Soap liquid stirring device

By introducing the crushed material assembly into the soap liquid agitator, and cutting the scraps with extrusion screws and cutters, the problems of long stirring time of the soap liquid and adhesion of the scraps are solved, and the effect of efficient melting and cleaning is achieved.

CN223055507UActive Publication Date: 2025-07-04PULAIWEI BEAUTY PROD (GUANGDONG) CO LTD
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Patent Information

Application Number
CN202422237195.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-11
Publication Date
2025-07-04
Estimated Expiration
2034-09-11

AI Technical Summary

Technical Problem

When the existing soap liquid agitator is treated with soap paste, the melting efficiency is low and the scraps are easily adhered to the stirring shaft, resulting in wasted time and difficulty in cleaning.

Method used

The crushed material assembly is adopted, including a loading box, an extrusion screw and a cutter. By extruding and shearing the scraps, it changes its volume, controls its speed and amount into the mixing barrel, avoids adhesion, and improves melting efficiency.

Benefits of technology

It effectively shortens the melting time of scraps, improves the melting efficiency of soap and scraps, avoids the adhesion of the stirring shaft, and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model aims to provide a liquid soap stirring device which comprises a stirring assembly and a crushing assembly, the stirring assembly comprises a stirring barrel, a stirring driving piece and a stirring shaft, the stirring driving piece is arranged at the top of the stirring barrel, the stirring shaft is arranged on an output shaft of the stirring driving piece, and the stirring shaft is located in the stirring barrel; the material crushing assembly comprises a charging box, an extrusion driving part, an extrusion screw rod, a material cutting driving part and a cutter, the charging box is arranged at the top of the stirring barrel, a charging cavity and an extrusion hole are formed in the charging box, the extrusion hole is communicated with the charging cavity and the stirring barrel, the extrusion driving part is arranged on the charging box, and the extrusion screw rod is arranged on an output shaft of the extrusion driving part; the extrusion screw extends into the extrusion hole from the charging cavity, the cutting driving part is arranged on the charging box, the cutter is arranged on an output shaft of the cutting driving part, the cutter is distributed adjacent to the extrusion hole, and the cutting driving part is used for driving the cutter to circularly pass through the extrusion hole.
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Description

Technical Field

[0001] The utility model relates to the technical field of soap liquid processing, in particular to a soap liquid stirring device. Background Art

[0002] Soap blocks are an essential washing product in people's daily lives. Soap blocks need to be stirred with raw materials such as fragrances to make a fully mixed soap liquid, and then solidify after cooling. The solidified soap blocks are in a large-area plate structure and need to be cut into several small soap blocks with consistent size specifications. Therefore, a large amount of waste materials will be generated during subsequent cutting processing. To avoid material waste, the waste materials will be put back into the soap liquid stirring barrel to be stirred and melted again.

[0003] However, since the waste materials are usually in long strip shape and have a certain volume, if they are directly placed into the stirring barrel and stirred and fused with the soap liquid, there will be the following two problems: First, the waste materials are in a solid structure and their volume sizes are different. To ensure complete melting in the soap liquid, the stirring time needs to be longer than the longest melting time of all waste materials. Therefore, when the soap liquid is well stirred, in order to ensure that the waste materials are also melted, sufficient stirring time needs to be reserved, resulting in too much time spent in the stirring link of the soap liquid. Second, the rotation speed of the stirring shaft in the stirring barrel used for the soap liquid is usually low (about 0.5 revolutions per second). After the waste materials are soaked in the soap liquid, the waste materials will generate a certain viscosity. Coupled with the low rotation speed of the stirring shaft, it is easy for the waste materials to stick to the stirring shaft. In this way, it is necessary to drain the soap liquid later and then clean the residues on the stirring shaft. Therefore, in order to solve the above problems, the soap liquid stirring device of this application is proposed. Content of the Utility Model

[0004] The purpose of the utility model is to overcome the deficiencies in the prior art and provide a soap liquid stirring device that can improve the melting efficiency of soap block waste materials.

[0005] The purpose of the utility model is achieved by the following technical solutions:

[0006] A soap liquid stirring device, comprising:

[0007] A stirring assembly, the stirring assembly includes a stirring barrel, a stirring driving member and a stirring shaft. The stirring driving member is arranged at the top of the stirring barrel. The stirring shaft is arranged on the output shaft of the stirring driving member, and the stirring shaft is located inside the stirring barrel; and

[0008] Fragment component, the fragment component includes a loading box, an extrusion driving member, an extrusion screw, a cutting driving member and a cutter. The loading box is arranged on the top of the mixing barrel. A loading cavity and an extrusion hole are formed in the loading box. The extrusion holes are respectively communicated with the loading cavity and the mixing barrel. The extrusion driving member is arranged on the loading box. The extrusion screw is arranged on the output shaft of the extrusion driving member, and the extrusion screw extends from the loading cavity into the extrusion hole. The cutting driving member is arranged on the loading box. The cutter is arranged on the output shaft of the cutting driving member, and the cutter is distributed adjacent to the extrusion hole. The cutting driving member is used to drive the cutter to cycle through the extrusion hole.

[0009] Optionally, there are two extrusion holes, and two extrusion screws are provided. The two extrusion screws are respectively rotatably arranged in the two extrusion holes.

[0010] Optionally, the diameter of the loading cavity gradually decreases in the direction close to the extrusion hole.

[0011] Optionally, a feeding port is formed on the outer side wall of the loading box.

[0012] Optionally, a supporting bar is arranged at the lower edge position of the feeding port.

[0013] Optionally, the mixing barrel includes a barrel body and a plurality of supporting feet, and each supporting foot is respectively arranged on the outer side wall of the barrel body.

[0014] Optionally, the mixing barrel further includes a cross plate and a cover plate. The cross plate is arranged on the top of the barrel body. The mixing driving member and the loading box are both located on the cross plate. The cover plate is rotatably arranged on the cross plate, and the cover plate is used to cover the barrel body.

[0015] Optionally, the barrel body includes an inner layer, an outer layer and a heating element. The inner layer is arranged inside the outer layer so as to form a closed cavity between the inner layer and the outer layer. The heating element is arranged in the closed cavity.

[0016] Optionally, both the inner layer and the outer layer are made of stainless steel structure.

[0017] Optionally, a heat insulation layer is further arranged on one side of the outer layer close to the inner layer.

[0018] Compared with the prior art, the utility model has at least the following advantages:

[0019] The cutting material driving part drives the cutting knife to continuously rotate, so as to shear and break the scraps extruded from the extrusion holes and make them fall into the stirring barrel. By changing the volume of the scraps, the melting rate of the scraps into the soap liquid can be effectively reduced, and the scraps can be effectively prevented from sticking to the stirring shaft. It should be particularly noted that since the extrusion driving part can adjust the rotation speed of the extrusion screw, the extrusion speed of the scraps from the extrusion holes can be controlled, so that the speed of the scraps entering the stirring barrel can be adjusted according to actual needs, effectively preventing the excessive amount of scraps from falling, and improving the melting efficiency of the soap liquid and the scraps. Brief Description of the Drawings

[0020] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required to be used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention, and therefore should not be regarded as limiting the scope. For those of ordinary skill in the art, without creative efforts, other related drawings can also be obtained based on these drawings.

[0021] Figure 1 Structural schematic diagram of a soap liquid stirring device according to an embodiment of the present invention;

[0022] Figure 2 is Figure 1 Cross-sectional structural schematic diagram of the soap liquid stirring device shown;

[0023] Figure 3 Structural schematic diagram of a shredding component according to an embodiment of the present invention;

[0024] Figure 4 is Figure 3 Structural schematic diagram of the shredding component from another angle shown;

[0025] Figure 5 is Figure 2 Partial enlarged structural schematic diagram of A of.

[0026] Explanation of the reference numerals:

[0027] 10. Soap liquid stirring device; 100. Stirring component; 200. Shredding component; 110. Stirring barrel; 120. Stirring driving part; 130. Stirring shaft; 210. Loading box; 220. Extrusion driving part; 230. Extrusion screw; 240. Cutting material driving part; 250. Cutting knife; 211. Loading cavity; 212. Extrusion hole; 213. Feeding port; 260. Supporting strip; 111. Barrel body; 112. Support feet; 113. Discharge pipeline; 114. Horizontal plate; 115. Cover plate; 1111. Inner layer; 1112. Outer layer; 1113. Heating element; 1114. Sealed cavity; 1115. Heat insulation layer. Detailed Embodiments

[0028] To facilitate the understanding of the present utility model, the present utility model will be described more comprehensively below with reference to the relevant drawings. The preferred embodiments of the present utility model are shown in the drawings.

[0029] As Figures 1 to 5 shown, a soap liquid stirring device 10 includes a stirring assembly 100 and a material crushing assembly 200. The stirring assembly 100 includes a stirring barrel 110, a stirring driving member 120, and a stirring shaft 130. The stirring driving member 120 is disposed at the top of the stirring barrel 110, the stirring shaft 130 is disposed on the output shaft of the stirring driving member 120, and the stirring shaft 130 is located inside the stirring barrel 110. The material crushing assembly 200 includes a loading box 210, an extrusion driving member 220, an extrusion screw 230, a cutting driving member 240, and a cutting knife 250. The loading box 210 is disposed at the top of the stirring barrel 110. A loading cavity 211 and an extrusion hole 212 are formed in the loading box 210. The extrusion holes 212 are respectively communicated with the loading cavity 211 and the stirring barrel 110. The extrusion driving member 220 is disposed on the loading box 210. The extrusion screw 230 is disposed on the output shaft of the extrusion driving member 220, and the extrusion screw 230 extends from the loading cavity 211 into the extrusion hole 212. The cutting driving member 240 is disposed on the loading box 210. The cutting knife 250 is disposed on the output shaft of the cutting driving member 240, and the cutting knife 250 is distributed adjacent to the extrusion hole 212. The cutting driving member 240 is used to drive the cutting knife 250 to cycle through the extrusion hole 212.

[0030] It should be noted that the stirring barrel 110 is used to contain soap liquid, and then the stirring driving member 120 drives the stirring shaft 130 to rotate, so as to stir the soap liquid by using the stirring shaft 130. For example, the stirring driving member 120 is a motor, and the motor drives the stirring shaft 130 to rotate continuously. Further, the scrap material assembly 200 is used to shear and crush the scrap materials. Specifically, the loading box 210 is installed on the top of the stirring barrel 110. A loading cavity 211 and an extrusion hole 212 are formed in the loading box 210. The extrusion holes 212 are respectively communicated with the loading cavity 211 and the inside of the stirring barrel 110, and the loading cavity 211 is located above the extrusion hole 212 in the vertical direction, and the stirring barrel 110 is located below the extrusion hole 212 in the vertical direction. The extrusion driving member 220 is installed on the top of the loading box 210. For example, the extrusion driving member 220 is also a motor. One end of the extrusion screw 230 is fixedly connected to the output shaft of the extrusion driving member 220, and the other end of the extrusion screw 230 extends from the loading cavity 211 into the extrusion hole 212. In this way, after the scrap materials are filled into the loading cavity 211, the extrusion driving member 220 drives the extrusion screw 230 to rotate, so that the scrap materials in the loading cavity 211 are driven by the extrusion screw 230 to be gradually extruded from the extrusion hole 212. Further, the cutting driving member 240 is installed on the top of the loading box 210. For example, the cutting driving member 240 is also a motor. The output shaft of the cutting driving member 240 extends from the outside of the loading box 210 to the inside, and the cutting knife 250 is fixedly installed on the output shaft of the cutting driving member 240, and the cutting knife 250 is located at the opening position of the extrusion hole 212. In this way, the cutting driving member 240 drives the cutting knife 250 to rotate continuously, so as to shear and crush the scrap materials extruded from the extrusion hole 212 and make them fall into the stirring barrel 110. By changing the volume of the scrap materials, the melting rate of the scrap materials into the soap liquid can be effectively reduced, and the scrap materials can be effectively prevented from sticking to the stirring shaft 130. It should be particularly noted that since the extrusion driving member 220 can adjust the rotation speed of the extrusion screw 230, the extrusion speed of the scrap materials from the extrusion hole 212 can be controlled, so that the speed of the scrap materials entering the stirring barrel 110 can be adjusted according to actual needs, effectively preventing the excessive amount of scrap materials from falling, and improving the melting efficiency of the soap liquid and the scrap materials.

[0031] In one embodiment, two extrusion holes 212 are formed, and two extrusion screws 230 are provided. The two extrusion screws 230 are respectively rotatably arranged in the two extrusion holes 212. In this way, when it is necessary to increase the feeding speed of the scrap materials, the two extrusion screws 230 can be started simultaneously to increase the speed of the scrap materials entering the stirring barrel 110.

[0032] In one embodiment, the diameter of the loading cavity 211 gradually decreases in the direction close to the extrusion hole 212. In this way, the scrap materials in the loading cavity 211 can be smoothly extruded by the extrusion screw 230 and extruded from the extrusion hole 212.

[0033] As Figure 1 shown, in one embodiment, a feeding port 213 is formed on the outer sidewall of the charging bin 210. Thus, through this feeding port 213, the scrap materials can be poured into the charging cavity 211.

[0034] As Figure 3 shown, in one embodiment, a supporting strip 260 is arranged at the lower edge position of the feeding port 213. It should be noted that it is convenient for the plastic bucket containing the scrap materials to be placed on the supporting strip 260 and tilted, ensuring that the scrap materials are smoothly poured into the charging cavity 211.

[0035] As Figure 1 shown, in one embodiment, the stirring barrel 110 includes a barrel body 111 and a plurality of supporting feet 112, and each supporting foot 112 is respectively arranged on the outer sidewall of the barrel body 111.

[0036] It should be noted that each supporting foot 112 is respectively welded and installed on the outer sidewall of the barrel body 111, so that the barrel body 111 is in a suspended state relative to the ground. A discharge pipeline 113 is arranged at the bottom of the barrel body 111. When the soap liquid stirring is completed, the discharge can be carried out through the discharge pipeline 113.

[0037] As Figure 1 shown, in one embodiment, the stirring barrel 110 further includes a cross plate 114 and a cover plate 115. The cross plate 114 is arranged at the top of the barrel body 111. The stirring driving member 120 and the charging bin 210 are both located on the cross plate 114. The cover plate 115 is rotatably arranged on the cross plate 114, and the cover plate 115 is used to cover the barrel body 111.

[0038] It should be noted that the cross plate 114 is welded and fixed to the top of the barrel body 111, and the cover plate 115 is installed on the cross plate 114 through a hinge. Thus, through the opening covered by the cover plate 115, it is convenient to pour the raw materials into the barrel body 111, and then use the cover plate 115 to cover the opening of the barrel body 111.

[0039] As Figure 2 and Figure 5 shown, in one embodiment, the barrel body 111 includes an inner layer 1111, an outer layer 1112 and a heating element 1113. The inner layer 1111 is arranged inside the outer layer 1112, so as to form a sealed cavity 1114 between the inner layer 1111 and the outer layer 1112. The heating element 1113 is arranged in the sealed cavity 1114.

[0040] It should be noted that, in order to stir and mix the soap liquid within a specified temperature, the barrel body 111 is provided with a double-layer structure composed of an inner layer 1111 and an outer layer 1112. Among them, the heating element 1113 is installed in the sealed cavity 1114 between the inner layer 1111 and the outer layer 1112. In one embodiment, the heating element 1113 is a heating wire, and the soap liquid loaded in the barrel body 111 is heated by the heating wire.

[0041] In one embodiment, both the inner layer 1111 and the outer layer 1112 are made of stainless steel. In this way, the inner layer 1111 and the outer layer 1112 are welded and fixed, so that a sealed cavity 1114 is formed between the inner layer 1111 and the outer layer 1112.

[0042] As Figure 5 shown, in one embodiment, a heat insulation layer 1115 is further provided on one side of the outer layer 1112 close to the inner layer 1111.

[0043] It should be noted that the heat insulation layer 1115 is coated on one side of the outer layer 1112 close to the inner layer 1111 by coating. In this way, it can avoid the heat from being dissipated to the outside through the outer layer 1112, improve the heat utilization efficiency of the heating element 1113, and can also avoid the outer side wall of the outer layer 1112 from being too hot to touch, making it safer to use. In one embodiment, the heat insulation layer 1115 is formed by coating with ceramic paint.

[0044] The above embodiments only represent several implementation manners of the present invention, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of the utility model patent. Among them, the installation / fixing / setting mentioned in the present invention can be understood as including but not limited to locking and fixing with screws / screws and welding unless otherwise specifically defined. It should be pointed out that for those of ordinary skill in the art, without departing from the concept of the present invention, several deformations and improvements can still be made, and these all belong to the protection scope of the present invention. Therefore, the protection scope of the utility model patent should be subject to the appended claims.

Claims

1. A soap solution stirring device, characterized in that, Comprising: A stirring assembly, the stirring assembly including a stirring barrel, a stirring driving member and a stirring shaft, the stirring driving member being arranged at the top of the stirring barrel, the stirring shaft being arranged on the output shaft of the stirring driving member, and the stirring shaft being located inside the stirring barrel; And A material crushing assembly, the material crushing assembly including a loading box, an extrusion driving member, an extrusion screw, a cutting driving member and a cutting knife, the loading box being arranged at the top of the stirring barrel, a loading cavity and an extrusion hole being formed in the loading box, the extrusion hole being respectively communicated with the loading cavity and the stirring barrel, the extrusion driving member being arranged on the loading box, the extrusion screw being arranged on the output shaft of the extrusion driving member, and the extrusion screw extending from the loading cavity into the extrusion hole, the cutting driving member being arranged on the loading box, the cutting knife being arranged on the output shaft of the cutting driving member, and the cutting knife being distributed adjacent to the extrusion hole, the cutting driving member being used for driving the cutting knife to cycle through the extrusion hole.

2. The soap liquid stirring device according to claim 1, characterized in that, Two extrusion holes are formed, and two extrusion screws are provided. The two extrusion screws are respectively rotatably arranged in the two extrusion holes.

3. The soap solution stirring device according to claim 2, wherein, The diameter of the loading cavity gradually decreases in the direction close to the extrusion hole.

4. The soap liquid stirring device according to claim 1, wherein A feeding port is formed in the outer side wall of the loading box.

5. The soap liquid stirring device according to claim 4, characterized in that, A supporting strip is arranged at the lower edge position of the feeding port.

6. The soap solution stirring device according to claim 1, characterized in that, The stirring barrel includes a barrel body and a plurality of supporting feet, and each supporting foot is respectively arranged on the outer side wall of the barrel body.

7. The soap solution stirring device according to claim 6, characterized in that, The stirring barrel further includes a cross plate and a cover plate. The cross plate is arranged at the top of the barrel body. The stirring driving member and the loading box are both located on the cross plate. The cover plate is rotatably arranged on the cross plate, and the cover plate is used for covering the barrel body.

8. The soap solution stirring device according to claim 6, wherein, The barrel body includes an inner layer, an outer layer and a heating element. The inner layer is arranged inside the outer layer so as to form a sealed cavity between the inner layer and the outer layer, and the heating element is arranged in the sealed cavity.

9. The soap solution stirring device according to claim 8, characterized in that, Both the inner layer and the outer layer are of stainless steel structure.

10. The soap solution stirring device according to claim 9, characterized in that, A heat insulation layer is further arranged on one side surface of the outer layer close to the inner layer.