Cabinet and liquid outlet machine

By setting up refrigeration components on the side of the refrigeration chamber and transporting the air-conditioning to the storage chamber of the dispensing cabinet, the complex structure and high cost caused by the refrigeration of the dispensing cabinet are solved, and the low-temperature storage and transportation of materials are realized, ensuring the safety and economicality of the beverage machine.

CN223271531UActive Publication Date: 2025-08-26MIXUEBINGCHENG CO LTD +1
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Patent Information

Application Number
CN202422297913.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-08-26
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

The separate refrigeration equipment in the dispensing cabinet in existing commercial beverage machines leads to problems of complex structure and increased costs.

Method used

Refrigeration components are arranged on the side of the refrigeration chamber, and the air is transported to the storage chamber of the dispensing cabinet through the conveying structure to realize the refrigeration environment and avoid the installation of refrigeration equipment in the dispensing cabinet.

Benefits of technology

It reduces the complexity and cost of the cabinet structure, while ensuring the refrigeration effect of materials, avoiding materials deterioration, and improving the promotion and application of beverage machines.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a cabinet and a liquid outlet machine. The cabinet comprises a refrigerated cabinet, the refrigerated cabinet comprises a refrigerating chamber and a refrigerating assembly, the refrigerating assembly is arranged on the side face of the refrigerating chamber, and the refrigerating assembly is communicated with the refrigerating chamber and conveys cold air to the refrigerating chamber; the ingredient cabinet is arranged above the refrigerated cabinet, the ingredient cabinet is provided with a containing cavity and a storage space which communicate with each other, and the storage space is used for containing the split charging boxes; and the conveying structure is communicated with the refrigerating chamber and the containing cavity, and the conveying structure is used for conveying the cold air of the refrigerating chamber to the containing cavity. Thus, the containing cavity can use cold air of the refrigerating chamber through the conveying structure, liquid materials in the containing cavity and solid materials contained in the split charging box in the storage space can be cooled through the cold air in the containing cavity, the materials are prevented from going bad, and safety is guaranteed. Meanwhile, refrigeration equipment does not need to be independently arranged in the containing cavity, the complexity and cost of the cabinet structure are reduced, and popularization and application of the liquid outlet machine are facilitated.
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Description

Technical Field

[0001] The present application relates to the technical field of beverage preparation, and in particular to a cabinet and a liquid dispenser. Background Art

[0002] There is a growing demand for beverages, especially those made on-site. A wide variety of beverage preparation machines are available, such as juicers, milk tea machines, and coffee machines. Current commercial beverage machines typically include a refrigerated compartment and a mixing cabinet, with the mixing cabinet located above the refrigerated compartment.

[0003] Cold rooms typically refrigerate liquid ingredients to prevent them from spoiling. Solid ingredients are typically placed in containers on the ingredient cabinet. Typically, the ingredient cabinet requires a separate refrigeration environment to keep these solid ingredients refrigerated and prevent them from spoiling.

[0004] However, if the ingredient cabinet is provided with a refrigeration device separately, the structure of the beverage machine will be complicated, and the manufacturing cost of the entire beverage machine will be increased, which is not convenient for merchants to promote and use. Utility Model Content

[0005] Based on this, it is necessary to provide a cabinet and a liquid dispenser to address the problems of complex structure and high cost caused by the separate installation of refrigeration equipment in the current batching cabinet. The cabinet can enable the accommodating cavity to borrow the cold air from the cold storage room to avoid material deterioration and ensure safety. At the same time, there is no need to install a separate refrigeration equipment in the accommodating cavity, which reduces the complexity and cost of the cabinet structure and facilitates the promotion and application of the liquid dispenser.

[0006] A cabinet, comprising:

[0007] A refrigerator, comprising a refrigerator compartment and a refrigeration assembly, wherein the refrigeration assembly is arranged on the side of the refrigerator compartment, the refrigeration assembly is connected to the refrigerator compartment, and supplies cold air to the refrigerator compartment;

[0008] A batching cabinet is provided above the refrigerated cabinet, the batching cabinet having a communicating accommodating cavity and a storage space, the storage space being used for placing the packaging boxes; and

[0009] A conveying structure connects the refrigerating chamber and the accommodating cavity, and the conveying structure is used to convey the cold air in the refrigerating chamber to the accommodating cavity.

[0010] In one embodiment of the present application, the delivery structure includes a fan and an output pipe, the output pipe is arranged in the accommodating cavity, one end of the output pipe extends into the refrigerating chamber, and the other end of the output pipe is located in the accommodating cavity;

[0011] The fan is arranged on the output pipe, and is used to transport the cold air in the refrigeration chamber to the accommodating cavity through the output pipe.

[0012] In one embodiment of the present application, the output pipe includes an inlet pipe and a delivery pipe, the inlet pipe is provided at one end of the delivery pipe and is located in the refrigeration chamber, and the delivery pipe is located in the accommodating cavity and extends toward the top of the accommodating cavity;

[0013] The cross-sectional dimension of the inlet pipe located in the refrigerating chamber is larger than the cross-sectional dimension of the connection between the inlet pipe and the delivery pipe.

[0014] In one embodiment of the present application, the delivery structure further includes a distribution component, and the distribution component is provided at an end of the output pipe away from the refrigeration chamber;

[0015] The distribution component and the inner wall of the batching cabinet are arranged to form a distribution space, and the distribution space is connected with the output pipe and the accommodating cavity.

[0016] In one embodiment of the present application, the fan is provided at at least one end of the output pipe;

[0017] And / or, the fan is arranged in the cavity of the output pipe;

[0018] And / or, there is a preset angle between the fan and the central axis of the output pipe, and the preset angle ranges from 30° to 45°.

[0019] In one embodiment of the present application, the refrigerator further comprises a support frame, the support frame being disposed in the refrigerating chamber, the support frame being used to place a plurality of refrigerated containers, the refrigerated containers being fixed to the support frame by adsorption;

[0020] The refrigerated cabinet includes a plurality of first adsorption members, at least one of which is provided at the bottom of each refrigerated container, and the first adsorption member is used to adsorb and fix the refrigerated container to the support frame; and / or, the refrigerated cabinet also includes a plurality of second adsorption members, a plurality of second adsorption members are provided on the support frame, and each refrigerated container is fixed to the support frame via at least one second adsorption member.

[0021] In one embodiment of the present application, the refrigerator further comprises a cabinet body, a cabinet door, a baffle assembly, and a plurality of casters, wherein the plurality of casters are rotatably disposed on the bottom of the cabinet body, and the cabinet door is closably disposed on the cabinet body and encloses the cabinet body to form the refrigerator compartment;

[0022] The baffle assembly is arranged at the bottom of the cabinet and surrounds at least a portion of the circumference of the cabinet;

[0023] The casters are Fomar wheels, and / or the handles of the cabinet doors are concealed.

[0024] In one embodiment of the present application, the baffle assembly includes a front baffle and two side baffles, the front baffle is adsorbed and arranged on the front side of the bottom of the cabinet, and the side baffles are fixed to the side surfaces of the bottom of the cabinet by fasteners;

[0025] The baffle assembly also includes a third adsorption component, which is arranged on the front baffle to adsorb and fix the front baffle to the cabinet; and / or, the baffle assembly also includes a fourth adsorption component, which is arranged on the cabinet to adsorb and fix the front baffle.

[0026] In one embodiment of the present application, the cabinet further includes a piping structure, the piping structure including a plurality of power pumps and a plurality of liquid outlet pipes, the power pumps and the liquid outlet pipes being located in the accommodating cavity;

[0027] The liquid outlet pipe corresponding to each power pump is connected to the refrigerated container in the refrigeration chamber and the liquid outlet port of the liquid dispenser.

[0028] A liquid dispensing machine, comprising an operating table and a cabinet as described in any one of the above technical features;

[0029] The operating table is arranged on the cabinet and connected to the refrigerated container in the refrigerated chamber of the cabinet. The operating table has a liquid outlet port, and the liquid outlet port is used to output liquid materials in at least one of the refrigerated containers.

[0030] After adopting the above technical solution, this application has at least the following technical effects:

[0031] The cabinet and liquid dispenser of the present application include a refrigeration assembly disposed on the side of the refrigerator's refrigeration chamber, capable of generating cold air and delivering it to the refrigeration chamber. A batching cabinet is disposed above the refrigeration chamber and includes a storage chamber and a storage space. The storage chamber communicates with the storage space, and the storage space is used to hold the packaging boxes. A delivery mechanism connects the refrigeration chamber and the storage chamber to deliver cold air from the refrigeration chamber to the storage chamber, allowing the cold air in the storage chamber to refrigerate the packaging boxes in the storage space.

[0032] This cabinet has a conveying structure set in the accommodating chamber. The conveying structure can connect the cold storage room and the accommodating chamber to transport the cold air in the cold storage room to the accommodating chamber, so that the ingredient cabinet is in a refrigerated environment. That is, the accommodating chamber can borrow the cold air from the cold storage room. In this way, the cold air in the accommodating chamber can cool the liquid materials therein and the solid materials contained in the packaging boxes in the storage space, so that the solid materials and liquid materials in the packaging boxes can be stored and transported at low temperatures, avoiding the deterioration of the materials and ensuring safety. At the same time, there is no need to set up a separate refrigeration device in the accommodating chamber, which reduces the complexity and cost of the cabinet structure and facilitates the promotion and application of the liquid dispenser. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 This is a schematic diagram of a liquid dispensing machine according to an embodiment of the present application viewed from one angle.

[0034] Figure 2 for Figure 1 The schematic diagram of the liquid dispensing machine shown is viewed from another angle.

[0035] Figure 3 for Figure 1 The front view of the liquid dispensing machine is shown.

[0036] Figure 4 for Figure 1 The liquid dispenser shown is a three-dimensional view with the cover and cabinet door removed.

[0037] Figure 5 for Figure 4 A perspective view of the conveying structure shown is shown from an angle.

[0038] Figure 6 for Figure 5 The conveying structure shown is a perspective view from another angle.

[0039] Figure 7 for Figure 4 Schematic diagram of a refrigerated cabinet in a cabinet is shown.

[0040] Among them: 10, cabinet; 100, refrigerator; 110, refrigerator compartment; 120, refrigeration assembly; 130, support frame; 131, adapter pipe; 140, cabinet body; 141, refrigerator opening; 142, network cable socket; 143, power outlet; 144, air inlet; 145, tap water inlet; 146, sewer pipe outlet; 150, cabinet door; 160, baffle assembly; 161, front baffle; 162, side baffle; 170, Casters; 200, batching cabinet; 210, accommodating cavity; 220, storage space; 230, cover; 300, conveying structure; 310, output pipe; 311, inlet pipe; 312, conveying pipe; 320, fan; 330, distribution component; 331, distribution hole; 400, piping structure; 410, power pump; 420, liquid outlet pipe; 50, operating table; 501, liquid outlet port; 60, refrigeration container; 70, liquid storage barrel. DETAILED DESCRIPTION

[0041] To make the above-mentioned objects, features, and advantages of the present application more clearly understood, the specific embodiments of the present application are described in detail below with reference to the accompanying drawings. The following description sets forth many specific details to facilitate a full understanding of the present application. However, the present application can be implemented in many other ways than those described herein, and those skilled in the art can make similar improvements without violating the scope of the present application. Therefore, the present application is not limited to the specific embodiments disclosed below.

[0042] In the description of this application, it should be understood that if the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. appear, the orientation or position relationship indicated by these terms is based on the orientation or position relationship shown in the accompanying drawings, which is only for the convenience of describing this application and simplifying the description, and does 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 this application.

[0043] In addition, if the terms "first" or "second" appear, these terms are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of technical features indicated. Therefore, a feature specified as "first" or "second" may explicitly or implicitly include at least one of such features. In the description of this application, if the term "plurality" appears, "plurality" means at least two, for example, two, three, etc., unless otherwise specifically defined.

[0044] In this application, unless otherwise specified or limited, the terms "mounted," "connected," "connected," "fixed," etc., should be interpreted broadly. For example, these terms may refer to fixed connections, removable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediary; and internal communication between two components or interaction between two components, unless otherwise specified. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.

[0045] In this application, unless otherwise expressly specified or limited, if a first feature is described as being "above" or "below" a second feature, or similar descriptions appear, it may mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Moreover, the first feature being "above," "above," and "above" the second feature may mean that the first feature is directly above or diagonally above the second feature, or simply means that the first feature is at a higher level than the second feature. The first feature being "below," "below," and "below" the second feature may mean that the first feature is directly below or diagonally below the second feature, or simply means that the first feature is at a lower level than the second feature.

[0046] It should be noted that if an element is referred to as being "fixed to" or "disposed on" another element, it may be directly on the other element or there may be an intermediate element. If an element is considered to be "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. If any, the terms "vertical", "horizontal", "upper", "lower", "left", "right" and similar expressions used in this application are for illustrative purposes only and do not represent the only embodiment.

[0047] It is understandable that current commercial beverage machines usually include a refrigerated chamber and an ingredient cabinet, with the ingredient cabinet being located above the refrigerated chamber. The refrigerated chamber generally refrigerates liquid ingredients to prevent them from spoiling. Solid ingredients are usually placed on the ingredient cabinet in packaging boxes. Usually, the ingredient cabinet needs to be equipped with a separate refrigeration environment to refrigerate the solid ingredients and prevent them from spoiling. However, the separate refrigeration equipment in the ingredient cabinet will lead to a complex structure of the beverage machine and increase the manufacturing cost of the entire beverage machine, making it inconvenient for merchants to promote and use.

[0048] For this, see Figures 1 to 3 , this application provides a new type of cabinet 10. Figure 1 This is a schematic diagram of a liquid dispensing machine according to an embodiment of the present application viewed from one angle. Figure 2 for Figure 1 The schematic diagram of the liquid dispensing machine shown is viewed from another angle. Figure 3 for Figure 1 The cabinet 10 is applied to the liquid dispensing machine ( Figure 1 and Figure 2 The entire machine shown is a liquid dispenser, which can output liquid materials to prepare liquid drinks or drinks mixed with liquids and solids, etc. Of course, in other embodiments of the present application, the cabinet 10 can also be used in other food material cold preservation equipment to achieve refrigerated storage of food materials.

[0049] The cabinet 10 can transport the cold air in the refrigeration chamber 110 to the accommodating chamber 210 of the batching cabinet 200, so that the accommodating chamber 210 can borrow the cold air from the refrigeration chamber 110. In this way, the cold air in the accommodating chamber 210 can cool the liquid materials therein and the solid materials contained in the packaging boxes in the storage space 220, thereby achieving low-temperature storage and transportation of the solid and liquid materials in the packaging boxes, preventing the materials from deteriorating and ensuring safety. At the same time, there is no need to set up a separate refrigeration device in the accommodating chamber 210, reducing the complexity and cost of the cabinet 10 structure and facilitating the promotion and application of the liquid dispenser.

[0050] This application will only illustrate the cabinet 10 as being used in a liquid dispenser. To better illustrate the structure of the cabinet 10, a brief description of the dispenser's structure is provided. The dispenser includes an operating table 50 and the cabinet 10, as described herein. The operating table 50 is mounted on and connected to the cabinet 10. The cabinet 10 is the main structure of the dispenser, and the operating table 50 has a liquid outlet port 501 that communicates with the cabinet 10. An operator manipulates the operating table 50 to prepare the corresponding beverage.

[0051] The cabinet 10 stores and refrigerates a refrigerated container 60, which contains liquid materials. When preparing a drink, the cabinet 10 transfers the liquid material from the refrigerated container 60 to a liquid outlet port 501, where it is then dispensed into a beverage cup on the workbench 50. Furthermore, the cabinet 10 is equipped with a dispensing box for storing solid materials. Operators can add solid materials as needed to meet consumer needs.

[0052] The specific structure of the cabinet 10 according to one embodiment is introduced below.

[0053] See also Figures 1 to 4 In one embodiment, the cabinet 10 includes a refrigerator 100, a batching cabinet 200, and a conveying structure 300. The refrigerator 100 includes a refrigerator compartment 110 and a refrigeration assembly 120. The refrigeration assembly 120 is disposed on the side of the refrigerator compartment 110, is in communication with the refrigerator compartment 110, and delivers cold air to the refrigerator compartment 110. The batching cabinet 200 is disposed above the refrigerator 100. The batching cabinet 200 has a connected accommodating cavity 210 and a storage space 220. The storage space 220 is used to place the packaging boxes. The conveying structure 300 connects the refrigerator compartment 110 and the accommodating cavity 210. The conveying structure 300 is used to deliver the cold air from the refrigerator compartment 110 to the accommodating cavity 210. Figure 4 for Figure 1 The liquid dispenser shown is a three-dimensional view without the cover plate 230 and the cabinet door 150 .

[0054] The refrigerator 100 is the main component of the cabinet 10 that provides a refrigerated environment. It houses the refrigerated container 60, which contains liquid materials. This allows the liquid materials to be refrigerated and stored in the refrigerator 100 via the refrigerated container 60. This refrigerated storage of the liquid materials in the refrigerator 100 prevents them from deteriorating at room temperature and ensures their safety. The ingredient cabinet 200 houses the packaging boxes, which are used to hold solid materials.

[0055] The refrigerator 100 includes a refrigerator compartment 110 and a refrigeration assembly 120. The refrigeration assembly 120 is a device for providing cold air and is located on the side of the refrigerator compartment 110. When in operation, the refrigeration assembly 120 generates cold air. The refrigerator compartment 110 is a space for keeping cold, and a refrigerated container 60 is stored in the refrigerator compartment 110 to refrigerate the liquid materials in the refrigerated container 60. The output end of the refrigeration assembly 120 is connected to the refrigerator compartment 110, and the refrigeration assembly 120 can deliver cold air to the refrigerator compartment 110 to cool the refrigerator compartment 110, maintaining a low temperature environment in the refrigerator compartment 110, thereby allowing the refrigerator compartment 110 to refrigerate the liquid materials in the refrigerated container 60.

[0056] The ingredient cabinet 200 is arranged at the rear edge of the top of the refrigeration cabinet 100, and the ingredient cabinet 200 extends upward. Figure 1 and Figure 2 As shown, the ingredient cabinet 200 is hollow, having a hollow receiving cavity 210. The ingredient cabinet 200 also has a storage space 220, which is located above the refrigerator 100 and in front of the ingredient cabinet 200. This allows for the placement of multiple packaging boxes within the storage space 220. When preparing drinks, the operator can remove solid ingredients from the packaging boxes within the storage space 220, facilitating operation.

[0057] The accommodating chamber 210 of the ingredient cabinet 200 is connected to the storage space 220, and the conveying structure 300 connects the refrigerating chamber 110 and the accommodating chamber 210. In other words, the refrigerating chamber 110 and the accommodating chamber 210 are independently provided, and the conveying structure 300 establishes a connecting passage between the refrigerating chamber 110 and the accommodating chamber 210. The conveying structure 300 can convey the cold air in the refrigerating chamber 110 to the accommodating chamber 210, thereby maintaining a refrigerated environment in the accommodating chamber 210.

[0058] In this way, the accommodating chamber 210 can transport cold air into the storage space 220, so that the cold air can refrigerate the packaging boxes and the solid materials therein in the storage space 220. In this way, the solid materials can also be stored in a refrigerated environment, achieving low-temperature storage of the solid materials in a refrigerated environment, preventing the solid materials from deteriorating at room temperature, and ensuring safety.

[0059] Furthermore, the accommodating chamber 210 can utilize the cold air from the refrigerating chamber 110 via the conveying structure 300. Without affecting the refrigeration of the refrigerated containers 60 in the refrigerating chamber 110, the cold air from the refrigerating chamber 110 can be used to refrigerate the packaging boxes in the storage space 220 of the ingredient cabinet 200. This eliminates the need for dedicated refrigeration equipment in the ingredient cabinet 200 and the accommodating chamber 210. This significantly reduces the structural complexity of the ingredient cabinet 200 and reduces the production cost of the entire liquid dispenser.

[0060] The cabinet 10 of the above embodiment is provided with a conveying structure 300 in the accommodating chamber 210. The conveying structure 300 can connect the refrigerating chamber 110 and the accommodating chamber 210 to convey the cold air in the refrigerating chamber 110 to the accommodating chamber 210, so that the mixing cabinet 200 is in a refrigerated environment, that is, the accommodating chamber 210 can borrow the cold air of the refrigerating chamber 110. In this way, the cold air in the accommodating chamber 210 can cool the liquid materials therein and the solid materials contained in the sub-packaging boxes in the storage space 220, so that the solid materials and liquid materials in the sub-packaging boxes can be stored and transported at low temperatures, thereby avoiding the deterioration of the materials and ensuring safety. At the same time, there is no need to separately set up a refrigeration device in the accommodating chamber 210, which reduces the complexity and cost of the structure of the cabinet 10 and facilitates the promotion and application of the liquid dispenser.

[0061] See also Figure 3 and Figure 4 In one embodiment, one end of the conveying structure 300 is connected to the refrigerating chamber 110, and the other end of the conveying structure 300 is connected to the accommodating cavity 210. Figure 3 and Figure 4 In the embodiment, the bottom of the conveying structure 300 is connected to the refrigerating chamber 110, and the top of the conveying structure 300 is connected to the accommodating cavity 210. In this way, the conveying structure 300 can convey the cold air in the refrigerating chamber 110 to the accommodating cavity 210 to refrigerate the accommodating cavity 210 and the storage space 220.

[0062] See also Figure 3 and Figure 4 In one embodiment, the conveying structure 300 is partially located in the accommodating cavity 210 and partially located in the refrigerating chamber 110. Figure 3 and Figure 4 As shown, the lower portion of the conveying structure 300 is located in the refrigerating chamber 110, and the upper portion of the conveying structure 300 is located in the accommodating cavity 210. In this way, the conveying structure 300 can establish a passage between the refrigerating chamber 110 and the accommodating cavity 210, realize the transmission of cold air, and prevent the cold air from leaking through the gap between the refrigerator 100 and the ingredient cabinet 200, thereby reducing energy consumption.

[0063] Of course, in other embodiments of the present application, the delivery structure 300 may also be located in the accommodating chamber 210, with the top of the refrigerator 100 having an opening that communicates with the refrigerating chamber 110, and the delivery structure 300 being sealedly connected to the opening. This also enables the delivery structure 300 to deliver cold air to the accommodating chamber 210.

[0064] It is worth noting that the layout of the packaging boxes in the storage space 220 is, in principle, not limited, as long as the packaging boxes can be kept in a refrigerated environment, can dispense solid ingredients, and are convenient for operators to access. Optionally, multiple packaging boxes can be arranged in rows and columns along the front-to-back direction of the liquid dispenser in the storage space 220, and the multiple packaging boxes can be arranged at an angle. Of course, in other embodiments of the present application, multiple rows of packaging boxes can also be arranged in the height direction.

[0065] In one embodiment, the refrigeration assembly 120 includes a compressor, a condenser, an evaporator, and a circulation pipeline. The circulation pipeline connects the compressor, condenser, and evaporator to form a refrigeration circuit. When in operation, the refrigeration assembly 120 generates cold air and delivers this cold air to the refrigerated compartment 110. Optionally, the refrigeration assembly 120 also includes an evaporation fan, which is located on the side of the evaporator to achieve evaporative ventilation in the refrigeration assembly 120.

[0066] Optionally, refrigeration assembly 120 further includes a plurality of heat dissipation holes, each of which is provided in correspondence with refrigeration assembly 120. Heat generated during operation of refrigeration assembly 120 is dissipated through the heat dissipation holes, thereby reducing the operating temperature of the compressor and ensuring the performance of refrigeration assembly 120. It is worth noting that the shape and layout of the heat dissipation holes are, in principle, not limited, as long as they can achieve heat dissipation. Optionally, the plurality of heat dissipation holes are arranged in rows and columns. Optionally, the heat dissipation holes are circular, square, oblong, elliptical, or other regular or irregular shapes.

[0067] In one embodiment, the cabinet 10 further includes a controller, which is disposed within the cabinet 10 and electrically connects to the various electrical components of the cabinet 10 to control the components to perform corresponding actions. The controller is electrically connected to the refrigeration assembly 120 to control the refrigeration assembly 120 to perform refrigeration operations. The controller is also electrically connected to the operating console 50. After an operator manipulates the operating console 50, the controller can perform liquid discharge operations.

[0068] See also Figures 1 to 4 In one embodiment, the batching cabinet 200 includes a main cabinet and a cover plate 230. The cover plate 230 is arranged on the front side of the main cabinet and is surrounded by the main cabinet to form a accommodating cavity 210. The pipeline structure 400 and part of the conveying structure 300 are located in the accommodating cavity 210.

[0069] See also Figure 3 and Figure 4In one embodiment, the cabinet 10 further includes a piping structure 400 disposed within the accommodating cavity 210. One end of the piping structure 400 passes through the refrigerator 100 and connects to the refrigerated container 60, while the other end of the piping structure 400 connects to the liquid outlet port 501. In this way, the piping structure 400 can extract liquid materials from the refrigerated container 60 and output them through the liquid outlet port 501. Furthermore, the refrigerated compartment 110 can store multiple refrigerated containers 60, each capable of storing different liquid materials. Operators control the piping structure 400 to extract the corresponding liquid materials based on actual consumer demand.

[0070] After the piping structure 400 transports the liquid material, some liquid material will remain in the piping structure 400. Because the piping structure 400 is located within the accommodating chamber 210, the transport structure 300 can transport the cold air from the refrigerating chamber 110 into the accommodating chamber 210. At this point, the cold air in the accommodating chamber 210 can refrigerate the piping structure 400. This means that the liquid material in the piping structure 400 is also kept in a refrigerated environment. This allows for low-temperature storage and transport of the liquid material in the piping structure 400, preventing deterioration and ensuring safety.

[0071] See also Figures 1 to 4 In one embodiment, the top of the cabinet 10 is further provided with multiple liquid storage barrels 70 for storing liquid materials that can be stored at room temperature. These multiple liquid storage barrels 70 are positioned on top of the liquid dispenser and are each connected to the pipeline structure 400 . Thus, the liquid storage barrels 70 can output the liquid materials through the liquid outlet port 501 via the pipeline structure 400 .

[0072] The liquid dispenser of the present application utilizes a liquid storage barrel 70 and a refrigerated container 60 to store different types of liquid materials, thereby increasing the variety of beverages the dispenser can produce. The specific types of liquid materials stored in the refrigerated container 60 and the liquid storage barrel 70 are not discussed here. Furthermore, the solid materials contained in the dispensing box can also be customized based on actual needs, which will not be discussed further here.

[0073] See also Figure 3 and Figure 4 In one embodiment, the piping structure 400 includes a plurality of power pumps 410 and a plurality of liquid outlet pipes 420, which are located in the accommodating chamber 210. The liquid outlet pipe 420 corresponding to each power pump 410 connects the refrigerated container 60 in the refrigerating chamber 110 with the liquid outlet port 501 of the liquid dispenser.

[0074] The power pump 410 is a component of the piping structure 400 that pumps liquid. The power pump 410 is fixedly mounted on the inner wall of the accommodating chamber 210. The liquid outlet pipe 420 is located in the accommodating chamber 210 and is routed within the cabinet 10. This eliminates the need for the power pump 410 to be located within the refrigerating chamber 110. This allows the liquid outlet pipe 420 to be cooled while reducing the space occupied by the power pump 410 within the refrigerating chamber 110, thereby improving the space utilization of the accommodating chamber 210.

[0075] One end of the liquid outlet pipe 420 extends into the refrigerated chamber 110 and communicates with the refrigerated container 60. The other end of the liquid outlet pipe 420 extends into the operating table 50 and communicates with the liquid outlet port 501. When the power pump 410 is in operation, the power pump 410 can extract liquid material from the refrigerated container 60 through the liquid outlet pipe 420 and transport it to the liquid outlet port 501 through the liquid outlet pipe 420, and then output the liquid material through the liquid outlet port 501.

[0076] In this application, there are multiple power pumps 410 and multiple groups of liquid outlet pipes 420. Each power pump 410 is connected to a group of liquid outlet pipes 420. Some power pumps 410 are connected to the corresponding refrigerated containers 60 through the corresponding liquid outlet pipes 420, and some power pumps 410 are connected to the corresponding liquid storage barrels 70 through the corresponding liquid outlet pipes 420.

[0077] In other words, each refrigerated container 60 corresponds to a power pump 410 and a set of liquid outlet pipes 420, through which liquid materials are output; each liquid storage barrel 70 also corresponds to a power pump 410 and a set of liquid outlet pipes 420. This prevents mixing of different types of liquid materials, thereby ensuring the taste of the beverage.

[0078] See also Figure 3 and Figure 4 For example, there are ten power pumps 410, and accordingly, there are ten groups of liquid outlet pipes 420, with each power pump 410 connected to a group of liquid outlet pipes 420. Six power pumps 410 are connected to corresponding refrigerated containers 60 via liquid outlet pipes 420, and the remaining four power pumps 410 are connected to corresponding liquid storage barrels 70 via liquid outlet pipes 420. Of course, in other embodiments of the present application, the number of power pumps 410 can be other, and the number of refrigerated containers 60 and liquid storage barrels 70 connected to the liquid outlet pipes 420 can be determined based on demand.

[0079] See also Figures 3 to 6 In one embodiment, the delivery structure 300 includes a fan 320 and an output duct 310. The output duct 310 is disposed in the accommodating chamber 210. One end of the output duct 310 extends into the refrigerating chamber 110, and the other end of the output duct 310 is located in the accommodating chamber 210. The fan 320 is disposed in the output duct 310 and is used to deliver cold air from the refrigerating chamber 110 to the accommodating chamber 210 through the output duct 310. Figure 5 for Figure 4 The transport structure 300 is shown as a perspective view from an angle. Figure 6 for Figure 5 The transport structure 300 is shown in a perspective view from another angle.

[0080] The output duct 310 is the main duct for transporting cold air. One end of the output duct 310 extends into the refrigerating chamber 110, and the other end of the output duct 310 is located in the accommodating chamber 210. Thus, the output duct 310 connects the refrigerating chamber 110 with the accommodating chamber 210. The fan 320 is the power source for the transport structure 300 and is located in the output duct 310. When in operation, the fan 320 generates a suction force, which draws the cold air from the refrigerating chamber 110 into the output duct 310, where it is then transported to the accommodating chamber 210.

[0081] In this way, the cold air in the accommodating chamber 210 can refrigerate the liquid material in the liquid outlet pipe 420. In addition, the accommodating chamber 210 can also transport the cold air to the storage space 220, so that the cold air can refrigerate the packaging boxes and the solid materials therein in the storage space 220. In this way, the liquid and solid materials can be stored in a refrigerated environment, achieving low-temperature storage and transportation of the liquid materials and low-temperature storage of the solid materials, preventing the liquid and solid materials from deteriorating at room temperature and ensuring safety.

[0082] See 5 and Figure 6 In one embodiment, the output pipe 310 includes an inlet pipe 311 and a delivery pipe 312. The inlet pipe 311 is arranged at one end of the delivery pipe 312 and is located in the refrigeration chamber 110. The delivery pipe 312 is located in the accommodating cavity 210 and extends toward the top of the accommodating cavity 210.

[0083] The inlet pipe 311 is arranged at the bottom of the delivery pipe 312 . The inlet pipe 311 is located in the refrigerating chamber 110 , and the delivery pipe 312 is located in the accommodating cavity 210 . The inlet pipe 311 and the delivery pipe 312 are connected at the connection between the refrigerating chamber 110 and the accommodating cavity 210 .

[0084] When the fan 320 is working, the cold air in the refrigeration chamber 110 can enter the inlet pipe 311, enter the delivery pipe 312 through the inlet pipe 311, and then enter the accommodating cavity 210 through the delivery pipe 312 to refrigerate the pipeline structure 400 in the accommodating cavity 210 and the packaging boxes in the storage space 220.

[0085] In one embodiment, the inlet pipe 311 and the delivery pipe 312 are provided separately and are fastened together using screws or other means. Optionally, the output pipe 310 further includes a seal disposed between the inlet pipe 311 and the delivery pipe 312 to ensure a tight seal at the connection between the two and prevent cold air from leaking from the connection between the inlet pipe 311 and the delivery pipe 312.

[0086] Of course, in other embodiments of the present application, the inlet pipe 311 and the delivery pipe 312 may also be an integrated structure. In one embodiment, the delivery pipe 312 is arranged in a vertical direction. This can achieve cold air delivery while reducing the space occupied by the delivery pipe 312, facilitating the layout of the piping structure 400 within the accommodating chamber 210. Of course, in other embodiments of the present application, the delivery pipe 312 may also be arranged at an angle, etc.

[0087] See also Figures 3 to 6 In one embodiment, the delivery tube 312 extends to the top of the accommodating chamber 210. That is, the end of the delivery tube 312 away from the inlet tube 311 is located at the top of the accommodating chamber 210. This allows the delivery tube 312 to deliver cold air to the accommodating chamber 210, where it can flow down from the top of the accommodating chamber 210, thereby better refrigerating the piping structure 400 within the accommodating chamber 210.

[0088] See 5 and Figure 6 In one embodiment, the cross-sectional dimension of the inlet pipe 311 at the refrigeration chamber 110 is larger than the cross-sectional dimension at the junction of the inlet pipe 311 and the delivery pipe 312. In other words, the inlet pipe 311 is a flared pipe, with the cross-sectional dimension of the inlet pipe 311 gradually decreasing from bottom to top. This facilitates the entry of cold air into the delivery pipe 312.

[0089] See also Figures 3 to 6 In one embodiment, the output pipe 310 is made of sheet metal. This ensures the structural strength of the output pipe 310 while also reducing corrosion, thereby ensuring the performance of the output pipe 310.

[0090] See also Figures 3 to 6 In one embodiment, the conveying structure 300 further includes a distribution component 330, which is disposed at one end of the output pipe 310 away from the refrigeration chamber 110; the distribution component 330 and the inner wall of the ingredient cabinet 200 are arranged to form a distribution space, which connects the output pipe 310 and the accommodating cavity 210.

[0091] The distribution member 330 is disposed at the end of the delivery tube 312 away from the inlet tube 311. Furthermore, the distribution member 330 abuts against the inner wall of the accommodating chamber 210 to enclose a distribution space. In this manner, the delivery tube 312 can first deliver the cold air to the distribution space, and then, through the distribution member 330, deliver the cold air to the accommodating chamber 210, allowing the cold air delivered by the delivery tube 312 to enter the accommodating chamber 210.

[0092] See also Figures 4 to 6 In one embodiment, the distribution component 330 has a plurality of distribution holes 331, which penetrate the distribution component 330 to connect the distribution space with the accommodating chamber 210. The distribution holes 331 penetrate the distribution component 330 in a vertical direction so that the distribution holes 331 can connect the distribution space with the accommodating chamber 210.

[0093] After the delivery pipe 312 delivers the cold air to the distribution space, the cold air can enter the accommodating chamber 210 through the distribution hole 331 of the distribution component 330 to refrigerate the pipeline structure 400 in the accommodating chamber 210. At the same time, the cold air can also enter the storage space 220 to refrigerate the packaging boxes in the storage space 220.

[0094] See also Figures 4 to 6 In one embodiment, the plurality of distribution holes 331 are evenly and / or non-uniformly distributed on the distribution component 330. That is, the distribution holes 331 can be evenly arranged on the distribution component 330. Of course, the distribution holes 331 can also be non-uniformly distributed on the distribution component 330, or some distribution holes 331 can be evenly distributed on the distribution component 330, while some distribution holes 331 can be non-uniformly distributed on the distribution component 330.

[0095] In this embodiment, the distribution holes 331 are distributed more sparsely on the side close to the delivery tube 312 and more densely on the side away from the delivery tube 312. This allows the delivery tube 312 to deliver cold air to the distribution space. The cold air first enters the distribution space close to the delivery tube 312 and then flows to the side away from the delivery tube 312. This sparse and dense arrangement of the distribution holes 331 allows the cold air in the distribution space to flow as evenly as possible into the accommodating chamber 210, thereby achieving the most uniform cooling possible across the piping structure 400.

[0096] See also Figures 4 to 6 In one embodiment, a fan 320 is disposed at at least one end of the output duct 310. The fan 320 is a component that draws cold air. When in operation, the fan 320 draws cold air from the refrigeration compartment 110 into the output duct 310, facilitating the distribution of the cold air. The fan 320 can be located at the end of the inlet duct 311 away from the delivery duct 312, or at the end of the delivery duct 312 away from the inlet duct 311. Furthermore, the fan 320 can be located outside or inside the output duct 310.

[0097] In this embodiment, Figures 4 to 6 As shown, the fan 320 is located outside the inlet pipe 311. That is, the fan 320 is located in the refrigeration chamber 110 and outside the end of the inlet pipe 311 away from the delivery pipe 312. Of course, in other embodiments of the present application, the fan 320 may also be located in the inlet pipe 311, or at the end of the delivery pipe 312 away from the inlet pipe 311, as long as it can extract cold air from the refrigeration chamber 110.

[0098] In another embodiment of the present application, the fan 320 is disposed in the cavity of the output duct 310. That is, the fan 320 is located inside the output duct 310. In this way, when the fan 320 is in operation, it can draw cold air from the refrigeration chamber 110 into the output duct 310. Alternatively, the fan 320 can be located at the junction of the inlet duct 311 and the delivery duct 312, or in the middle area of ​​the delivery duct 312, etc.

[0099] See also Figures 4 to 6 In one embodiment, a predetermined angle is formed between the fan 320 and the central axis of the output duct 310. In other words, the fan 320 is tilted relative to the output duct 310. This allows the fan 320 to effectively draw cold air from the refrigerating chamber 110, thereby channeling and borrowing cold air from the refrigerating chamber 110 and ensuring the refrigeration of the piping structure 400 in the accommodating chamber 210 and the packaging boxes in the storage space 220.

[0100] In one embodiment, the preset angle ranges from 30° to 45°. That is, when the angle between the fan 320 and the central axis of the output duct 310 is within the range of 30° to 45°, the fan 320 can more effectively extract the cold air from the refrigerating chamber 110, thereby achieving the purpose of channeling and borrowing the cold air from the refrigerating chamber 110.

[0101] See also Figures 1 to 4 In one embodiment, the refrigerator 100 further includes a support frame 130 disposed within the refrigerating chamber 110 and configured to accommodate a plurality of refrigerated containers 60. The support frame 130 is disposed within the refrigerating chamber 110 and supports the refrigerated containers 60, thereby facilitating communication between the refrigerated containers 60 and the liquid outlet pipe 420 in the piping structure 400.

[0102] Optionally, the support frame 130 includes a transfer tube 131 that connects the liquid outlet pipe 420 with the refrigerated container 60, thereby transferring the liquid material in the refrigerated container 60 to the liquid outlet port 501 through the liquid outlet pipe 420. It is worth noting that the structural form of the support frame 130 is generally not limited, as long as the support frame 130 can support the refrigerated container 60. In this embodiment, the support frame 130 is plate-shaped and is fixed to the inner wall of the refrigerated chamber 110.

[0103] Optionally, the top of the support frame 130 and the refrigeration chamber 110 enclose a first space, and multiple refrigerated containers 60 are arranged side by side in the first space. Optionally, the bottom of the support frame 130 and the refrigeration chamber 110 enclose a second space, and the second space can also accommodate refrigerated containers 60 or other containers that need to be refrigerated.

[0104] In one embodiment, the refrigerated container 60 is secured to the support frame 130 by suction. This eliminates the need for corresponding mating structures, such as protrusions or depressions, on the support frame 130 to secure the refrigerated container 60. This ensures a smooth surface on the support frame 130, avoiding unsafe corners and facilitating cleaning. Furthermore, suction allows for rough positioning of the refrigerated container 60, facilitating connection between the refrigerated container 60 and the liquid outlet pipe 420.

[0105] See also Figures 1 to 4 In one embodiment, the refrigerator 100 includes a plurality of first adsorption members, at least one first adsorption member is provided at the bottom of each refrigerated container 60, and the first adsorption member is used to adsorb and fix the refrigerated container 60 to the support frame 130; and / or, the refrigerator 100 further includes a plurality of second adsorption members, the plurality of second adsorption members are provided on the support frame 130, and each refrigerated container 60 is fixed to the support frame 130 by at least one second adsorption member.

[0106] Optionally, a first adsorption member may be provided at the bottom of the refrigerated container 60, and a second adsorption member may be provided at the bottom of the support frame 130. The first adsorption member and the second adsorption member cooperate with each other in adsorption to directly position and fix the refrigerated container 60 to the support frame 130. Optionally, the first adsorption member and the second adsorption member are magnets.

[0107] In this way, the first adsorption member can be hidden in the refrigerated container 60, and the second adsorption member can be hidden in the support frame 130. After the first adsorption member and the second adsorption member cooperate, the refrigerated container 60 can be positioned. At the same time, the surface of the support frame 130 is flat, without sanitary blind spots, and is easy to clean.

[0108] Of course, in other embodiments of the present application, only the first adsorption component may be provided at the bottom of the refrigerated container 60. In this case, the refrigerated container 60 is directly adsorbed on the support frame 130 through the first adsorption component. Alternatively, only the second adsorption component may be provided on the surface of the support frame 130. In this case, the support frame 130 can directly adsorb the refrigerated container 60 through the second adsorption component.

[0109] See also Figures 1 to 4 、 Figure 7 In one embodiment, the refrigerator 100 further includes a cabinet body 140, a cabinet door 150, a baffle assembly 160, and a plurality of casters 170. The plurality of casters 170 are rotatably disposed on the bottom of the cabinet body 140. The cabinet door 150 is closably disposed on the cabinet body 140 and, together with the cabinet body 140, forms a refrigeration chamber 110. The baffle assembly 160 is disposed on the bottom of the cabinet body 140 and surrounds at least a portion of the circumference of the cabinet body 140. Figure 7 for Figure 4 A schematic diagram of a refrigerated cabinet 100 in a cabinet 10 is shown.

[0110] The cabinet body 140 is the main body of the refrigerator 100. A cabinet door 150 is openably disposed at the opening of the cabinet body 140. The cabinet door 150 and the cabinet body 140 can enclose a refrigerator compartment 110 for refrigerating and storing refrigerated containers 60. A plurality of casters 170 are rotatably disposed at the bottom of the cabinet body 140. When the refrigerator 100 is pushed, the casters 170 can move the refrigerator 100 along the ground, thereby adjusting the overall position of the cabinet 10 and facilitating regular cleaning.

[0111] Moreover, the baffle assembly 160 is arranged at the bottom of the cabinet 140 and surrounds the front and both sides of the cabinet 140. At the same time, the baffle assembly 160 can also block the casters 170. In this way, the baffle assembly 160 can prevent items from falling to the bottom of the cabinet 140.

[0112] Optionally, the cabinet door 150 can be slidably mounted on the cabinet body 140. In other words, the cabinet door 150 is slidably mounted so that it does not occupy external space when opened. Of course, in other embodiments of the present application, the cabinet door 150 can also be rotatably mounted. Optionally, the cabinet door 150 is a glass door.

[0113] Optionally, the casters 170 are FOMA casters. FOMA casters offer good load-bearing capacity and secure fixation, facilitating the securement of the cabinet 10 in place while also meeting the overall load-bearing requirements of the cabinet. Optionally, the handles on the cabinet door 150 are concealed. That is, the handles do not protrude from the cabinet door 150, eliminating the need for external space and preventing the operator from bumping into them while preparing beverages.

[0114] See also Figure 1 and Figure 2In one embodiment, the top of the refrigerator 100 has a refrigeration opening 141, which connects the storage space 220 and the refrigeration chamber 110. In other words, the top of the cabinet 140 has a refrigeration opening 141, and the refrigeration opening 141 can also store the packaging boxes. In this way, the refrigeration chamber 110 can also transport cold air to the storage space 220 through the refrigeration opening 141 to refrigerate the packaging boxes.

[0115] See also Figures 1 to 4 、 Figure 7 In one embodiment, the baffle assembly 160 includes a front baffle 161 and two side baffles 162. The front baffle 161 is disposed on the front side of the bottom of the cabinet 140, and the side baffles 162 are fixed to the sides of the bottom of the cabinet 140 via fasteners. The front baffle 161 is disposed on the front side of the bottom of the cabinet 140 to shield the bottom of the cabinet 140 from the front side of the bottom of the cabinet 10. The side baffles 162 are symmetrically disposed on the sides of the bottom of the cabinet 140 to shield the bottom of the cabinet 140 from the sides of the bottom of the cabinet 10.

[0116] Optionally, the side baffles 162 are fixed to the bottom of the cabinet 140 by fasteners such as threads, and the front baffle 161 is fixed to the bottom of the solid body by adsorption. In other words, the side baffles 162 are fixed to the bottom of the cabinet 140 by threaded fastening to ensure that the side baffles 162 are securely fixed, and the front baffle 161 is fixed by adsorption, which can facilitate regular disassembly and cleaning.

[0117] In one embodiment, the baffle assembly 160 also includes a third adsorption component, which is arranged on the front baffle 161 to adsorb and fix the front baffle 161 to the cabinet 140; and / or, the baffle assembly 160 also includes a fourth adsorption component, which is arranged on the cabinet 140 for adsorbing and fixing the front baffle 161.

[0118] Optionally, a third adsorption member may be provided on the front baffle 161, and a fourth adsorption member may be provided at the bottom of the cabinet 140. The third and fourth adsorption members may cooperate with each other to securely attach the front baffle 161 to the front side of the bottom of the cabinet 140. Optionally, the third and fourth adsorption members may be magnets. In this manner, the cooperation of the third and fourth adsorption members facilitates the removal of the front baffle 161, thereby facilitating regular cleaning.

[0119] Of course, in other embodiments of the present application, a third adsorption component may be provided only on the front baffle 161. In this case, the front baffle 161 is directly adsorbed on the solid through the third adsorption component. Alternatively, a fourth adsorption component may be provided only on the bottom of the cabinet 140. In this case, the bottom of the cabinet 140 can directly adsorb the front baffle 161 through the fourth adsorption component.

[0120] See also Figure 2In one embodiment, the cabinet 10 also has a network cable jack 142 and a power outlet 143. The network cable jack 142 is used to electrically connect to an external network cable. The network cable jack 142 is also electrically connected to the controller of the cabinet 10, allowing the entire liquid dispenser to access the network and facilitate network control. The power cord of the liquid dispenser is led out through the power outlet 143 to electrically connect to an external power source to power the liquid dispenser.

[0121] See also Figure 2 In one embodiment, the cabinet 10 further includes an air inlet 144, a water inlet 145, and a drain outlet 146. The air inlet 144 can be connected to the piping structure 400 to facilitate emptying of the piping structure 400 during cleaning. The water inlet 145 and drain outlet 146 are connected to the piping structure 400 to facilitate cleaning of the piping structure 400.

[0122] See also Figures 1 to 4 The cabinet 10 of the present application adopts a conveying structure 300 to connect the cold storage chamber 110 and the accommodating chamber 210, so as to borrow the cold air in the cold storage chamber 110. The conveying structure 300 can convey the cold air in the cold storage chamber 110 to the accommodating chamber 210, so that the batching cabinet 200 is in a refrigerated environment. In this way, the cold air in the accommodating chamber 210 can refrigerate the liquid materials in the pipeline structure 400 and the solid materials contained in the sub-packaging boxes in the storage space 220, so that the solid materials in the sub-packaging boxes and the liquid materials in the pipeline structure 400 can be stored and transported at low temperatures, thereby avoiding the deterioration of the materials and ensuring safety. At the same time, there is no need to set up a refrigeration device separately in the accommodating chamber 210, which reduces the complexity and cost of the structure of the cabinet 10.

[0123] See also Figures 1 to 4 The present application further provides a liquid dispenser, comprising an operating table 50 and a cabinet 10 as in any of the above embodiments. The operating table 50 is disposed on the cabinet 10 and connected to a refrigerated container 60 in a refrigerated compartment 110 of the cabinet 10. The operating table 50 has a liquid outlet port 501 for discharging liquid material from at least one refrigerated container 60.

[0124] The liquid dispenser of the present application adopts the cabinet 10 of the above-mentioned embodiment, which can not only meet the needs of beverage production, but also use the cold air in the refrigeration chamber 110 to refrigerate the ingredient cabinet 200, so that the solid materials in the packaging boxes and the liquid materials in the pipeline structure 400 can be stored and transported at low temperatures, avoiding the deterioration of the materials, ensuring safety, and reducing the complexity and cost of the cabinet 10 structure, thereby facilitating the promotion and application of the liquid dispenser.

[0125] The technical features of the above-mentioned embodiments can be combined arbitrarily. In order to make the description concise, not all possible combinations of the technical features in the above-mentioned embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0126] The above-described embodiments merely represent several implementation methods of the present application. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that a person of ordinary skill in the art may make various modifications and improvements without departing from the spirit of the present application, and these modifications and improvements fall within the scope of protection of the present application. Therefore, the scope of protection of the present patent application shall be determined by the appended claims.

Claims

1. A cabinet, characterized in that: include: A refrigerator, comprising a refrigerator compartment and a refrigeration assembly, wherein the refrigeration assembly is arranged on the side of the refrigerator compartment, the refrigeration assembly is connected to the refrigerator compartment, and supplies cold air to the refrigerator compartment; A batching cabinet is provided above the refrigerated cabinet, the batching cabinet having a communicating accommodating cavity and a storage space, the storage space being used for placing the packaging boxes; and A conveying structure connects the refrigerating chamber and the accommodating cavity, and the conveying structure is used to convey the cold air in the refrigerating chamber to the accommodating cavity.

2. The cabinet according to claim 1, characterized in that: The delivery structure includes a fan and an output pipe, wherein the output pipe is arranged in the accommodating cavity, one end of the output pipe extends into the refrigerating chamber, and the other end of the output pipe is located in the accommodating cavity; The fan is arranged on the output pipe, and is used to transport the cold air in the refrigeration chamber to the accommodating cavity through the output pipe.

3. The cabinet according to claim 2, characterized in that: The output pipe includes an inlet pipe and a delivery pipe, wherein the inlet pipe is provided at one end of the delivery pipe and is located in the refrigerating chamber, and the delivery pipe is located in the accommodating cavity and extends toward the top of the accommodating cavity; The cross-sectional dimension of the inlet pipe located in the refrigerating chamber is larger than the cross-sectional dimension of the connection between the inlet pipe and the delivery pipe.

4. The cabinet according to claim 2, characterized in that: The conveying structure further includes a distribution component, which is arranged at an end of the output pipe away from the refrigeration chamber; The distribution component and the inner wall of the batching cabinet are arranged to form a distribution space, and the distribution space is connected with the output pipe and the accommodating cavity.

5. The cabinet according to claim 2, characterized in that: The fan is arranged at at least one end of the output pipe; And / or, the fan is arranged in the cavity of the output pipe; And / or, there is a preset angle between the fan and the central axis of the output pipe, and the preset angle ranges from 30° to 45°.

6. The cabinet according to any one of claims 1 to 5, characterized in that: The refrigerator further comprises a support frame, the support frame being arranged in the refrigeration chamber, the support frame being used to place a plurality of refrigerated containers, the refrigerated containers being fixed to the support frame by adsorption; The refrigerated cabinet includes a plurality of first adsorption members, at least one of which is provided at the bottom of each refrigerated container, and the first adsorption member is used to adsorb and fix the refrigerated container to the support frame; and / or, the refrigerated cabinet also includes a plurality of second adsorption members, a plurality of second adsorption members are provided on the support frame, and each refrigerated container is fixed to the support frame via at least one second adsorption member.

7. The cabinet according to any one of claims 1 to 5, characterized in that: The refrigerator further comprises a cabinet body, a cabinet door, a baffle assembly and a plurality of casters, wherein the plurality of casters are rotatably arranged at the bottom of the cabinet body, and the cabinet door is closably arranged at the cabinet body and encloses the cabinet body to form the refrigerator compartment; The baffle assembly is arranged at the bottom of the cabinet and surrounds at least a portion of the circumference of the cabinet; The casters are Fomar wheels, and / or the handles of the cabinet doors are concealed.

8. The cabinet according to claim 7, characterized in that: The baffle assembly includes a front baffle and two side baffles, the front baffle is adsorbed and arranged on the front side of the bottom of the cabinet, and the side baffles are fixed to the side surfaces of the bottom of the cabinet by fasteners; The baffle assembly also includes a third adsorption component, which is arranged on the front baffle to adsorb and fix the front baffle to the cabinet; and / or, the baffle assembly also includes a fourth adsorption component, which is arranged on the cabinet to adsorb and fix the front baffle.

9. The cabinet according to any one of claims 1 to 5, characterized in that: The cabinet further includes a pipeline structure, which includes a plurality of power pumps and a plurality of liquid outlet pipes, and the power pumps and the liquid outlet pipes are located in the accommodating cavity; The liquid outlet pipe corresponding to each power pump is connected to the refrigerated container in the refrigeration chamber and the liquid outlet port of the liquid dispenser.

10. A liquid dispensing machine, characterized in that: comprising an operating table and a cabinet according to any one of claims 1 to 9; The operating table is arranged on the cabinet and connected to the refrigerated container in the refrigerated chamber of the cabinet. The operating table has a liquid outlet port, and the liquid outlet port is used to output liquid materials in at least one of the refrigerated containers.