A reaction kettle stirring device for hesperetin production

CN224712048UActive Publication Date: 2026-09-04SICHUAN BENEPURE PHARM CO LTD
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Patent Information

Application Number
CN202521834462.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-27
Publication Date
2026-09-04
Estimated Expiration
2035-08-27

AI Technical Summary

Technical Problem

[0003]本实用新型的目的在于提供一种橙皮素生产用反应釜搅拌装置,通过混合机构和调节机构,解决了对于不同类型的橙皮素原料所实施的搅拌强度不高且不够全面,难以确保橙皮素原料间混合的足够充分,原料间仍然可能会因混合不足而影响最终成品橙皮素的品质,可靠性不佳的问题

Benefits of technology

1、本实用新型通过设置了斜齿轮,启动第一电机,第一电机会带动传动杆转动,传动杆会带动斜齿轮与搅拌架一并转动,搅拌架二会对反应釜内位于上层的橙皮素原料进行搅拌,期间斜齿轮会带动斜齿轮二转动,斜齿轮二会带动斜齿轮三转动,斜齿轮三会带动套杆转动,套杆会带动搅拌架二转动以对下层的橙皮素原料进行搅拌,达到了可以对反应釜内不同类型的橙皮素原料进行高效且全面的搅拌,以确保橙皮素原料间混合的足够充分,防止原料间混合不足而影响最终成品橙皮素的品质。

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Abstract

The utility model discloses a kind of reaction kettle stirring devices for hesperetin production, it is related to hesperetin production technical field, the utility model includes base, the top outer wall of base is fixedly connected with several sliding frames, the outer wall of several The sliding frame is provided with mixing mechanism, the utility model is provided with bevel gear by setting, transmission rod will drive bevel gear and stirring frame rotate simultaneously, stirring frame two will be stirred to hesperetin raw materials located in upper layer in reaction kettle, during bevel gear will drive bevel gear two rotation, bevel gear two will drive bevel gear three rotation, bevel gear three will drive sleeve rod rotation, sleeve rod will drive stirring frame two rotation to be stirred to hesperetin raw materials of lower layer, reach the different types of hesperetin raw materials in reaction kettle can be efficiently and comprehensively stirred, to ensure that hesperetin raw materials are mixed enough, prevent raw materials and affect the quality of final product hesperetin raw materials and mix insufficiently.
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Description

Technical Field

[0001] This utility model belongs to the field of hesperidin production technology, and in particular relates to a stirring device for a reaction vessel used in hesperidin production. Background Technology

[0002] Hesperetin is a naturally occurring flavonoid compound widely found in the peel, pulp, and juice of citrus fruits (such as oranges, tangerines, grapefruits, and lemons), especially abundant in orange peel. It is the aglycone form of hesperidin, specifically the aglycone formed after the hydrolysis of hesperidin to remove the sugar moiety. The stirring device for the reactor used in hesperidin production is a device specifically designed for use in the hesperidin production process. It is mainly installed on the reactor and is used to stir and mix the materials inside the reactor, so that the hesperidin raw materials are mixed to promote sufficient reaction between the raw materials and meet the requirements of the hesperidin production process. The aforementioned equipment has the drawbacks of insufficient and inadequate stirring intensity for different types of hesperidin raw materials, making it difficult to ensure sufficient mixing between the raw materials. Insufficient mixing may still affect the quality of the final hesperidin product, resulting in poor reliability. Therefore, we propose a stirring device for a reactor used in hesperidin production. Utility Model Content

[0003] The purpose of this invention is to provide a stirring device for a reactor used in the production of hesperidin. Through the mixing mechanism and the adjustment mechanism, it solves the problem that the stirring intensity is not high and not comprehensive enough for different types of hesperidin raw materials, making it difficult to ensure that the mixing between the raw materials is sufficient. The raw materials may still be affected by insufficient mixing, which may affect the quality and reliability of the final product hesperidin.

[0004] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution: This utility model is a stirring device for a reaction vessel for hesperidin production, including a base, a plurality of sliding frames are fixedly connected to the top outer wall of the base, and a mixing mechanism is provided on the outer wall of the plurality of sliding frames. The mixing mechanism includes a reaction vessel. A motor frame is fixedly connected to the top outer wall of the reaction vessel. A first motor is fixedly connected to the inner wall of the motor frame. A transmission rod is fixedly connected to the bottom output shaft of the first motor via a coupling. A helical gear is fixedly connected to the outer wall of the transmission rod. A stirring frame is fixedly connected to the bottom outer wall of the transmission rod. A gear frame is fixedly connected to the top outer wall of the base. A second helical gear is rotatably connected to the inner wall of the gear frame. The outer wall of the second helical gear meshes with the outer wall of the first helical gear. A sleeve is rotatably connected to the inner wall of the reaction vessel. A third helical gear is fixedly connected to the outer wall of the sleeve. The outer wall of the third helical gear meshes with the outer wall of the second helical gear. A second stirring frame is fixedly connected to the outer wall of the sleeve. A valve pipe is fixedly connected to the bottom outer wall of the reaction vessel. A water-blocking ball is rotatably connected to the inner wall of the valve pipe. A knob is fixedly connected to the outer wall of the water-blocking ball.

[0005] Furthermore, the outer wall of the base is provided with an adjustment mechanism, which includes a second motor frame, the outer wall of which is fixedly connected to the outer wall of the base.

[0006] Furthermore, a second motor is fixedly connected to the inner wall of the second motor frame, and a threaded rod is fixedly connected to the bottom output shaft of the second motor via a coupling.

[0007] Furthermore, the outer wall of the threaded rod is rotatably connected to several threaded rod limiting blocks, and the outer walls of the several threaded rod limiting blocks are fixedly connected to the outer wall of the base.

[0008] Furthermore, a displacement block is connected to the outer wall of the threaded rod, and a slide rail plate is fixedly connected to the outer wall of the displacement block.

[0009] Furthermore, the inner wall of the slide rail plate is provided with several sliding grooves, and the inner wall of the base is provided with several limiting sliding grooves.

[0010] Furthermore, the inner walls of several of the limiting grooves are slidably connected to the outer wall of the slide rail plate, and lifting blocks are slidably connected to the inner walls of several of the grooves.

[0011] Furthermore, a placement plate is fixedly connected to the outer wall of the lifting block, and lifting grooves are provided on the inner wall of the sliding frame. The inner wall of the lifting groove is slidably connected to the outer wall of the placement plate.

[0012] This utility model has the following beneficial effects: 1. This utility model incorporates a helical gear. When the first motor is started, it drives the transmission rod to rotate, which in turn drives the helical gear and the stirring frame to rotate together. The stirring frame then stirs the hesperidin raw material in the upper layer of the reactor. During this process, the helical gear drives the second helical gear to rotate, which in turn drives the third helical gear to rotate. The third helical gear then drives the sleeve rod to rotate, which in turn drives the second stirring frame to rotate and stir the hesperidin raw material in the lower layer. This achieves efficient and comprehensive stirring of different types of hesperidin raw materials in the reactor, ensuring sufficient mixing between the raw materials and preventing insufficient mixing from affecting the quality of the final hesperidin product.

[0013] 2. This utility model incorporates a placement plate. If the placement height needs to be adjusted according to the size of different containers, the second motor can be started and rotated clockwise. The second motor will drive the threaded rod to rotate, which will cause the displacement block to move towards the threaded rod limit block. The displacement block will then drive the slide rail plate to move, which in turn will cause the lifting block to move downward. The lifting block will then cause the placement plate to move downward to increase the distance between it and the valve pipe, allowing for the placement of larger containers. This achieves the goal of adjusting the placement height according to the size of the receiving container when the mixed hesperidin raw material needs to be removed, thus preventing the hesperidin raw material from easily splashing out during the flow into the container.

[0014] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0015] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a cross-sectional view of the reactor structure of this utility model; Figure 3 This utility model Figure 2 Enlarged view of point A in the middle; Figure 4 This is a schematic diagram of the lifting block structure of this utility model; Figure 5 This is a schematic diagram of the adjustment mechanism of this utility model.

[0017] The attached diagram lists the components represented by each number as follows: 1. Base; 101. Sliding frame; 2. Mixing mechanism; 201. Reactor; 202. Motor frame; 203. First motor; 204. Transmission rod; 205. Helical gear; 206. Stirring frame; 207. Gear frame; 208. Helical gear II; 209. Sleeve rod; 210. Helical gear III; 211. Stirring frame II; 212. Valve pipe; 213. Water-blocking ball; 214. Knob; 3. Adjustment mechanism; 301. Motor frame II; 302. Second motor; 303. Threaded rod; 304. Threaded rod limiting block; 305. Displacement block; 306. Slide rail plate; 307. Slide groove; 308. Limiting slide groove; 309. Lifting block; 310. Placement plate; 311. Lifting groove. Detailed Implementation

[0018] 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 skilled in the art without creative effort are within the protection scope of the present utility model.

[0019] Please see Figure 1-5 As shown, this utility model is a stirring device for a reactor used in the production of hesperidin, including a base 1. The feature is that: a number of sliding frames 101 are fixedly connected to the top outer wall of the base 1. The base 1 mainly plays the role of fixing and limiting the sliding frames 101. The sliding frames 101 can only be fixed in the position on the base 1. A mixing mechanism 2 is provided on the outer wall of the sliding frames 101. The mixing mechanism 2 includes a reaction vessel 201. A motor frame 202 is fixedly connected to the top outer wall of the reaction vessel 201. A first motor 203 is fixedly connected to the inner wall of the motor frame 202. The motor frame 202 mainly serves to fix and limit the first motor 203, which can only be fixed in the position within the motor frame 202. The bottom output shaft of the first motor 203 is fixedly connected to a transmission rod 204 via a coupling. A helical gear 205 is fixedly connected to the outer wall of the transmission rod 204. A stirring rack 206 is fixedly connected to the bottom outer wall of the transmission rod 204. The first motor 203 mainly provides kinetic energy to the transmission rod 204. When the first motor 203 starts, it drives the transmission rod 204 to rotate simultaneously. A gear frame 207 is fixedly connected to the top outer wall of the base 1. A second helical gear 208 is rotatably connected to the inner wall of the gear frame 207. The outer wall of the second helical gear 208 is connected to the outer wall of the helical gear 205. The inner wall of the reactor 201 is rotatably connected to a sleeve 209, which mainly serves to limit the rotation of the sleeve 209. The sleeve 209 can only rotate in a fixed position within the reactor 201. The outer wall of the sleeve 209 is fixedly connected to a helical gear 3 210, which meshes with the outer wall of the helical gear 208. The outer wall of the sleeve 209 is fixedly connected to a stirring frame 211, which mainly serves to limit the rotation of the stirring frame 211. When the sleeve 209 rotates, it will drive the stirring frame 211 to rotate as well. The bottom outer wall of the reactor 201 is fixedly connected to a valve pipe 212, and the inner wall of the valve pipe 212 is rotatably connected to a water-blocking ball 213. The outer wall of the water-blocking ball 213 is fixedly connected to a knob 214. The shape of the knob 214 is designed so that the user can easily hold it and rotate it. When the knob 214 rotates, it will drive the water-blocking ball 213 to rotate as well.

[0020] An adjustment mechanism 3 is provided on the outer wall of the base 1. The adjustment mechanism 3 includes a second motor frame 301. The outer wall of the second motor frame 301 is fixedly connected to the outer wall of the base 1. The base 1 mainly serves to fix and limit the second motor frame 301. The second motor frame 301 can only be fixed in the position on the base 1. A second motor 302 is fixedly connected to the inner wall of the second motor frame 301. The bottom output shaft of the second motor 302 is fixedly connected to a threaded rod 303 through a coupling. The second motor 302 mainly provides kinetic energy to the threaded rod 303. When the second motor 302 starts, it will drive the threaded rod 303 to rotate together. Several threaded rod limiting blocks 304 are rotatably connected to the outer wall of the threaded rod 303. The outer walls of the several threaded rod limiting blocks 304 are fixedly connected to the outer wall of the base 1. The several threaded rod limiting blocks 304 mainly serve to limit the rotation of the threaded rod 303. The threaded rod 303 can only rotate in the fixed position within the several threaded rod limiting blocks 304.

[0021] The outer wall of the threaded rod 303 is connected to a displacement block 305. The outer wall of the displacement block 305 is fixedly connected to a slide rail plate 306. The inner wall of the slide rail plate 306 is provided with several sliding grooves 307. The inner wall of the base 1 is provided with several limiting sliding grooves 308. The slide rail plate 306 mainly serves to fix and limit the displacement block 305. When the displacement block 305 moves, it will drive the slide rail plate 306 to move together. The inner walls of the several limiting sliding grooves 308 are slidably connected to the outer wall of the slide rail plate 306. The inner walls of the several sliding grooves 307 are slidably connected to a lifting block 309. The outer wall of the lifting block 309 is fixedly connected to a placement plate 310. The lifting block 309 mainly serves to fix and limit the placement plate 310. When the lifting block 309 moves, it will drive the placement plate 310 to move together. The inner wall of the sliding frame 101 is provided with a lifting groove 311. The inner wall of the lifting groove 311 is slidably connected to the outer wall of the placement plate 310.

[0022] One specific application of this embodiment is: When the equipment is needed, different hesperidin raw materials can be poured directly into the reactor 201 through the inlet. Then, the first motor 203 is started. The first motor 203 drives the transmission rod 204 to rotate, which in turn drives the helical gear 205 and the stirring rack 206 to rotate together. The second stirring rack 211 stirs the hesperidin raw material in the upper layer of the reactor 201. During this process, the helical gear 205 drives the second helical gear 208 to rotate, which in turn drives the third helical gear 210 to rotate. The third helical gear 210 drives the sleeve rod 209 to rotate, which in turn drives the second stirring rack 211 to rotate and stir the lower layer of hesperidin raw material. The second stirring rack 211 and the stirring rack 206 work together to thoroughly mix the hesperidin raw material in the reactor 201 for reaction. If it is necessary to remove the mixture... After the hesperidin raw material is combined, the container can be placed on the top surface of the placement plate 310 and positioned directly below the valve pipe 212. Then, turn the knob 214 forty-five degrees. The knob 214 will drive the water-blocking ball 213 to rotate. After the water-blocking ball 213 rotates forty-five degrees, the hesperidin raw material in the reactor 201 will flow into the container through the holes inside the water-blocking ball 213. If it is necessary to adjust the placement height according to the size of different containers, the second motor 302 can be started and rotated clockwise. The second motor 302 will drive the threaded rod 303 to rotate. The threaded rod 303 will drive the displacement block 305 to move towards the threaded rod limit block 304. The displacement block 305 will drive the slide rail plate 306 to move. The slide rail plate 306 will drive the lifting block 309 to move downward. The lifting block 309 will drive the placement plate 310 to move downward to increase the distance between it and the valve pipe 212 to accommodate larger containers.

[0023] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0024] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.

Claims

1. A stirring device for a reaction vessel used in hesperidin production, comprising a base (1), characterized in that: The top outer wall of the base (1) is fixedly connected to a plurality of sliding frames (101), and the outer walls of the plurality of sliding frames (101) are provided with a mixing mechanism (2). The mixing mechanism (2) includes a reactor (201), a motor frame (202) is fixedly connected to the top outer wall of the reactor (201), a first motor (203) is fixedly connected to the inner wall of the motor frame (202), a transmission rod (204) is fixedly connected to the bottom output shaft of the first motor (203) via a coupling, a helical gear (205) is fixedly connected to the outer wall of the transmission rod (204), a stirring rack (206) is fixedly connected to the bottom outer wall of the transmission rod (204), a gear frame (207) is fixedly connected to the top outer wall of the base (1), and a helical gear (208) is rotatably connected to the inner wall of the gear frame (207). The outer wall of the second helical gear (208) meshes with the outer wall of the helical gear (205). The inner wall of the reactor (201) is rotatably connected to a sleeve rod (209). The outer wall of the sleeve rod (209) is fixedly connected to a third helical gear (210). The outer wall of the third helical gear (210) meshes with the outer wall of the second helical gear (208). The outer wall of the sleeve rod (209) is fixedly connected to a second stirring rack (211). The bottom outer wall of the reactor (201) is fixedly connected to a valve pipe (212). The inner wall of the valve pipe (212) is rotatably connected to a water-blocking ball (213). The outer wall of the water-blocking ball (213) is fixedly connected to a knob (214).

2. The stirring device for a reaction vessel used in hesperidin production according to claim 1, characterized in that, The outer wall of the base (1) is provided with an adjustment mechanism (3), the adjustment mechanism (3) includes a motor frame two (301), the outer wall of the motor frame two (301) is fixedly connected to the outer wall of the base (1).

3. The stirring device for a reaction vessel used in hesperidin production according to claim 2, characterized in that, The inner wall of the second motor frame (301) is fixedly connected to a second motor (302), and the bottom output shaft of the second motor (302) is fixedly connected to a threaded rod (303) via a coupling.

4. The stirring device for a reaction vessel used in hesperidin production according to claim 3, characterized in that, The outer wall of the threaded rod (303) is rotatably connected to several threaded rod limiting blocks (304), and the outer walls of the several threaded rod limiting blocks (304) are fixedly connected to the outer wall of the base (1).

5. The stirring device for a reaction vessel used in hesperidin production according to claim 4, characterized in that, The outer wall of the threaded rod (303) is connected to a displacement block (305), and the outer wall of the displacement block (305) is fixedly connected to a slide rail plate (306).

6. The stirring device for a reaction vessel used in hesperidin production according to claim 5, characterized in that, The inner wall of the slide rail plate (306) is provided with a number of slide grooves (307), and the inner wall of the base (1) is provided with a number of limiting slide grooves (308).

7. The stirring device for a reaction vessel used in hesperidin production according to claim 6, characterized in that, The inner walls of several limiting grooves (308) are slidably connected to the outer wall of the slide rail plate (306), and the inner walls of several grooves (307) are slidably connected to lifting blocks (309).

8. The stirring device for a reaction vessel used in hesperidin production according to claim 7, characterized in that, The outer wall of the lifting block (309) is fixedly connected to the placement plate (310), and the inner wall of the sliding frame (101) is provided with lifting grooves (311). The inner wall of the lifting groove (311) is slidably connected to the outer wall of the placement plate (310).