Multifunctional ice drink machine
By designing a multi-functional ice drinker, including ice cubes and ice drink molding components, sharing compressors and condensers, and adopting a retractable structure and a drawer water tank, the ice drinker has solved the problem of single shape and large footprint, achieving diversity and portability.
Patent Information
- Application Number
- CN202510473120.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-04-16
AI Technical Summary
The existing ice drinkers have problems such as single form of beverage preparation and large space and inconvenient land preparation.
A multi-functional ice drinker is designed, including ice cube molding assembly and ice drink molding assembly, sharing a compressor and condenser, with a retractable structure and a drawer water tank inside the housing, which can prepare ice and smoothies at the same time and reduce the overall volume when ice cubes are not required.
The diversity of ice drink forms is achieved, the equipment covers space, improves portability, and further reduces the equipment volume when ice is not needed.
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Figure CN119983639A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of household electrical appliances, in particular to a multifunctional ice drink machine. Background Art
[0002] In the prior art, ice drink machines, as an automated device that integrates ice making and beverage mixing functions, can achieve the full process of cold drink preparation through a single device. However, the existing ice drink machines have the following technical limitations in practical applications: 1. The ice drink has a single form: the existing ice drink machines usually use independent ice-making ice trays and beverage storage tanks, and the granular ice and liquid beverages need to be mixed manually or automatically when preparing ice drinks. This design makes it difficult to meet the needs of diversified ice drink forms with a single device, limiting the user's flexibility in use in different scenarios and needs. 2. Large size: The existing ice drink machines are mostly designed for commercial use, and the overall size is large, which makes it difficult to adapt to the needs of ordinary families or portable scenarios. This limitation makes the existing ice drink machines have significant applicability problems in home use or mobile scenarios. In summary, the existing ice drink machines have obvious deficiencies in functional diversity and portability, and it is urgent to overcome the above defects through technical improvements. Summary of the invention
[0003] The invention provides a multifunctional ice drink machine, which solves the problems of the ice drink machine in the prior art in that the beverage is prepared in a single form, occupies a large space and is not portable.
[0004] A multifunctional ice drink machine, comprising a shell, an ice cube forming component, an ice drink forming component and a refrigeration component;
[0005] The ice cube forming assembly comprises a first evaporator and an ice receiving basket, the surface of the first evaporator has a grid-shaped groove, the ice receiving basket is located at the lower side of the first evaporator along the gravity direction, and the ice receiving basket is a drawer type and is inserted into the housing;
[0006] The ice drink forming assembly includes a second evaporator, a drive motor and a scraper, wherein the drive motor is connected to the second evaporator and drives the second evaporator to roll around its axis, and the scraper is arranged on the side wall of the second evaporator to make the ice drink solidified on the side wall of the second evaporator fall off to form a smoothie;
[0007] The refrigeration assembly includes a compressor and a condenser, and the compressor is connected to the first evaporator and the second evaporator respectively through the condenser;
[0008] The interior of the shell includes a first cavity, a second cavity and a third cavity which are adjacent to each other. The compressor and the condenser are located in the first cavity, the first evaporator is located in the second cavity, and the second evaporator is located in the third cavity.
[0009] Further, the ice cube forming assembly further comprises a first water tank and a first water pump, wherein the first water pump is connected to the first water tank to pump water in the first water tank to the surface of the first evaporator;
[0010] The ice beverage forming assembly further includes a second water tank and a second water pump, wherein the second water pump is connected to the second water tank to pump water in the second water tank to the surface of the second evaporator;
[0011] Wherein, the first water tank is a drawer-type structure and is located in the second cavity, and the second water tank is a pull-type structure and is located in the third cavity.
[0012] Furthermore, the housing includes a first shell, a second shell and a third shell connected in sequence; the first cavity is formed in the first shell, the second cavity is formed in the second shell, and the third cavity is formed in the third shell; two sides of the second shell are detachably connected to the first shell and the third shell respectively;
[0013] Wherein, the second shell is a retractable structure. When the second shell is in an extended state, the first water tank is located in the second cavity and the ice forming assembly is in a connected state. When the second shell is in a contracted state, the first water tank is pulled out of the second cavity and the ice forming assembly is disconnected and does not work.
[0014] Furthermore, at least a portion of the second shell is a folding fan structure, which can be folded or unfolded under the action of an external force. When the folding fan structure is folded, the second shell is in the contracted state, and when the folding fan structure is unfolded, the second shell is in the extended state.
[0015] Further, the refrigeration assembly also includes a first refrigerant pipeline, a second refrigerant pipeline, a first return pipeline and a second return pipeline;
[0016] The compressor is connected to the inlet of the condenser, the outlet of the condenser is connected to the first evaporator through the first refrigerant pipeline, and the condenser is connected to the second evaporator through the second refrigerant pipeline;
[0017] The outlet of the first evaporator is connected to the compressor through the first return pipe, and the outlet of the second evaporator is connected to the compressor through the second return pipe.
[0018] Furthermore, the refrigeration assembly further includes a first solenoid valve and a second solenoid valve;
[0019] The first solenoid valve is disposed on the first refrigerant pipeline, and the second solenoid valve is disposed on the second refrigerant pipeline.
[0020] Furthermore, the refrigeration component also includes a first connecting pipe, a second connecting pipe and a connecting solenoid valve, the inlet of the first connecting pipe is connected to the compressor, and the outlet of the first connecting pipe is connected to the first evaporator; the inlet of the second connecting pipe is connected to the inlet of the first connecting pipe, and the outlet of the second connecting pipe is connected to the second evaporator; the connecting solenoid valve is arranged between the inlet of the first connecting pipe and the inlet of the second connecting pipe to control the refrigerant in the compressor to enter the first evaporator and the second evaporator through the first connecting pipe and the second connecting pipe.
[0021] Furthermore, the side wall surface of the second evaporator is a rough surface.
[0022] Further, a depth direction of the groove on the surface of the first evaporator is parallel to a horizontal direction.
[0023] Furthermore, the pulling direction of the ice receiving basket is parallel to the axial direction of the second evaporator.
[0024] The present invention has the following beneficial effects:
[0025] 1. The present invention simultaneously arranges an ice cube forming component and an ice drink forming component on the same device, thereby adding a smoothie drink function on the basis of traditional ice drinks and enriching the forms of the produced ice drinks; secondly, the present invention also simultaneously connects two evaporators through the same compressor, thereby reducing the volume of one compressor, making the equipment occupy a smaller space, and the same compressor can simultaneously produce a variety of ice products without affecting the ice making efficiency; at the same time, the present invention further improves the compactness and home portability of the equipment through the advantages of reasonable layout of each functional module to avoid interference with each other.
[0026] 2. The present invention sets the first water tank as a drawer-type structure, and cooperates with the second cavity formed by the second shell with a retractable structure. When the ice drink machine is used, if only smoothies are needed, the first water tank can be taken out and the second shell can be compressed, thereby further reducing the overall volume of the ice drink machine and improving portability.
[0027] 3. The present invention makes the side wall surface of the second evaporator a rough surface, which can make the beverage (such as fruit juice, yogurt, plum juice, etc.) adhere to the surface of the second evaporator better to solidify and form a smoothie beverage. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 A schematic diagram of the internal structure of a multifunctional ice drink machine in an embodiment of the present invention;
[0029] Figure 2 It is a schematic diagram of the three-dimensional structure of the multifunctional ice drink machine in the embodiment of the present invention;
[0030] Figure 3a It is a schematic diagram of the principle of the multifunctional ice drink machine before folding in another embodiment of the present invention;
[0031] Figure 3b It is a schematic diagram of the principle of a multifunctional ice drink machine after folding in another embodiment of the present invention;
[0032] Figure 3c It is a structural schematic diagram of a multifunctional ice drink machine before folding in another embodiment of the present invention;
[0033] Figure 3d It is a schematic diagram of the structure of the multifunctional ice drink machine after folding in another embodiment of the present invention.
[0034] Description of reference numerals:
[0035] 1: Multifunctional ice drink machine;
[0036] 10: housing; 101: first housing; 102: second housing; 103: third housing; 104: folding fan structure; 111: first evaporator; 112: groove;
[0037] 121: second evaporator; 122: scraper;
[0038] 130: compressor; 133: first return pipe; 134: second return pipe; 135: first solenoid valve; 136: second solenoid valve; 137: radiator;
[0039] 141: a first communication pipeline; 143: a communication solenoid valve;
[0040] 151: first water tank; 152: second water tank;
[0041] 16: Power supply. DETAILED DESCRIPTION
[0042] The present invention is described in detail below in conjunction with the accompanying drawings and specific embodiments. This embodiment is implemented based on the technical solution of the present invention, and provides a detailed implementation method and specific operation process, but the protection scope of the present invention is not limited to the following embodiments.
[0043] It should be noted that in this specification, similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further defined and explained in the subsequent drawings.
[0044] In the description of this embodiment, it should be noted that the terms "upper", "lower", "inner", "bottom", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, or are the orientations or positional relationships in which the inventive product is usually placed when used. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention.
[0045] The terms “first”, “second”, etc. are only used for distinguishing descriptions and should not be understood as indicating or implying relative importance.
[0046] In the description of this embodiment, it is also necessary to explain that, unless otherwise clearly specified and limited, the terms "set", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be indirectly connected through an intermediate medium, or it can be the internal communication of two components. For ordinary technicians in this field, the specific meanings of the above terms in this embodiment can be understood according to specific circumstances.
[0047] In order to make the objectives, technical solutions and advantages of the present invention more clear, the embodiments of the present invention will be further described in detail below with reference to the accompanying drawings.
[0048] The present invention provides a multifunctional ice drink machine 1, such as Figure 1 and Figure 2 As shown, it includes a shell 10, an ice cube forming assembly, an ice drink forming assembly and a refrigeration assembly, and the ice cube forming assembly, the ice drink forming assembly and the refrigeration assembly are all arranged in the shell.
[0049] The ice cube forming assembly includes a first evaporator 111 (such as Figure 2 As shown, the ice beverage forming assembly includes a second evaporator 121 (as shown Figure 2 as shown).
[0050] The refrigeration assembly includes a compressor 130 and a condenser (not shown in the figure), and the compressor 130 is connected to the first evaporator 111 and the second evaporator 121 through the condenser. The interior of the housing 10 includes a first cavity, a second cavity and a third cavity adjacent to each other, the compressor 130 and the condenser (not shown in the figure) are located in the first cavity, the first evaporator 111 is located in the second cavity, and the second evaporator 121 is located in the third cavity.
[0051] It can be seen that the two ice-making components for ice drinks (such as ice cube forming components and ice drink forming components) of the present invention share a set of compressors and condensers, and the two are integrated into a housing 10, realizing the integration and miniaturization of the production of various ice products, which can not only enrich the use scenarios of ice drink machines, but also use the same compressor to simultaneously make a variety of ice products (such as ice cubes and ice drinks), greatly improving the diversity of ice drink forms and preparation efficiency. The present invention arranges the refrigeration component, ice cube forming component and ice drink forming component in different adjacent cavities, respectively, and has the advantages of reasonable layout of each functional module to avoid interference with each other, further improving the compactness and practicality of the equipment.
[0052] Furthermore, since the present invention can produce ice cubes and smoothies at the same time, users can mix the ice cubes and smoothies to form new cold drinks. The smoothies mixed with ice cubes are not easy to melt into liquid, and the state between solid and liquid makes the drink taste better.
[0053] In one embodiment, if Figure 1 As shown, the ice cube forming assembly further includes a first water tank 151 and a first water pump (not shown in the figure), the first water pump is connected to the first water tank 151 to pump the water in the first water tank 151 to the surface of the first evaporator 111. The ice drink forming assembly further includes a second water tank 152 and a second water pump (not shown in the figure), the second water pump is connected to the second water tank 152 to pump the water in the second water tank 152 to the surface of the second evaporator 121. The first water tank 151 is a drawer-type structure and is located in the second cavity, and the second water tank 152 is a pull-type structure and is located in the third cavity.
[0054] The first water tank 151 and the second water tank 152 are independent and not connected to each other. In an exemplary embodiment, the first water tank 151 contains purified water, and the second water tank 152 contains fruit juice drinks, such as fruit juice, yogurt, plum juice, etc. The above-mentioned ice drinks are fruit juice smoothies, fried yogurt, plum smoothies, etc. It can be understood by those skilled in the art that the second water tank 152 can also contain purified water to make ordinary smoothies.
[0055] In one embodiment, if Figure 2 As shown, the surface of the first evaporator 111 has a grid-like groove 112. The present invention is not limited to the shape of the groove 112, for example, it can be a hemispherical, rectangular, polygonal, heart-shaped, pentagram-shaped, diamond-shaped, etc. In one embodiment, the groove 112 is a wedge or a trapezoid. In one embodiment, as Figure 2 As shown, the second evaporator 121 is in a drum shape, and the ice drink forming assembly also includes a driving motor (not shown in the figure) and a scraper 122. The driving motor is connected to the second evaporator 121 and drives the second evaporator 121 to roll around its axis. The scraper 122 is arranged on the side wall of the second evaporator 121 to allow the ice drink solidified on the side wall of the second evaporator 121 to fall off and form smoothies.
[0056] In one embodiment, the side wall surface of the second evaporator 121 is a rough surface, for example, a plurality of dot-shaped bumps and / or grooves are evenly provided on its surface. In other examples, the surface is provided with serrated or wavy protrusions. Such a structure enables beverages (such as juice, yogurt, plum juice, etc.) to better adhere to the surface of the second evaporator 121 to solidify into shape.
[0057] In a further embodiment, the ice cube forming assembly further includes an ice receiving basket (not shown in the figure), which is located on the lower side of the first evaporator 111 along the direction of gravity, and is drawer-type and inserted into the outer shell 10.
[0058] In one embodiment, if Figure 2 As shown, the depth direction of the groove 112 on the surface of the first evaporator 111 is parallel to the horizontal direction. After the ice cubes formed in the groove 112 exceed the notch portion of the groove 112, they will be driven to escape from the outside of the groove 112 and fall into the ice receiving basket. In a further embodiment, the outer edge of the side wall of the groove 112 located on the lower side in the direction of gravity is inclined toward the direction close to the ice receiving basket. The above structure is conducive to the ice cubes falling into the ice receiving basket under the action of gravity after being formed.
[0059] In one embodiment, the pulling direction of the ice basket (such as Figure 2 The direction indicated by the arrow in the middle is parallel to the axial direction of the second evaporator 121. Such a structure can prevent the pulling and pulling of the ice receiving basket from interfering with the output of ice drinks, and the ice receiving basket can be pulled and pulled at any time regardless of whether the second evaporator 121 is working.
[0060] In one embodiment, for example Figure 1 In the orientation shown, from left to right are the first cavity, the second cavity and the third cavity, the refrigeration assembly (including the compressor 130 and the condenser) is arranged in the first cavity, the ice cube forming assembly (including the first evaporator 111, the first water tank 151, the first water pump and the ice receiving basket) is arranged in the second cavity, and the ice drink forming assembly (including the second evaporator 121, the second water tank 152, the second water pump and the scraper 122) is arranged in the third cavity. Such a structure can not only make full use of the internal space of the shell and improve the miniaturization of the equipment, but also help the various components to work without interfering with each other, thereby improving work efficiency.
[0061] Furthermore, in one embodiment, the first water tank 151 may be a drawer type, which is operated by pulling out horizontally, and the second water tank 152 may be a pull-up type, which is operated by pulling out vertically. The two water tanks are separated from the housing 10 in different directions, which can further avoid interference.
[0062] The embodiment of the present invention has reasonable layout of functional modules to avoid interference with each other, which further improves the compactness and practicality of the device.
[0063] In a further embodiment, Figure 1 As shown, the refrigeration assembly further includes a first refrigerant pipe (not shown in the figure), a second refrigerant pipe (not shown in the figure), a first return pipe 133 and a second return pipe 134.
[0064] The compressor 130 is connected to the inlet of the condenser (not shown in the figure), the outlet of the condenser (not shown in the figure) is connected to the first evaporator 111 through the first refrigerant pipeline, and the condenser is connected to the second evaporator 121 through the second refrigerant pipeline.
[0065] The outlet of the first evaporator 111 is connected to the compressor 130 through a first return pipe 133 , and the outlet of the second evaporator 121 is connected to the compressor 130 through a second return pipe 134 .
[0066] In one embodiment, a drying filter and a capillary tube are also provided on the first refrigerant pipeline. The compressor 130 compresses the refrigerant, and after passing through the condenser, the drying filter, and the capillary tube, the refrigerant enters the first evaporator 111 and the second evaporator 121 respectively. The refrigerant entering the evaporator expands and absorbs heat to achieve the purpose of cooling. The expanded refrigerant flows back to the compressor through the first return pipe 133 and the second return pipe 134 to form a loop. The power supply 16 supplies power for the entire working process. In one embodiment, the power supply 16 is arranged in the first cavity. In one embodiment, the refrigeration component also includes a radiator 137, which dissipates heat for the operation of the condenser.
[0067] Furthermore, the refrigeration assembly further includes a first solenoid valve 135 and a second solenoid valve 136. The first solenoid valve 135 is provided in the first refrigerant pipeline for controlling the on-off of the first refrigerant pipeline, and the second solenoid valve 136 is provided in the second refrigerant pipeline for controlling the on-off of the second refrigerant pipeline.
[0068] Further, the refrigeration assembly further includes a first communication pipe 141, a second communication pipe (not shown in the figure) and a communication solenoid valve 143. The inlet of the first communication pipe 141 is connected to the compressor 130, and the outlet of the first communication pipe 141 is connected to the first evaporator 111. The inlet of the second communication pipe (not shown in the figure) is connected to the inlet of the first communication pipe 141, and the outlet of the second communication pipe (not shown in the figure) is connected to the second evaporator 121. The communication solenoid valve 143 is arranged between the inlet of the first communication pipe 141 and the inlet of the second communication pipe (not shown in the figure) to control the refrigerant in the compressor 130 to enter the first evaporator 111 and the second evaporator 121 through the first communication pipe 141 and the second communication pipe.
[0069] The present invention adopts the above structure. After the connecting solenoid valve 143 is opened, the refrigerant compressed by the compressor 130 enters the first evaporator 111 directly through the first connecting pipe 141 without passing through the condenser, and enters the second evaporator 121 through the second connecting pipe. Since it does not pass through the condenser, the temperature of the refrigerant is relatively high, so it can increase the surface temperature of the first evaporator 111 and the second evaporator 121, which is helpful for de-icing.
[0070] In an exemplary working process, the ice smoothie making function and the ice cube making function share a compressor, a condenser and a cooling fan. When making ice smoothies, the second solenoid valve 136 is opened, the first solenoid valve 135 and the connecting solenoid valve 143 are closed, the compressor 130 compresses the refrigerant, passes through the condenser (heat dissipation), and enters the second evaporator 121 through the second solenoid valve 136, the drying filter and the capillary tube (throttling). After the surface of the second evaporator 121 is frozen, it is scraped off by the scraper 122 to form ice smoothies, and the refrigerant flows back to the compressor 130 through the second return pipe 134.
[0071] When making ice cubes, the first solenoid valve 135 is opened, the second solenoid valve 136 and the connecting solenoid valve 143 are closed, the compressor 130 compresses the refrigerant, passes through the condenser (heat dissipation), enters the first evaporator 111 through the first solenoid valve 135, the drying filter, and the capillary tube (throttling), and ice cubes are formed in the groove 112 of the first evaporator 111. The refrigerant flows back to the compressor 130 through the first return pipe 133.
[0072] During defrosting or cleaning, the first solenoid valve 135, the second solenoid valve 136 and the connecting solenoid valve 143 are opened. When the compressor compresses the refrigerant, the temperature of the refrigerant in the compressor 130 and the condenser is high. When the connecting solenoid valve 143 is opened, the high-temperature refrigerant directly enters the first evaporator 111 and the second evaporator 121 through the connecting solenoid valve 143, so that the surface temperature becomes higher to achieve the effect of melting and defrosting.
[0073] It can be seen that the embodiment of the present invention can use the same machine to prepare two ice products at the same time. Compared with the traditional ice-making machine that requires the use of multiple devices to cooperate with the technical solution, the embodiment of the present invention has diverse functions and richer application scenarios.
[0074] In another preferred embodiment, the structure of the multifunctional ice drink machine is similar to the above embodiment, and the main difference is the housing, such as Figure 3a~Figure 3d As shown, the housing 10 includes a first shell 101, a second shell 102, and a third shell 103 connected in sequence. The first cavity is formed in the first shell 101, the second cavity is formed in the second shell 102, and the third cavity is formed in the third shell 103. Both sides of the second shell 102 are detachably connected to the first shell 101 and the third shell 103, respectively.
[0075] Among them, the second shell 102 is a retractable structure. When the second shell 102 is in an extended state, the first water tank 151 is located in the second cavity and the ice cube forming assembly is in a connected state; when the second shell 102 is in a contracted state, the first water tank 151 is pulled out of the second cavity and the ice cube forming assembly is disconnected and does not work.
[0076] The present invention is not limited to the form of the retractable structure. In one example, the second shell 102 can be a flexible structure, such as silicone or rubber material, which can be retracted by flexible folding. In other embodiments, the second shell 102 is a multi-section structure, and elastic members (such as springs or telescopic rods, etc.) are used between each section to achieve retraction. In one embodiment, at least part of the second shell 102 is a folding fan structure, such as Figure 3a~Figure 3d As shown, the folding fan structure 104 can be folded or unfolded under the action of external force. When the folding fan structure 104 is folded, the second shell 102 is in a contracted state. When the folding fan structure 104 is unfolded, the second shell 102 is in an extended state.
[0077] In a further embodiment, a first locking member and a second locking member are further provided on the second shell 102. When the folding fan structure 104 is folded, the first locking member on the second shell 102 is engaged with the second locking member to lock the second shell in a retracted state.
[0078] The embodiment of the present invention adopts the above-mentioned structure, and can pull out the first water tank 151 when the user's ice drink does not need to make ice cubes, and use the foldable second shell 102 to shrink the outer shell 10, thereby further reducing the overall size and making the multi-functional ice drink machine more miniaturized and easy to carry, so as to be suitable for more usage scenarios. For example, the shell retraction function is very suitable for camping. The flexible use of the first water tank 151 combined with the retractable function of the second shell 102 can meet some ice drink needs while making the equipment more miniaturized and convenient to move between camping sites.
[0079] The preferred specific embodiments of the present invention are described in detail above. It should be understood that a person skilled in the art can make many modifications and changes based on the concept of the present invention without creative work. Therefore, any technical solution that can be obtained by a person skilled in the art through logical analysis, reasoning or limited experiments based on the concept of the present invention on the basis of the prior art should be within the scope of protection determined by the claims.
Claims
1. A multifunctional ice drink machine, characterized in that: It includes a shell, an ice cube forming component, an ice drink forming component and a refrigeration component; The ice cube forming assembly comprises a first evaporator and an ice receiving basket, the surface of the first evaporator has a grid-shaped groove, the ice receiving basket is located at the lower side of the first evaporator along the gravity direction, and the ice receiving basket is a drawer type and is inserted into the housing; The ice drink forming assembly includes a second evaporator, a drive motor and a scraper, wherein the drive motor is connected to the second evaporator and drives the second evaporator to roll around its axis, and the scraper is arranged on the side wall of the second evaporator to make the ice drink solidified on the side wall of the second evaporator fall off to form a smoothie; The refrigeration assembly includes a compressor and a condenser, and the compressor is connected to the first evaporator and the second evaporator respectively through the condenser; The interior of the shell includes a first cavity, a second cavity and a third cavity which are adjacent to each other. The compressor and the condenser are located in the first cavity, the first evaporator is located in the second cavity, and the second evaporator is located in the third cavity.
2. The multifunctional ice drink machine according to claim 1, characterized in that: The ice cube forming assembly further includes a first water tank and a first water pump, wherein the first water pump is connected to the first water tank to pump water in the first water tank to the first evaporator surface; The ice beverage forming assembly further includes a second water tank and a second water pump, wherein the second water pump is connected to the second water tank to pump water in the second water tank to the surface of the second evaporator; Wherein, the first water tank is a drawer-type structure and is located in the second cavity, and the second water tank is a pull-type structure and is located in the third cavity.
3. The multifunctional ice drink machine according to claim 2, characterized in that: The housing comprises a first shell, a second shell and a third shell connected in sequence; the first cavity is formed in the first shell, the second cavity is formed in the second shell, and the third cavity is formed in the third shell; two sides of the second shell are detachably connected to the first shell and the third shell respectively; Wherein, the second shell is a retractable structure. When the second shell is in an extended state, the first water tank is located in the second cavity and the ice forming assembly is in a connected state. When the second shell is in a contracted state, the first water tank is pulled out of the second cavity and the ice forming assembly is disconnected and does not work.
4. The multifunctional ice drink machine according to claim 3, characterized in that: At least a portion of the second shell is a folding fan structure, which can be folded or unfolded under the action of an external force. When the folding fan structure is folded, the second shell is in the contracted state, and when the folding fan structure is unfolded, the second shell is in the extended state.
5. The multifunctional ice drink machine according to claim 1, characterized in that: The refrigeration assembly further includes a first refrigerant pipe, a second refrigerant pipe, a first return pipe, and a second return pipe; The compressor is connected to the inlet of the condenser, the outlet of the condenser is connected to the first evaporator through the first refrigerant pipeline, and the condenser is connected to the second evaporator through the second refrigerant pipeline; The outlet of the first evaporator is connected to the compressor through the first return pipe, and the outlet of the second evaporator is connected to the compressor through the second return pipe.
6. The multifunctional ice drink machine according to claim 5, characterized in that: The refrigeration assembly also includes a first solenoid valve and a second solenoid valve; The first solenoid valve is disposed on the first refrigerant pipeline, and the second solenoid valve is disposed on the second refrigerant pipeline.
7. The multifunctional ice drink machine according to claim 5, characterized in that: The refrigeration component also includes a first connecting pipe, a second connecting pipe and a connecting solenoid valve, the inlet of the first connecting pipe is connected to the compressor, and the outlet of the first connecting pipe is connected to the first evaporator; the inlet of the second connecting pipe is connected to the inlet of the first connecting pipe, and the outlet of the second connecting pipe is connected to the second evaporator; the connecting solenoid valve is arranged between the inlet of the first connecting pipe and the inlet of the second connecting pipe to control the refrigerant in the compressor to enter the first evaporator and the second evaporator through the first connecting pipe and the second connecting pipe.
8. The multifunctional ice drink machine according to claim 1, characterized in that: The side wall surface of the second evaporator is a rough surface.
9. The multifunctional ice drink machine according to claim 1, characterized in that: The depth direction of the grooves of the first evaporator surface is parallel to the horizontal direction.
10. The multifunctional ice drink machine according to claim 1, characterized in that: The pulling direction of the ice receiving basket is parallel to the axial direction of the second evaporator.
Citation Information
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