Overflow type sand ice bucket structure
By using an overflow structure design, the inner cylinder and the outer shell have the same wall thickness, and the inner wall of the inner cylinder also serves as a cooling surface. This solves the problem of limited cooling surface in existing slush buckets, achieving a more efficient cooling effect and the advantage of ease of manufacturing.
Patent Information
- Application Number
- CN202423302014.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-11-28
- 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 design adopts an overflow structure, making the inner cylinder and the outer shell have the same wall thickness. The inner wall of the inner cylinder can also serve as a cooling surface, and the refrigerant can be effectively circulated through the refrigerant flow channel and overflow hole.
It increases the utilization rate of the cooling surface, improves the practicality of the slush bucket, and has a simple structure that is easy to manufacture.
Smart Images

Figure CN223610417U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a sand ice bucket, specifically to a full overflow type sand ice bucket structure. BACKGROUND
[0002] Most of the existing sand ice buckets are composed of an outer shell and an inner cylinder, and a spiral flow channel is often arranged on the outer wall of the inner cylinder. Since the spiral flow channel is arranged on the inner cylinder, the wall thickness of the inner cylinder is much greater than that of the outer shell. Therefore, in actual use, the outer wall of the outer shell is often used as the cooling surface, and the inner wall of the inner cylinder cannot be used as the cooling surface due to the wall thickness. In summary, the cooling surface of the existing sand ice bucket is often limited, which has great limitations and cannot meet the demand. Therefore, it is particularly important to design a full overflow type sand ice bucket structure to solve the above problems. SUMMARY
[0003] The utility model discloses a full overflow type sand ice bucket structure, which adopts a full overflow type structure design, so that the wall thickness of the inner cylinder and the outer shell can be the same. Therefore, in use, not only the outer wall of the outer shell can be used as the cooling surface, but also the inner wall of the inner cylinder can be used as the cooling surface, which increases the practical performance.
[0004] To solve the above technical problems, the utility model provides a full overflow type sand ice bucket structure, which comprises an outer shell and an inner cylinder, characterized in that: the inner cylinder is composed of a cylinder body and annular protruding parts arranged at the front and rear ends of the cylinder body, the annular protruding parts at the front and rear ends of the inner cylinder are sealingly connected with the inner wall of the outer shell, the inner wall of the outer shell and the outer wall of the cylinder body form a refrigerant flow channel under the cooperation of the annular protruding parts at the two ends, two side plates are arranged on the outer wall of the cylinder body, the two ends of the side plates are integrally connected with the two annular protruding parts, the upper end of the side plate is sealingly connected with the inner wall of the outer shell, a refrigerant feeding flow channel is formed between the two side plates, a refrigerant feeding pipe is connected to the annular protruding part at the rear end of the cylinder body, one end of the refrigerant feeding pipe penetrates through the annular protruding part and extends into the refrigerant feeding flow channel, a plurality of overflow holes are sequentially arranged on the side plate from left to right, a refrigerant outlet is arranged on the outer side of the cylinder body, a refrigerant outlet pipe is connected to the refrigerant outlet, and the refrigerant feeding flow channel is connected with the refrigerant outlet pipe through the overflow holes.
[0005] Further, the refrigerant outlet is arranged at the top of the rear end of the cylinder body, and one refrigerant outlet is arranged on the outer side of the cylinder body of each side plate.
[0006] Further, the length of the refrigerant feeding pipe extending into the refrigerant feeding flow channel is half of the length of the side plate.
[0007] Further, the rear end of the outer shell body is provided with an annular positioning and fixing plate which is integrated with the outer shell body, five U-shaped grooves for mounting and fixing are formed around the annular positioning and fixing plate, and two semicircular positioning grooves are formed in the outer wall of the annular positioning and fixing plate.
[0008] After the above structure is adopted, the full-overflow structure design is adopted, so that the wall thickness of the inner cylinder body and the outer shell body can be the same, thus in use, the outer wall of the outer shell body can be used as a cooling surface, and the inner wall of the inner cylinder body can also be used as a cooling surface, so that the practical performance is increased. BRIEF DESCRIPTION OF DRAWINGS
[0009] The utility model will be explained further in detail in combination with the drawings and specific embodiment.
[0010] Figure 1 It is the three-dimensional appearance diagram of the utility model.
[0011] Figure 2 It is the structure schematic diagram of the utility model after the outer shell body is removed. SPECIFIC EMBODIMENT
[0012] As shown in Figure 1 and Figure 2 A full-overflow ice cream bucket structure, which comprises an outer shell body 1 and an inner cylinder body 2, the inner cylinder body is composed of a cylinder body itself 2-1 and annular protruding parts 2-2 arranged at the front and rear ends of the cylinder body itself, the annular protruding parts at the front and rear ends of the inner cylinder body are sealingly connected with the inner wall of the outer shell body, the inner wall of the outer shell body and the outer wall of the cylinder body itself form a refrigerant flow channel under the cooperation of the annular protruding parts at the two ends, two side plates 6 are further arranged on the outer wall of the cylinder body itself, the two ends of the side plates are integrated with the two annular protruding parts respectively, the upper end of the side plate is sealingly connected with the inner wall of the outer shell body, and a refrigerant feeding flow channel is formed between the two side plates, the annular protruding part at the rear end of the cylinder body itself is connected with a refrigerant feeding pipe 4, one end of the refrigerant feeding pipe extends into the refrigerant feeding flow channel through the annular protruding part, a plurality of overflow holes 6-1 are sequentially formed on the side plate from left to right, a refrigerant outlet is further formed on the outer wall of the cylinder body itself, the refrigerant outlet is connected with a refrigerant discharging pipe 5, and the refrigerant feeding flow channel is connected with the refrigerant discharging pipe in communication through the overflow holes. The full-overflow structure design is adopted, so that the wall thickness of the inner cylinder body and the outer shell body can be the same, thus in use, the outer wall of the outer shell body can be used as a cooling surface, and the inner wall of the inner cylinder body can also be used as a cooling surface, so that the practical performance is increased.
[0013] As shown in Figure 2The refrigerant outlet is shown at the top of the rear end of the barrel body, and one refrigerant outlet is arranged on the barrel body outside each side plate; the refrigerant feeding pipe is inserted into the refrigerant feeding flow channel by a length of half the length of the side plate.
[0014] As Figure 1 The rear end of the outer shell is provided with an annular positioning and fixing plate 3 which is integrated with the outer shell, five U-shaped grooves 3-1 for mounting and fixing are arranged around the annular positioning and fixing plate, and two semicircular positioning grooves 3-2 are arranged on the outer wall of the annular positioning and fixing plate. The structure has the advantages of simple structure, easy manufacturing and high efficiency.
[0015] The preferred embodiments of the utility model are described above, and the protection scope of the utility model is not limited to the above-mentioned embodiments. Any technical scheme falling within the concept of the utility model belongs to the protection scope of the utility model. It should be noted that, for ordinary technical personnel in the technical field, some improvements and decorations without departing from the principle of the utility model are considered as the protection scope of the utility model.
Claims
1. A structure of an over-flowing ice slush bucket comprising an outer casing (1) and an inner cylinder (2), characterized in that: The inner cylinder is composed of a cylinder body (2-1) and annular protrusions (2-2) arranged at the front and rear ends of the cylinder body, the annular protrusions at the front and rear ends of the inner cylinder are sealingly connected with the inner wall of the outer shell, the inner wall of the outer shell and the outer wall of the cylinder body form a refrigerant flow channel under the cooperation of the annular protrusions at the two ends, two side plates (6) are arranged on the outer wall of the cylinder body, the two ends of the side plates are integrally connected with the two annular protrusions respectively, the upper end of the side plate is sealingly connected with the inner wall of the outer shell, a refrigerant feeding flow channel is formed between the two side plates, the annular protrusion at the rear end of the cylinder body is connected with a refrigerant feeding pipe (4), one end of the refrigerant feeding pipe extends through the annular protrusion and extends into the refrigerant feeding flow channel, a plurality of overflow holes (6-1) are sequentially arranged on the side plate from left to right, a refrigerant outlet is arranged on the outer wall of the cylinder body outside the side plate, the refrigerant outlet is connected with a refrigerant discharging pipe (5), and the refrigerant feeding flow channel is connected with the refrigerant discharging pipe through the overflow holes.
2. The overfilling ice cream bucket structure according to claim 1, wherein: The refrigerant outlet is arranged at the top of the rear end of the cylinder body, and one refrigerant outlet is arranged on the outer wall of the cylinder body outside each side plate.
3. The overfilling ice cream bucket structure according to claim 1, wherein: The refrigerant feeding pipe extends into the refrigerant feeding flow channel by half the length of the side plate.
4. The overfilling ice cream bucket structure according to claim 1, wherein: The rear end of the outer shell is provided with an annular positioning and fixing plate (3) integrally connected therewith, five U-shaped grooves (3-1) for mounting and fixing are arranged around the annular positioning and fixing plate, and two semicircular positioning grooves (3-2) are arranged on the outer wall of the annular positioning and fixing plate.