Novel overflow type sand ice bucket
By using an overflow structure design, the inner cylinder has the same wall thickness as the outer shell of the slush bucket, and the inner wall of the inner cylinder also serves as a cooling surface, solving the problem of insufficient cooling surface in existing slush buckets and achieving a more efficient cooling effect.
Patent Information
- Application Number
- CN202423302249.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Existing slush buckets have limited cooling surface area and cannot effectively utilize the inner wall of the inner cylinder as a cooling surface, resulting in significant limitations in their use.
The overflow structure design makes the inner cylinder and the outer shell of the slush bucket have the same wall thickness. The inner wall of the inner cylinder can also serve as a cooling surface. The cooling surface is formed by the refrigerant flow channel and the inner wall of the outer shell, which increases the cooling area.
It enables both the inner wall of the inner cylinder and the outer wall of the outer shell to serve as cooling surfaces, improving cooling efficiency, and its structure is simple and easy to manufacture.
Smart Images

Figure CN223623168U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a slush bucket, specifically a novel overflow slush bucket. Background Technology
[0002] Most existing slush buckets consist of an outer shell and an inner cylinder. The outer wall of the inner cylinder often has a spiral flow channel. Because of this, the inner cylinder's wall thickness is much greater than that of the outer shell. Therefore, in practical use, only the outer wall of the outer shell can be used as the cooling surface, while the inner wall of the inner cylinder cannot be used as a cooling surface due to its thickness. In summary, existing slush buckets have limited cooling surfaces, which is a significant limitation and cannot meet the requirements. Therefore, designing a new type of overflow slush bucket to solve the above problems is particularly important. Summary of the Invention
[0003] To solve the above problems, this utility model designs a new type of overflow slush bucket. By adopting an overflow structure design, the wall thickness of the inner cylinder and the outer cylinder of the slush bucket can be the same. Therefore, during use, not only the outer wall of the outer cylinder of the slush bucket can be used as a cooling surface, but the inner wall of the inner cylinder can also be used as a cooling surface, which increases the practicality.
[0004] To solve the above-mentioned technical problems, this utility model provides a novel overflow slush bucket, including an outer shell and an inner cylinder. The outer shell is fitted over the inner cylinder, and the front and rear ends of the inner cylinder are welded and fixed to the inner wall of the outer shell. A refrigerant flow channel is formed between the outer wall of the inner cylinder and the inner wall of the outer shell. The inner cylinder is characterized by having a refrigerant inlet pipe connected to one end of its top, which extends through the end of the inner cylinder into the refrigerant flow channel. A flow guide assembly is welded and fixed to each of the left and right sides of the top of the inner cylinder, with the length of the flow guide assembly matching the length of the inner cylinder. A gap exists between the upper end of the flow guide assembly and the inner wall of the outer shell. A refrigerant outlet is opened on the inner cylinder outside each of the two flow guide assemblies, and each refrigerant outlet is connected to a refrigerant outlet pipe. The wall thickness of the inner cylinder is the same as the wall thickness of the outer shell.
[0005] Further: One end of the refrigerant inlet pipe extends between the two flow guiding components, and the length of the refrigerant inlet pipe extending into the refrigerant flow channel is half the length of the flow guiding component.
[0006] Furthermore: the flow guiding component is composed of an arc-shaped bending plate and an inclined flow guiding plate integrated together. The lower end of the arc-shaped bending plate is welded and fixed to the outer wall of the inner cylinder, and there is a gap between the upper end of the inclined flow guiding plate and the inner wall of the slush bucket outer shell.
[0007] Furthermore: One end of the outer shell of the slush bucket is provided with an annular positioning and fixing plate integrated therewith. Five U-shaped grooves for installation and fixing are opened around the annular positioning and fixing plate. Two semi-circular positioning grooves are also opened on the outer wall of the annular positioning and fixing plate. The refrigerant outlet is opened on the inner cylinder near the side of the annular positioning and fixing plate.
[0008] By adopting the above structure, this utility model, through the use of an overflow structure design, allows the inner cylinder and the outer shell of the slush bucket to have the same wall thickness. Therefore, during use, not only can the outer wall of the slush bucket be used as a cooling surface, but the inner wall of the inner cylinder can also be used as a cooling surface, which increases the practicality. Furthermore, this design also has the advantages of simple structure, easy manufacturing, and high efficiency. Attached Figure Description
[0009] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0010] Figure 1 This is a structural diagram of the present invention.
[0011] Figure 2 This is a structural diagram of the inner cylinder.
[0012] Figure 3 for Figure 2 A magnified view of A in the middle. Detailed Implementation
[0013] like Figure 1 , Figure 2 and Figure 3 The illustration shows a novel overflow slush bucket, comprising an outer shell 1 and an inner cylinder 2. The outer shell is fitted over the inner cylinder, and the front and rear ends of the inner cylinder are welded and fixed to the inner wall of the outer shell. A refrigerant flow channel is formed between the outer wall of the inner cylinder and the inner wall of the outer shell. A refrigerant inlet pipe 5 is connected to one end of the top of the inner cylinder, extending through the end of the inner cylinder into the refrigerant flow channel. A flow guide component 8 is welded and fixed to each of the left and right sides of the top of the inner cylinder. The length of the flow guide component matches the length of the inner cylinder, and there is a gap between the upper end of the flow guide component and the inner wall of the outer shell. A refrigerant outlet 10 is opened on the inner cylinder outside the two flow guide components, and a refrigerant outlet pipe 4 is connected to each of the two refrigerant outlets. The wall thickness of the inner cylinder is the same as the wall thickness of the outer shell. This utility model adopts an overflow structure design, which allows the inner cylinder and the outer shell of the slush bucket to have the same wall thickness. Therefore, during use, not only the outer wall of the slush bucket can be used as a cooling surface, but the inner wall of the inner cylinder can also be used as a cooling surface, which increases the practicality. In addition, this design also has the advantages of simple structure, easy manufacturing and high efficiency.
[0014] like Figure 2 The refrigerant inlet pipe shown extends one end between the two flow guide components, and the length of the refrigerant inlet pipe extending into the refrigerant flow channel is half the length of the flow guide component.
[0015] like Figure 3 The flow guiding assembly shown is composed of an arc-shaped bent plate 11 and an inclined flow guiding plate 9 connected as one piece. The lower end of the arc-shaped bent plate is welded and fixed to the outer wall of the inner cylinder, and there is a gap between the upper end of the inclined flow guiding plate and the inner wall of the outer shell of the slush bucket.
[0016] like Figure 1 and Figure 3 The outer shell of the slush bucket shown is provided with an annular positioning and fixing plate 3 integrated with it. Five U-shaped grooves 6 for installation and fixing are opened around the annular positioning and fixing plate. Two semi-circular positioning grooves 7 are also opened on the outer wall of the annular positioning and fixing plate. The refrigerant outlet is opened on the inner cylinder near the annular positioning and fixing plate.
[0017] The above are merely preferred embodiments of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are within its protection scope. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should be considered within its protection scope.
Claims
1. A novel overflow slush bucket, comprising a slush bucket outer shell (1) and an inner cylinder (2), wherein the slush bucket outer shell is fitted over the outer side of the inner cylinder, and the front and rear ends of the inner cylinder are welded and fixed to the inner wall of the slush bucket outer shell, and a refrigerant flow channel is formed between the outer wall of the inner cylinder and the inner wall of the slush bucket outer shell, characterized in that: One end of the top of the inner cylinder is connected to a refrigerant inlet pipe (5). The refrigerant inlet pipe passes through the end of the inner cylinder and extends into the refrigerant flow channel. A flow guide assembly (8) is welded and fixed on each of the left and right sides of the top of the inner cylinder. The length of the flow guide assembly matches the length of the inner cylinder. There is a gap between the upper end of the flow guide assembly and the inner wall of the slush bucket outer shell. A refrigerant outlet (10) is opened on the inner cylinder outside the two flow guide assemblies. A refrigerant outlet pipe (4) is connected to each of the two refrigerant outlets. The wall thickness of the inner cylinder is the same as the wall thickness of the slush bucket outer shell.
2. The novel overflow slush bucket according to claim 1, characterized in that: One end of the refrigerant inlet pipe extends between the two flow guide components, and the length of the refrigerant inlet pipe extending into the refrigerant flow channel is half the length of the flow guide component.
3. A novel overflow slush bucket according to any one of claims 1 or 2, characterized in that: The flow guiding component is composed of an arc-shaped bent plate (11) and an inclined flow guiding plate (9) connected together. The lower end of the arc-shaped bent plate is welded and fixed to the outer wall of the inner cylinder, and there is a gap between the upper end of the inclined flow guiding plate and the inner wall of the slush bucket.
4. A novel overflow slush bucket according to claim 1, characterized in that: One end of the outer shell of the slush bucket is provided with an annular positioning and fixing plate (3) integrated with it. Five U-shaped grooves (6) for installation and fixing are opened around the annular positioning and fixing plate. Two semi-circular positioning grooves (7) are also opened on the outer wall of the annular positioning and fixing plate. The refrigerant outlet is opened on the inner cylinder near the annular positioning and fixing plate.
Citation Information
Cited By
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