Efficient cleaning device for reaction kettle prepared based on ethylhexylglycerin

By designing a positioning plate and cleaning components on the reactor, and combining them with a motor-driven cleaning roller brush to achieve horizontal and vertical cleaning, the problem of limited cleaning area in the existing technology is solved, and the cleaning efficiency and effect of the reactor are improved.

CN223761008UActive Publication Date: 2026-01-06铜陵妆点科技有限公司
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Patent Information

Application Number
CN202520275626.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-20
Publication Date
2026-01-06
Estimated Expiration
2035-02-20

AI Technical Summary

Technical Problem

Existing reactor cleaning devices can only perform horizontal circumferential cleaning of the inner wall of the reactor, which limits the cleaning area and has a limited effect, thus affecting cleaning efficiency.

Method used

A high-efficiency cleaning device including a positioning plate, a cleaning component, and a reciprocating component was designed. The cleaning roller brush driven by a motor achieves cleaning in a combination of horizontal and vertical directions, and can be adapted to the size of the reactor for cleaning.

Benefits of technology

It achieves comprehensive cleaning of the inner and outer walls of the reactor, improving cleaning efficiency and effectiveness, and adapting to the cleaning needs of different reactor types.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of ethylhexylglycerin preparation, in particular to an efficient reaction kettle cleaning device based on ethylhexylglycerin preparation, which comprises a positioning disc, a stand column is fixedly mounted at one end, close to the center of the top surface of the positioning disc, of the positioning disc, and the top of the stand column is sleeved with a top cylinder; a first spring damping shock absorption ring is jointly arranged between the inner wall of the top of the top cylinder and the top face of the stand column, a tray is fixedly installed on the top face of the top cylinder, a first motor is arranged at the center of the top of the tray, a cleaning assembly is arranged at the top of the first motor, and a reciprocating assembly is arranged at the position, adjacent to the stand column, of the top face of the positioning disc. The extension long plate is fixedly mounted at the top output end of the first motor, a sliding groove is formed in the extension long plate, and a sliding frame is slidably connected to the end, away from the first motor, in the sliding groove; the reaction kettle cleaning device not only can carry out adaptive cleaning according to the size of a reaction kettle, but also can realize a transverse and longitudinal combined cleaning effect on the inner wall and the outer wall of the reaction kettle, so that the cleaning efficiency of the reaction kettle is effectively improved.
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Description

Technical Field

[0001] This utility model relates to the field of ethylhexylglycerin preparation technology, specifically to a high-efficiency cleaning device for reaction vessels based on ethylhexylglycerin preparation. Background Technology

[0002] In a broad sense, a vessel is a container that undergoes physical or chemical reactions. Through structural design and parameter configuration of the vessel, the heating, evaporation, cooling, and low-to-high-speed mixing functions required by the process can be achieved.

[0003] Ethylhexylglycerol is a liquid, and its reaction raw materials are also all liquid. As a common chemical substance, it is usually prepared in a reaction vessel. After ethylhexylglycerol is prepared inside the reaction vessel, the reaction vessel is prone to retain ethylhexylglycerol reactants, etc., which need to be thoroughly cleaned for subsequent use.

[0004] Conventional cleaning devices can only perform horizontal circumferential scraping cleaning of the inner wall of the reactor. The cleaning method is limited, which not only leads to a limited cleaning area but also results in mediocre cleaning effect, thus affecting the cleaning efficiency of the reactor.

[0005] To address this technical deficiency, a solution is proposed. Utility Model Content

[0006] The purpose of this invention is not only to provide adaptive cleaning based on the size of the reactor, but also to achieve a combined horizontal and vertical cleaning effect on the inner and outer walls of the reactor, thereby effectively improving the cleaning efficiency of the reactor.

[0007] The purpose of this utility model can be achieved through the following technical solution: a high-efficiency cleaning device for a reaction vessel prepared based on ethylhexylglycerin, including a positioning plate, a column fixedly installed near one end of the top center of the positioning plate, and a top cylinder sleeved on the top of the column, a spring damping shock absorber ring being provided between the inner wall of the top of the top cylinder and the top surface of the column, and a tray fixedly installed on the top surface of the top cylinder, a motor being provided at the top center of the tray, and a cleaning component being provided on the top of the motor, and a reciprocating component being provided on the top surface of the positioning plate adjacent to the column;

[0008] The cleaning component includes an extension plate, which is fixedly installed at the top output end of the motor.

[0009] Furthermore, a sliding groove is provided inside the extended plate, and a sliding frame is slidably connected to the end of the sliding groove away from the motor. A spring damping shock absorber ring is provided between one side wall of the sliding frame and one side inner wall of the sliding groove.

[0010] Furthermore, the inner center of the sliding frame is slidably connected to inverted convex sliding shafts near both ends. The two sets of inverted convex sliding shafts are fixedly connected to the side away from each other and to the corresponding inner sidewall of the sliding frame by a spring damping shock absorber ring three. The two sets of inverted convex sliding shafts are rotatably connected to a cleaning roller brush through a fixedly installed rotating shaft.

[0011] Furthermore, the reciprocating assembly includes a second motor, which is fixedly installed on the top surface of the positioning plate adjacent to the column, and a stop cylinder is fixedly installed on the top output shaft of the second motor.

[0012] Furthermore, the top surface of the abutment cylinder is beveled, and one side border of the top surface of the abutment cylinder is located at the bottom of the tray.

[0013] Compared with the prior art, the beneficial effects of this utility model are:

[0014] 1. This utility model includes a motor and a cleaning component. An extended plate is placed horizontally on the top of the reactor, with one end extending to the outside of the reactor. A sliding frame is then moved to the side of the reactor. Two sets of cleaning rollers are clamped together on the inner and outer walls of one side of the reactor. The two sets of cleaning rollers are also adjusted according to the thickness of the reactor. The motor is started to drive the extended plate to rotate, which pulls the two sets of cleaning rollers to rotate synchronously. The two rollers scrape away debris along the inner and outer walls of the reactor. This structure can adjust the cleaning components according to the size of the reactor and perform horizontal cleaning of the inner and outer walls of the reactor.

[0015] 2. This utility model, by setting up a reciprocating component, cooperates with the cleaning component. The motor drives the cylinder to rotate. When the end with the higher cross-section of the top of the cylinder rotates to the bottom of the tray, the bottom of the tray is pushed upward by the resistance, and the two sets of cleaning rollers are lifted. When the end with the lower cross-section of the top of the cylinder rotates to the bottom of the tray, the bottom of the tray is pushed downward by the resistance, and the two sets of cleaning rollers are lowered. This process is repeated, which forces the two sets of cleaning rollers to perform longitudinal circumferential scraping and cleaning along the inner and outer walls of the reactor, thereby further enhancing the cleaning power of the cleaning rollers. Attached Figure Description

[0016] To facilitate understanding by those skilled in the art, the present invention will be further described below with reference to the accompanying drawings.

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0018] Figure 2 This is a planar sectional view of the combination of the column, top cylinder, tray and motor of this utility model;

[0019] Figure 3 This is a plan view of the overall structure of this utility model;

[0020] Figure 4This is a top view of the cleaning component of this utility model combined with the reaction vessel.

[0021] In the diagram: 1. Positioning plate; 2. Column; 3. Top cylinder; 4. Spring damping shock absorber ring one; 5. Tray; 6. Motor one; 7. Cleaning assembly; 71. Extension plate; 72. Slide groove; 73. Slide frame; 74. Spring damping shock absorber ring two; 75. Inverted convex slide shaft; 76. Spring damping shock absorber ring three; 77. Cleaning roller brush; 8. Reciprocating assembly; 81. Motor two; 82. Backing cylinder. Detailed Implementation

[0022] The technical solution of this utility model will be clearly and completely described below with reference to the embodiments. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0023] Example 1: Please refer to Figure 1 - Figure 4 As shown, the high-efficiency cleaning device for the reactor based on ethylhexylglycerin includes a positioning disk 1. A column 2 is fixedly installed near one end of the top center of the positioning disk 1, and a top cylinder 3 is sleeved on the top of the column 2. A spring damping shock absorber ring 4 is provided between the inner wall of the top of the top of the top cylinder 3 and the top surface of the column 2. A tray 5 is fixedly installed on the top surface of the top cylinder 3. A motor 6 is provided at the top center of the tray 5, and a cleaning component 7 is provided on the top of the motor 6. A reciprocating component 8 is provided on the top surface of the positioning disk 1 adjacent to the column 2.

[0024] The cleaning component 7 includes an extension plate 71, which is fixedly installed at the top output end of the motor 6. The extension plate 71 has a groove 72 inside, and a sliding frame 73 is slidably connected to the end of the groove 72 away from the motor 6. A spring damping shock absorber ring 74 is provided between one side wall of the sliding frame 73 and one side inner wall of the groove 72. An inverted convex sliding shaft 75 is slidably connected to the center of the sliding frame 73 near both ends. A spring damping shock absorber ring 76 is fixedly connected between the side of the two inverted convex sliding shafts 75 away from each other and the inner side wall of the corresponding sliding frame 73. The two inverted convex sliding shafts 75 are rotatably connected to a cleaning roller brush 77 through a fixedly installed rotating shaft.

[0025] After the reaction vessel completes the preparation of ethylhexylglycerin, the reaction vessel lid 2 is removed, and the positioning plate 1 is placed at the center of the inner wall of the bottom of the reaction vessel. The extension plate 71 is placed horizontally at the top opening of the reaction vessel, with one end of the extension plate 71 extending to the outside of the reaction vessel. Then, according to the position of the reaction vessel frame, the sliding frame 73 slides along the inside of the sliding groove 72, and the spring damping shock absorber ring 74 is compressed until the sliding frame 73 moves to the reaction vessel frame. The two sets of cleaning roller brushes 77 are adapted to be clamped on the inner and outer walls of one side of the reaction vessel frame. The two sets of cleaning roller brushes 77 are also adjusted according to the thickness of the reaction vessel, and the spring damping shock absorber ring 76 is compressed. Then, the motor 6 is started to drive the extension plate 71 to rotate, which pulls the two sets of cleaning roller brushes 77 to rotate synchronously. The two brushes scrape away debris along the inner and outer walls of the reaction vessel to achieve the cleaning effect of the reaction vessel.

[0026] Example 2: Please refer to Figure 2 , Figure 3 As shown, the reciprocating assembly 8 includes a second motor 81, which is fixedly installed on the top surface of the positioning plate 1 adjacent to the column 2. The top output shaft of the second motor 81 is fixedly installed with a stop cylinder 82. The top surface of the stop cylinder 82 is set with a beveled surface, and one side frame of the top surface of the stop cylinder 82 is located at the bottom of the tray 5.

[0027] After the cleaning roller brush 77 performs transverse circumferential cleaning on the inner and outer walls of the reactor, the motor 81 is started, which drives the abutment cylinder 82 to rotate. When the higher end of the top section of the abutment cylinder 82 rotates to the bottom of the tray 5, the bottom of the tray 5 is pushed upward by the motor 6, the extension plate 71, and the two sets of cleaning roller brushes 77. When the lower end of the top section of the abutment cylinder 82 rotates to the bottom of the tray 5, the bottom of the tray 5 is pushed downward by the motor 6, the extension plate 71, and the two sets of cleaning roller brushes 77. This process is repeated, forcing the two sets of cleaning roller brushes 77 to perform longitudinal circumferential scraping cleaning along the inner and outer walls of the reactor, thereby further enhancing the cleaning power of the cleaning roller brush 77.

[0028] Working principle: After the reaction vessel completes the preparation of p-ethylhexylglycerin, the reaction vessel cover 2 is removed, and the positioning plate 1 is placed at the center of the inner wall of the bottom of the reaction vessel. The extension plate 71 is placed horizontally at the top opening of the reaction vessel, with one end of the extension plate 71 extending to the outside of the reaction vessel. Then, according to the position of the reaction vessel frame, the sliding frame 73 slides along the inside of the sliding groove 72, and the spring damping shock absorber ring 74 is compressed until the sliding frame 73 moves to the reaction vessel frame. The two sets of cleaning roller brushes 77 are adapted to be clamped on the inner and outer walls of one side of the reaction vessel frame. The two sets of cleaning roller brushes 77 are also adjusted according to the thickness of the reaction vessel, and the spring damping shock absorber ring 76 is compressed. Then, the motor 6 is started to drive the extension plate 71 to rotate, which pulls the two sets of cleaning roller brushes 77 to rotate synchronously, and the two brushes scrape away the debris along the inner and outer walls of the reaction vessel respectively.

[0029] Next, motor 81 is started, which drives the cylinder 82 to rotate. When the higher end of the top section of the cylinder 82 rotates to the bottom of the tray 5, the bottom of the tray 5 is pushed upward by the motor 6, the extension plate 71 and the two sets of cleaning roller brushes 77. When the lower end of the top section of the cylinder 82 rotates to the bottom of the tray 5, the bottom of the tray 5 is pushed downward by the motor 6, the extension plate 71 and the two sets of cleaning roller brushes 77. This process is repeated, which forces the two sets of cleaning roller brushes 77 to perform longitudinal circumferential scraping and cleaning along the inner and outer walls of the reactor, thereby further enhancing the cleaning power of the cleaning roller brushes 77.

[0030] 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 any specific implementation. 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. The reaction kettle high-efficiency cleaning device prepared on the basis of ethyl hexyl glycerol, characterized in that: Including positioning disc (1), positioning disc (1) top surface center near one end fixed installation has stand column (2), and stand column (2) top sleeve joint has top cylinder (3), the top cylinder (3) top inner wall and stand column (2) top surface between jointly provided with spring damping shock absorbing ring one (4), and top cylinder (3) top surface fixed installation has tray (5), tray (5) top center is provided with motor one (6), and motor one (6) top is provided with cleaning assembly (7), positioning disc (1) top surface is located in stand column (2) adjacent place is provided with reciprocating assembly (8); Wherein, the cleaning assembly (7) includes extension long board (71), and extension long board (71) is fixedly installed on the top output end of motor one (6).

2. The reactor high-efficiency cleaning device based on ethyl hexyl glycerol preparation according to claim 1, characterized in that, The extension long board (71) is internally provided with a sliding slot (72), and the sliding slot (72) is internally and away from one end of the motor one (6) slidingly connected with a sliding frame (73), the sliding frame (73) one side wall and the sliding slot (72) one side inner wall jointly provided with spring damping shock absorbing ring two (74).

3. The reactor high-efficiency cleaning device based on ethyl hexyl glycerol preparation according to claim 2, characterized in that, The sliding frame (73) is internally and center near both ends respectively slidingly connected with inverted convex slide shaft (75), two groups of inverted convex slide shaft (75) are away from the side of the other party and are fixedly connected with spring damping shock absorbing ring three (76) between the corresponding sliding frame (73) inner side wall, two groups of inverted convex slide shaft (75) are rotatably connected with cleaning roller brush (77) through the fixedly installed rotating shaft.

4. The reactor high-efficiency cleaning device based on ethyl hexyl glycerol preparation according to claim 1, characterized in that, The reciprocating assembly (8) includes motor two (81), the motor two (81) is fixedly installed on the top surface of the positioning disc (1) located in the stand column (2) adjacent place, and the motor two (81) top output shaft is fixedly installed with the resistance cylinder (82).

5. The reactor high-efficiency cleaning device based on ethyl hexyl glycerol preparation according to claim 4, characterized in that, The top surface of the resistance cylinder (82) is obliquely cut, and one side frame of the top surface of the resistance cylinder (82) is located at the bottom of the tray (5).