Ice lolly maker

By adopting an ice-rotating structure design, the problem of manually removing and placing the cover has been solved, making the popsicle machine more convenient to use.

CN223667209UActive Publication Date: 2025-12-16SHENZHEN INTELLIROCKS TECH CO LTD +1
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Patent Information

Application Number
CN202520053497.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-07
Publication Date
2025-12-16
Estimated Expiration
2035-01-07

AI Technical Summary

Technical Problem

The existing popsicle machine's cover requires users to manually remove and find a place to put it, which is inconvenient.

Method used

An ice pop machine was designed, which adopts a rotatable cover structure. Through the cooperation of the first connecting structure and the second connecting structure, the cover can be rotated on the shell to cover or expose the open opening, thus avoiding the steps of removing and finding the cover.

Benefits of technology

It simplifies user operation and improves ease of use, allowing users to add popsicle liquid directly without removing the cover, thus enhancing the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The ice-lolly machine comprises a machine shell, a machine main body, a first buckling piece and a second buckling piece, the machine shell comprises a shell main body and a shielding cover, the shell main body is provided with an opening, a first avoiding opening and a first connecting structure, and the first connecting structure and the first avoiding opening are located on the two sides of the opening respectively; one end of the shielding cover is provided with a second connecting structure connected with the first connecting structure, and the shielding cover is configured to be capable of rotating relative to the shell main body to shield or expose the opening; the first buckling piece is arranged at the first avoiding opening; the second buckling piece is arranged on the shielding cover, and the second buckling piece and the second connecting structure are located on the two opposite sides of the shielding cover respectively; when the second buckling piece is clamped with the first buckling piece, the shielding cover shields the opening, and when the other end of the shielding cover is subjected to preset acting force, the first buckling piece is separated from the second buckling piece so as to expose the opening. In this way, the shielding cover can be opened to one side of the shell body in the using process, and the shielding cover does not need to be taken down and placed independently.
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Description

TECHNICAL FIELD

[0001] The utility model discloses an ice bar machine. BACKGROUND

[0002] The ice bar machine is a common electric product for preparing ice bars, which usually comprises a shell, an ice bar box, an evaporator and a refrigeration system. The shell is used for accommodating the ice bar box, the evaporator and the refrigeration system. The ice bar box is used for loading ice bar liquid for making ice bars. The evaporator is arranged around the ice bar box. The refrigeration system is used for supplying cooling medium to the evaporator, so that the cooling medium absorbs the heat of the ice bar box through the evaporator, thereby achieving the purpose of freezing the ice bar liquid.

[0003] At present, in order to avoid that the ice bar box is directly exposed to the outside world, the ice bar machines on the market usually set a shielding cover to cover the ice bar box to avoid that the ice bar liquid is polluted by external pollutants. When it is necessary to fill the ice bar liquid or to take out the prepared ice bars, the shielding cover needs to be taken off from the shell. The taken-off shielding cover needs to be placed in a space found by the user. This is not conducive to the operation of the user, thereby causing inconvenience. SUMMARY

[0004] In order to solve the above technical problems, the utility model embodiment provides an ice bar machine which is convenient to use.

[0005] The utility model embodiment solves its technical problems by adopting the following technical scheme:

[0006] An ice bar machine comprises a shell, a machine body, a first buckling member and a second buckling member. The shell comprises a shell body and a shielding cover. The shell body is provided with an open port, a first avoiding port and a first connecting structure. The first connecting structure and the first avoiding port are respectively located on both sides of the open port. One end of the shielding cover is provided with a second connecting structure connected with the first connecting structure. The shielding cover is configured to rotate relative to the shell body under the cooperation of the first connecting structure and the second connecting structure to shield or expose the open port. The machine body is accommodated in the shell. The first buckling member is arranged at the first avoiding port. The second buckling member is arranged on the shielding cover. The second buckling member and the second connecting structure are respectively located on opposite sides of the shielding cover. When the second buckling member passes through the first avoiding port and is clamped with the first buckling member, the shielding cover is buckled on the shell body and shields the open port. When the other end of the shielding cover is subjected to a predetermined force, the first buckling member and the second buckling member are separated, so that the shielding cover rotates relative to the shell body to expose the open port.

[0007] In some embodiments, the first fastening member comprises a first connecting portion and a first fastening portion connected to each other, the first fastening portion is provided with a first inclined surface, the second fastening member comprises a second connecting portion and a second fastening portion connected to each other, the second fastening portion is provided with a second inclined surface; when the cover is closed on the shell main body and covers the opening, the second fastening portion is located on the side of the first fastening portion away from the first connecting portion, and the second inclined surface covers at least part of the first inclined surface in the direction of the first connecting portion towards the first fastening portion.

[0008] In some embodiments, the first connecting structure comprises a first mounting seat and a second mounting seat, the first mounting seat and the second mounting seat are spaced apart, the first mounting seat and the second mounting seat are each provided with a mounting opening, the second connecting structure comprises a connecting shaft, one end of the connecting shaft is inserted into the mounting opening of the first mounting seat, and the other end of the connecting shaft is inserted into the mounting opening of the second mounting seat.

[0009] Alternatively, the first connecting structure comprises a rotating shaft, the second connecting structure comprises a first mounting seat and a second mounting seat spaced apart, the first mounting seat and the second mounting seat are each provided with a mounting opening, one end of the connecting shaft is inserted into the mounting opening of the first mounting seat, and the other end of the connecting shaft is inserted into the mounting opening of the second mounting seat.

[0010] In some embodiments, the cover comprises a cover body, a first connecting block and a second connecting block, the first connecting block and the second connecting block are connected to two sides of the cover body respectively, the first connecting block is provided with the second connecting structure, and the second connecting block and the second fastening member are located on the same side of the cover body, the cover body is used for covering the opening.

[0011] In some embodiments, the shell further comprises a mounting rack, the mounting rack is mounted on the shell main body and located at the opening, wherein the mounting rack is provided with an accommodation opening in communication with the first avoiding opening, and the first fastening member is arranged in the accommodation opening.

[0012] In some embodiments, the shell main body comprises an evaporation assembly, a refrigeration system and an ice bar box set, the ice bar box set is mounted on the mounting rack, the evaporation assembly and the refrigeration system are accommodated in the shell main body and connected to the shell, the evaporation assembly is connected to the ice bar box set, the ice bar box set is exposed through the opening, and the refrigeration system is used for supplying cooling medium to the evaporation assembly to absorb heat of the ice bar box.

[0013] In some embodiments, the mounting frame is provided with a through hole in communication with the open mouth, the ice bar box set comprises at least one ice bar box and a support frame, the support frame is mounted on the mounting frame and abuts against the evaporation assembly through the through hole, and at least one ice bar box is mounted on the support frame.

[0014] In some embodiments, the evaporation assembly comprises a supporting frame, a pipe assembly and at least one evaporator, the supporting frame is connected with the cabinet, at least one evaporator is mounted on the supporting frame, the pipe assembly is connected with the evaporator, the input end of the pipe assembly is connected with the output end of the refrigeration system, and the output end of the pipe assembly is connected with the input end of the refrigeration system.

[0015] In some embodiments, the refrigeration system comprises a compressor, a condenser and a capillary tube, the compressor, the condenser and the capillary tube are all connected with the cabinet, the output end of the compressor is connected with the input end of the condenser, the output end of the condenser is connected with one end of the capillary tube, the other end of the capillary tube is connected with the input end of the evaporation assembly, and the output end of the evaporation assembly is connected with the input end of the compressor.

[0016] In some embodiments, the machine body further comprises a circuit board arranged in the cabinet, the circuit board is connected with the refrigeration system, and the circuit board is used for controlling the refrigeration system to supply cooling medium.

[0017] The ice bar machine provided by the embodiment of the application comprises a cabinet, a machine body, a first buckling member and a second buckling member, the cabinet comprises a cabinet body and a shielding cover, the cabinet body is provided with an open mouth, a first avoiding opening and a first connecting structure, the first connecting structure and the first avoiding opening are respectively located on two sides of the open mouth, one end of the shielding cover is provided with a second connecting structure connected with the first connecting structure, and the shielding cover is configured to rotate relative to the cabinet body to shield or expose the open mouth under cooperation of the first connecting structure and the second connecting structure; the machine body is accommodated in the cabinet; the first buckling member is arranged at the first avoiding opening; the second buckling member is arranged on the shielding cover, and the second buckling member and the second connecting structure are respectively located on two opposite sides of the shielding cover; when the second buckling member passes through the first avoiding opening and is clamped with the first buckling member, the shielding cover is buckled on the cabinet body and shields the open mouth, and when the other end of the shielding cover is subjected to a preset force, the first buckling member and the second buckling member are separated, so that the shielding cover rotates relative to the cabinet body to expose the open mouth. In this way, the shielding cover can be lifted to one side of the cabinet body under the action of the first connecting structure and the second connecting structure, without the need of taking the shielding cover off the cabinet body and then looking for a space for placement, so that the user can conveniently add ice bar liquid through the open mouth, the user experience is improved, and the ice bar machine is convenient to use. BRIEF DESCRIPTION OF DRAWINGS

[0018] One or more embodiments are illustrated by way of example in the figures that form a part of this disclosure and which are shown by way of example, not limitation, in the figures of the accompanying drawings and in which like reference numerals refer to similar elements and in which:

[0019] Figure 1 is a structural schematic diagram of the ice bar machine of one embodiment of the present application;

[0020] Figure 2 is a partial cross-sectional view of Figure 1 ;

[0021] Figure 3 is an exploded view of the structure of Figure 1 ;

[0022] Figure 4 is a cross-sectional view of part of the structure in Figure 1 ;

[0023] Figure 5 is an exploded view of part of the structure in Figure 3 ;

[0024] Figure 6 is an exploded view of part of the structure in Figure 1 ;

[0025] Figure 7 is a schematic diagram of part of the structure in Figure 6 from another perspective;

[0026] Figure 8 is a structural schematic diagram of the mounting frame;

[0027] Figure 9 is a schematic diagram of the connection of the refrigeration system and the evaporation assembly;

[0028] Figure 10 is an exploded view of the evaporation assembly;

[0029] Figure 11 is an exploded view of the structure of the ice bar box group;

[0030] In the figure: 10, ice bar machine; 20, machine shell; 30, machine main body; 40, circuit board; 50, first sealing element; 60, display screen; 70, second sealing element; 80, pressing seat; 90, first buckling element; 100, second buckling element; 120, power module;

[0031] 41, spring button; 91, first connecting part; 92, first buckling part; 921, first inclined surface; 1001, second connecting part; 1002, second buckling part; 10021, second inclined surface;

[0032] 21, shell body; 22, storage box; 23, base; 24, support plate; 25, support rod; 26, shell cover; 27, cover; 28, mounting frame;

[0033] 211, communication port; 212, mounting plate; 213, first protrusion; 214, connecting column; 215, second protrusion; 217, limiting frame; 218, open port; 219, first connecting structure; 2110, recess; 2111, first avoiding port;

[0034] 2121, air hole; 2131, first groove;

[0035] 201, first accommodating cavity; 202, storage cavity; 203, first communication hole; 204, second accommodating cavity; 206, containing port;

[0036] 221, box body; 222, protrusion;

[0037] 2221, connecting hole;

[0038] 261, third protrusion; 2151, second groove;

[0039] 271, second connecting structure; 272, cover body; 273, first connecting block; 274, second connecting block;

[0040] 219a, first mounting seat; 219b, second mounting seat; 219c, mounting port; 271a, rotating shaft;

[0041] 281, through port;

[0042] 32, refrigeration system; 34, evaporation assembly; 36, ice stick box group; 38, electromagnetic valve;

[0043] 321, compressor; 322, condenser; 323, capillary; 324, fan; 325, first dry filter; 326, second dry filter;

[0044] 341, supporting frame; 343, pipe assembly; 342, evaporator; 344, conducting sheet; 345, heat preservation box;

[0045] 3411, mounting opening; 3412, positioning shoulder; 3413, first connecting lug; 34121, first positioning hole;

[0046] 3421, container body; 3422, first protruding edge; 34221, second positioning hole;

[0047] 3431, curved pipe;

[0048] 3451, window; 3452, side plate; 3453, second connecting lug;

[0049] 34521, first through hole; 34522, second through hole;

[0050] 361, support frame; 362, ice bar box; 363, box cover;

[0051] 3611, socket; 3612, support part; 3613, vertical edge part; 3621, box body; 3622, second convex edge; 3631, carrying block. DETAILED DESCRIPTION

[0052] For the convenience of understanding the present application, the present application will be described in more detail below in conjunction with the 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 intervening elements can be present therebetween. When an element is described as "connected to" another element, it can be directly connected to the other element or one or more intervening elements can be present therebetween. The terms "upper", "lower", "inner", "outer", "vertical", "horizontal" and the like used in the specification indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second" and the like are only for the purpose of description and cannot be understood as indicating or implying relative importance.

[0053] Unless otherwise defined, all technical and scientific terms used in the specification are the same as those commonly understood by those skilled in the art to which the present application belongs. The terms used in the specification of the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application. The term "and / or" used in the specification includes any and all combinations of one or more related listed items.

[0054] In addition, the technical features involved in the different embodiments of the present application described below can be combined with each other as long as there is no conflict between them.

[0055] The ice bar machine is an electrical product for making ice bars, which usually has a machine shell and a machine body, and the machine body is housed in the machine shell. The machine shell is used to protect the machine body from direct action of the outside world, and the machine body is the core functional structure required for making ice bars, for example, including a refrigeration system, an ice bar box, and an evaporation assembly, etc., and the corresponding functional structures are set according to the needs.

[0056] As Figures 1-3As shown, the ice bar machine 10 provided by one of the embodiments of the present application comprises a machine shell 20, a machine body 30 and a circuit board 40. The machine body 30 and the circuit board 40 are both accommodated in the machine shell 20, and the machine shell 20 is provided with a separate space for mounting the circuit board 40, so that the circuit board 40 is independent of the machine body 30. In this way, the risk of water droplets generated by condensation of water vapor in the air due to the transfer of cold energy from the machine body 30 to the air in the machine shell 20 falling on the circuit board 40 can be reduced, and the risk of abnormal operation of electrical components on the circuit board 40 due to water droplets can also be reduced.

[0057] Specifically, as shown in Figure 2 and 3 As shown, the machine shell 20 comprises a shell body 21 and a receiving box 22. The shell body 21 is provided with a first accommodating cavity 201, and the receiving box 22 is accommodated in the first accommodating cavity 201 and detachably connected with the shell body 21. As shown in Figure 5 The receiving box 22 is provided with a receiving cavity 202 and a first communication hole 203, and the first communication hole 203 communicates the first accommodating cavity 201 and the receiving cavity 202. The circuit board 40 is accommodated in the receiving cavity 202, and the connecting terminals of the circuit board 40 pass through the first communication hole 203 and are connected with the power module 120 of the ice bar machine 10. In this way, the circuit board 40 is not directly exposed in the first accommodating cavity 201, which is beneficial to reduce the risk of the electrical components on the circuit board 40 being affected by the water droplets generated by condensation of water vapor in the air.

[0058] In some embodiments, as shown in Figure 3 The shell body 21 is provided with a communication port 211, and the machine shell 20 further comprises a mounting plate 212 which is detachably mounted in the communication port 211. The mounting plate 212 is provided with a plurality of air holes 2121, and the plurality of air holes 2121 are used for allowing the air outside the ice bar machine 10 to enter the first accommodating cavity 201.

[0059] In some embodiments, as shown in Figure 3 The machine shell 20 further comprises a base 23 which is detachably connected with the shell body 21, and the machine body 30 is mounted on the side of the base 23 facing the shell body 21, so as to play a protective role for the machine body 30. It can be understood that the material of the base 23 can be set as needed, for example, it can be plastic, metal material or other materials, as long as it can support the machine body 30.

[0060] In some embodiments, as shown in Figure 3As shown, the casing 20 further comprises a support plate 24, the support plate 24 is detachably mounted on the base 23, and the mounting plate 212 is mounted on the end face away from the base 23. The machine body 30 is mounted on the support plate 24, which is more conducive to carrying the machine body 30, and avoids the damage of the base 23 caused by the direct action of the machine body 30 on the base 23. In this embodiment, the support plate 24 is made of metal material, and the strength of the support plate 24 is greater than that of the base 23.

[0061] In some embodiments, as shown in Figure 3 As shown, the casing 20 further comprises a plurality of spaced support rods 25, and the plurality of support rods 25 are respectively detachably connected to the support plate 24 and the shell body 21. The support rods 25 are used to support the shell body 21 to enhance the support strength of the shell body 21, and reduce the risk of deformation of the shell body 21 caused by excessive external force applied to the shell body 21.

[0062] In order to improve the sealing performance of the connection between the storage box 22 and the shell body 21, and reduce the influence of water droplets condensed from water vapor in the air on the circuit board 40, in some embodiments, as shown in Figure 3 and Figure 4 As shown, the ice bar machine 10 further comprises a first sealing member 50, and the first sealing member 50 is annularly arranged on the circuit board 40 and abuts against the shell body 21 and the storage box 22, respectively. In other words, the shell body 21 and the storage box 22 jointly clamp the first sealing member 50, so that the shell body 21 and the storage box 22 are sealed at the joint, which is conducive to isolating the storage cavity 202 from the first accommodating cavity 201. The first sealing member 50 can be a sealing ring, a sealing tape, or other forms, which can be set as needed.

[0063] Further, the ice bar machine 10 further comprises a sealing glue (not shown), and the sealing glue is arranged in the first communication hole 203. The sealing glue is used to fill the first communication hole 203, that is, the sealing glue fills the gap between the connecting terminal of the circuit board 40 and the inner wall surface of the first communication hole 203, so as to isolate the storage cavity 202 from the first accommodating cavity 201, and further reduce the risk of water droplets condensed from water vapor in the first accommodating cavity 201 due to the effect of cold quantity on the electrical elements on the circuit board 40, and improve the stability of the ice bar machine 10.

[0064] In some embodiments, as shown in Figure 4As shown, the shell body 21 is provided with a first protrusion 213 on the side facing the receiving box 22, the first protrusion 213 abuts against the four perimeters of the receiving box 22, wherein the first protrusion 213 is provided with a first groove 2131, the first groove 2131 accommodates the first sealing member 50, so as to further improve the sealing performance of the joint between the shell body 21 and the receiving box 22. It should be understood that the depth of the first groove 2131 should be less than or equal to the thickness of the first sealing member 50, so that the first protrusion 213 and the receiving box 22 clamp the first sealing member 50, and the sealing performance of the joint between the first protrusion 213 and the receiving box 22 is improved under the action of the first sealing member 50.

[0065] It can be understood that the receiving box 22 and the shell body 21 can be connected by bolts or other connecting members, or can be connected by buckles, and of course can also be bonded by glue, and the specific connection mode can be set as needed.

[0066] In some embodiments, the receiving box 22 and the shell body 21 are connected by bolts or other connecting members. Specifically, as shown in Figure 5 As shown, the receiving box 22 includes a box body 221 and a plurality of protrusions 222, the plurality of protrusions 222 are connected with the box body 221 and are spaced apart and distributed around the four sides of the box body 221, and each protrusion 222 is provided with a connecting hole 2221, and the shell body 21 is provided with a plurality of connecting columns 214 on the side facing the receiving box 22, the plurality of connecting columns 214 are annularly arranged around the four sides of the box body 221, and one connecting column 214 and the connecting hole 2221 of one protrusion 222 are connected by bolts or other connecting members, so as to realize the connection between the receiving box 22 and the shell body 21.

[0067] The direction perpendicular to the circuit board 40 and the receiving box 22 at the same time is defined as the first direction Z, as shown in Figure 4 and Figure 5 As shown, along the first direction Z, the side of the shell body 21 away from the circuit board 40 is provided with a second accommodating cavity 204 and a second communication hole (not shown) in communication with the second accommodating cavity 204.

[0068] In some embodiments, as shown in Figure 3 and Figure 4 As shown, the ice stick machine 10 further includes a display screen 60, the display screen 60 is accommodated in the second accommodating cavity 204, and the connecting terminal of the display screen 60 passes through the second communication hole and is connected to the circuit board 40, the display screen 60 is used to display the working condition of the machine body 30, such as the time length of making ice stick, the temperature adjusted by the machine body 30 of the current ice stick machine 10, the working mode of the machine body 30, etc.

[0069] In some embodiments, as shown in Figure 6As shown, the shell 20 further comprises a shell cover 26, which is detachably connected to the shell main body 21 and covers the second accommodating cavity 204. Under the action of the shell cover 26, the display screen 60 is prevented from being directly affected by the outside. At least part of the shell cover 26 is transparent, so that the user can observe the display screen 60 through the shell cover 26, for example, the area of the shell cover 26 directly above the display screen 60 is made of transparent material, or the entire shell cover 26 is made of transparent material.

[0070] In some embodiments, referring again to Figure 4 , the side of the shell main body 21 away from the circuit board 40 is provided with a second protrusion 215, the second protrusion 215 is provided with the second accommodating cavity 204, the side of the shell cover 26 facing the shell main body 21 is provided with a third protrusion 261, the second protrusion 215 and the third protrusion 261 abut to close the second accommodating cavity 204, so that the cooperation between the shell cover 26 and the shell main body 21 can close the second accommodating cavity 204, thereby reducing the risk that the humid air or water droplets condensed in the air from the outside affect the normal display of the display screen 60, and improving the stability of the normal operation of the ice bar machine 10.

[0071] In some embodiments, referring again to , the side of the shell main body 21 away from the circuit board 40 is provided with a second protrusion 215, the second protrusion 215 is provided with the second accommodating cavity 204, the side of the shell cover 26 facing the shell main body 21 is provided with a third protrusion 261, the second protrusion 215 and the third protrusion 261 abut to close the second accommodating cavity 204, so that the cooperation between the shell cover 26 and the shell main body 21 can close the second accommodating cavity 204, thereby reducing the risk that the humid air or water droplets condensed in the air from the outside affect the normal display of the display screen 60, and improving the stability of the normal operation of the ice bar machine 10.

[0072] In some embodiments, referring again to Figure 4 , the ice bar machine 10 further comprises a second sealing member 70, the second protrusion 215 is provided with a second groove 2151, the second sealing member 70 is arranged in the second groove 2151, and the second sealing member 70 is located between the second protrusion 215 and the third protrusion 261, so as to further improve the sealing performance between the shell cover 26 and the shell main body 21, and facilitate the normal operation of the display screen 60. The second sealing member 70 can be a sealing ring, a sealing tape, or other sealing members, which can be set as needed.

[0073] In some embodiments, referring again to Figure 4As shown, the side of the shell body 21 away from the circuit board 40 is partially protruding and forms a limiting frame 217, the limiting frame 217 is arranged in the second accommodating cavity 204, and the second protrusion 215 is arranged around the limiting frame 217. The display screen 60 is arranged in the display frame, and the limiting frame 217 is used to constrain the movement of the display screen 60. The limiting frame 217 is beneficial to the positioning of the display screen 60 to be installed in the required position, and is beneficial to improving the efficiency of assembly. In the embodiment, the second communication hole is arranged in the limiting frame 217.

[0074] In some embodiments, as shown in Figure 4 As shown, the ice bar machine 10 further comprises a pressing seat 80, which is detachably connected to the side of the shell body 21 away from the circuit board 40. The pressing seat 80 presses the four sides of the display screen 60, and the pressing seat 80 is provided with an opening for exposing the display screen 60. The pressing seat 80 can further constrain the movement of the display screen 60, so as to avoid the display screen 60 from being separated from the shell body 21. In the embodiment, in order to reduce the risk of rigid damage of the display screen 60 caused by the pressing seat 80, a buffer is further arranged between the display screen 60 and the pressing seat 80. The pressing seat 80 indirectly presses the display screen 60 by pressing the buffer. The buffer can be foam or rubber ring, and of course it can also be other, which can be set according to actual needs.

[0075] In some embodiments, as shown in Figures 4-6 As shown, the circuit board 40 is provided with a plurality of spring buttons 41, which are arranged at intervals and located in the second protrusion 215, that is, the second protrusion 215 covers the plurality of spring buttons 41. The plurality of spring buttons 41 are arranged in the second accommodating cavity 204 to avoid the influence of external humid air on the plurality of spring buttons 41. Among them, the plurality of spring buttons 41 are all in abutment with the shell cover 26. In this way, the user only needs to press the key area above the plurality of spring buttons 41 in the shell cover 26, and the machine body 30 can be controlled through the circuit board 40 to adjust the working condition of the ice bar machine 10.

[0076] In some embodiments, as shown in Figure 6 and Figure 7 As shown, the shell 20 further comprises a shielding cover 27. The shell body 21 is provided with an open mouth 218 and a first connecting structure 219. The first connecting structure 219 and the open mouth 218 are arranged adjacent to each other. The open mouth 218 is in communication with the first accommodating cavity 201. The shielding cover 27 is provided with a second connecting structure 271 connected with the first connecting structure 219. The shielding cover 27 is configured to rotate relative to the shell body 21 under the cooperation of the first connecting structure 219 and the second connecting structure 271 to shield or expose the open mouth 218. In the embodiment, along the first direction Z, the open mouth 218 is located above the machine body 30. The open mouth 218 is used to expose the ice bar box group 36 of the machine body 30, so as to facilitate adding ice bar liquid into the ice bar box group 36 for ice bar making.

[0077] In some embodiments, please refer to Figure 2 With Figure 6 , the ice pop machine 10 further comprises a first fastener 90 and a second fastener 100, the shell body 21 is provided with a first avoiding port 2111, the first fastener 90 is arranged at the first avoiding port 2111, the second fastener 100 is arranged at the shielding cover 27, and the second fastener 100 and the second connecting structure 271 are respectively located at two opposite sides of the shielding cover 27.

[0078] When the second fastener 100 passes through the first avoiding port 2111 and is clamped with the first fastener 90, the shielding cover 27 is covered on the shell body 21 and shields the open port 218, and when the other end of the shielding cover 27 is subjected to a predetermined force, the first fastener 90 and the second fastener 100 are separated, so that the shielding cover 27 rotates relative to the shell body 21 to expose the open port 218.

[0079] In use, when it is needed to shield the open port 218, it is only needed to turn the shielding cover 27 and apply a force to clamp the second fastener 100 with the first fastener 90, at this time, the shielding cover 27 can be fixed relative to the shell body 21 to keep the shielding cover 27 shielding the open port 218 at all times. When it is needed to expose the open port 218, it is only needed to apply a predetermined force to the other end of the shielding cover 27 to separate the first fastener 90 from the second fastener 100, so that the shielding cover 27 can rotate relative to the shell body 21 under the cooperation of the first connecting structure 219 and the second connecting structure 271.

[0080] With the above structure, the shielding cover 27 does not need to be taken off from the shell body 21 and stored in a position, it is only needed to apply a predetermined force to the other end of the shielding cover 27 to separate the first fastener 90 from the second fastener 100, the user can turn the shielding cover 27 relative to the shell body 21 to one side, it is not needed to find a space for placing the shell body 21, and the ice pop liquid can be directly added through the open port 218, which facilitates the user operation and is convenient to use. It should be noted that the predetermined force refers to a force that can overcome the frictional resistance between the first fastener 90 and the second fastener 100 to separate them.

[0081] In some embodiments, as Figure 7 shown, the shielding cover 27 comprises a cover body 272, a first connecting block 273 and a second connecting block 274, the first connecting block 273 and the second connecting block 274 are respectively connected to two sides of the cover body 272, the first connecting block 273 is provided with the second connecting structure 271, the second connecting block 274 and the second fastener 100 are both located at the same side of the cover body 272, and the cover body 272 is used for shielding the open port 218. The second connecting block 274 is arranged, which is conducive to the user to lift the shielding cover 27 through the second connecting block 274 after separating the first fastener 90 from the second fastener 100, and improves the user experience.

[0082] In some embodiments, as shown in Figure 6 The shell body 21 is provided with a recess 2110, and the first connecting structure 219 and the recess 2110 are located on the same side of the open port 218. The first connecting block 273 is arranged in the recess 2110. The recess 2110 is arranged to facilitate positioning of the connection position between the shielding cover 27 and the shell body 21, and to improve the assembly efficiency between the shielding cover 27 and the shell body 21.

[0083] It can be understood that the first connecting structure 219 and the second connecting structure 271 can have various forms, and can be arranged as needed as long as the shielding cover 27 can rotate relative to the shell body 21. For example, as shown in Figure 6 and Figure 7 The first connecting structure 219 includes a first mounting seat 219a and a second mounting seat 219b, and the first mounting seat 219a and the second mounting seat 219b are arranged at intervals. The first mounting seat 219a and the second mounting seat 219b are each provided with a mounting port 219c. The second connecting structure 271 includes a rotating shaft 271a, one end of the rotating shaft 271a is inserted into the mounting port 219c of the first mounting seat 219a, and the other end of the rotating shaft 271a is inserted into the mounting port 219c of the second mounting seat 219b. In this way, the shielding cover 27 can rotate relative to the shell body 21. For another example, the first connecting structure 219 includes a rotating shaft 271a, and the second connecting structure 271 includes a first mounting seat 219a and a second mounting seat 219b arranged at intervals. The first mounting seat 219a and the second mounting seat 219b are each provided with a mounting port 219c. One end of the rotating shaft 271a is inserted into the mounting port 219c of the first mounting seat 219a, and the other end of the rotating shaft 271a is inserted into the mounting port 219c of the second mounting seat 219b. In this embodiment, as shown in Figure 6 and Figure 7 The first connecting structure 219 includes a first mounting seat 219a and a second mounting seat 219b arranged at intervals, and the first mounting seat 219a and the second mounting seat 219b are each provided with a mounting port 219c. The second connecting structure 271 includes a rotating shaft 271a, and both ends of the rotating shaft 271a are inserted into the mounting ports 219c of the first mounting seat 219a and the second mounting seat 219b, respectively.

[0084] In some embodiments, as shown in Figure 2 The first engaging member 90 is arranged below the first avoiding port 2111. The first engaging member 90 includes a first connecting portion 91 and a first engaging portion 92 connected with each other. The first engaging portion 92 is provided with a first inclined surface 921. The second engaging member 100 includes a second connecting portion 1001 and a second engaging portion 1002 connected with each other. The second engaging portion 1002 is provided with a second inclined surface 10021.

[0085] When the cover 27 is closed on the shell body 21 and covers the open hole 218, the second fastening part 1002 is located on the side of the first fastening part 92 away from the first connecting part 91, and the projection of the second inclined surface 10021 covers at least part of the first inclined surface 921 in the direction (direction M shown in the figure) of the first connecting part 91 towards the first fastening part 92. In this way, when the ice pop machine 10 is transported, the cover 27 will be relatively fixed with the shell body 21 without applying a preset force on the cover 27, due to the mutual abutment of the first inclined surface 921 of the first fastening part 92 and the second inclined surface 10021 of the second fastening part 1002. When a preset force is applied to the cover 27, the preset force will overcome the frictional resistance between the first inclined surface 921 of the first fastening part 92 and the second inclined surface 10021 of the second fastening part 1002, so that the first fastening part 92 and the second fastening part 1002 are disengaged, and the cover 27 is rotated relative to the shell body 21.

[0086] When the cover 27 is rotated relative to the shell body 21 to the position of covering the open hole in use, a pressure is applied to the area of the cover 27 provided with the second fastening part 100, and the second fastening part 1002 will be fastened with the first fastening part 92 at this time, and the cover 27 is relatively fixed with the shell body 21. When a preset force is applied to the cover 27, the second fastening part 1002 will be disengaged with the first fastening part 92, and the cover 27 can be rotated relative to the shell body 21, so that the user can open the cover 27 to expose the open hole 218.

[0087] It can be understood that the first fastening part 90 can be provided on the shell body 21, or can be provided on other components of the machine shell 20, and can be specifically provided according to needs. In the embodiment, the machine shell 20 further includes a mounting frame 28 mounted at the open hole 218 of the shell body 21, and the mounting frame 28 is provided with a receiving hole 206 and a through hole 281, the first avoiding hole 2111 is in communication with the receiving hole 206, and the first fastening part 90 is provided on the mounting frame 28 and located at the receiving hole 206. When the cover 27 is closed on the shell body 21, the second fastening part 100 passes through the first avoiding hole 2111 and the receiving hole 206 and is fastened with the first fastening part 90.

[0088] In some embodiments, as shown in Figure 6 With Figure 7 The ice pop machine 10 further includes elastic members (not shown in the figure) connected with the shell body 21 and the cover 27 respectively, and the elastic members are configured to be in a compressed state when the cover 27 is closed on the shell body 21, the first fastening part 90 and the second fastening part 100 are fastened with each other, and the elastic members restore deformation to pop up the cover 27 when the first fastening part 90 and the second fastening part 100 are disengaged. In this way, the user does not need to manually open the cover 27, which is beneficial to improve the user experience.

[0089] The elastic element can be a spring, a torsion spring, or any other type, depending on the specific requirements, as long as it can spring up the cover 27. In this embodiment, the elastic element is a torsion spring, which is sleeved on the rotating shaft 271a. The torsion spring abuts against the shell body 21 and the cover 27 respectively. When the cover 27 is unlocked from the shell body 21, the torsion spring restores its deformation and pushes the cover 27 to rotate relative to the shell body 21 to expose the opening 218.

[0090] In some embodiments, the torsion spring includes a first torsion portion, a second torsion portion, and an elastic portion. The first torsion portion is sleeved on one end of the rotating shaft 271a, and the second torsion portion is sleeved on the other end of the rotating shaft 271a. One end of the first torsion portion and the second torsion portion are respectively connected to the two ends of the elastic portion. The other end of the first torsion portion abuts against the shell body 21, and the other end of the second torsion portion abuts against the shell body 21. The elastic portion abuts against the side of the cover 27 facing the opening 218.

[0091] In some embodiments, such as Figure 2 As shown, the main body 30 includes a refrigeration system 32, an evaporation assembly 34, and an ice pop container assembly 36. The refrigeration system 32 is connected to the evaporation assembly 34, and the evaporation assembly 34 is connected to the ice pop container assembly 36. The ice pop container assembly 36 is used to hold ice pop liquid. The refrigeration system 32 supplies a cooling medium to the evaporation assembly 34 to absorb the heat from the ice pop container assembly 36, thereby freezing the ice pop liquid in the ice pop container assembly 36 into ice pops. The refrigeration system 32 is connected to a circuit board 40, which controls the supply of cooling medium by the refrigeration system 32.

[0092] In some embodiments, such as Figure 2 , Figure 3 and Figure 9 As shown, the refrigeration system 32 includes a compressor 321, a condenser 322, and a capillary tube 323. The compressor 321, condenser 322, and capillary tube 323 are all connected to the support plate 24. The output end of the compressor 321 is connected to the input end of the condenser 322. The output end of the condenser 322 is connected to one end of the capillary tube 323. The other end of the capillary tube 323 is connected to the input end of the evaporation assembly 34. The output end of the evaporation assembly 34 is connected to the input end of the compressor 321.

[0093] like Figure 9 As shown, Figure 9The connection between the refrigeration system 32 and the evaporating assembly 34 is shown in the schematic diagram. When the refrigeration switch is turned on, the compressor 321 starts to work, and the cooling medium is inputted from the input end of the evaporating assembly 34 after passing through the condenser 322 and the capillary tube 323, and is transported along the transport path of the evaporating assembly 34 and is outputted from the output end of the evaporating assembly 34, and then is returned to the compressor 321, thereby completing a refrigeration cycle. With the heat exchange between the cooling medium transported along the transport path of the evaporating assembly 34 and the ice stick box set 36, the heat of the ice stick box set 36 will be gradually absorbed to achieve the purpose of freezing, so as to freeze the ice stick liquid contained in the ice stick box set 36, thereby making ice sticks.

[0094] In some embodiments, as shown in Figure 1 With Figure 2 As shown, the refrigeration system 32 further comprises a fan 324, which is installed on the support plate 24 and is arranged adjacent to the condenser 322. The air outlet end of the fan 324 faces the condenser 322, and the fan 324 is used to blow air to the condenser 322 to accelerate the heat dissipation of the condenser 322. In the present embodiment, the fan 324 is arranged on one side of the mounting plate 212, so that the external air enters the first containing cavity 201 through the air hole 2121 and is blown to the condenser 322 by the fan 324.

[0095] In some embodiments, as shown in Figure 9 As shown, the refrigeration system 32 further comprises a first drying filter 325, which is connected between the capillary tube 323 and the condenser 322. The first drying filter 325 is used to filter the moisture contained in the cooling medium outputted from the condenser 322, so as to ensure that dry cooling medium is transported to the capillary tube 323.

[0096] In some embodiments, as shown in Figure 9 As shown, the refrigeration system 32 further comprises a second drying filter 326, which is connected between the input end of the compressor 321 and the output end of the evaporating assembly 34. The second drying filter 326 is used to dry the cooling medium outputted from the evaporating assembly 34, so as to transport the dry cooling medium to the compressor 321.

[0097] In some embodiments, as shown in Figure 3 With Figure 10As shown, the evaporation assembly 34 comprises a supporting frame 341, a pipe assembly 343 and at least one evaporator 342, the supporting frame 341 is connected with the cabinet 20, the at least one evaporator 342 is installed on the supporting frame 341, the pipe assembly 343 is connected with the evaporator 342, the input end of the pipe assembly 343 is connected with the output end of the refrigeration system 32, and the output end of the pipe assembly 343 is connected with the input end of the refrigeration system 32. In the embodiment, three mounting openings 3411 are arranged on the supporting frame 341, the number of the evaporators 342 is three, and one evaporator 342 is installed on one mounting opening 3411, so that the supporting frame 341 supports three evaporators 342 at the same time. It should be noted that the number of the evaporators 342 is not limited to three in the embodiment, and the number can be any, which can be designed according to the needs of users.

[0098] It should be understood that the number of the mounting openings 3411 changes with the number of the evaporators 342, if the number of the evaporators 342 is two, the number of the mounting openings 3411 is two, and if the number of the evaporators 342 is four, the number of the mounting openings 3411 is four.

[0099] In some embodiments, as shown in Figure 10 The supporting frame 341 is provided with at least one positioning shoulder 3412 and at least one first connecting lug 3413, one positioning shoulder 3412 is arranged around one mounting opening 3411, and the periphery of each positioning shoulder 3412 is provided with a first positioning hole 34121, which is used for connecting with the evaporator 342.

[0100] In some embodiments, as shown in Figure 10 The evaporator 342 comprises a connected container body 3421 and a first flange 3422, the first flange 3422 is located at the open end of the container body 3421 and is arranged around the container body 3421, wherein the first flange 3422 is installed on the positioning shoulder 3412, and the container body 3421 is relatively fixed with the supporting frame 341 under the constraint of the positioning shoulder 3412. In the embodiment, the periphery of the first flange 3422 is provided with a second positioning hole 34221, which is used for positioning connection with the first positioning hole 34121, so as to realize the relative fixation of the evaporator 342 and the supporting frame 341.

[0101] In some embodiments, as shown in Figure 10As shown, the pipe assembly 343 includes at least two sets of curved pipes 3431 and at least one series pipe (not shown). Each pair of curved pipes 3431 is connected in series via a series pipe, allowing the cooling medium to flow along the first set of curved pipes 3431, then through the series pipe, and finally to the second set of curved pipes 3431. In this embodiment, the two sets of curved pipes 3431 are respectively located on opposite sides of an evaporator 342, which facilitates faster absorption of heat from the evaporator 342 by the cooling medium. In this embodiment, there are three evaporators 342, each with curved pipes 3431 on opposite sides. Adjacent sets of curved pipes 3431 are connected via series pipes, enabling the cooling medium to flow along a predetermined path from the curved pipe 3431 on one side of the first evaporator 342 and exit from the curved pipe 3431 on the side of the last evaporator 342, ultimately flowing to the input end of the refrigeration system 32.

[0102] It should be noted that the input end of the evaporator assembly 34 refers to the end of the multiple sets of curved pipes 3431 connected in series, which is used to connect to the output end of the refrigeration system 32. The output end of the evaporator assembly 34 refers to the end of the multiple sets of curved pipes 3431 connected in series, which is used to connect to the input end of the refrigeration system 32. The delivery path of the evaporator assembly 34 refers to the path constructed from the input end of the multiple sets of curved pipes 3431 connected in series along the pipe to the output end of the multiple sets of curved pipes 3431 connected in series.

[0103] In some embodiments, such as Figure 10 As shown, the evaporation assembly 34 also includes at least two conductive plates 344, with each pair of conductive plates 344 positioned on opposite sides of an evaporator 342. A bent tube 3431 is located on the end face of the conductive plate 344 facing away from the evaporator 342. This arrangement increases the contact area between the conductive plates 344 and the evaporator 342, thereby improving heat exchange efficiency. In this embodiment, the bent tube 3431 is connected to the conductive plate 344 by heat fusion, and the conductive plate 344 is connected to the evaporator 342 by adhesive bonding.

[0104] In some embodiments, such as Figure 10As shown, the evaporation assembly 34 further comprises an insulation box 345, the insulation box 345 is connected to the support plate 24, and the supporting frame 341 is connected to the insulation box 345, the evaporator 342 and the pipe assembly 343 are all accommodated in the insulation box 345, and the insulation box 345 is used for insulating the evaporator 342 and the pipe assembly 343 to avoid the influence of high external temperature on the heat absorption of the evaporator 342 to the ice stick box set 36. In the embodiment, the insulation box 345 is provided with a window 3451 and a detachably connected side plate 3452 used for shielding the window 3451, wherein the side plate 3452 is provided with a first through hole 34521 and a second through hole 34522, the first through hole 34521 is used for connecting the output end of the refrigeration system 32 to the input end of the pipe assembly 343 through a pipeline, and the second through hole 34522 is used for connecting the output end of the pipe assembly 343 to the input end of the refrigeration system 32 through another pipeline, so as to facilitate ensuring the stable delivery of the cooling medium from the refrigeration system 32 to the evaporation assembly 34.

[0105] In some embodiments, as shown in Figure 10 As shown, the four sides of the insulation box 345 are provided with a plurality of second connecting lugs 3453, one second connecting lug 3453 is connected to one first connecting lug 3413 to realize the relative fixation between the supporting frame 341 and the insulation box 345.

[0106] In some embodiments, the insulation box 345 is filled with an insulation material (not shown in the figure), and the insulation material wraps the evaporator 342 and the pipe assembly 343, so as to further reduce the influence of the external temperature on the evaporator 342 and the pipe assembly 343, to ensure the effect of the cooling medium on the heat absorption of the ice stick box set 36 through the evaporator 342, and to facilitate improving the efficiency of making ice sticks. The insulation material can be a foaming agent or other, which can be set as needed.

[0107] In some embodiments, as shown in Figure 11 As shown, the ice stick box set 36 comprises a support frame 361 and at least one ice stick box 362, the support frame 361 is arranged on the mounting frame 28, the support frame 361 is provided with at least one socket 3611, each socket 3611 is communicated with the through hole 281, and one ice stick box 362 is inserted into one evaporator 342 through one socket 3611. In the embodiment, the support frame 361 is provided with three sockets 3611 arranged at intervals, and the number of the ice stick boxes 362 is three, one ice stick box 362 is inserted into one socket 3611 and extends into the container body 3421, so that the heat of the ice stick box 362 can be transmitted through the container body 3421 to achieve the purpose of refrigeration. In use, the ice stick box 362 is loaded with ice stick liquid, and under the action of the cooling medium supplied by the refrigeration system 32 to the evaporation assembly 34, the ice stick liquid in the ice stick box 362 is frozen into ice sticks.

[0108] In some embodiments, as shown in Figure 11 The ice pop box 362 includes a box body 3621 and a second protruding rim 3622 connected to the box body 3621, and the second protruding rim 3622 is located at the open end of the box body 3621 and is arranged around the box body 3621. The second protruding rim 3622 is in abutment with the edge of the socket 3611, so that the box body 3621 can be supported on the support frame 361. In this embodiment, the box body 3621 is used to contain ice pop liquid to be frozen. The ice pop liquid can be, but is not limited to, milk, sugar water or other liquid used to make ice pops, and can be selected according to user needs.

[0109] In some embodiments, as shown in Figure 11 The support frame 361 includes a support portion 3612 and a vertical edge portion 3613 connected to and arranged around the support portion 3612, and the support portion 3612 is provided with a plurality of sockets 3611. The vertical edge portion 3613 is arranged perpendicularly relative to the surface of the support portion 3612 to block the four edges of the support portion 3612, so as to prevent the ice pop liquid overflowing from the ice pop box 362 from flowing out of the edge of the support portion 3612 and into the shell main body 21, facilitating user cleaning of the ice pop machine 10 and improving user experience.

[0110] In some embodiments, as shown in Figure 11 The ice pop box set 36 further includes a box cover 363 arranged on the support frame 361 and covering the plurality of sockets 3611, so as to prevent the ice pop liquid from being contaminated when the shielding cover 27 is lifted. In this embodiment, the support portion 3612 of the support frame 361 is provided with a recessed groove, at least one socket 3611 is arranged in the recessed groove, and the box cover 363 covers the recessed groove to shield the at least one socket 3611.

[0111] In some embodiments, as shown in Figure 11 The box cover 363 is provided with a lifting block 3631 protruding relative to the surface of the box cover 363, and the lifting block 3631 is used by the user to lift the box cover 363, so as to facilitate the user to take out the box cover 363 from the recessed groove, so as to facilitate the user to take out the finished ice pop or add ice pop liquid to the box body 3621. In this embodiment, the number of lifting blocks 3631 is two, and the two lifting blocks 3631 are arranged at intervals.

[0112] In some embodiments, please again combine Figure 2 and Figure 9The machine body 30 further comprises an electromagnetic valve 38, one end of the electromagnetic valve 38 is connected to the output end of the compressor 321, and the other end of the electromagnetic valve 38 is connected to the input end of the pipe assembly 343, and the electromagnetic valve 38 is arranged to directly supply cooling medium to the input end of the pipe assembly 343 according to the user's needs, at this time, the temperature of the cooling medium directly delivered from the compressor 321 is higher than that of the shaped ice lollies, and the high-temperature cooling medium can slightly heat the ice lollies, so that the part of the ice lollies in contact with the box body 3621 is slightly dissolved, thereby facilitating the demolding of the ice lollies from the box body 3621, and being beneficial to improving the user experience.

[0113] In some embodiments, as Figure 2 With Figure 3 As shown in the figure, the ice lolly machine 10 further comprises a power module 120, the power module 120 is connected with the refrigeration system 32 and the circuit board 40, and the power module 120 is used to provide different voltages for the refrigeration system 32, so that the components of the refrigeration system 32 are in the voltage of normal working.

[0114] In use, the user can first separate the first buckling member 90 from the second buckling member 100, and open the cover 27 relative to the shell body 21 to expose the open port 218, then remove the box cover 363 from the support frame 361 and add ice lolly liquid into the box body 3621, after filling the ice lolly liquid, the box cover 363 is covered again, then the refrigeration switch of the refrigeration system 32 is started, so that the refrigeration system 32 supplies cooling medium to the evaporation assembly 34 to freeze the ice lolly liquid, after reaching the predetermined refrigeration time, the refrigeration is stopped, the support frame 361 and the plurality of ice lolly boxes 362 are lifted from the mounting frame 28, and finally the shaped ice lollies are taken out from the box body 3621.

[0115] The above-mentioned is only the embodiment of the present application, and does not limit the patent range of the present application, and any equivalent structure or equivalent process transformation according to the content of the present application specification and drawings, or direct or indirect application in other related technical fields, are also included in the patent protection range of the present application.

Claims

1. A popsicle maker characterized by comprising: The application relates to a machine shell and a machine body. The machine shell comprises a shell body and a cover, the shell body is provided with an open port, a first avoiding port and a first connecting structure, the first connecting structure and the first avoiding port are respectively arranged on the two sides of the open port, one end of the cover is provided with a second connecting structure connected with the first connecting structure, and the cover is arranged to be rotatable relative to the shell body under the cooperation of the first connecting structure and the second connecting structure so as to shield or expose the open port. The machine body is arranged in the machine shell. A first buckling part is arranged at the first avoiding port. A second buckling part is arranged on the cover, and the second buckling part and the second connecting structure are respectively arranged on the opposite sides of the cover. When the second buckling part passes through the first avoiding port and is buckled with the first buckling part, the cover is closed on the shell body and shields the open port, and when the other end of the cover is subjected to a preset force, the first buckling part is separated from the second buckling part, so that the cover is rotated relative to the shell body to expose the open port.

2. The ice pop machine of claim 1, wherein, The first buckling part comprises a first connecting part and a first buckling part connected with each other, the first buckling part is provided with a first inclined surface, the second buckling part comprises a second connecting part and a second buckling part connected with each other, and the second buckling part is provided with a second inclined surface. When the cover is closed on the shell body and shields the open port, the second buckling part is located on the side of the first buckling part away from the first connecting part, and the second inclined surface covers at least part of the first inclined surface in the direction of the first connecting part towards the first buckling part.

3. The ice pop machine of claim 1, wherein, The first connecting structure comprises a first mounting seat and a second mounting seat, the first mounting seat and the second mounting seat are arranged at intervals, the first mounting seat and the second mounting seat are both provided with a mounting port, the second connecting structure comprises a connecting shaft, one end of the connecting shaft is inserted into the mounting port of the first mounting seat, and the other end of the connecting shaft is inserted into the mounting port of the second mounting seat. Alternatively, the first connecting structure comprises a rotating shaft, the second connecting structure comprises a first mounting seat and a second mounting seat arranged at intervals, the first mounting seat and the second mounting seat are both provided with a mounting port, one end of the connecting shaft is inserted into the mounting port of the first mounting seat, and the other end of the connecting shaft is inserted into the mounting port of the second mounting seat.

4. The ice pop machine of claim 1, wherein, The cover comprises a cover body, a first connecting block and a second connecting block, the first connecting block and the second connecting block are respectively connected to the two sides of the cover body, the first connecting block is provided with the second connecting structure, the second connecting block and the second buckling part are both located on the same side of the cover body, and the cover body is used for covering the open port.

5. The ice bar machine according to any one of claims 1-4, characterized in that, The machine shell further comprises a mounting rack, the mounting rack is mounted on the shell body and located at the open port, the mounting rack is provided with a containing port communicated with the first avoiding port, and the first buckling part is arranged in the containing port.

6. The ice pop machine of claim 5, wherein, The machine body comprises an evaporation assembly, a refrigeration system and a popsicle box set, the popsicle box set is installed on the mounting rack, the evaporation assembly and the refrigeration system are accommodated in the shell body and connected with the shell, the evaporation assembly is connected with the popsicle box set, the popsicle box set is exposed through the open port, and the refrigeration system is used for supplying cooling medium to the evaporation assembly to absorb the heat of the popsicle box.

7. The ice pop machine of claim 6, wherein, The mounting rack is provided with a through port in communication with the open port, the popsicle box set comprises at least one popsicle box and a support rack, the support rack is installed on the mounting rack and abuts against the evaporation assembly through the through port, and at least one popsicle box is installed on the support rack.

8. The ice pop machine of claim 6, wherein, The evaporation assembly comprises a supporting frame, a pipe assembly and at least one evaporator, the supporting frame is connected with the shell, at least one evaporator is installed on the supporting frame, the pipe assembly is connected with the evaporator, the input end of the pipe assembly is connected with the output end of the refrigeration system, and the output end of the pipe assembly is connected with the input end of the refrigeration system.

9. The ice pop machine of claim 6, wherein, The refrigeration system comprises a compressor, a condenser and a capillary tube, the compressor, the condenser and the capillary tube are connected with the shell, the output end of the compressor is connected with the input end of the condenser, the output end of the condenser is connected with one end of the capillary tube, the other end of the capillary tube is connected with the input end of the evaporation assembly, and the output end of the evaporation assembly is connected with the input end of the compressor.

10. The ice pop machine of claim 6, wherein, The machine body further comprises a circuit board, the circuit board is arranged in the shell, the circuit board is connected with the refrigeration system, and the circuit board is used for controlling the refrigeration system to supply cooling medium.