component (1) includes: a discharge hopper (20), the top of the tank body (2) is connected to the bottom of the discharge hopper (20), the top of the discharge hopper (20) is connected to the bottom of the crushing shell (19), two crushing rollers (18) are rotatably connected inside the crushing shell (19), a first gear and a second gear are respectively mounted on the two crushing rollers (18), the first gear and the second gear are meshed and connected, one crushing roller (18) is connected to the output end of a second motor, and the second motor is installed on the side wall of the crushing shell (19); The inner wall of the sleeve (8) has a circumferential array of multiple connection holes. One end of the connection hole is located above the exhaust hole (6), and the other end of the connection hole is connected to the end of the adapter hole (12) in the upper mounting bracket (10). The stirring column (11) has a diversion hole (13). The top end of the diversion hole (13) is connected to the bottom end of the adapter hole (12). The side wall of the stirring column (11) has multiple cleaning holes (14). The bottom end of the cleaning hole (14) is connected to the side wall of the diversion hole (13). The cleaning hole (14) is equipped with a one-way valve. The crushing roller (18) includes: a roller body (24), a hollow shaft (25), and a crushing column (26). Two roller bodies (24) are rotatably connected to the inner wall of the crushing shell (19). The ends of the two roller bodies (24) are respectively equipped with a first gear and a second gear. One end of one roller body (24) is connected to the output end of a second motor. The central positioning hole on the inner wall of one end of the roller body (24) is rotatably engaged with the rotating shaft at the end of the hollow shaft (25). The inner wall of the other end of the roller body (24) has a central positioning through hole. The other end of the hollow shaft (25) is connected to one end of a transfer tube. The central positioning through hole and the transfer tube rotate... The two ends of the transfer tube are placed outside the side wall of the crushing shell (19). The side wall of the other end of the transfer tube is connected to the side wall of the crushing shell (19) through the connecting frame. The bottom end of the hollow shaft (25) has an arc-shaped groove in the longitudinal direction. The side wall of the roller body (24) has multiple guide holes. The guide holes are slidably connected to the crushing column (26). The positioning ring on the crushing column (26) is connected to the inner wall of the roller body (24) through the second reset spring. The spherical top end of the crushing column (26) is slidably engaged with the side wall of the hollow shaft (25). The spherical top end of the crushing column (26) is inserted into the top wall of the arc-shaped groove. The bottom ends of the two side walls of the arc-shaped groove are rounded. The end of the transfer pipe located outside the crushing shell (19) is connected to the air supply device. Multiple second connection holes are opened on the top wall of the arc-shaped groove. A second through hole (27) is opened longitudinally inside the crushing column (26). The top of the second through hole (27) is connected to the second connection hole. A second one-way valve is installed at the bottom of the second through hole (27). Multiple second cleaning holes (28) are opened on the side wall of the crushing column (26). The second cleaning holes (28) are located outside the side wall of the roller body (24). The bottom of the second cleaning hole (28) is connected to the side wall of the second through hole (27). A third one-way valve is installed inside the second cleaning hole (28).
2. The apparatus for producing a hair growth promoting composition according to claim 1, characterized in that, The inner wall of the crushing shell (19) is rotatably connected to the bottom side wall of the filter screen (21). The filter screen (21) is inclinedly set below the crushing roller (18). The bottom surface of the other end of the filter screen (21) is rolled in cooperation with the side wall of the vibrating roller (22). The vibrating roller (22) is rotatably connected to the inner wall of the crushing shell (19). The end of the vibrating roller (22) that extends out to the outside of the side wall of the crushing shell (19) is connected to the output end of the vibrating motor. The vibrating motor is installed on the side wall of the crushing shell (19). A collection groove (23) is provided below the bottom end of the filter screen (21). The output end of the collection groove (23) that extends out to the outside of the end wall of the crushing shell (19) is connected to the bottom end of the auger mechanism. The auger mechanism is installed on the end wall of the crushing shell (19). The top end of the auger mechanism is connected to the end of the guide groove. The output end of the guide groove is set towards the hopper on the top surface of the crushing shell (19). The hopper is set above the crushing roller (18).
3. A method for producing a hair growth promoting composition, applicable to the production apparatus for the hair growth promoting composition as described in claim 1, characterized in that, Includes the following steps: A. Select mussel meat and crush it into initial raw material using crusher (1); B. Inject the initial raw materials into the tank (2), and add distilled water into the tank (2) to obtain the raw material solution; C. Add 4-11 times the mass of the raw material solution of the extractant and the protease reagent to the raw material solution, stir clockwise for 2.5 hours using a stirring column (11), and then continue to stir counterclockwise for 2.5 hours to obtain a protein solution. Use a drying device to heat the protein solution to 93.2-95.8℃ for 13-16 minutes to obtain the enzymatic hydrolysate. D. Add sodium alginate, potassium sorbate and polysorbate 80 to the enzymatic hydrolysate in sequence, and stir again to obtain the composition.
Citation Information
Patent Citations
Mussel protein extraction method and device
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