A wax water paste paste dipping mechanism

By combining the anti-settling mechanism and the vortex component, the problem of slurry forming a slurry layer on the inner wall and bottom of the cylinder is solved, achieving uniform mixing of the slurry and high-quality slurry coating effect.

CN224321306UActive Publication Date: 2026-06-05UNITED LASHING PRECISION CASTING

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
UNITED LASHING PRECISION CASTING
Filing Date
2025-06-05
Publication Date
2026-06-05

AI Technical Summary

Technical Problem

Existing mixing mechanisms tend to form a slurry layer on the inner wall and bottom of the cylinder, affecting the slurry coating effect.

Method used

The design employs a combination of anti-settling mechanism and vortex component, including side scraper, bidirectional bottom scraper and spiral component. The outer cylinder rotates to scrape off the slurry layer, and the vortex component is used to create turbulence to disrupt the directional flow of the slurry and ensure the uniformity of the slurry.

Benefits of technology

It effectively prevents the formation of a slurry layer on the inner wall and bottom, ensuring the uniformity of slurry quality and improving the quality of the finished product after the slurry application process.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224321306U_ABST
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Abstract

The utility model discloses a kind of paste making paste dipping mechanism, it is related to paste making equipment technical field, to solve the technical problem that current stirring mechanism is easily formed slurry layer in cylinder inner wall and bottom, influence paste dipping effect, including outer tube, inner tube, anti-sedimentation mechanism and vortex component, the bottom of the outer tube is fixed with base plate, and the outside annular array of outer tube is opened with heat dissipation opening, the bottom of the outer tube is equipped with base, and base is fixed on base plate, the upper end surface both sides of base plate are fixed with side rod, the inner top of outer tube is rotatably installed in inner tube, and the inner bottom of inner tube is rotatably installed on the upper end of base by guide rail, the anti-sedimentation mechanism is installed on the upper end of both sides side rod, the inner bottom of inner tube is installed with vortex component. The utility model has the advantages that scraping cylinder wall prevents slurry layer formation, ensures heating quality, and ensures paste dipping effect.
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Description

Technical Field

[0001] This utility model relates to the field of ointment making equipment technology, and more specifically, to a wax-based ointment making and coating mechanism. Background Technology

[0002] Traditional ointment-making equipment may include a stirring mechanism to mix the raw materials. Similarly, wax-based ointment-making and coating mechanisms may also have stirring paddles or other devices to thoroughly mix the wax and other ointment-making materials, facilitating subsequent ointment-making and coating processes. Furthermore, to ensure more even coating, auxiliary devices such as scrapers or brushes may be added. As the ointment-making cylinder rotates, these devices can scrape off or brush off excess paste, resulting in a uniform thickness of paste on the surface.

[0003] Existing slurry-coating mechanisms require mixing and agitation of the slurry to prevent sedimentation and coagulation, ensuring uniform slurry uniformity on the equipment surface during the coating process. Most existing mixing structures directly agitate the slurry using blades, but this direct agitation method easily forms a slurry layer on the inner wall of the cylinder, affecting the coating effect. Therefore, we propose a wax-based paste-coating mechanism. Utility Model Content

[0004] The purpose of this utility model is to overcome the shortcomings of the existing technology, adapt to the needs of reality, and provide a wax paste making and coating mechanism to solve the technical problem that the current stirring mechanism easily forms a slurry layer on the inner wall and bottom of the cylinder, which affects the coating effect.

[0005] To solve the above-mentioned technical problems, this utility model provides the following technical solution: a wax paste making and coating mechanism, including an outer cylinder, an inner cylinder, an anti-sinking mechanism and a vortex assembly. The bottom of the outer cylinder is fixed with a base plate, and the outer cylinder has heat dissipation vents arranged in a ring array on its outer side. The bottom of the outer cylinder is provided with a base, and the base is fixed on the base plate. Side rods are fixed on both sides of the upper end face of the base plate. The inner cylinder is rotatably installed inside the top of the outer cylinder, and the bottom of the inner cylinder is rotatably installed on the upper end of the base via a guide rail. The anti-sinking mechanism is installed on the upper ends of the two side rods, and the vortex assembly is installed inside the bottom end of the inner cylinder.

[0006] In use, this invention is powered by an external power source. The operator starts the device via an external control device. The slurry is stored inside the inner cylinder. The heating strip is activated to heat the slurry. The built-in motor in the base drives the outer cylinder to rotate. During the rotation of the outer cylinder, the anti-settling mechanism scrapes against the inside of the outer cylinder. When the robotic arm picks up the paste and places it into the inner cylinder for slurry application, the above-mentioned structural design makes it easy for a slurry layer to form on the inner wall and bottom of the outer cylinder. As the outer cylinder continues to rotate, the side scraper and the bidirectional bottom scraper scrape against the inner wall and bottom of the outer cylinder respectively, preventing the formation of the slurry layer and making the quality of the internal slurry more uniform. To ensure the quality of the finished product, the outer cylinder rotates synchronously, driving the vortex assembly to rotate as well. When the vortex assembly rotates, it lifts the slurry at the bottom through the inclined surface of the spiral component, causing the slurry to surge upward and form a certain vortex. When the vortex of the slurry contacts the notch, the surface of the notch changes its originally relatively regular flow state, causing the fluid to generate more complex turbulence, disrupting the directional flow of the slurry, and making the internal mixing more uniform. Through the above structural design, this device uses the rotation of the outer cylinder itself in conjunction with the synchronously rotating vortex assembly to form an upward vortex of slurry, preventing slurry sedimentation and ensuring the quality of the slurry coating.

[0007] Preferably, heating strips are arranged in a ring array on the outer side of the base, and the heating surface of the heating strips is in contact with the outer wall of the inner cylinder.

[0008] Preferably, a connector is inserted into the upper end of the side rod, and the bottom of the connector is provided with a plug-in end. The anti-sinking mechanism consists of a side scraper and a bidirectional bottom scraper, and the upper end of the side scraper is fixed to the outer end of the connector.

[0009] Preferably, there are two side scrapers, and the two side scrapers and the bidirectional bottom scraper form a U-shaped assembly. The side scrapers are attached to the inner wall of the inner cylinder, the bidirectional bottom scraper is attached to the bottom of the inner cylinder, and an assembly opening is provided in the middle of the bidirectional bottom scraper.

[0010] Preferably, the vortex assembly consists of a spiral component and a connecting cylinder, with the inner end of the spiral component fixed to the outer side of the connecting cylinder, and a plug shaft fixed to the bottom of the connecting cylinder, which passes through the assembly port and is then plugged into and fixed to the bottom of the inner cylinder.

[0011] Preferably, there are two spiral components, which are designed in a spiral shape and are staggered. The top of each spiral component is located in the middle of the inner cylinder, and the upper part of the inner cylinder has a notch arranged in a ring.

[0012] Compared with the prior art, the beneficial effects of this utility model are:

[0013] 1. This utility model incorporates an anti-settling mechanism. The slurry is stored inside the inner cylinder. The heating strip is activated to heat the slurry, and the built-in motor in the base drives the outer cylinder to rotate. During the rotation of the outer cylinder, the anti-settling mechanism scrapes inside the outer cylinder. When the robotic arm picks up the paste and places it into the inner cylinder for slurry application, the above-mentioned structural design makes it easy for the slurry stored inside the outer cylinder to form a slurry layer on the inner wall and bottom. As the outer cylinder continues to rotate, the side scraper and the bidirectional bottom scraper scrape off the inner wall and bottom of the outer cylinder respectively, preventing the formation of the slurry layer and making the quality of the internal slurry more uniform, thus ensuring the quality of the finished product.

[0014] 2. This utility model also incorporates a vortex assembly. As the outer cylinder rotates, it synchronously drives the vortex assembly to rotate as well. When the vortex assembly rotates, it lifts the slurry at the bottom through the inclined surface of the spiral component, causing the slurry to surge upward and form a certain vortex. When the vortex of the slurry contacts the notch, the surface of the notch changes its originally relatively regular flow pattern, causing the fluid to generate more complex turbulence, disrupting the directional flow of the slurry, and making the internal mixing more uniform. Through the above structural design, this device uses the rotation of the outer cylinder itself in conjunction with the synchronously rotating vortex assembly to form an upward vortex of slurry, preventing slurry sedimentation and ensuring the quality of the slurry coating. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the main structure of this utility model;

[0016] Figure 2 This is a cross-sectional structural diagram of the present invention;

[0017] Figure 3 This is a schematic diagram of the linkage structure of this utility model;

[0018] Figure 4 This is a schematic diagram of the inner cylinder structure of this utility model;

[0019] Figure 5 This is a schematic diagram of the anti-sinking mechanism of this utility model;

[0020] Figure 6 This is a schematic diagram of the eddy current component of this utility model.

[0021] The following are the labels in the diagram: 1. Connector; 101. Insertion end; 2. Outer cylinder; 201. Heat dissipation vent; 202. Base plate; 203. Side rod; 204. Heating strip; 205. Base; 3. Inner cylinder; 301. Notch; 4. Anti-sinking mechanism; 401. Side scraper; 402. Bidirectional bottom scraper; 403. Assembly port; 5. Vortex assembly; 501. Spiral component; 502. Insertion shaft; 503. Connecting cylinder. Detailed Implementation

[0022] like Figures 1 to 4As shown, this utility model relates to a wax paste making and coating mechanism, including an outer cylinder 2, an inner cylinder 3, an anti-sinking mechanism 4, and a vortex assembly 5. A base plate 202 is fixed to the bottom of the outer cylinder 2, and heat dissipation vents 201 are arranged in a ring array on the outer side of the outer cylinder 2. A base 205 is provided at the bottom of the outer cylinder 2, and the base 205 is fixed to the base plate 202. Side rods 203 are fixed to both sides of the upper end face of the base plate 202. Heating strips 204 are distributed in a ring array on the outer side of the base 205, and the heating surface of the heating strips 204 is in contact with the outer wall of the inner cylinder 3. A connector 1 is inserted into the upper end of the side rod 203, and the connector 1 has an insertion end 101 at its bottom. The anti-sinking mechanism 4 consists of a side scraper 401 and a bidirectional... The bottom scraper 402 is composed of a side scraper 401, the upper end of which is fixed to the outer end of the connector 1. The slurry is stored inside the inner cylinder 3. The heating strip 204 is activated to heat the slurry. The motor built into the base 205 drives the outer cylinder 2 to rotate. During the rotation of the outer cylinder 2, the anti-sinking mechanism 4 scrapes inside the outer cylinder 2. When the robotic arm grabs the paste and places it into the inner cylinder 3 for slurry application, the above structural design makes it easy for the slurry stored inside the outer cylinder 2 to form a slurry layer on the inner wall and bottom. When the outer cylinder 2 continues to rotate, the side scraper 401 and the bidirectional bottom scraper 402 scrape the inner wall and bottom of the outer cylinder 2 respectively to prevent the formation of the slurry layer, making the quality of the slurry inside more uniform and ensuring the quality of the finished product.

[0023] like Figures 2 to 6As shown, this utility model relates to a wax paste making and coating mechanism, including an outer cylinder 2, an inner cylinder 3, an anti-sinking mechanism 4, and a vortex assembly 5. The inner cylinder 3 is rotatably installed at the top of the inner cylinder 2, and the bottom of the inner cylinder 3 is rotatably installed on the upper end of the base 205 via a guide rail. The anti-sinking mechanism 4 is installed on the upper ends of the two side rods 203. The vortex assembly 5 is installed at the bottom of the inner cylinder 3. There are two side scrapers 401, and the two side scrapers 401 and the bidirectional bottom scraper 402 form a U-shaped assembly. The side scrapers 401 are attached to the inner wall of the inner cylinder 3, and the bidirectional bottom scraper 402 is attached to the bottom of the inner cylinder 3. An assembly port 403 is opened in the middle of the bidirectional bottom scraper 402. The vortex assembly 5 is composed of a spiral component 501 and a connecting cylinder 503, and the inner end of the spiral component 501 is fixed to the outer side of the connecting cylinder 503. A plug shaft 502 is fixed at the bottom of the connecting cylinder 503, and the plug shaft 502 is inserted and fixed after passing through the assembly port 403. At the bottom of the inner cylinder 3, there are two spiral components 501, which are designed in a spiral shape and are staggered. The top of the spiral components 501 is located in the middle of the inner cylinder 3. The inner upper end of the inner cylinder 3 has a ring array of notches 301. When the outer cylinder 2 rotates, it drives the vortex assembly 5 to rotate synchronously. When the vortex assembly 5 rotates, it lifts the slurry at the bottom through the inclined surface of the spiral component 501, causing the slurry to surge upward and form a certain vortex. When the vortex of the slurry contacts the notch 301, the starting surface of the notch 301 will change the original relatively regular flow state, making the fluid generate more complex turbulence, disrupting the directional flow of the slurry, and making the internal mixing more uniform. Through the above structural design, the device uses the rotation of the outer cylinder 2 itself in conjunction with the synchronously rotating vortex assembly 5 to form an upward vortex of slurry, preventing slurry sedimentation and ensuring the quality of slurry coating.

[0024] Working principle: This embodiment provides a wax paste application mechanism. In use, the paste is stored inside the inner cylinder 3. The heating bar 204 is activated to heat the paste, and the motor built into the base 205 drives the outer cylinder 2 to rotate. During the rotation of the outer cylinder 2, the anti-sinking mechanism 4 scrapes inside the outer cylinder 2. When the robotic arm grabs the paste and places it into the inner cylinder 3 for paste application, the outer cylinder 2 rotates synchronously, driving the vortex component 5 to rotate. When the vortex component 5 rotates, the paste at the bottom is lifted by the inclined surface of the spiral component 501, causing the paste to surge upward and form a certain vortex. When the vortex of the paste contacts the notch 301, the starting surface of the notch 301 will change the original relatively regular flow state, causing the fluid to generate more complex turbulence, disrupting the directional flow of the paste, and making the internal mixing more uniform.

[0025] The embodiments disclosed herein are preferred embodiments, but are not limited thereto. Those skilled in the art can readily grasp the spirit of this utility model based on the above embodiments and make different extensions and variations. However, as long as they do not depart from the spirit of this utility model, they are all within the protection scope of this utility model.

Claims

1. A wax paste-making and coating mechanism, comprising an outer cylinder (2), an inner cylinder (3), an anti-settling mechanism (4), and a vortex assembly (5), characterized in that: The bottom of the outer cylinder (2) is fixed with a base plate (202), and the outer side of the outer cylinder (2) is provided with a heat dissipation port (201) in a ring array. The bottom of the outer cylinder (2) is provided with a base (205), and the base (205) is fixed on the base plate (202). Side rods (203) are fixed on both sides of the upper end face of the base plate (202). The inner cylinder (3) is rotatably installed at the top inside of the outer cylinder (2), and the bottom of the inner cylinder (3) is rotatably installed on the upper end of the base (205) via a guide rail. The anti-sinking mechanism (4) is installed on the upper end of the side rods (203) on both sides. The eddy current assembly (5) is installed at the bottom inside of the inner cylinder (3).

2. The wax paste-making and coating mechanism according to claim 1, characterized in that: Heating strips (204) are arranged in a ring array on the outer side of the base (205), and the heating surface of the heating strips (204) is in contact with the outer wall of the inner cylinder (3).

3. The wax paste-making and coating mechanism according to claim 2, characterized in that: The upper end of the side rod (203) is connected to a connector (1), and the bottom of the connector (1) is provided with a plug-in end (101). The anti-sinking mechanism (4) is composed of a side scraper (401) and a bidirectional bottom scraper (402), and the upper end of the side scraper (401) is fixed to the outer end of the connector (1).

4. The wax paste-making and coating mechanism according to claim 3, characterized in that: There are two side scrapers (401), and the two side scrapers (401) and the bidirectional bottom scraper (402) form a U-shaped assembly. The side scrapers (401) are attached to the inner wall of the inner cylinder (3), and the bidirectional bottom scraper (402) is attached to the bottom of the inner cylinder (3). An assembly port (403) is provided in the middle of the bidirectional bottom scraper (402).

5. The wax paste-making and coating mechanism according to claim 4, characterized in that: The vortex assembly (5) consists of a spiral component (501) and a connecting cylinder (503), with the inner end of the spiral component (501) fixed to the outer side of the connecting cylinder (503). The bottom of the connecting cylinder (503) is fixed with a plug shaft (502), and the plug shaft (502) passes through the assembly port (403) and is plugged and fixed to the bottom of the inner cylinder (3).

6. The wax paste-making and coating mechanism according to claim 5, characterized in that: There are two spiral components (501), and the two spiral components (501) are designed in a spiral shape. The two spiral components (501) are staggered. The top of the spiral component (501) is located in the middle of the inner cylinder (3). The inner cylinder (3) has a notch (301) in a ring array at the upper end.