Evaporation assembly and ice-lolly maker
By installing an evaporation assembly with spiral tubes and extension tubes on the evaporator, the problem of low evaporator refrigeration efficiency is solved, achieving more efficient heat exchange and refrigeration effect.
Patent Information
- Application Number
- CN202423075731.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-12
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-12
AI Technical Summary
In existing refrigeration equipment with evaporators, the cooling medium can only absorb heat from one side of the evaporator because the delivery pipe is bent and located on the periphery of the evaporator. This results in low refrigeration efficiency.
An evaporation assembly is used, including an evaporator and a tube assembly. The evaporator consists of a support part and a main body part. The main body part and the support assembly include a spiral tube that surrounds the main body part and contacts the outer surface of the main body part. The tube assembly is used to transport the cooling medium and is connected to the spiral tube through an extension tube to increase the contact area and improve the heat exchange efficiency.
By increasing the contact area between the tube assembly and the evaporator, the refrigeration efficiency is improved, resulting in faster heat exchange and a more efficient refrigeration effect.
Smart Images

Figure CN223537848U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of evaporator technology, and in particular to an evaporation component and an ice pop machine. Background Technology
[0002] An evaporator is a common refrigeration device used in many fields, such as air conditioners and popsicle machines. Its principle is to utilize the fact that liquid low-temperature refrigerant is easy to evaporate under low pressure, turning into vapor and absorbing the heat of the medium being cooled, thereby achieving the purpose of refrigeration.
[0003] In refrigeration equipment (such as air conditioners and popsicle machines), the evaporator is usually used in conjunction with a pipe that transports the cooling medium. The pipe is curved and located on the outer side of the evaporator. When working, the cooling medium transported along the pipe absorbs the heat conducted by the evaporator through the wall thickness of the pipe that is in contact with the evaporator, thereby reducing the temperature of the evaporator and achieving a cooling effect.
[0004] However, because the delivery pipe is bent and located on the periphery of one side of the evaporator, the cooling medium can only absorb heat from one side of the evaporator, resulting in low cooling efficiency and inconvenience. Utility Model Content
[0005] To address the aforementioned technical problems, this utility model provides an evaporation component and an ice pop machine that can improve refrigeration efficiency.
[0006] The technical problem solved by this utility model embodiment is addressed by the following technical solution:
[0007] An evaporation assembly includes an evaporator and a tube assembly. The evaporator includes a support portion and at least two main body portions. The at least two main body portions are connected to the support portion and spaced apart. Each main body portion has a receiving cavity communicating with the support portion for accommodating a component to be cooled. The tube assembly includes at least one series tube and at least two spiral tubes. The two ends of the series tube are respectively connected to two adjacent spiral tubes. One spiral tube surrounds one of the main body portions. The tube assembly is used to transport a cooling medium.
[0008] In some embodiments, the spiral tube includes a planar portion that abuts against the outer surface of the main body portion, and the cross-sectional shape of the spiral tube includes a D-shape or a square shape.
[0009] In some embodiments, the outer periphery dimension of the support portion is larger than the periphery dimension of the main body portion.
[0010] In some embodiments, the main body has an open end, a closed end, and a receiving cavity. With the direction from the closed end toward the open end as a first direction, the main body has a protrusion formed by protruding a predetermined length from the bottom of the receiving cavity along the first direction, and the protrusion has a groove. The tube assembly further includes an extension tube, which communicates with the spiral tube and is disposed in the groove.
[0011] In some embodiments, the evaporator further includes a flange portion connected to the support portion, the flange portion being configured to extend along the first direction.
[0012] The technical problem solved by this utility model embodiment also adopts the following technical solution:
[0013] An ice pop machine includes the aforementioned evaporation component, refrigeration component, and housing. The refrigeration component is connected to the evaporation component, and both the evaporation component and the refrigeration component are housed within the housing. The refrigeration component is used to supply a cooling medium to the evaporation component.
[0014] In some embodiments, the housing has a first opening and a second opening, the first opening being located above the evaporator and the second opening being located on one side of the refrigeration assembly.
[0015] In some embodiments, the evaporation assembly further includes a popsicle box disposed in the evaporator through the first opening. The popsicle box is provided with at least two contour rods, one of which is disposed in a receiving cavity of the main body portion, and the contour rod is used to contain the liquid to be cooled.
[0016] In some embodiments, the popsicle machine also includes an insulated cover that fits over the evaporator.
[0017] In some embodiments, the popsicle machine further includes a control board connected to the refrigeration assembly, the control board being used to control the refrigeration assembly to supply a cooling medium to the evaporation assembly.
[0018] The beneficial effects of this utility model embodiment are as follows: The evaporation assembly provided in this application embodiment includes an evaporator and a tube assembly. The evaporator includes a support portion and at least two main body portions. The at least two main body portions are connected to the support portion and spaced apart. Each main body portion has a receiving cavity communicating with the support portion, and the receiving cavity is used to receive the component to be cooled. The tube assembly includes at least one series tube and at least two spiral tubes. The two ends of the series tube are respectively connected to two adjacent spiral tubes. One spiral tube surrounds one main body portion. The tube assembly is used to transport the cooling medium. With the above structure, the spiral tube surrounds the main body portion of the evaporator, and the flat portion of the spiral tube abuts against the outer surface of the main body portion, which is beneficial to increasing the contact area between the tube assembly and the evaporator. This is beneficial to accelerating the heat exchange inside the component to be cooled when the cooling medium is introduced into the tube assembly, improving the refrigeration efficiency, and making it more convenient to use. Attached Figure Description
[0019] One or more embodiments are illustrated by way of example with reference numerals in the accompanying drawings. These illustrations do not constitute a limitation on the embodiments. Elements with the same reference numerals in the drawings are denoted as similar elements. Unless otherwise stated, the figures in the drawings are not to be limited by scale.
[0020] Figure 1 This is a schematic diagram of the structure of an evaporation assembly according to one embodiment of this application;
[0021] Figure 2 yes Figure 1 Exploded structural diagram;
[0022] Figure 3 yes Figure 1 A sectional view;
[0023] Figure 4 This is a cross-sectional view of a spiral tube;
[0024] Figure 5 This is a schematic diagram of the structure of an evaporation assembly according to another embodiment of this application;
[0025] Figure 6 This is a cross-sectional view of an evaporation assembly according to another embodiment;
[0026] Figure 7 This is another embodiment of the popsicle machine of this application;
[0027] Figure 8 yes Figure 7 Exploded structural diagram;
[0028] Figure 9 This is a simplified structural diagram showing the connection between the refrigeration unit and the evaporation unit;
[0029] In the diagram: 10. Evaporation assembly; 11. Evaporator; 12. Tube assembly;
[0030] 111. Main part; 112. Supporting part; 113. Sidewall part;
[0031] 1111, Open end; 1112, Closed end; 1113, Receiving cavity; 1114, Protrusion; 1115, Groove;
[0032] 121. Spiral tube; 122. Series tube; 123. Extension tube; 124. First connecting tube; 125. Second connecting tube; 1211. Planar part;
[0033] 100. Popsicle machine; 20. Housing; 30. Refrigeration component; 40. Popsicle box; 50. Insulated cover; 60. Control board; 70. Power module;
[0034] 201. First opening; 202. Second opening; 21. Mounting base plate; 22. Shell body;
[0035] 31. Compressor; 32. Condenser; 33. Capillary tube; 34. First dryer filter; 35. Second dryer filter; 36. Air supply unit. Detailed Implementation
[0036] To facilitate understanding of this utility model, a more detailed description is provided below with reference to the accompanying drawings and specific embodiments. It should be noted that when an element is described as "fixed to" another element, it can be directly on the other element, or one or more intermediate elements may exist between them. When an element is described as "connected" to another element, it can be directly connected to the other element, or one or more intermediate elements may exist between them. The terms "upper," "lower," "inner," "outer," "vertical," "horizontal," etc., used in this specification indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0037] Unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the invention. The term "and / or" as used in this specification includes any and all combinations of one or more of the associated listed items.
[0038] Furthermore, the technical features involved in the different embodiments of the present invention described below can be combined with each other as long as they do not conflict with each other.
[0039] like Figure 1-2 As shown, one embodiment of this application provides an evaporation assembly 10, which includes an evaporator 11 and a tube assembly 12. The tube assembly 12 abuts against the evaporator 11 and is used to transport a cooling medium. The cooling medium can absorb the heat conducted by the evaporator 11 through the wall thickness of the tube assembly 12, thereby achieving the purpose of cooling.
[0040] Among them, such as Figure 2 As shown, the evaporator 11 includes a main body 111, which has an open end 1111, a closed end 1112, and a receiving cavity 1113. The open end 1111 and the closed end 1112 are opposite ends of the main body 111, and the receiving cavity 1113 is used to receive the component to be cooled. It is understood that the number of main bodies 111 can be set as needed, and there can be one, two, or more, which is not limited here.
[0041] It should be noted that the open end 1111 of the main body 111 refers to the end of the main body 111 whose receiving cavity 1113 is connected to the outside, and the closed end 1112 of the main body 111 refers to the end of the main body 111 that is closed and not connected to the receiving cavity 1113.
[0042] The part to be cooled can be a liquid to be cooled, a mold used to hold the liquid to be cooled, or something else. In use, the part to be cooled is placed in the receiving cavity 1113, and the cooling medium delivered by the pipe body absorbs the heat of the part to be cooled through the main body 111, so as to achieve the purpose of cooling the part to be cooled.
[0043] In some embodiments, such as Figure 2 As shown, the evaporator 11 also includes a support portion 112, which is connected to the main body 111. The support portion 112 is used to connect to the outside environment to support the main body 111 and prevent the main body 111 from tipping over or directly contacting the ground. In this embodiment, as... Figure 3 In the direction Z shown, the outer periphery of the support portion 112 is larger than the periphery of the main body portion 111. This facilitates the connection of the portion of the support portion 112 extending beyond the outer periphery of the main body portion 111 to the outside. It should be understood that the support portion 112 needs to be hollowed out at the connection point of each main body portion 111 to expose the receiving cavity 1113 of each main body portion 111. That is, the receiving cavity 1113 of each main body portion 111 is connected to the support portion 112 to facilitate the placement of the part to be cooled into each main body portion 111.
[0044] Understandably, if there are at least two main body parts 111, the connection positions between the at least two main body parts 111 and the support part 112 can be selected and set as needed. For example, when there are two main body parts 111, the two main body parts 111 are arranged at intervals along the length or width direction of the support part 112; when there are three main body parts 111, the three main body parts 111 are arranged at equal intervals along the length or width direction of the support part 112, or two of the three main body parts 111 are arranged side by side, and the remaining one is arranged in another row.
[0045] In some embodiments, such as Figure 2-3 As shown, the evaporator 11 also includes a retaining edge 113, which is connected to the support portion 112. The retaining edge 113 is configured to run along a first direction (i.e., Figure 3 Extending in the direction Z shown, the first direction is the direction from the closed end 1112 toward the open end 1111. The baffle portion 113 helps reduce the risk of the liquid to be cooled flowing out from the edge of the support portion 112 when the liquid to be cooled is placed into the receiving cavity 1113. In this embodiment, the baffle portion 113 is in the shape of a frame to facilitate surrounding the four perimeters of the support portion 112.
[0046] In some embodiments, such as Figure 2-3 As shown, the tube assembly 12 includes a spiral tube 121, which surrounds the main body 111. This allows for a larger contact area with the outer surface of the main body 111, and facilitates the absorption of heat from the main body 111 by the cooling medium inside the spiral tube 121 from more locations, thereby improving the efficiency of heat exchange and enhancing the cooling effect.
[0047] Understandably, the spiral tube 121 is formed by bending a pipe in a spiral manner. The cross-sectional shape of the spiral tube 121 can be D-shaped, O-shaped, or square, and can be selected and set according to needs. In this embodiment, the cross-sectional shape of the spiral tube 121 is D-shaped.
[0048] In some embodiments, such as Figure 4 As shown, the spiral tube 121 includes a flat portion 1211, which abuts against the outer surface of the main body portion 111. That is, the flat portion 1211 and the main body portion 111 are in contact through surface contact. Compared with the spiral tube 121 using an O-shaped circular tube, this method is beneficial to increase the contact area between the spiral tube 121 and the main body portion 111, thereby improving the efficiency of heat exchange and the cooling effect.
[0049] Understandably, the number of spiral tubes 121 varies with the number of main body parts 111. That is, if there are two main body parts 111, there are two spiral tubes 121; if there are three main body parts 111, there are three spiral tubes 121, and so on. Each pair of spiral tubes 121 can be independent and not connected, in which case cooling medium needs to be supplied to each spiral tube 121 independently; or they can be interconnected, in which case cooling medium only needs to be supplied to one of the spiral tubes 121.
[0050] In some embodiments, such as Figure 2 As shown, the pipe assembly 12 also includes at least one series pipe 122, and at least two spiral pipes 121, with each end of the series pipe 122 connected to two adjacent spiral pipes 121. When cooling medium is supplied to the first or last of the plurality of spiral pipes 121 interconnected by the series pipe 122, the cooling medium is transported along the transport channel formed by the components between the plurality of spiral pipes 121 and the plurality of series pipes 122, thereby realizing heat exchange of the cooling medium on the main body 111 surrounded by the plurality of spiral pipes 121, so as to achieve cooling of the plurality of main body 111.
[0051] In some embodiments, such as Figure 5-6 As shown, the tube assembly 12 also includes an extension tube 123, which communicates with the spiral tube 121. The main body 111 has a cavity bottom of the receiving cavity 1113 along a first direction (i.e., Figure 6 The protrusion 1114, extending a predetermined length in the direction Z, is provided with a groove 1115, and the extension tube 123 is disposed within the groove 1115. This facilitates simultaneous heat exchange between the outer and inner layers of the component to be cooled, thereby improving cooling efficiency. It is understood that when cooling medium is introduced into the tube assembly 12, because the extension tube 123 is placed within the groove 1115, the cooling medium can absorb heat from the component to be cooled around the protrusion 1114 through the extension tube 123, thereby accelerating heat exchange in the inner layer of the component and improving cooling efficiency.
[0052] For ease of understanding, let's take the liquid to be cooled as an example. Since the protrusion 1114 is formed by protruding a predetermined length from the bottom of the cavity 1113, the liquid still surrounds the protrusion 1114. When the cooling medium is delivered into the tube assembly 12, the cooling medium can exchange heat with the outer periphery of the cavity 1113 through the spiral tube 121, and at the same time, it can exchange heat with the liquid around the protrusion 1114 through the extension tube 123. Compared with the method of only setting the spiral tube 121 for the liquid, the efficiency of heat exchange is improved.
[0053] It should be understood that when only the spiral tube 121 is used for heat exchange, the outer layer of liquid in the receiving cavity 1113, which is closer to the spiral tube 121, is frozen into ice first, while the inner layer of liquid remains liquid. In this case, the cooling medium continues to exchange heat through the solidified outer ice layer, resulting in low cooling efficiency. However, by simultaneously using the spiral tube 121 and the extension tube 123, heat exchange can be performed on both the outer and inner layers of liquid simultaneously, which improves the efficiency of heat exchange and enhances the cooling effect.
[0054] In some embodiments, such as Figure 5-6 As shown, the number of extension tubes 123 can be set as needed. For example, one, two, or more extension tubes 123 can be provided on a spiral tube 121, and the number of protrusions 1114 corresponding to the main body 111 surrounded by the spiral tube 121 should also be increased accordingly. Of course, when the number of spiral tubes 121 is at least two, extension tubes 123 can be connected to each spiral tube 121 as needed.
[0055] In some embodiments, such as Figure 5-6 As shown, the pipe assembly 12 also includes a first connecting pipe 124 and a second connecting pipe 125. One end of the first connecting pipe 124 is connected to the first spiral pipe 121 among a plurality of interconnected spiral pipes 121, and the other end of the first connecting pipe 124 is used to connect to the output end of the device supplying the cooling medium. One end of the second connecting pipe 125 is connected to the last spiral pipe 121 among a plurality of interconnected spiral pipes 121, and the other end of the second connecting pipe 125 is used to connect to the input end of the device supplying the cooling medium. In this case, the end of the first connecting pipe 124 that is connected to the output end of the device supplying the cooling medium is the input end of the pipe assembly 12, and the end of the second connecting pipe 125 that is connected to the input end of the device supplying the cooling medium is the output end of the pipe assembly 12.
[0056] The evaporation assembly 10 in the above embodiment, since the spiral tube 121 surrounds the main body 111 of the evaporator 11, compared with the method of setting the conveying pipe for conveying the cooling medium on one side of the evaporator 11, is beneficial to increase the contact area between the tube assembly 12 and the evaporator 11, and is beneficial to accelerate the heat exchange inside the component to be cooled when the cooling medium is introduced into the tube assembly 12, thereby improving the refrigeration efficiency and making it more convenient to use.
[0057] like Figure 7-8 As shown, another embodiment of this application provides an ice pop machine 100, which includes the evaporation component 10 in the above embodiment. The ice pop machine 100 also includes a housing 20 and a cooling component 30, which is connected to the evaporation component 10. Both the evaporation component 10 and the cooling component 30 are housed within the housing 20, and the cooling component 30 is used to supply a cooling medium to the evaporation component 10.
[0058] In some embodiments, such as Figure 7-8 As shown, the housing 20 has a first opening 201 and a second opening 202. The first opening 201 is located above the evaporator 11, and the second opening 202 is located on one side of the refrigeration assembly 30. In this embodiment, the housing 20 includes a detachably connected mounting base plate 21 and a housing body 22. Both the refrigeration assembly 30 and the evaporation assembly 10 are mounted on the mounting base plate 21, and the housing body 22 has the first opening 201 and the second opening 202.
[0059] In some embodiments, such as Figure 7-8 As shown, the refrigeration assembly 30 includes a compressor 31, a condenser 32, and a capillary tube 33. The output end of the compressor 31 is connected to the input end of the condenser 32, the output end of the condenser 32 is connected to one end of the capillary tube 33, the other end of the capillary tube 33 is connected to the input end of the tube assembly 12, and the output end of the tube assembly 12 is connected to the input end of the compressor 31.
[0060] like Figure 9 As shown, Figure 9 A schematic diagram of the connection between the refrigeration assembly 30 and the evaporation assembly 10 is shown. When the refrigeration switch is turned on, the compressor 31 starts to work. The cooling medium passes through the condenser 32 and then through the capillary tube 33 before entering from the inlet end of the tube assembly 12. The cooling medium flows through multiple spiral tubes 121 and extension tubes 123 before exiting from the outlet end of the tube assembly 12 and returning to the compressor 31, thus completing one refrigeration cycle. As the cooling medium flowing through the tube assembly 12 exchanges heat with the main body 111 of the evaporator 11, the components to be cooled, housed in the receiving cavity 1113, will gradually be frozen.
[0061] In some embodiments, such as Figure 9 As shown, the refrigeration assembly 30 also includes a first dryer filter 34, which is connected between the capillary tube 33 and the condenser 32. The first dryer filter 34 is used to filter out the moisture mixed in with the cooling medium output from the condenser 32 to ensure that dry cooling medium is delivered to the capillary tube 33.
[0062] In some embodiments, such as Figure 9 As shown, the refrigeration assembly 30 also includes a second dryer filter 35, which is connected between the input end of the compressor 31 and the output end of the pipe assembly 12. The second dryer filter 35 is used to dry the cooling medium output from the pipe assembly 12 so that the dried cooling medium can be delivered to the compressor 31.
[0063] In some embodiments, such as Figure 8As shown, the cooling assembly 30 also includes an air supply component 36, which is disposed adjacent to the condenser 32 and located at the second opening 202. The air supply component 36 is used to dissipate heat from the condenser 32. In this embodiment, the air supply component 36 is a fan.
[0064] In some embodiments, the popsicle machine 100 further includes an insulation element (not shown), which covers the evaporation assembly 10. The insulation element reduces the impact of the external high-temperature environment on the cooling medium inside the evaporation assembly 10, thereby improving refrigeration efficiency. In this embodiment, the insulation element is formed by foaming with a foaming agent.
[0065] In some embodiments, such as Figure 8 As shown, the popsicle machine 100 also includes a popsicle box 40, which is disposed on the evaporator 11 through a first opening 201. The popsicle box 40 is provided with at least two shaped rods 41, one of which is disposed in a receiving cavity 1113 of a main body 111. The shaped rod 41 is used to contain the liquid to be cooled. In this embodiment, the shape of the shaped rod 41 is similar to that of a popsicle, so that when the liquid to be cooled is contained in the shaped rod and frozen into a popsicle under the action of the evaporation assembly 10, it is convenient to use. The popsicle box 40 is provided on the evaporator 11, which facilitates the direct making of popsicles in the popsicle box 40. After the popsicles are made, the popsicle box 40 can be removed for cleaning.
[0066] In some embodiments, such as Figure 8 As shown, the popsicle machine 100 also includes an insulation cover 50, which covers the insulation box to reduce the interference of the external temperature when the evaporation component 10 cools the popsicle box 40, thereby improving the cooling efficiency.
[0067] In some embodiments, such as Figure 8 As shown, the popsicle machine 100 also includes a control board 60, which is connected to the refrigeration component 30. The control board 60 is used to control the refrigeration component 30 to supply cooling medium to the evaporation component 10.
[0068] In some embodiments, such as Figure 8 As shown, the popsicle machine 100 also includes a power module 70, which is located inside the housing 20 and is connected to the control board 60.
[0069] When in use, first place the popsicle box 40 inside the evaporator 11, and pour the liquid to be frozen into the popsicle box 40. After the liquid rises to the preset height, insert the popsicle sticks, cover with the heat preservation cover 50, and turn on the refrigeration. The control board 60 will control the refrigeration component 30 to work and supply the cooling medium to the evaporation component 10. The evaporation component 10 will cool the liquid to be cooled until the liquid to be cooled in the popsicle box 40 is frozen into popsicles.
[0070] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the description and drawings of this utility model, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. An evaporation assembly, characterized in that, include: An evaporator includes a support portion and at least two main body portions, the at least two main body portions being connected to the support portion and spaced apart, each main body portion having a receiving cavity communicating with the support portion, the receiving cavity being used to receive a component to be cooled; A pipe assembly includes at least one series pipe and at least two helical pipes, the two ends of the series pipe being connected to two adjacent helical pipes respectively, one of the helical pipes being wrapped around one of the main body portions, the pipe assembly being used to transport a cooling medium.
2. The evaporation assembly according to claim 1, characterized in that, The spiral tube includes a planar portion that abuts against the outer surface of the main body portion, and the cross-sectional shape of the spiral tube includes a D-shape or a square shape.
3. The evaporation assembly according to claim 1, characterized in that, The outer periphery dimension of the support portion is larger than the periphery dimension of the main body portion.
4. The evaporation assembly according to any one of claims 1-3, characterized in that, The main body has an open end, a closed end, and a receiving cavity. With the direction from the closed end to the open end as the first direction, the main body is provided with a protrusion that extends from the bottom of the receiving cavity along the first direction by a predetermined length, and the protrusion is provided with a groove. The tube assembly also includes an extension tube, which is connected to the spiral tube and is disposed within the groove.
5. The evaporation assembly according to claim 4, characterized in that, The evaporator further includes a flange portion connected to the support portion, the flange portion being configured to extend along the first direction.
6. An ice pop machine, characterized in that, It includes an evaporation assembly, a refrigeration assembly, and a housing as described in any one of claims 1-5, wherein the refrigeration assembly is connected to the evaporation assembly, both the evaporation assembly and the refrigeration assembly are housed within the housing, and the refrigeration assembly is used to supply a cooling medium to the evaporation assembly.
7. The popsicle machine according to claim 6, characterized in that, The housing has a first opening and a second opening, the first opening being located above the evaporator and the second opening being located on one side of the refrigeration assembly.
8. The popsicle machine according to claim 7, characterized in that, It also includes an ice pop box, which is disposed in the evaporator through the first opening. The ice pop box is provided with at least two contour rods, one of which is disposed in a receiving cavity of the main body, and the contour rod is used to contain the liquid to be cooled.
9. The popsicle machine according to claim 7, characterized in that, It also includes an insulation cover that fits onto the evaporator.
10. The popsicle machine according to any one of claims 6-9, characterized in that, It also includes a control board, which is connected to the refrigeration assembly and is used to control the refrigeration assembly to supply cooling medium to the evaporation assembly.