A kind of reaction kettle for medical silica gel production

CN224724116UActive Publication Date: 2026-09-08SHENZHEN HONGYU TECH CO LTD
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Patent Information

Application Number
CN202521701582.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-08
Publication Date
2026-09-08
Estimated Expiration
2035-08-08

AI Technical Summary

Technical Problem

[0003]现有技术的用于医用硅胶生产反应釜无法对釜体内部进行杀菌处理、且无法对医用硅胶原料进行破碎处理,从而降低了反应釜的工作能力;且无法在需要的时候对生产后的硅胶进行临时储存,从而降低了反应釜的实用性

Benefits of technology

[0014] 1、 the utility model discloses a sterilization crushing device, which can perform certain sterilization treatment on the inside of the kettle body assembly through the cooperation of the sterilization lamp and other structures when needed, thereby preventing the bacteria breeding phenomenon in the inside of the kettle body assembly, and the medical silica gel raw material can be crushed through the cooperation of the crushing blade and the moving frame, thereby improving the working capacity of the reaction kettle.

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Abstract

The utility model discloses a kind of for medical silica gel production reaction kettle, belong to medical silica gel production technical field, including kettle body component, the both sides of kettle body component are all provided with feed pipe, first valve is fixedly installed in the central position of feed pipe, kettle body component below is fixedly installed with discharge port, kettle body component below and located the position of discharge port outer side is fixedly installed with multiple supporting leg, kettle body component is connected between two feed pipes by two sterilization crushing device;The utility model is through being arranged sterilization crushing device, so that staff can carry out certain sterilization treatment to kettle body component inside by the cooperation of structure such as germicidal lamp when needing, to prevent the phenomenon that bacteria breeds appears in kettle body component inside, and staff can carry out crushing treatment to medical silica gel raw material by the cooperation of structure such as crushing blade and moving frame, and then improve the working capacity of reaction kettle.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the medical silica gel production technical field, concretely relates to a kind of for medical silica gel production reaction kettle. BACKGROUND

[0002] Medical silica gel is quite widely used in cosmetic surgery biological material, has multiple forms, such as: liquid silicone oil, jelly-like silicone, foam-like silicone sponge and elastic solid silicone rubber etc., and solid silicone rubber is more applied.Silicone rubber has good biocompatibility, no irritation, non-toxic, no allergic reaction to human tissue, and little body rejection reaction;It has good physical and chemical properties, and can maintain its original elasticity and softness during contact with body fluid and tissue, and is not degraded, which is a quite stable inert substance.

[0003] The prior art for medical silica gel production reaction kettle cannot sterilize the inside of kettle body, and cannot crush medical silica gel raw materials, thereby reducing the working capacity of the reaction kettle;And the produced silica gel cannot be temporarily stored when needed, thereby reducing the practicability of the reaction kettle. UTILITY MODEL CONTENT

[0004] To solve the problems presented in the above background art, the utility model provides a kind of for medical silica gel production reaction kettle, with high working capacity, strong practicability.

[0005] To achieve the above object, the utility model provides the following technical scheme: a kind of for medical silica gel production reaction kettle, including kettle body assembly, the both sides of kettle body assembly are provided with feed pipe, and the central position of feed pipe is fixedly installed with first valve, and the lower of kettle body assembly is fixedly installed with discharge outlet, and the lower of kettle body assembly and the position of discharge outlet outer side are fixedly installed with multiple supporting legs, and kettle body assembly is connected between two feed pipes by two sterilization crushing devices, and the lower of discharge outlet is provided with temporary storage device;

[0006] The sterilization crushing device includes fixed cylinder, and kettle body assembly is connected between two feed pipes by two fixed cylinders, and electric telescopic rod is fixedly installed on the edge position of the side of fixed cylinder away from kettle body assembly, and quartz glass shell is arranged on the inner side of fixed cylinder, and sterilization lamp is fixedly installed on the inner side of quartz glass shell, and electric telescopic rod and quartz glass shell are connected by crushing assembly.

[0007] Preferably, the crushing assembly includes a moving frame, the electric telescopic rod and the quartz glass shell are connected by the moving frame, a motor is fixedly installed on one side of the moving frame and above the electric telescopic rod, and a plurality of crushing blades are fixedly installed on the outer side of the motor output end and inside the moving frame.

[0008] Preferably, the height of the inner top surface and the inner bottom surface of the fixed cylinder is equal to the height of the outer top surface and the outer bottom surface of the moving frame.

[0009] Preferably, a filter screen is fixedly installed on the inner side of the moving frame and below the plurality of crushing blades.

[0010] Preferably, the temporary storage device comprises a storage box, the plurality of legs are fixedly installed below the storage box, a threaded block is threadedly installed on the top of the storage box and below the discharge port, a discharge pipe is fixedly installed on one side of the storage box, and a second valve is fixedly installed on the central position of the discharge pipe.

[0011] Preferably, a plurality of electric heating rods are fixedly installed on the inner side of the storage box.

[0012] Preferably, thermal insulation cotton is fixedly installed in the side wall of the storage box.

[0013] Compared with the prior art, the utility model has the beneficial effects that:

[0014] 1、 the utility model discloses a sterilization crushing device, which can perform certain sterilization treatment on the inside of the kettle body assembly through the cooperation of the sterilization lamp and other structures when needed, thereby preventing the bacteria breeding phenomenon in the inside of the kettle body assembly, and the medical silica gel raw material can be crushed through the cooperation of the crushing blade and the moving frame, thereby improving the working capacity of the reaction kettle.

[0015] 2、 the utility model discloses a temporary storage device, which can temporarily store the produced silica gel through the cooperation of the storage box and the electric heating rod when needed, thereby reducing the possible inconvenience, and improving the practicality of the reaction kettle. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 It is a perspective view of the utility model;

[0017] Figure 2 It is a perspective cutaway view of the utility model;

[0018] Figure 3 It is a perspective cutaway view of the sterilization crushing device of the utility model;

[0019] Figure 4 It is a perspective cutaway view of the temporary storage device of the utility model.

[0020] As shown in the figure, 1, kettle body assembly; 2, feed pipe; 3, first valve; 4, sterilization crushing device; 41, fixed cylinder; 42, quartz glass shell; 43, sterilization lamp; 44, crushing assembly; 441, moving frame; 442, filter screen; 443, crushing blade; 444, motor; 45, electric telescopic rod; 5, supporting leg; 6, discharge port; 7, temporary storage device; 71, heat preservation cotton; 72, discharge pipe; 73, second valve; 74, electric heating rod; 75, storage box; 76, threaded block. DETAILED DESCRIPTION

[0021] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0022] Embodiment 1

[0023] Please refer to Figures 1-4 The present application provides the following technical scheme: a medical silica gel production reaction kettle, comprising a kettle body assembly 1, both sides of the kettle body assembly 1 are provided with a feed pipe 2, a first valve 3 is fixedly installed at the central position of the feed pipe 2, a discharge port 6 is fixedly installed below the kettle body assembly 1, a plurality of supporting legs 5 are fixedly installed below the kettle body assembly 1 and outside the discharge port 6, the kettle body assembly 1 and the two feed pipes 2 are connected through two sterilization crushing devices 4, and a temporary storage device 7 is arranged below the discharge port 6.

[0024] The sterilization crushing device 4 comprises a fixed cylinder 41, the kettle body assembly 1 and the two feed pipes 2 are connected through two fixed cylinders 41, an electric telescopic rod 45 is fixedly installed at the edge position of the side of the fixed cylinder 41 away from the kettle body assembly 1, a quartz glass shell 42 is arranged on the inner side of the fixed cylinder 41, a sterilization lamp 43 is fixedly installed on the inner side of the quartz glass shell 42, and the electric telescopic rod 45 and the quartz glass shell 42 are connected through a crushing assembly 44.

[0025] Specifically, the crushing assembly 44 comprises a moving frame 441, the electric telescopic rod 45 and the quartz glass shell 42 are connected through the moving frame 441, a motor 444 is fixedly installed at the side of the moving frame 441 and above the electric telescopic rod 45, and a plurality of crushing blades 443 are fixedly installed at the outer side of the output end of the motor 444 and inside the moving frame 441.

[0026] By adopting the above technical solution, workers can crush medical silicone raw materials through the cooperation of structures such as the crushing blade 443 and the moving frame 441, thereby reducing the possibility that production work may be adversely affected by excessively large raw materials.

[0027] Specifically, the height of the inner top and bottom surfaces of the fixed cylinder 41 is equal to the height of the outer top and bottom surfaces of the movable frame 441.

[0028] By adopting the above technical solution, the reactor can ensure that the inner top and bottom surfaces of the fixed cylinder 41 are in close contact with the outer top and bottom surfaces of the moving frame 441, thereby preventing the appearance of gaps and thus preventing the leakage of raw materials.

[0029] Specifically, a filter screen 442 is fixedly installed on the inner side of the movable frame 441 and below the multiple crushing blades 443.

[0030] By adopting the above technical solution, the reactor can filter medical rubber raw materials through the filter screen 442, thereby preventing uncrushed raw materials from leaving the inside of the moving frame 441 and better meeting the needs of the work.

[0031] In this embodiment, when the production of medical silicone requires the use of a reaction vessel, the operator opens the two first valves 3 and feeds the raw material into the moving frame 441 inside the crushing component 44 of the two sterilization and crushing devices 4 through the two feed pipes 2. Then, the operator closes the two first valves 3, starts the two motors 444, and drives each crushing blade 443 to rotate, thereby crushing the raw material. Then, the operator starts the electric telescopic rods 45 on the two fixed cylinders 41, thereby moving the two moving frames 441 and other structures into the reactor body assembly 1. The raw material falls into the reactor body assembly 1 through the two filter screens 442. Then, the operator manipulates the two electric telescopic rods 45 to move the two moving frames 441 and other structures back to their original positions, and manipulates the reactor body assembly 1 to process the raw material. Finally, the operator opens the discharge port 6 to discharge the medical silicone. After the work is completed, when needed, the operator can turn on the sterilizing lamp 43 inside the quartz glass shell 42 to sterilize the inside of the reactor body assembly 1. The operator can adjust the position of the sterilizing lamp 43 through the electric telescopic rods 45. The support legs 5 provide support.

[0032] Example 2

[0033] The difference between this embodiment and embodiment 1 is that: the temporary storage device 7 includes a storage box 75, the storage box 75 is fixedly installed below the multiple support legs 5, the top of the storage box 75 and the position below the discharge port 6 are threadedly installed with a threaded block 76, the side of the storage box 75 is fixedly installed with a discharge pipe 72, and the center of the discharge pipe 72 is fixedly installed with a second valve 73.

[0034] Through the cooperation of the structure of the storage box 75 and the like, the staff can temporarily store the produced silica gel when needed, thereby reducing the possible inconvenience and better meeting the needs of work.

[0035] Specifically, the inner side of the storage box 75 is fixedly installed with a plurality of electric heating rods 74.

[0036] Through the above technical scheme, the staff can heat the medical silica gel in the storage box 75 through each electric heating rod 74 when needed, thereby preventing it from solidifying and further ensuring the normal operation of work.

[0037] Specifically, the sidewall of the storage box 75 is fixedly installed with heat preservation cotton 71.

[0038] Through the above technical scheme, the reaction kettle can reduce the heat loss inside the storage box 75 through the heat preservation cotton 71, thereby ensuring the heating effect of the electric heating rod 74 and further better meeting the needs of work.

[0039] When the discharge port 6 is about to discharge the medical silica gel, the staff can pre-tighten the threaded block 76 in the temporary storage device 7, so that the silica gel discharged from the discharge port 6 falls into the storage box 75, and then the threaded block 76 is installed back through the thread, thereby temporarily storing the silica gel. The staff can start each electric heating rod 74 to heat the silica gel, thereby preventing the silica gel from solidifying. In addition, the staff can open the second valve 73 when needed to discharge the silica gel through the discharge pipe 72, and the heat preservation cotton 71 plays a role in reducing heat loss.

[0040] The structure and principle of the vessel body assembly 1, consisting of a vessel body, lugs, sealing device, feed inlet, motor support protective shell, geared motor, stirring shaft, first rotating support rod, stirring rod, second rotating support rod, stirring blade, bottom arc-shaped scraper, vessel cover, first flange, gasket, second flange, bolts, and side wall scraper, and the discharge port 6, have been disclosed in a reaction vessel for silicone production disclosed in Chinese Patent Application No. 202020370040.6. Its working principle is as follows: silicone raw material is first fed into the vessel through the feed inlet. The geared motor drives the stirring shaft, first rotating support rod, second rotating support rod, side wall scraper, stirring blade, and bottom arc-shaped scraper to rotate, thus stirring the silicone raw material. The bottom arc-shaped scraper can then stir the silicone raw material. The silicone raw material or semi-finished product adhering to the bottom is scraped off to prevent it from accumulating at the bottom and being unable to mix and react with other raw materials. The side wall scraper scrapes off the raw material adhering to the side of the vessel. The inclined design of the side wall scraper allows the scraped raw material to be better mixed with other raw materials. The raw material is thoroughly stirred by multiple stirring blades, allowing the various raw materials to fully mix and react. The vessel lid and vessel body are connected by a first flange, a second flange, and a gasket, which facilitates the installation and maintenance of this device while ensuring its airtightness. The lugs installed on the top of the vessel body facilitate the hoisting and transportation of this device. Multiple metal supports fixedly installed at the bottom of the vessel body provide more stable support for this device, ensuring safety when it is in operation.

[0041] The structure and principle of the germicidal lamp 43, which consists of a quartz lamp tube, lamp holder, pins, lamp core, placement glass tube, positioning quartz beads, and solid mercury particles, are disclosed in Chinese Patent Application No. 201922062430.7. Its working principle involves pre-reserving a section of placement glass tube at the lamp holder's sealing position, placing the required solid mercury particles inside the placement glass tube, and simultaneously placing positioning quartz beads at the front end of the solid mercury particles to prevent leakage, thereby achieving stable fixation of the solid mercury particles. The purpose of the parameters is as follows: During production and processing, solid mercury particles are first placed into the storage glass tube, and then positioning quartz beads are fixed to the opening of the storage glass tube by heat fusion. Subsequently, the storage glass tube containing the positioning quartz beads and solid mercury particles is connected to one end of the quartz lamp tube. Finally, after the quartz lamp tube is processed, the excess tail material is pulled off to obtain the finished product. This structure can fix the solid mercury particles at the end of the quartz lamp tube, firstly avoiding the environmental hazards of liquid mercury, and secondly ensuring that the mercury vapor pressure inside the tube is always at the optimal value. The finished product has strong practicality.

[0042] The working principle and usage process of this utility model are as follows: When the production of medical silicone requires the use of a reaction vessel, the operator opens two first valves 3, and feeds the raw material into the moving frame 441 inside the crushing component 44 of the two sterilization and crushing devices 4 through two feed pipes 2. Then, the two first valves 3 are closed, and the two motors 444 are started, thereby driving the crushing blades 443 to rotate and crush the raw material. Next, the electric telescopic rods 45 on the two fixed cylinders 41 are activated, thereby moving the two moving frames 441 and other structures into the reactor body assembly 1. The raw material passes through two filter screens 442 and falls into the reactor body assembly 1. Then, the two electric telescopic rods 45 are manipulated to move the two moving frames 441 and other structures back to their original positions, and the reactor body assembly 1 is manipulated to process the raw material. Finally, the discharge port 6 is opened to discharge the medical silicone. Once discharged, the work is completed. When needed, the staff can activate the germicidal lamp 43 inside the quartz glass shell 42 to sterilize the inside of the vessel assembly 1. The staff can adjust the position of the germicidal lamp 43 through the electric telescopic rod 45. The support leg 5 provides support. When the medical silicone is about to be discharged from the discharge port 6, the staff can unscrew the threaded block 76 in the temporary storage device 7 in advance, so that the silicone discharged from the discharge port 6 falls into the storage box 75. Then, the threaded block 76 is installed back through the thread to temporarily store the silicone. The staff can activate each heating rod 74 to heat the silicone to prevent it from solidifying. In addition, the staff can open the second valve 73 when needed to discharge the silicone through the discharge pipe 72. The insulation cotton 71 reduces heat loss.

[0043] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A reactor for producing medical silicone, comprising a reactor body assembly (1), wherein feed pipes (2) are provided on both sides of the reactor body assembly (1), a first valve (3) is fixedly installed near the center of the feed pipes (2), a discharge port (6) is fixedly installed below the reactor body assembly (1), and a plurality of support legs (5) are fixedly installed below the reactor body assembly (1) and outside the discharge port (6), characterized in that: The vessel body assembly (1) is connected to the two feed pipes (2) by two sterilization and crushing devices (4), and a temporary storage device (7) is provided below the discharge port (6); The sterilization and crushing device (4) includes a fixed cylinder (41). The vessel body assembly (1) and the two feed pipes (2) are connected by two fixed cylinders (41). An electric telescopic rod (45) is fixedly installed on the side of the fixed cylinder (41) away from the vessel body assembly (1) near the edge. A quartz glass shell (42) is provided on the inner side of the fixed cylinder (41). A sterilization lamp (43) is fixedly installed on the inner side of the quartz glass shell (42). The electric telescopic rod (45) and the quartz glass shell (42) are connected by a crushing assembly (44).

2. The reaction vessel for producing medical-grade silicone according to claim 1, characterized in that: The crushing assembly (44) includes a movable frame (441). The electric telescopic rod (45) is connected to the quartz glass shell (42) through the movable frame (441). A motor (444) is fixedly installed on one side of the movable frame (441) and above the electric telescopic rod (45). Multiple crushing blades (443) are fixedly installed on the outer side of the output end of the motor (444) and inside the movable frame (441).

3. A reaction vessel for producing medical-grade silicone according to claim 2, characterized in that: The height of the inner top and bottom surfaces of the fixed cylinder (41) is equal to the height of the outer top and bottom surfaces of the movable frame (441).

4. A reaction vessel for producing medical-grade silicone according to claim 2, characterized in that: A filter screen (442) is fixedly installed on the inner side of the movable frame (441) and below the plurality of breaking blades (443).

5. A reaction vessel for producing medical-grade silicone according to claim 1, characterized in that: The temporary storage device (7) includes a storage box (75), which is fixedly installed below the plurality of legs (5). A threaded block (76) is threadedly installed on the top of the storage box (75) and below the discharge port (6). A discharge pipe (72) is fixedly installed on one side of the storage box (75), and a second valve (73) is fixedly installed near the center of the discharge pipe (72).

6. A reaction vessel for producing medical-grade silicone according to claim 5, characterized in that: Multiple heating rods (74) are fixedly installed on the inside of the storage box (75).

7. A reaction vessel for producing medical-grade silicone according to claim 6, characterized in that: Insulation cotton (71) is fixedly installed in the side wall of the storage box (75).

Citation Information

Patent Citations

  • Germicidal lamp structure with external solid mercury

    CN210956597U

  • Reaction kettle for silica gel production

    CN211865024U