Snowflake smoothie machine convenient to disassemble and assemble

By forming a mounting port on the side of the casing that is larger than the evaporator assembly, and by using a rotating connection between the encapsulation component and the evaporator assembly, the problem of difficult installation and disassembly of the evaporator assembly is solved, enabling rapid disassembly and efficient assembly.

CN223869552UActive Publication Date: 2026-02-03ZHONGSHAN DONLIM WEILI ELECTRICAL APPLIANCES CO LTD
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Patent Information

Application Number
CN202520529376.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2026-02-03
Estimated Expiration
2035-03-24

AI Technical Summary

Technical Problem

In existing slush machines, the installation and disassembly of the evaporator assembly are difficult, affecting assembly efficiency.

Method used

An installation port larger than the evaporator assembly is formed on the side of the casing, and a package is used to rotatably connect with the evaporator assembly. Through the cooperation between the package and the side of the casing, the evaporator assembly can be quickly installed and removed.

Benefits of technology

It enables rapid assembly and disassembly of the evaporator assembly within the cooling chamber of the casing, saving operation time and improving assembly efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of refrigeration, in particular to a snowflake smoothie machine convenient to disassemble and assemble. The snowflake smoothie machine convenient to disassemble and assemble comprises a machine shell and an evaporator assembly. A refrigeration cavity is formed in the machine shell, and the evaporator assembly is installed in the refrigeration cavity. A mounting opening is formed in one side of the machine shell and communicates with the refrigerating cavity, and the size of the mounting opening is larger than that of the evaporator assembly. A packaging part is installed on one side of the machine shell and connected with the installation opening, and one end of the evaporator assembly penetrates through the installation opening and is rotationally connected with the packaging part. According to the utility model, the evaporator assembly can be quickly disassembled and assembled in the refrigeration cavity of the machine shell, and the assembling efficiency of the evaporator assembly in the refrigeration cavity of the machine shell is improved.
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Description

Technical Field

[0001] This utility model relates to the field of refrigeration technology, and in particular to a snowflake smoothie machine that is easy to assemble and disassemble. Background Technology

[0002] A snowflake slush machine is a type of ice maker, and its internal casing typically includes a refrigeration system and a snow-making system. The snow-making system contains a drip tray and an evaporator assembly located above the drip tray. The evaporator assembly exchanges heat with the liquid in the drip tray to form an ice layer on its outer surface. Then, using an ice scraper in conjunction with the evaporator assembly, the ice layer on the outer surface of the evaporator assembly is scraped off, completing the preparation of snowflake-like slush.

[0003] In existing slush ice machines, the evaporator assembly can be directly embedded into the inner wall of the freezing cylinder of the machine casing and secured with bolts and other fasteners. However, to ensure the installation stability of the evaporator assembly, the inner wall of the freezing cylinder must match the shape and size of the evaporator assembly. When installing the evaporator assembly, the limited operating space inside the machine casing makes the installation and disassembly of the evaporator assembly difficult, affecting the assembly efficiency of the evaporator assembly. Utility Model Content

[0004] To address the shortcomings of existing technologies, this invention provides a conveniently assemble-and-disassemble snowflake smoothie machine that enables rapid assembly and disassembly of the evaporator assembly within the cooling chamber of the casing, thereby improving the assembly efficiency of the evaporator assembly within the cooling chamber.

[0005] To solve the above-mentioned technical problems, this utility model provides a conveniently assembled and disassembled shaved ice machine, comprising:

[0006] A housing, wherein a cooling chamber is provided inside the housing;

[0007] An evaporator assembly is installed in the refrigeration chamber; a mounting port is formed on one side of the housing, the mounting port is connected to the refrigeration chamber, and the size of the mounting port is larger than the size of the evaporator assembly;

[0008] A package is installed on one side of the housing. The package is connected to the mounting port. One end of the evaporator assembly passes through the mounting port and is rotatably connected to the package.

[0009] As an improvement to the above solution, a connecting boss is formed on the side of the package facing the housing, and the connecting boss is fitted into the mounting port;

[0010] Alternatively, a connecting groove is formed on the side wall of the housing opposite to the cooling cavity, the mounting port is located inside the connecting groove, and the package is embedded in the connecting groove.

[0011] As an improvement to the above solution, the package has a first connecting portion, and the housing has a second connecting portion on the side wall away from the cooling cavity, and the first connecting portion and the second connecting portion are detachably connected.

[0012] As an improvement to the above solution, the evaporator assembly includes an evaporator cylinder, and a sealing groove is formed on the side of the encapsulation member facing the housing. The end of the evaporator cylinder facing the encapsulation member is installed in the sealing groove.

[0013] The evaporator cylinder has a first rotating shaft at one end facing the encapsulation component, and the encapsulation groove is provided with a first bearing. The first rotating shaft is rotatably connected to the encapsulation component through the first bearing.

[0014] As an improvement to the above solution, a second rotating shaft is formed at one end of the evaporator cylinder away from the encapsulation component, and a bearing seat is formed on the other side of the housing. The bearing seat is provided with a second bearing, and the second rotating shaft is rotatably connected to the second bearing.

[0015] As an improvement to the above solution, a positioning element is provided on the other outer wall of the housing, and the end of the second rotating shaft faces the positioning element.

[0016] As an improvement to the above solution, the second rotating shaft is rotatably connected to a refrigerant pipe, one end of the positioning member is detachably connected to the housing, and the other end of the positioning member is snapped into the outer wall of the refrigerant pipe.

[0017] As an improvement to the above solution, the evaporator assembly further includes a liquid receiving tray, a first connecting groove is formed at the lower end of the encapsulation component, and a second connecting groove is formed on the inner wall surface of the other side of the housing. The liquid receiving tray is connected to the first connecting groove and the second connecting groove.

[0018] The top walls of the first connecting groove and the second connecting groove are located inside the outer side of the evaporator cylinder.

[0019] As an improvement to the above solution, a first seal is provided between the evaporator assembly and the encapsulation component, and a second seal is provided between the evaporator assembly and the inner wall surface of the other side of the housing.

[0020] As an improvement to the above solution, the evaporator assembly has a third connecting portion at its end, and both the first seal and the second seal have a fourth connecting portion, wherein the third connecting portion and the fourth connecting portion are detachably connected.

[0021] Implementing this utility model has the following beneficial effects:

[0022] According to this embodiment, the easy-to-assemble and disassemble snow slush machine has an installation port on the side of the casing that is larger than the evaporator assembly. When installing the evaporator assembly, the evaporator assembly can be inserted into the installation port using a sealing component, and the installation port can be sealed by the sealing component to complete the installation of the evaporator assembly. When the evaporator assembly needs to be maintained, it is only necessary to disconnect the connection between the sealing component and the side of the casing, and remove the sealing component and the evaporator assembly from the installation port out of the refrigeration chamber to complete the removal of the evaporator assembly.

[0023] Furthermore, by rotatably connecting the package and the evaporator assembly into a single structure, and utilizing the mounting port on the side of the package and the housing, the evaporator assembly can be quickly assembled and disassembled in the housing's cooling chamber, effectively saving operation time during the assembly and disassembly of the evaporator assembly and improving the assembly efficiency of the evaporator assembly in the housing's cooling chamber. Attached Figure Description

[0024] Figure 1 This is a three-dimensional structural diagram of a snowflake smoothie machine according to one embodiment of the present invention;

[0025] Figure 2 This is an exploded structural diagram of the connection between the package and the housing in one embodiment of this utility model;

[0026] Figure 3 This is an exploded structural diagram of the connection between the package and the evaporator assembly in one embodiment of the present invention;

[0027] Figure 4 This is an exploded structural diagram of the connection between the evaporator assembly and the outer side of the casing in one embodiment of this utility model;

[0028] Figure 5 This is a schematic diagram of the main structure of the refrigerant pipe in one embodiment of this utility model;

[0029] Figure 6 This is a cross-sectional view of the connection between the package, the evaporator assembly, and the housing in one embodiment of the present invention.

[0030] Figure 7 yes Figure 6 A magnified structural diagram of point A in the middle. Detailed Implementation

[0031] To make the objectives, technical solutions, and advantages of this utility model clearer, the following will describe this utility model in further detail with reference to the accompanying drawings. It is hereby declared that the terms "up," "down," "left," "right," "front," "back," "inner," and "outer," etc., appearing or about to appear in this document, are based solely on the accompanying drawings and are not intended to specifically limit this utility model.

[0032] This utility model of a conveniently disassembled snowflake smoothie machine enables the rapid disassembly and assembly of the evaporator assembly 2 within the cooling chamber 11 of the casing 1, effectively saving operation time during disassembly and assembly of the evaporator assembly 2 and improving the assembly efficiency of the evaporator assembly 2 within the cooling chamber 11 of the casing 1.

[0033] In one specific embodiment of this utility model, such as Figure 1 and Figure 2 As shown, the easy-to-assemble and disassemble slush machine includes a housing 1 and an evaporator assembly 2. A cooling chamber 11 is provided inside the housing 1, and the evaporator assembly 2 is installed in the cooling chamber 11. A mounting port 12 is formed on one side of the housing 1, communicating with the cooling chamber 11. The size of the mounting port 12 is larger than the size of the evaporator assembly 2. A sealing member 3 is installed on one side of the housing 1, connecting to the mounting port 12. One end of the evaporator assembly 2 passes through the mounting port 12 and is rotatably connected to the sealing member 3.

[0034] According to this embodiment, the easy-to-assemble and disassemble snow slush machine has an installation port 12 on the side of the housing 1 that is larger than the evaporator assembly 2. When installing the evaporator assembly 2, the encapsulation 3 can be used to insert the evaporator assembly 2 into the installation port 12, and the encapsulation 3 can be used to seal the installation port 12 to complete the installation of the evaporator assembly 2. When the evaporator assembly 2 needs to be maintained, it is only necessary to disconnect the connection between the encapsulation 3 and the side of the housing 1, and remove the encapsulation 3 and the evaporator assembly 2 from the installation port 12 out of the refrigeration chamber 11 to complete the removal of the evaporator assembly 2.

[0035] Furthermore, by rotatably connecting the encapsulation component 3 and the evaporator assembly 2 into an integral structure, and by utilizing the mounting port 12 on the side of the housing 1 to cooperate with the encapsulation component 3, the evaporator assembly 2 can be quickly disassembled and assembled in the cooling chamber 11 of the housing 1, effectively saving the operation time during the disassembly and assembly of the evaporator assembly 2 and improving the assembly efficiency of the evaporator assembly 2 in the cooling chamber 11 of the housing 1.

[0036] As an optional embodiment, such as Figure 2 As shown, the mounting port 12 preferably forms a U-shaped slot structure. When the evaporator assembly 2 is cylindrical, the bottom arc diameter of the U-shaped slot is larger than the diameter of the evaporator assembly 2, so as to ensure that the evaporator assembly 2 can be embedded into the refrigeration chamber 11 from the U-shaped slot, or removed from the refrigeration chamber 11 through the U-shaped slot, thus ensuring convenient installation of the evaporator assembly 2.

[0037] In this embodiment, to improve the accuracy of the evaporator assembly 2 installation within the refrigeration cavity 11, the following connection methods can be used between the encapsulation 3 and the mounting port 12:

[0038] The first connection method, such as Figure 2 and Figure 3As shown, a connecting boss 31 is formed on the side of the encapsulation 3 facing the housing 1. The connecting boss 31 is fitted into the mounting port 12. When assembling the evaporator assembly 2 into the refrigeration chamber 11 using the encapsulation 3, the connecting boss 31 can be fitted into the mounting port 12 to enclose the mounting port 12 with the encapsulation 3, preventing the evaporator assembly 2 from being exposed. The positioning and guiding function of the connecting boss 31 ensures that the encapsulation 3 is accurately embedded in the mounting port 12, thereby preventing the evaporator assembly 2 from shifting during installation and reducing installation deviations of the evaporator assembly 2 when the encapsulation 3 embeds the evaporator assembly 2 into the refrigeration chamber 11.

[0039] In the second connection method, a connecting groove (not shown in the figure) is formed on the side wall of the housing 1 facing away from the refrigeration cavity 11. The mounting port 12 is located inside the connecting groove, and the encapsulation 3 is embedded in the connecting groove. When assembling the evaporator assembly 2 into the refrigeration cavity 11 using the encapsulation 3, the edge of the encapsulation 3 can be embedded into the inner wall of the connecting groove to encapsulate the mounting port 12. By utilizing the positioning and guiding effect of the inner wall of the connecting groove on the edge of the encapsulation 3, it is ensured that the relative position between the encapsulation 3 and the mounting port 12 does not deviate too much, thus ensuring the relative position of the evaporator assembly 2 in the refrigeration cavity 11 and reducing the installation deviation of the evaporator assembly 2.

[0040] Specifically, the connection between the package 3 and the mounting port 12 is preferably the first connection method.

[0041] In this embodiment, as Figure 2 As shown, the encapsulation component 3 has a first connecting portion 32, and the side wall of the housing 1 opposite to the cooling cavity 11 has a second connecting portion 14. The first connecting portion 32 and the second connecting portion 14 are detachably connected. Therefore, after the encapsulation component 3 is installed in the mounting port 12, the first connecting portion 32 and the second connecting portion 14 can cooperate to fix the encapsulation component 3 to the side wall of the housing 1, further improving the stability of the encapsulation component 3 and the evaporator assembly 2 installed in the housing 1. At the same time, it ensures that the encapsulation component 3 can be easily removed from the side wall of the housing 1, facilitating maintenance of the evaporator assembly 2.

[0042] In one embodiment, such as Figure 2 As shown, the first connecting part 32 is a connecting through hole formed on the outer wall of the package 3, and the second connecting part 14 is a connecting post formed on the side wall of the housing 1. A threaded hole is formed in the connecting post. When the package 3 is fixedly installed on the side wall of the housing 1, the connecting through hole can be aligned with the threaded hole in the connecting post. Then, the package 3 can be locked to the side wall of the housing 1 using fasteners such as bolts or studs, so as to realize the threaded connection of the package 3 to the housing 1.

[0043] In another embodiment, the first connecting part 32 is a buckle formed on the outer wall of the package 3, and the second connecting part 14 is a slot formed on the side wall of the housing 1. When the package 3 is fixedly installed on the side wall of the housing 1, the buckle can be snapped into the corresponding slot, and the package 3 can be locked to the side wall of the housing 1 by the buckle and slot cooperation, so as to realize the buckle connection between the package 3 and the housing 1.

[0044] Specifically, the preferred method for fixing the package 3 to the housing 1 is a threaded connection to ensure the stability of the connection between the package 3 and the housing 1.

[0045] In embodiments of this utility model, such as Figure 3 As shown, the evaporator assembly 2 includes an evaporator cylinder 21. An encapsulation groove 33 is formed on the side of the encapsulation component 3 facing the housing 1. One end of the evaporator cylinder 21 facing the encapsulation component 3 is installed in the encapsulation groove 33. A first rotating shaft 22 is formed at the end of the evaporator cylinder 21 facing the encapsulation component 3. A first bearing 331 is disposed within the encapsulation groove 33, and the first rotating shaft 22 is rotatably connected to the encapsulation component 3 via the first bearing 331. The encapsulation groove 33 limits the end of the evaporator cylinder 21, while the first bearing 331 rotatably engages with the evaporator cylinder 21, integrating the evaporator cylinder 21 and the encapsulation component 3 into a movable mounting module. This ensures that the evaporator cylinder 21 can be easily assembled into the refrigeration chamber 11 via the mounting port 12, or quickly removed from the refrigeration chamber 11 via the mounting port 12, achieving convenient assembly and disassembly of the evaporator cylinder 21.

[0046] Furthermore, it should be noted that a fixing groove is formed at the outer end of the first rotating shaft 22. The fixing groove is used to engage the spring retainer, so as to limit the first bearing 331 by using the spring retainer and prevent the first bearing 331 or the first rotating shaft 22 from moving laterally.

[0047] Furthermore, such as Figure 3 and Figure 4 As shown, a second rotating shaft 23 is formed at one end of the evaporator cylinder 21 away from the encapsulation 3, and a bearing seat 15 is formed on the other side of the housing 1. The bearing seat 15 is provided with a second bearing 151. The second rotating shaft 23 is rotatably connected to the second bearing 151 so as to further improve the rotational stability of the evaporator cylinder 21 in the refrigeration chamber 11 by utilizing the cooperation between the second bearing 151 and the first bearing 331 in the encapsulation 3.

[0048] Furthermore, it should be noted that the second rotating shaft 23 preferably extends through the other side wall of the housing 1. A driving component can be connected to the other side outer wall of the housing 1. The driving component is connected to the second rotating shaft 23 in a transmission connection so as to drive the evaporator cylinder 21 to rotate relative to the refrigeration chamber 11, thereby improving the heat exchange efficiency between the evaporator cylinder 21 and the liquid in the refrigeration chamber 11.

[0049] In this embodiment, as Figure 3 and Figure 4 As shown, a positioning member 16 is provided on the outer wall of the other side of the second housing 1. The end of the second rotating shaft 23 faces the positioning member 16. The positioning member 16 can axially limit the second rotating shaft 23 to prevent axial displacement of the evaporator cylinder 21 and the second rotating shaft 23 under the action of external force when the snow shaved ice machine moves, which would affect the connection between the drive component and the second rotating shaft 23, thereby ensuring the transmission stability between the second rotating shaft 23 and the drive component.

[0050] Specifically, such as Figure 4 and Figure 5 As shown, the second rotating shaft 23 is rotatably connected to a refrigerant pipe 24. The refrigerant pipe 24 has a protruding end 243 that protrudes outward from the second rotating shaft 23. The refrigerant pipe 24 is used to connect with the refrigeration pipeline in the snow slush machine so that the refrigeration pipeline can input unheated refrigerant liquid into the evaporator through the refrigerant pipe 24, or input refrigerant gas after heat exchange in the evaporator back into the refrigeration pipeline through the refrigerant pipe 24.

[0051] One end of the positioning component 16 is detachably connected to the housing 1, and the other end of the positioning component 16 is engaged with the outer wall surface of the protruding end 243 to ensure the relative position between the positioning component 16 and the second rotating shaft 23, and to ensure the axial limiting effect of the positioning component 16 on the second rotating shaft 23.

[0052] It should be noted that, for example Figure 4 As shown, a threaded protrusion is formed on the outer wall surface of the other side of the housing 1. The positioning member 16 is a plate-shaped structure. One end of the positioning member 16 has a mounting hole 161. A bolt or stud is threaded into the threaded protrusion through the mounting hole 161 to achieve a threaded connection between the positioning member 16 and the housing 1.

[0053] The other end of the positioning member 16 forms a locking hole 162, and the outer wall surface of the protruding end 243 forms a locking groove. The side wall of the locking hole 162 can be locked into the locking groove to realize the locking and fixing of the positioning member 16 and the refrigerant pipe 24.

[0054] It should also be noted that, such as Figure 5 As shown, the protruding end 243 of the refrigerant pipe 24 forms a first inlet 241. The pipe for transporting liquid refrigerant in the refrigeration pipeline is inserted into the interior of the evaporator shell 21 through the first inlet 241 so that the unexchanged liquid refrigerant is input into the evaporator. The end of the refrigerant pipe 24 located inside the evaporator shell 21 forms a second inlet 242, and the protruding end 243 of the refrigerant pipe 24 forms a second outlet 244. The second outlet 244 is connected to the pipe for transporting gas refrigerant in the refrigeration pipeline. The gas refrigerant inside the evaporator shell 21, after heat exchange, is input into the refrigerant pipe 24 through the second inlet 242 and returned to the refrigeration pipeline through the second outlet 244 of the refrigerant pipe 24, so that the refrigeration pipeline forms a refrigerant circulation.

[0055] In embodiments of this utility model, such as Figure 2 and Figure 6 As shown, the evaporator assembly 2 also includes a liquid receiving tray 25, which is used to receive and buffer the liquid entering the refrigeration chamber 11. A first connecting groove 251 is formed at the lower end of the encapsulation component 3, and a second connecting groove 252 is formed on the inner wall of the other side of the housing 1. The liquid receiving tray 25 is connected to the first connecting groove 251 and the second connecting groove 252, and the top walls of the first connecting groove 251 and the second connecting groove 252 are located inside the outer side of the evaporator cylinder 21. Furthermore, by utilizing the cooperation of the first connecting groove 251 and the second connecting groove 252, the liquid receiving tray 25 is positioned below the evaporator cylinder 21, ensuring that the outer side of the evaporator cylinder 21 is located inside the liquid receiving tray 25. This ensures that when the evaporator cylinder 21 rotates relative to the refrigeration chamber 11, the evaporator cylinder 21 can maintain contact with the liquid in the liquid receiving tray 25, guaranteeing the heat exchange efficiency between the evaporator cylinder 21 and the liquid.

[0056] In embodiments of this utility model, such as Figure 2 , Figure 3 and Figure 6 As shown, a first sealing element 26 is provided between the evaporator assembly 2 and the encapsulation 3, and a second sealing element 27 is provided between the evaporator assembly 2 and the inner wall surface of the casing 1 on the other side. The first sealing element 26 is used to seal the evaporator assembly 2 and the encapsulation 3 towards the inner wall surface of the refrigeration chamber 11, and to seal the evaporator assembly 2 and the inner wall surface of the casing 1 on the other side. This prevents the liquid or ice in the refrigeration chamber 11 from leaking between the inner wall surface of the evaporator assembly 2 and the encapsulation 3, and also prevents the liquid or ice from leaking between the inner wall surface of the evaporator assembly 2 and the inner wall surface of the casing 1 on the other side, thus ensuring the utilization rate of the liquid.

[0057] Among them, such as Figure 6 and Figure 7 As shown, a third connecting portion 28 is formed at the end of the evaporator assembly 2, and a fourth connecting portion 29 is formed for both the first seal 26 and the second seal 27. The third connecting portion 28 and the fourth connecting portion 29 are detachably connected to ensure the connection stability between the first seal 26, the second seal 27 and the evaporator assembly 2, and to prevent the first seal 26 and the second seal 27 from detaching from the evaporator assembly 2. This ensures the sealing performance of the first seal 26 between the evaporator assembly 2 and the encapsulation 3, as well as the sealing performance of the second seal 27 between the evaporator assembly 2 and the inner wall of the casing 1.

[0058] Specifically, such as Figure 7As shown, the third connecting part 28 is preferably formed on the wall surface on both sides of the evaporator cylinder 21. One of the third connecting part 28 and the fourth connecting part 29 is a snap-fit ​​boss and the other is a snap-fit ​​groove. When assembling the seal and the evaporator cylinder 21, the evaporator cylinder 21 and the seal can be snap-fit ​​connected by the cooperation between the snap-fit ​​boss and the snap-fit ​​groove.

[0059] For example, right-angle bosses 281 are formed on both ends of the evaporator shell 21, and corner grooves 291 are formed on the sealing element. At the same time, slots 282 are formed on the outer walls of the two rotating shafts on both sides of the evaporator shell 21, and snap-fit ​​flanges 292 are formed on the inner ring of the sealing element. When assembling the sealing element, the right-angle bosses 281 and corner grooves 291 can be used to cooperate, and the snap-fit ​​flanges 292 and slots 282 can be used to cooperate, so as to realize the snap-fit ​​connection between the evaporator shell 21 and the sealing element.

[0060] The above description is the preferred embodiment of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this invention, and these improvements and modifications are also considered to be within the protection scope of this utility model.

Claims

1. A conveniently assembled and disassembled shaved ice machine, characterized in that, include: A housing, wherein a cooling chamber is provided inside the housing; An evaporator assembly is installed in the refrigeration chamber; A mounting opening is formed on one side of the housing, the mounting opening is connected to the refrigeration cavity, and the size of the mounting opening is larger than the size of the evaporator assembly; A package is installed on one side of the housing. The package is connected to the mounting port. One end of the evaporator assembly passes through the mounting port and is rotatably connected to the package.

2. The easily assembled and disassembled shaved ice machine according to claim 1, characterized in that, The package has a connecting boss on the side facing the housing, and the connecting boss is fitted into the mounting port; Alternatively, a connecting groove is formed on the side wall of the housing opposite to the cooling cavity, the mounting port is located inside the connecting groove, and the package is embedded in the connecting groove.

3. The easily assembled and disassembled shaved ice machine according to claim 1, characterized in that, The package has a first connecting portion, and the housing has a second connecting portion on the side wall away from the cooling cavity. The first connecting portion and the second connecting portion are detachably connected.

4. The easily assembled and disassembled shaved ice machine according to claim 1, characterized in that, The evaporator assembly includes an evaporator cylinder, and a sealing groove is formed on the side of the encapsulation component facing the housing. One end of the evaporator cylinder facing the encapsulation component is mounted in the sealing groove. The evaporator cylinder has a first rotating shaft at one end facing the encapsulation component, and the encapsulation groove is provided with a first bearing. The first rotating shaft is rotatably connected to the encapsulation component through the first bearing.

5. The easily detachable shaved ice machine according to claim 4, characterized in that, A second rotating shaft is formed at one end of the evaporator cylinder away from the encapsulation component, and a bearing seat is formed on the other side of the housing. A second bearing is provided in the bearing seat, and the second rotating shaft is rotatably connected to the second bearing.

6. The easily detachable shaved ice machine according to claim 5, characterized in that, A positioning element is provided on the outer wall of the other side of the housing, and the end of the second rotating shaft faces the positioning element.

7. The easily detachable shaved ice machine according to claim 6, characterized in that, The second rotating shaft is rotatably connected to a refrigerant pipe. One end of the positioning member is detachably connected to the housing, and the other end of the positioning member is engaged with the outer wall of the refrigerant pipe.

8. The easily detachable shaved ice machine according to claim 4, characterized in that, The evaporator assembly also includes a liquid receiving tray, a first connecting groove is formed at the lower end of the encapsulation component, and a second connecting groove is formed on the inner wall surface of the other side of the housing. The liquid receiving tray is connected to the first connecting groove and the second connecting groove. The top walls of the first connecting groove and the second connecting groove are located inside the outer side of the evaporator cylinder.

9. The easily assembled and disassembled shaved ice machine according to claim 1, characterized in that, A first seal is provided between the evaporator assembly and the encapsulation component, and a second seal is provided between the evaporator assembly and the inner wall surface of the other side of the housing.

10. The easily detachable shaved ice machine according to claim 9, characterized in that, The evaporator assembly has a third connecting portion at its end, and both the first seal and the second seal have a fourth connecting portion. The third connecting portion and the fourth connecting portion are detachably connected.