Hyaluronic acid dissolving tank for producing hyaluronic acid cashmere
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HANGZHOU ZHUGAN NEW MATERIALS TECHNOLOGY CO LTD
- Filing Date
- 2025-06-27
- Publication Date
- 2026-08-07
AI Technical Summary
[0003]但现有的基于玻尿酸羊绒生产用的玻尿酸溶解罐在对反应釜内部的溶液进行搅拌,只能仅仅通过反应釜上的电机带动搅拌杆对其内部的溶液进行搅拌,通常为了处理反应釜内壁附着的结块物,搅拌杆的形状为锚状,由于缺少能够对结块物进行分层处理的机构,使得锚状搅拌杆只能将反应釜内壁的结块物全部堆积在反应釜内壁附近,需要长时间的搅拌才能使得堆积的结块物重新与溶液混合
1.工作原理:当收纳机构旋转时,收纳机构带动滑动机构旋转,从而滑动机构带动搅拌机构和刮除导向机构旋转,以此搅拌机构对反应釜中部的溶液进行搅拌,刮除导向机构对反应釜内壁附着的结块物进行刮除的同时,对位于刮除导向机构顶部的结块物进行导向,且刮除导向机构对靠近反应釜内壁的溶液进行搅拌,当外接件转动到导向机构一端时,外接件会沿着导向机构一端向上移动,此时外接件带动滑动机构在收纳机构内部移动,从而滑动机构带动刮除导向机构顶端移出液面,此时由于刮除导向机构作用,会将顶部的结块物导入搅拌机构上方,配合搅拌机构和刮除导向机构旋转,便于对刮除的结块物进行分层处理,以此使得结块物重新与溶液混合,并提高溶液混合的效率。
Smart Images

Figure CN224599328U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of hyaluronic acid cashmere production, specifically to a hyaluronic acid dissolving tank for hyaluronic acid cashmere production. Background Technology
[0002] The application of hyaluronic acid in cashmere processing mainly aims to improve the hydrophilicity, softness, and antistatic properties of cashmere fibers. One of the core pieces of equipment in this process is the hyaluronic acid dissolving tank. Hyaluronic acid dissolving requires avoiding excessively high local concentrations or clumping. The tank usually uses a variable frequency speed-regulating stirrer (such as an anchor type or a paddle type). Some systems are equipped with ultrasonic-assisted dispersion technology to ensure that the solution is uniform and free of gel particles. In the production process of hyaluronic acid cashmere, the stirring speed of the hyaluronic acid dissolving tank (reaction vessel) is usually required to be slow.
[0003] However, existing hyaluronic acid dissolving tanks used in hyaluronic acid cashmere production can only stir the solution inside the reactor by having a motor drive a stirring rod. Usually, to deal with the clumps adhering to the inner wall of the reactor, the stirring rod is anchor-shaped. Due to the lack of a mechanism to process the clumps in layers, the anchor-shaped stirring rod can only accumulate all the clumps on the inner wall of the reactor, requiring a long period of stirring to remix the accumulated clumps with the solution. Utility Model Content
[0004] This utility model aims to provide a hyaluronic acid dissolving tank for the production of hyaluronic acid cashmere, mainly to solve the technical problem that the existing technology lacks a mechanism to process the agglomerated material in layers, which causes the anchor-shaped stirring rod to only accumulate the agglomerated material on the inner wall of the reactor, requiring a long period of stirring to remix the accumulated agglomerated material with the solution.
[0005] To solve the above-mentioned technical problems, this utility model provides the following technical solution: The hyaluronic acid dissolving tank for hyaluronic acid cashmere production includes a reaction vessel, a receiving mechanism, a sliding mechanism, an external connector, a guiding mechanism, a stirring mechanism, and a scraping guiding mechanism. The receiving mechanism is located at one end of the output shaft of the motor on the reaction vessel. The sliding mechanism is vertically slidable inside the receiving mechanism. The external connector is located at the top of the sliding mechanism. The guiding mechanism is located at the top inside the reaction vessel and is sleeved on the outside of the receiving mechanism and the sliding mechanism. The external connector is adapted to the inside of the guiding mechanism. The stirring mechanism is located at the bottom of the sliding mechanism and is located in the middle of the reaction vessel. The scraping guiding mechanism is located at the bottom of the sliding mechanism and its outer wall is in contact with the inner wall of the reaction vessel.
[0006] The working principle and beneficial effects of this utility model: 1. Working Principle: When the receiving mechanism rotates, it drives the sliding mechanism to rotate, which in turn drives the stirring mechanism and the scraping guide mechanism to rotate. The stirring mechanism stirs the solution in the middle of the reactor, while the scraping guide mechanism scrapes off the clumps adhering to the inner wall of the reactor and guides the clumps located at the top of the scraping guide mechanism. The scraping guide mechanism also stirs the solution near the inner wall of the reactor. When the external component rotates to one end of the guide mechanism, it moves upward along that end. At this time, the external component drives the sliding mechanism to move inside the receiving mechanism, which in turn moves the top of the scraping guide mechanism out of the liquid surface. Due to the action of the scraping guide mechanism, the clumps at the top are guided above the stirring mechanism. With the rotation of the stirring mechanism and the scraping guide mechanism, the scraped clumps are easily layered, allowing them to be remixed with the solution and improving the mixing efficiency.
[0007] 2. Beneficial effects: (1) The continuous rotation of the connecting rod facilitates the scraper to remove the clumps attached to the inner wall of the reactor. At this time, the clumps on the top of the scraper are scraped into the guide groove. When the connecting rod drives the support rod to rotate from inside the rotating groove to the outer wall of the guide plate, the support rod moves along the inclined surface at one end of the guide plate due to the support of the guide plate. As a result, the support rod rises, and the support rod drives the connecting rod to rise. At this time, the connecting rod drives the scraper to rise, and the scraper drives the connecting plate to move out of the liquid surface. At this time, the residual solution inside the guide groove carries the clumps into the connecting groove. Through the guidance of the connecting groove, the clumps are guided to the top of the stirring rod located in the middle. This, together with the rotation of the stirring rod and the scraper, facilitates the stratification of the scraped clumps, so that the clumps are remixed with the solution and the mixing efficiency of the solution is improved.
[0008] Preferably, the storage mechanism includes an extension rod, a sliding hole, and a limiting groove. The top end of the extension rod is fixedly connected to one end of the output shaft of the motor on the reactor. The bottom end of the extension rod has a sliding hole and two limiting grooves communicating with the inner wall of the sliding hole. The limiting grooves restrict the sliding mechanism to make vertical movements inside the sliding hole.
[0009] Preferably, the sliding mechanism includes a moving rod, a limiting block, and a connecting rod. The top end of the moving rod is slidably connected to the inside of the storage mechanism. Two limiting blocks are fixedly connected to the outer wall of the moving rod, and a connecting rod is fixedly connected to the bottom end of the moving rod. The outer wall of the moving rod is adapted to the inside of the sliding hole, and the two limiting blocks are adapted to the inner walls of the two limiting grooves respectively. When the external component drives the connecting rod to rise, the connecting rod drives the moving rod to rise, so that the moving rod moves inside the sliding hole, while the limiting blocks move inside the limiting grooves.
[0010] Preferably, the external component includes a support rod, one end of which is fixedly connected to the top of the connecting rod; the connection between the support rod and the connecting rod allows the connecting rod to move along with the support rod when the position of the support rod changes.
[0011] Preferably, the guiding mechanism includes a hollow cylinder, a rotating groove, and a guide plate. The top of the hollow cylinder is fixedly connected to the top of the inside of the reactor. The inner wall of the hollow cylinder has a rotating groove, and the inner wall of the rotating groove is fixedly connected to the guide plate. Both ends of the guide plate are rounded. One end of the support rod is adapted to the inside of the rotating groove. When the connecting rod drives the support rod to rotate from the inside of the rotating groove to the outer wall of the guide plate, the support rod moves along the inclined surface of one end of the guide plate due to the support of the guide plate, thereby raising the support rod.
[0012] Preferably, the stirring mechanism includes stirring rods, and several groups of stirring rods are provided. One end of each group of stirring rods is fixedly connected to the bottom of a connecting rod. Each group is provided with several stirring rods, and the several stirring rods in each group are arranged in a circular array at equal intervals. The several groups of stirring rods are arranged at equal intervals along the radial direction of the connecting rod. The connecting rod drives the several groups of stirring rods to rotate, so that the several groups of stirring rods can stir the solution in the middle of the reaction vessel.
[0013] Preferably, the guiding scraping mechanism includes a scraper, a guide groove, a connecting plate, and a connecting groove. The top end of the scraper is fixedly connected to the bottom end of the sliding mechanism. The scraper is anchor-shaped. Guide grooves are provided on both sides of the top of the scraper. Connecting plates are fixedly connected to the two guide grooves on the top sides of the scraper, respectively. A connecting groove is provided on one side of the connecting plate. The interior of the connecting groove is connected to the interior of the guide groove. The bottom end of the connecting rod drives the scraper to rotate, so that the scraper rotates along the inner wall of the reactor and scrapes off the clumps attached to the inner wall of the reactor. The scraped clumps in the middle and bottom of the scraper are poured into the outer layer of the solution, while the clumps at the top of the scraper are scraped into the guide groove. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the hyaluronic acid dissolving tank for producing hyaluronic acid cashmere, which is the subject of this utility model patent. Figure 2 This is a cross-sectional view of the reaction vessel of the hyaluronic acid dissolving tank for producing hyaluronic acid cashmere, which is the subject of this utility model patent. Figure 3 This is a front view of the reaction vessel of the hyaluronic acid dissolving tank for producing hyaluronic acid cashmere, which is the subject of this utility model patent. Figure 4 This is a structural diagram of the scraper of the hyaluronic acid dissolving tank used in the production of hyaluronic acid cashmere, which is the subject of this utility model patent. Figure 5 This is an exploded view of the storage mechanism and sliding mechanism of the hyaluronic acid dissolving tank for hyaluronic acid cashmere production according to this utility model patent. Figure 6 This is a cross-sectional view of the hollow cylinder of the hyaluronic acid dissolving tank used in the production of hyaluronic acid cashmere, which is the subject of this utility model patent. Figure 7 This is a top view of the hollow cylinder of the hyaluronic acid dissolving tank used in the production of hyaluronic acid cashmere, which is the subject of this utility model patent.
[0015] The reference numerals in the accompanying drawings of the instruction manual include: 1. Reactor; 2. Extension rod; 3. Sliding hole; 4. Restriction groove; 5. Moving rod; 6. Restriction block; 7. Connecting rod; 8. Support rod; 9. Hollow cylinder; 10. Rotating groove; 11. Guide plate; 12. Stirring rod; 13. Scraper; 14. Guide groove; 15. Connecting plate; 16. Connecting groove. Detailed Implementation
[0016] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0017] like Figures 1-7As shown, the system includes a reactor 1, a receiving mechanism, a sliding mechanism, an external connector, a guiding mechanism, a stirring mechanism, and a scraping guiding mechanism. The receiving mechanism is located at one end of the output shaft of the motor on the reactor 1. The sliding mechanism is vertically slidable inside the receiving mechanism. The receiving mechanism includes an extension rod 2, a sliding hole 3, and a limiting groove 4. The top end of the extension rod 2 is fixedly connected to one end of the output shaft of the motor on the reactor 1. The bottom end of the extension rod 2 has a sliding hole 3 and two limiting grooves 4 communicating with the inner wall of the sliding hole 3. The sliding mechanism includes a moving rod 5, a limiting block 6, and a connecting rod 7. The top end of the moving rod 5 is slidably connected inside the receiving mechanism. Two limiting blocks 6 are fixedly connected to the outer wall of the moving rod 5. The bottom end of the moving rod 5 is fixedly connected to the connecting rod 7. The external connector is located at the top of the sliding mechanism and includes a support rod 8. One end of the support rod 8 is fixedly connected to the top of the connecting rod 7. The guiding mechanism is located at the top inside the reactor 1 and is sleeved on the outside of the receiving mechanism and the sliding mechanism. The external connector is adapted to the inside of the guiding mechanism. The guiding mechanism includes a middle... The reactor consists of a hollow cylinder 9, a rotating groove 10, and a guide plate 11. The top of the hollow cylinder 9 is fixedly connected to the top of the reactor 1. A rotating groove 10 is formed on the inner wall of the hollow cylinder 9, and a guide plate 11 is fixedly connected to the inner wall of the rotating groove 10. Both ends of the guide plate 11 are rounded. In the initial state, the liquid level inside the reactor 1 is above or flush with the top of the scraper 13. When the motor on the reactor 1 is started, the motor output shaft drives the extension rod 2 to rotate. Since the limiting block 6 is located inside the limiting groove 4, the extension rod 2 is driven... The moving rod 5 rotates, which in turn drives the connecting rod 7 to rotate. The connecting rod 7 drives several sets of stirring rods 12 to rotate. When the connecting rod 7 drives the support rod 8 to rotate from inside the rotating groove 10 to the outer wall of the guide plate 11, the support rod 8 moves along the inclined surface at one end of the guide plate 11 due to the support of the guide plate 11. As a result, the support rod 8 rises, which in turn drives the connecting rod 7 to rise. The connecting rod 7 drives the moving rod 5 to rise, so that the moving rod 5 moves inside the sliding hole 3, while the limiting block 6 moves inside the limiting groove 4. The stirring mechanism is located at the bottom of the sliding mechanism and in the middle of the reactor 1. The scraping guide mechanism is located at the bottom of the sliding mechanism, and its outer wall is in contact with the inner wall of the reactor 1. The stirring mechanism includes stirring rods 12, and several groups of stirring rods 12 are provided. One end of each group of stirring rods 12 is fixedly connected to the bottom of the connecting rod 7. Each group has several stirring rods 12, and the stirring rods 12 in each group are arranged in a circular array at equal intervals. The groups of stirring rods 12 are arranged radially and at equal intervals along the connecting rod 7. The guiding scraping mechanism includes a scraper 13, a guide groove 14, a connecting plate 15, and a connecting groove 16. The top of the scraper 13 is fixedly connected to the bottom of the sliding mechanism. The scraper 13 is anchor-shaped. Guide grooves 14 are provided on both sides of the top of the scraper 13. Connecting plates 15 are fixedly connected to the outer sides of the two guide grooves 14 on the top sides of the scraper 13, respectively. A connecting groove 16 is provided on one side of the connecting plate 15. 6. The interior of the connecting groove 16 is connected to the interior of the guide groove 14. The bottom end of the connecting rod 7 drives the scraper 13 to rotate, so that the scraper 13 rotates along the inner wall of the reactor 1 and scrapes off the clumps attached to the inner wall of the reactor 1. The scraped clumps in the middle and bottom of the scraper 13 are poured into the outer layer of the solution, while the clumps at the top of the scraper 13 are scraped into the guide groove 14. When the limiting block 6 moves inside the limiting groove 4, the connecting rod 7 drives the scraper 13 to rise, so that the scraper 13 drives the connecting plate 15 to move out of the liquid surface. At this time, the residual solution in the guide groove 14 carries the clumps into the connecting groove 16. Since the connecting plate 15 faces the bottom of the reactor 1, the clumps are guided above the stirring rod 12 located in the middle of the reactor 1. With the rotation of the stirring rod 12 and the scraper 13, it is convenient to perform stratification of the scraped clumps, so that the clumps are remixed with the solution and the mixing efficiency of the solution is improved.
[0018] As described above, the specific implementation of this utility model is as follows: In the initial state, the liquid level inside the reactor 1 is above or flush with the top of the scraper 13. The motor on the reactor 1 is started, causing the motor output shaft to drive the extension rod 2 to rotate. Since the limiting block 6 is located inside the limiting groove 4, the extension rod 2 drives the moving rod 5 to rotate, which in turn drives the connecting rod 7 to rotate. The connecting rod 7 drives several sets of stirring rods 12 to rotate, and simultaneously, the bottom end of the connecting rod 7 drives the scraper 13 to rotate, causing the scraper 13 to rotate along the inner wall of the reactor 1 and scrape off the clumps attached to the inner wall of the reactor 1. The scraped clumps from the middle and bottom of the scraper 13 are poured into the outer layer of the solution, while the clumps at the top of the scraper 13 are scraped into the guide groove 14. When the connecting rod 7 drives the support rod 8 to rotate from inside the rotating groove 10 to the outer wall of the guide plate 11, the support rod 8 moves along the guide plate 11. The inclined surface at one end of the guide plate 11 moves, causing the support rod 8 to rise. The support rod 8 then drives the connecting rod 7 to rise, and the connecting rod 7 drives the moving rod 5 to rise, causing the moving rod 5 to move inside the sliding hole 3. At the same time, the limiting block 6 moves inside the limiting groove 4. At this time, the connecting rod 7 drives the scraper 13 to rise, and the scraper 13 drives the connecting plate 15 to move out of the liquid surface. At this time, the residual solution inside the guide groove 14 carries the agglomerated material into the connecting groove 16. Since the connecting plate 15 faces the bottom of the reactor 1, the agglomerated material is guided above the stirring rod 12 located in the middle of the reactor 1. With the rotation of the stirring rod 12 and the scraper 13, it is convenient to perform stratification of the scraped agglomerated material, so that the agglomerated material can be remixed with the solution and the mixing efficiency of the solution can be improved. Then, the support rod 8 slides down along the other side of the guide plate 11, so that the connecting rod 7 is reset. This process is repeated to fully process the agglomerated material.
[0019] The above descriptions are merely embodiments of this utility model, and common knowledge regarding specific structures and characteristics is not elaborated upon here. It should be noted that those skilled in the art can make various modifications and improvements without departing from the structure of this utility model, and these should also be considered within the scope of protection of this utility model. These modifications will not affect the effectiveness of the implementation of this utility model or the practicality of the patent. The scope of protection claimed in this application shall be determined by the content of its claims, and the specific embodiments described in the specification can be used to interpret the content of the claims.
Claims
1. A hyaluronic acid dissolving tank for producing hyaluronic acid cashmere, characterized in that, The reactor includes a reactor (1), a receiving mechanism, a sliding mechanism, an external component, a guiding mechanism, a stirring mechanism, and a scraping guiding mechanism. The receiving mechanism is located at one end of the output shaft of the motor on the reactor (1). The sliding mechanism is vertically slidably located inside the receiving mechanism. The external component is located at the top of the sliding mechanism. The guiding mechanism is located at the top inside the reactor (1) and is sleeved on the outside of the receiving mechanism and the sliding mechanism. The external component is adapted to the inside of the guiding mechanism. The stirring mechanism is located at the bottom of the sliding mechanism and is located in the middle of the reactor (1). The scraping guiding mechanism is located at the bottom of the sliding mechanism and the outer wall of the scraping guiding mechanism is in contact with the inner wall of the reactor (1).
2. The hyaluronic acid dissolving tank for producing hyaluronic acid cashmere according to claim 1, characterized in that: The storage mechanism includes an extension rod (2), a sliding hole (3) and a limiting groove (4). The top end of the extension rod (2) is fixedly connected to one end of the output shaft of the motor on the reactor (1). The bottom end of the extension rod (2) is provided with a sliding hole (3). The bottom end of the extension rod (2) is provided with two limiting grooves (4) that connect to the inner wall of the sliding hole (3).
3. The hyaluronic acid dissolving tank for producing hyaluronic acid cashmere according to claim 1, characterized in that: The sliding mechanism includes a moving rod (5), a limiting block (6) and a connecting rod (7). The top end of the moving rod (5) is slidably connected to the inside of the storage mechanism. Two limiting blocks (6) are fixedly connected to the outer wall of the moving rod (5). The bottom end of the moving rod (5) is fixedly connected to the connecting rod (7).
4. The hyaluronic acid dissolving tank for producing hyaluronic acid cashmere according to claim 3, characterized in that: The external component includes a support rod (8), one end of which is fixedly connected to the top of the connecting rod (7).
5. The hyaluronic acid dissolving tank for producing hyaluronic acid cashmere according to claim 1, characterized in that: The guiding mechanism includes a hollow cylinder (9), a rotating groove (10) and a guide plate (11). The top of the hollow cylinder (9) is fixedly connected to the top of the inside of the reactor (1). The inner wall of the hollow cylinder (9) is provided with a rotating groove (10). The inner wall of the rotating groove (10) is fixedly connected with a guide plate (11). The tops of both ends of the guide plate (11) are rounded.
6. The hyaluronic acid dissolving tank for producing hyaluronic acid-based cashmere according to claim 3, characterized in that: The stirring mechanism includes stirring rods (12), and there are several groups of stirring rods (12). One end of each group of stirring rods (12) is fixedly connected to the bottom of the connecting rod (7). Each group has several stirring rods (12). The stirring rods (12) in each group are arranged in a ring array at equal intervals. The stirring rods (12) are arranged radially and at equal intervals along the connecting rod (7).
7. The hyaluronic acid dissolving tank for producing hyaluronic acid cashmere according to claim 1, characterized in that: The guiding scraping mechanism includes a scraper (13), a guide groove (14), a connecting plate (15), and a connecting groove (16). The top of the scraper (13) is fixedly connected to the bottom of the sliding mechanism. The scraper (13) is anchor-shaped. Guide grooves (14) are provided on both sides of the top of the scraper (13). Connecting plates (15) are fixedly connected to the outside of the two guide grooves (14) on both sides of the top of the scraper (13). A connecting groove (16) is provided on one side of the connecting plate (15). The interior of the connecting groove (16) is connected to the interior of the guide groove (14).