Refrigeration device

By setting a partition on the water connection tray and forming a partition chamber in the press chamber, the air flow path is optimized, and the problems of low evaporation efficiency and complex structure are solved, and more efficient cooling and condensate evaporation effects are achieved.

CN223204601UActive Publication Date: 2025-08-08QINGDAO HISENSE COMMERCIAL COLD CHAIN CO LTD
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Patent Information

Application Number
CN202422432623.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-09
Publication Date
2025-08-08
Estimated Expiration
2034-10-09

AI Technical Summary

Technical Problem

In existing refrigeration devices, the condensate evaporation efficiency is low and the structure is complex. Especially under the demand for large refrigeration rooms, the layout of the condensate unit affects the evaporation of liquid in the water connection tray and the use of the compressor indoor space.

Method used

By setting a partition on the water connection tray, it is divided into the first and second water connection tanks, and forming the first and second silos in the press chamber, the air flow direction is optimized, and the air flow path of the condenser and the fan is used to improve the evaporation efficiency of the condensate.

Benefits of technology

The evaporation efficiency of the condensate is improved, the disordered flow of airflow is avoided, the structure is simplified, the energy consumption is reduced, and the cooling efficiency and the durability of the water connection tray is enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a refrigerating device. The refrigerating device comprises a box body, a refrigeration chamber is arranged in the refrigerator body; the press cabin is arranged in the bottom area of the box body; a partition part is arranged on the top of the water pan in a protruding mode and divides the interior of the water pan into a first water receiving groove and a second water receiving groove, and the first water receiving groove and the second water receiving groove are formed in the two opposite sides of the partition part respectively. The top of the partition part abuts against the top wall of the press bin, so that a first bin body and a second bin body are formed on the two opposite sides of the partition part respectively, and a communication port is formed between the first bin body and the second bin body and located at one end of the partition part; the condenser and the fan are respectively arranged in the second bin body; when the draught fan is started, air flow can be formed in the press bin, the air flow flows to the second bin body from the first bin body through the communicating opening, the air flow in the first bin body can flow through the first water receiving groove, and the air flow in the second bin body can flow through the condenser and the second water receiving groove in sequence.
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Description

Technical Field

[0001] The utility model relates to the technical field of household appliances, mainly to a refrigeration device. Background Art

[0002] A refrigerator is a device that maintains a constant low temperature to store items. It is widely used in modern life and industrial production. The refrigerator is constructed with a refrigeration compartment, which creates a cooling environment for storing items.

[0003] At present, the bottom of refrigerators such as glass-door beverage cabinets adopts a stepped structure, and the layout of the refrigeration condensing unit is a water receiving tray, a condenser, a cooling fan and a compressor from the front to the back.

[0004] However, current refrigeration device designs require a larger refrigeration compartment, which requires further space in the compressor room, which not only affects the evaporation of liquid in the water tray in the condensing unit, but also makes the structural arrangement in the compressor room more complicated. Summary of the Invention

[0005] Based on the problem of low evaporation efficiency of condensate inside a refrigeration device in the prior art, a refrigeration device is provided.

[0006] In order to solve the above technical problems, the present invention adopts the following technical solutions:

[0007] One aspect of the present application provides a refrigeration device, comprising: a housing forming an outer shell of the refrigeration device; a refrigeration compartment provided in the housing; a compressor compartment provided in a bottom area of the housing; a water receiving pan provided in the compressor compartment, a baffle portion protruding from a top of the water receiving pan, the baffle portion dividing the interior of the water receiving pan into a first water receiving trough and a second water receiving trough, the first water receiving trough and the second water receiving trough being provided on opposite sides of the baffle portion; a top of the baffle portion abutting against a top wall of the compressor compartment to form a first compartment body and a second compartment body on opposite sides of the baffle portion, respectively, a communication port being provided between the first compartment body and the second compartment body, the communication port being located at one end of the baffle portion; a condenser and a fan respectively provided in the second compartment body; when the fan is started, an airflow can be formed in the compressor compartment, the airflow flowing from the first compartment body through the communication port to the second compartment body, the airflow in the first compartment body can flow through the first water receiving trough, and the airflow in the second compartment body can flow through the condenser and the second water receiving trough in sequence.

[0008] In the present application, the compressor compartment is separated into a first compartment body and a second compartment body by a partition on the water receiving tray. The partitioning effect of the partition allows an air duct to be formed in the compressor compartment, so that the airflow in the first compartment body can flow into the second compartment body along the space in the air duct, reducing the airflow in the second compartment body that passes through the condenser and returns to other areas, thereby reducing the evaporation efficiency of the condensed water in the water receiving tray. This optimizes the airflow direction and flow path in the compressor compartment, avoids the disordered flow of air in the compartment, and helps to improve the cooling efficiency of the refrigerator. On the other hand, the partition can also separate the water receiving tray into a first water receiving trough located in the first compartment body and a second water receiving trough located in the second compartment body. In this way, the water receiving tray can fully utilize the airflow in the first compartment body and the airflow in the second compartment body to evaporate the condensed liquid in the water receiving tray, further improving the evaporation efficiency of the condensed water in the water receiving tray.

[0009] In some embodiments of the present application, a refrigeration device is provided, which also includes a drain pipe, wherein the liquid inlet end of the drain pipe is used to collect condensate from the refrigeration system, and the liquid outlet end of the drain pipe extends into and is arranged in the second warehouse body; the second water receiving trough is located below the liquid outlet end of the drain pipe, so that the condensate from the refrigeration system can flow to the second water receiving trough through the drain pipe.

[0010] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0011] Because the airflow passes through the condenser before flowing into the second chamber, it carries a certain amount of heat as it flows through the second water receiving tank. This heat further promotes the evaporation of the condensate. By positioning the outlet of the drain pipe above the second water receiving tank, the condensate flows smoothly into the second water receiving tank. Furthermore, the rapid evaporation of the liquid in the second water receiving tank prevents the problem of water accumulation caused by long-term condensate accumulation.

[0012] In some embodiments of the present application, a refrigeration device is provided, wherein the barrier portion is provided with an overflow hole, the overflow hole is located on one end of the barrier portion away from the bottom of the water receiving tray, and the overflow hole connects the first water receiving trough and the second water receiving trough.

[0013] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0014] In this embodiment, by arranging the drain pipe above the second water receiving tank and providing an overflow hole on the partition part, the condensed water can evaporate in the second tank body first. When the liquid in the second water receiving tank rises to the liquid level height of the overflow hole, the condensed water with a certain amount of heat flows into the first water receiving tank through the overflow hole. The heat of the hot air blown through the condenser is used to enhance the evaporation capacity of the condensed water. At the same time, the condensed water is first precipitated in the second water receiving tank, so that the condensed water flowing into the first water receiving tank is cleaner than that in the second water receiving tank, thereby improving the durability of the water receiving tray.

[0015] In some embodiments of the present application, a refrigeration device is provided, wherein the condenser is provided with a condensing tube, and the condensing tube is extended and arranged in the first water receiving tank.

[0016] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0017] The condenser tube of the condenser is extended into the first water receiving tank, allowing the condenser tube to directly heat the condensate in the water receiving tank. Because the condenser tube of the condenser itself has a relatively high temperature, contact with the condensate can accelerate the evaporation process of the condensate in the water receiving tank, thereby preventing the condensate from accumulating in the water receiving tank for a long time. This not only improves the evaporation efficiency of the condensate in the first water receiving tank, but also avoids problems such as mold growth caused by condensate accumulation. Moreover, by utilizing the waste heat of the condenser tube to heat the condensate in the first water receiving tank, the evaporation of the condensate can be accelerated without consuming additional energy, thereby reducing the overall energy consumption of the equipment.

[0018] In some embodiments of the present application, a refrigeration device is provided, wherein the barrier portion is provided with an extension portion protruding toward one side of the second storage body, and a perforation is provided on the top of the extension portion, which connects the second storage body and the second water receiving tank; the condensing pipe extends into the first water receiving tank through the perforation.

[0019] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0020] By providing an extension portion on the baffle portion, extending from the rear side of the baffle portion toward the second chamber, the condenser tube can directly pass through the extension portion within the second chamber and extend into the first water receiving trough within the first chamber. This not only optimizes the utilization of the internal space of the second chamber, but also avoids the need to reserve a gap above the baffle portion for the condenser tube to extend from the second chamber into the first chamber, which would affect the airflow within the second chamber from flowing back to the first chamber through this gap, resulting in poor internal gas flow efficiency. This reduces the impact of the condenser tube extending into the first water receiving trough on the formation of the air duct within the compressor chamber.

[0021] In some embodiments of the present application, a refrigeration device is provided, wherein the bottom wall of the compressor bin is provided with a plurality of first air inlet holes, and the first air inlet holes are used to connect the outside of the compressor bin and the first bin body, and the plurality of first air inlet holes are arranged on the side of the first water receiving trough away from the partition portion; a spacing area is formed between the first water receiving trough and the top wall of the compressor bin; when the fan is started, the air outside the compressor bin can enter the first bin body through the first air inlet holes, and flow through the top of the first water receiving trough through the spacing area, and then flow toward the connecting port.

[0022] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0023] When the fan is started, external air can enter the first chamber through the first air inlet and form an airflow in the compressor chamber. The airflow can pass through the interval area and then flow over the top of the first water receiving trough, which not only promotes the air flow above the first water receiving trough, but also enables the airflow to contact the condensate in the first water receiving trough, further accelerating the evaporation efficiency of the condensed water and reducing the accumulation of condensed water in the first water receiving trough.

[0024] In some embodiments of the present application, a refrigeration device is provided, wherein the bottom wall of the compressor bin is provided with a plurality of second air inlet holes, and the second air inlet holes are used to connect the outside of the compressor bin and the first bin body; the second air inlet holes are located on a side of the first bin body close to the connecting port; when the fan is started, the air outside the compressor bin can enter the first bin body through the second air inlet holes and flow toward the connecting port.

[0025] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0026] By adding a second air inlet hole, the second air inlet hole is arranged on the side of the first hopper body close to the connecting port, and combined with the first air inlet hole located away from the blocking part, the external cold air can enter the first hopper body faster and more effectively, and form a smooth airflow circulation in the compressor hopper, thereby enhancing the air flow in the compressor hopper.

[0027] In some embodiments of the present application, a refrigeration device is provided, wherein the condenser divides the second silo into a first sub-area and a second sub-area that are connected, the first sub-area is arranged close to the connecting port, and the first sub-area is connected to the connecting port; the second water trough is located in the second sub-area, and when the fan is started, the airflow in the second silo can flow through the first sub-area, the condenser and the second sub-area in sequence.

[0028] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0029] The condenser divides the second chamber into a first sub-area and a second sub-area. This allows airflow from the first chamber to first enter the second chamber through the connecting port, then flow along the first sub-area, pass through the condenser, and finally flow to the second sub-area. The condenser's division allows airflow to fully flow across the condenser's surface, removing more heat and effectively improving the condenser's heat dissipation efficiency. Furthermore, by dividing the second chamber into two sub-areas, airflow is smoother, reducing resistance during fan operation.

[0030] In some embodiments of the present application, a refrigeration device is provided, wherein the fan is arranged in the second sub-area, the second water receiving trough is located on the side of the fan away from the condenser, and the fan blows air toward the second water receiving trough.

[0031] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0032] The fan is disposed between the condenser and the second water receiving tank. The fan's air supply end is disposed toward the second water receiving tank, and the fan's air inlet end is disposed toward the condenser. Thus, when the fan is operating, the strong airflow generated by the fan can be directed toward one side of the second water receiving tank, effectively accelerating the evaporation of the liquid, thereby improving the evaporation efficiency of the condensed water in the second water receiving tank and preventing the condensed water from accumulating in the second water receiving tank.

[0033] In some embodiments of the present application, a refrigeration device is provided, further comprising a compressor, wherein the compressor is disposed in the second sub-area and located between the air outlet end of the fan and the second water receiving trough.

[0034] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0035] Because the compressor is located between the fan's air outlet and the second water tank, the airflow from the fan can continue to the second water tank after passing through the compressor. The compressor generates heat during operation, and the airflow passing through the compressor removes heat from the compressor surface, preventing the compressor's operating temperature from overheating. This effectively dissipates heat from the compressor, reducing the risk of compressor failure and the need for routine refrigerator maintenance.

[0036] In some embodiments of the present application, a refrigeration device is provided, wherein a top plate is provided on the top of the compressor bin, and the top plate includes a first top wall, a second top wall and a vertical connecting wall, and the vertical connecting wall is connected between the rear end of the first top wall and the front end of the second top wall; the first bin body is located below the first top wall, the second bin body is located below the second top wall, and the top of the barrier portion abuts against the bottom of the first top wall.

[0037] Another technical solution in the above technical solution has the following advantages or beneficial effects:

[0038] Since the compressor compartment is located below the casing, the top of the compressor compartment is configured as a first top wall, a second top wall, and a vertical connecting wall, wherein the second compartment body is located below the second top wall, thereby forming a stepped structure at the top of the compressor compartment, which can correspond to the stepped structure provided at the bottom of the casing. Furthermore, a second water receiving trough, a condenser, and a fan can be provided below the second top wall. Since the condenser and fan are relatively large, the space below the upper step of the stepped structure can be fully utilized. The space below the second top wall is relatively small, and the provision of the first water receiving trough can fully utilize the space below the lower step. This not only increases the evaporation area of the condensed water, but the provision of the baffle can also form an air duct structure within the compressor compartment, thereby effectively improving the evaporation efficiency of the water receiving tray. BRIEF DESCRIPTION OF THE DRAWINGS

[0039] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.

[0040] Figure 1 This is a front view of a refrigeration device according to an embodiment of the present application;

[0041] Figure 2 for Figure 1 Schematic diagram on the back;

[0042] Figure 3 for Figure 1 Partial schematic diagram of

[0043] Figure 4 for Figure 1 Schematic diagram of the medium pressure nacelle;

[0044] Figure 5 for Figure 4 Schematic diagram on the back;

[0045] Figure 6 for Figure 4 Schematic diagram of the interior of the press chamber;

[0046] Figure 7 for Figure 4 Schematic diagram of the middle water tray;

[0047] Figure 8 for Figure 4 Schematic diagram of the middle water tray from another perspective;

[0048] Figure 9 for Figure 4 A schematic diagram on the left side of the middle;

[0049] Figure 10 for Figure 4A cross-sectional view of

[0050] Figure 11 for Figure 4 Another cross-sectional view of .

[0051] The corresponding relationship between the reference numerals and component names is as follows:

[0052] 1 box body, 11 box door, 12 condenser, 13 fan, 14 condenser tube, 15 compressor, 16 box liner;

[0053] 2 Press chamber, 201 first chamber body, 202 second chamber body, 2021 first sub-region, 2022 second sub-region, 203 communication port, 204 first air inlet, 205 second air inlet, 21 top plate, 211 first top wall, 212 second top wall, 213 vertical connecting wall;

[0054] 3 water receiving tray, 301 first water receiving trough, 302 second water receiving trough, 303 limiting hole, 304 overflow hole, 305 perforation, 306 spacer, 307 air outlet, 31 blocking portion, 32 first water receiving portion, 33 second water receiving portion, 34 limiting portion, 35 extension portion, 36 curved side wall;

[0055] 4. Drain pipe;

[0056] 5 buckles. DETAILED DESCRIPTION

[0057] The present invention provides a refrigeration device. To make the purpose, technical solution, and effects of the present invention more clear and explicit, the present invention is further described in detail below with reference to the accompanying drawings and examples. It should be understood that the specific examples described herein are only intended to illustrate the present invention and are not intended to limit the scope of protection of the present invention.

[0058] In the description of the present invention, it should be understood that the terms "upper", "lower", "inside", "outside", etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying 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.

[0059] In the description of this utility model, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections, electrical connections, or mutual communication; direct connections or indirect connections through an intermediate medium; and internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on specific circumstances.

[0060] The refrigeration device in the embodiment of the present invention can be a refrigeration cabinet such as a freezer or a refrigerator. The following takes a refrigerator as an example to describe in detail the technical solution for improving the refrigeration device in the embodiment of the present invention.

[0061] The refrigeration device in the embodiment of the present invention can be a refrigeration cabinet such as a freezer or a refrigerator. The following takes a refrigerator as an example to describe in detail the technical solution for improving the refrigeration device in the embodiment of the present invention.

[0062] Figure 1 This is a front view of a refrigeration device according to an embodiment of the present application.

[0063] See also Figure 1 As shown, the refrigerator provided by the embodiment of the present invention may include a housing 1. The housing 1 may be a hollow structure such as a rectangular parallelepiped. The housing 1 forms the outer shell of the refrigerator. It should be noted that the housing 1 may also be a hollow shell structure of other shapes.

[0064] In some embodiments, a refrigeration compartment with an open front side can be formed inside the box body 1. There can be multiple refrigeration compartments.

[0065] In some embodiments, the refrigerator may include a cabinet 16. The cabinet 16 may be disposed in the cabinet 1. The cabinet 16 may form a refrigeration compartment.

[0066] In some embodiments, multiple refrigeration compartments can function as independent storage spaces, such as freezers, refrigerators, and temperature-controlled chambers. These compartments can meet varying cooling requirements, such as freezing, refrigeration, and temperature-controlled storage, depending on the type of food being consumed. These compartments can be arranged vertically or horizontally.

[0067] See also Figure 1 As shown, in some embodiments, the refrigerator may include a door 11. The door 11 may be hinged to the front side of the cabinet 1 to open and close the refrigeration compartment.

[0068] It should be noted that multiple doors 11 can be provided. Doors 11 can be provided one-to-one with refrigeration compartments. Multiple doors 11 can simultaneously open and close one refrigeration compartment. One door 11 can also simultaneously open and close multiple refrigeration compartments.

[0069] Figure 2 This is a schematic diagram of the back side of a refrigeration device according to an embodiment of the present application; Figure 3 for Figure 1 Partial schematic diagram.

[0070] See also Figure 2 As shown, in some embodiments, a press chamber 2 may be formed inside the cabinet 1. The press chamber 2 may be provided in the bottom area of the cabinet 1. The press chamber 2 may be located at the rear lower side of the refrigeration compartment.

[0071] Figure 4 for Figure 1 Schematic diagram of the medium pressure nacelle; Figure 5 for Figure 4 Schematic diagram of the back.

[0072] like Figure 3 and Figure 4 As shown, in some embodiments, the press chamber 2 can be located below the box 16. The bottom of the box 16 can have a stepped structure. The setting of the stepped structure can improve the space utilization in the refrigeration room.

[0073] like Figure 3 and Figure 4 As shown, in some embodiments, a top plate 21 may be provided on the top of the press chamber 2. The top plate 21 may include a first top wall 211, a second top wall 212, and a vertical connecting wall 213, which may be connected between the rear end of the first top wall 211 and the front end of the second top wall 212.

[0074] It should be noted that since the press chamber 2 is located below the box liner 16, the bottom of the box liner 16 is configured as a stepped structure, and the press chamber 2 can be configured as a stepped structure accordingly, thereby improving the space utilization efficiency of the bottom press chamber 2. Among them, the first top wall 211 is located below the second top wall 212, and the first top wall 211, the second top wall 212 and the vertical connecting wall 213 are connected to form the stepped structure at the top of the press chamber 2.

[0075] In some embodiments, the refrigerator may include a refrigeration system. The refrigeration system may be arranged inside the box body 1. The refrigeration system may be used to provide cold air inside the refrigerator to maintain a low temperature environment in each storage compartment.

[0076] like Figure 5As shown, in some embodiments, the refrigeration system may include a compressor 15. Compressor 15 may be disposed within compressor compartment 2. Compressor 15 serves as the power source for the refrigeration cycle, drawing in low-temperature, low-pressure refrigerant gas and compressing it into high-temperature, high-pressure gas. Compressor 15 may deliver the high-temperature, high-pressure refrigerant to condenser 12.

[0077] like Figure 5 As shown, in some embodiments, the refrigeration system may include a condenser 12. The condenser 12 may be located in the compressor compartment 2. The compressor 15 may deliver the compressed refrigerant to the condenser 12. The condenser 12 may condense high-temperature and high-pressure refrigerant vapor.

[0078] In some embodiments, the refrigeration system may include a throttling device (not shown). The condenser 12 may deliver the condensed refrigerant to the throttling device. The throttling device may be a capillary tube. The throttling device may be used to throttle and reduce the pressure of the refrigerant.

[0079] In some embodiments, the refrigeration system may include an evaporator (not shown). A throttling device may deliver the throttled and depressurized refrigerant to the evaporator. The evaporator may be used to evaporate and boil the refrigerant vapor, thereby absorbing heat from the surrounding medium.

[0080] In some embodiments, the compressor 15 , the condenser 12 , the throttling device, and the evaporator may be sequentially connected to form a refrigeration circuit, in which a refrigerant may circulate to cool the interior of the cabinet 1 .

[0081] In some embodiments, an evaporator compartment (not shown) may be provided within the housing 1. An evaporator may be provided within the evaporator compartment. The evaporator absorbs heat from the evaporator compartment, generating a large amount of cold air within the evaporator compartment. This cold air is transported to the storage compartment, enabling low-temperature storage within the storage compartment.

[0082] In some embodiments, an air duct assembly may be provided within the housing 1. An air supply duct (not shown) may be formed within the air duct assembly. The air supply duct may connect the evaporator and the refrigeration compartment, delivering cold air into the refrigeration compartment, thereby achieving a low-temperature storage function within the refrigeration compartment.

[0083] Figure 6 for Figure 4 Schematic diagram of the interior of the press chamber; Figure 7 for Figure 4 Schematic diagram of the middle water tray; Figure 8 for Figure 4 Schematic diagram of the middle water tray from another perspective.

[0084] like Figure 6 and Figure 7As shown, in some embodiments, the refrigerator further includes a water receiving tray 3. The water receiving tray 3 can be provided in the press chamber 2. The water receiving tray 3 can be used to receive condensed water generated by the refrigeration system, and the condensed water can be evaporated in the water receiving tray 3.

[0085] It should be noted that the condensed water generated by the refrigeration system may include liquid condensed at the evaporator and liquid condensed in the refrigeration room.

[0086] like Figure 5 As shown, in some embodiments, the refrigerator may include a drain pipe 4. The liquid inlet end of the drain pipe 4 can be used to collect condensed liquid from the refrigeration system. The liquid outlet end of the drain pipe 4 can be located within the water receiving tray 3 or above the water receiving tray 3, so that the condensed water can flow into the water receiving tray 3 through the drain pipe 4.

[0087] In some embodiments, the liquid inlet end of the drain pipe 4 , that is, the upper end of the drain pipe 4 , may be in communication with the refrigeration compartment, and the liquid outlet end of the drain pipe 4 is disposed in the press chamber 2 .

[0088] like Figure 6 As shown, in some embodiments, a barrier portion 31 may be protruding from the top of the water receiving tray 3. The top of the barrier portion 31 may abut against the top wall of the press chamber 2, thereby forming a first chamber 201 and a second chamber 202 on opposite sides of the barrier portion 31. A communication port 203 is provided between the first chamber 201 and the second chamber 202. The communication port 203 may be located at one end of the barrier portion 31 and connect the first chamber 201 and the second chamber 202. By providing the barrier portion 31 on the water receiving tray 3, the top of the barrier portion 31 abuts against the top wall of the press chamber 2, thereby separating the space of the press chamber 2 into the first chamber 201 and the second chamber 202. Furthermore, the first chamber 201 and the second chamber 202 are connected via the communication port 203 provided on one side of the barrier portion 31, allowing gas to flow between the first chamber 201 and the second chamber 202.

[0089] It should be noted that by setting a partition part 31 to separate the compressor chamber 2 into a first chamber body 201 and a second chamber body 202, the airflow direction and flow path in the compressor chamber 2 can be optimized, and the disordered flow of air in the chamber can be reduced, which is conducive to improving the overall cooling efficiency.

[0090] like Figure 7 As shown, in some embodiments, the barrier portion 31 may be plate-shaped. The plate-shaped barrier portion 31 may separate the press chamber 2 into a first chamber body 201 and a second chamber body 202 .

[0091] In some embodiments, the two opposite sides of the barrier portion 31 may be arranged along the front and back of the refrigeration compartment. The first compartment 201 may be located at the front side of the barrier portion 31 . The second compartment 202 may be located at the rear side of the barrier portion 31 .

[0092] In some embodiments, the barrier portion 31 may be integrally formed with the water receiving tray 3 .

[0093] In some embodiments, the barrier portion 31 may be detachably disposed on the water receiving tray 3 .

[0094] like Figure 6 As shown, in some embodiments, the communication port 203 may be provided on an end of the barrier portion 31 close to the condenser 12 .

[0095] like Figure 6 and Figure 7 As shown, in some embodiments, the barrier portion 31 can separate the water receiving tray 3 into a first water receiving portion 32 and a second water receiving portion 33. The first water receiving portion 32 and the second water receiving portion 33 can be disposed on opposite sides of the barrier portion 31. The first water receiving portion 32 can be located in the first compartment 201, and the second water receiving portion 33 can be located in the second compartment 202.

[0096] Since a barrier portion 31 is provided in the water receiving tray 3, the barrier portion 31 divides the water receiving tray 3 into a first water receiving portion 32 and a second water receiving portion 33. The first water receiving portion 32 is located at the front side of the water receiving tray 3 and is located in the first warehouse body 201, and the second water receiving portion 33 can be located at the rear side of the water receiving tray 3 and is located in the second warehouse body 202, so that the water receiving tray 3 can be distributed in two different areas of the compressor warehouse 2, which can increase the liquid evaporation area in the water receiving tray 3 and improve the evaporation efficiency.

[0097] like Figure 7 As shown, in some embodiments, the first water receiving portion 32 may be provided with a first water receiving tank 301. Condensate from the refrigeration system can be stored in the first water receiving tank 301 for evaporation.

[0098] In some embodiments, the second water receiving portion 33 is provided with a second water receiving tank 302. Condensate from the refrigeration system can be stored in the second water receiving tank 302 for evaporation.

[0099] like Figure 6 As shown, in some embodiments, the condenser 12 can be disposed in the second silo 202. The fan 13 can be disposed in the second silo 202.

[0100] When the fan 13 is started, airflow can be formed in the compressor chamber 2, and the airflow flows from the first chamber body 201 to the second chamber body 202 through the connecting port 203. The airflow in the first chamber body 201 can flow through the first water receiving trough 301, and the airflow in the second chamber body 202 can flow through the condenser 12 and the second water receiving trough 302 in turn.

[0101] Specifically, an air inlet may be provided on one side of the first chamber 201, and an air outlet 307 may be provided on one side of the second chamber 202. When the fan 13 operates to generate airflow within the compressor chamber 2, air outside the compressor chamber 2 enters the first chamber 201 through the air inlet, forming an airflow. The airflow in the first chamber 201 can flow through the first water receiving trough 301, thereby accelerating the evaporation of condensed water in the first water receiving portion 32. The airflow then flows from the first chamber 201 to the second chamber 202 through the vent. Within the second chamber 202, the airflow can flow through the second water receiving trough 302, thereby accelerating the evaporation of condensed water in the second water receiving portion 33. Since the condenser 12 releases a large amount of heat during the condensation of high-temperature, high-pressure refrigerant vapor, the airflow not only removes heat from the condenser 12, thereby improving its heat dissipation efficiency, but also imparts a certain amount of heat to the airflow in the second chamber 202, thereby improving the evaporation efficiency of the condensed water in the second water receiving portion 33.

[0102] In the present application, the compressor chamber 2 is separated into a first chamber 201 and a second chamber 202 by a partition on the water receiving tray 3. The partitioning effect of the partition forms an air duct in the compressor chamber 2, so that the airflow in the first chamber 201 can flow along the space in the air duct to the second chamber 202, reducing the airflow from the second chamber 202 through the condenser 12 and returning to other areas, thereby reducing the evaporation efficiency of the condensed water in the water receiving tray 3. This optimizes the airflow direction and flow path in the compressor chamber 2, avoids the disordered flow of air in the chamber, and helps to improve the cooling efficiency of the refrigerator. On the other hand, the partition can also separate the water receiving tray 3 into a first water receiving portion 32 located in the first chamber 201 and a second water receiving portion 33 located in the second chamber 202. In this way, the water receiving tray 3 can fully utilize the airflow in the first chamber 201 and the airflow in the second chamber 202 to evaporate the condensed water in the water receiving tray 3, further improving the evaporation efficiency of the condensed water in the water receiving tray 3.

[0103] like Figure 3 As shown, since the bottom of the box adopts a stepped structure, the space of the compressor chamber 2 below the bottom of the box is limited, which is not conducive to the heat dissipation in the compressor chamber 2 and the evaporation efficiency of the water receiving tray 3.

[0104] like Figure 4 and Figure 5 As shown, in the technical solution of the refrigerator of the present application, when the bottom of the box adopts a stepped structure, the top structure of the press chamber 2 can be set to a stepped structure accordingly. The top plate 21 of the press chamber 2 includes a first top wall 211, a second top wall 212, and a vertical connecting wall 213. The first chamber body 201 can be located below the first top wall 211, the second chamber body 202 can be located below the second top wall 212, and the top of the barrier portion 31 can abut against the bottom of the first top wall 211.

[0105] In this way, the first water receiving part 32 can be correspondingly provided below the lower step in the box step structure, and the second water receiving part 33, the condenser 12 and the fan 13 can be correspondingly provided below the upper step in the step structure. Since the volume of the condenser 12 and the fan 13 is large, the space below the upper step in the step structure can be fully utilized. The space below the lower step is smaller. By providing the first water receiving part 32, the space below the lower step can be fully utilized, which not only increases the evaporation area of the condensed water, but also the setting of the partition part 31 can form an air duct structure in the compressor chamber 2, further improving the evaporation efficiency of the water receiving tray 3.

[0106] On the other hand, the barrier portion 31 is arranged on the water collecting tray 3, which reduces the difficulty of installation. The operator directly fixes the water collecting tray 3 in the compressor chamber 2, so that the top of the barrier portion 31 is against the top wall of the compressor chamber 2, thereby separating the compressor chamber 2 into a first chamber body 201 and a second chamber body 202. Compared with the traditional complex condensing unit arrangement, the present application simplifies the setting of additional components required to form the air duct structure, making the structure in the compressor chamber 2 more compact, while also reducing manufacturing costs.

[0107] like Figure 5 and Figure 6 As shown, in some embodiments, the second water receiving portion 33 may be located below the liquid outlet end of the drain pipe 4 so that the condensate of the refrigeration system can flow to the second water receiving tank 302 through the drain pipe 4 .

[0108] Because the airflow passes through the condenser 12 before flowing into the second chamber 202, the airflow passing through the second water receiving trough 302 carries a certain amount of heat. This heat-carrying airflow further promotes the evaporation of the condensate. By positioning the outlet end of the drain pipe 4 above the second water receiving trough 302, the condensate can flow smoothly into the second water receiving trough 302. Furthermore, the rapid evaporation of the liquid within the second water receiving portion 33 prevents the problem of water accumulation caused by the long-term accumulation of condensate.

[0109] like Figure 7 As shown, in some embodiments, the second water receiving portion 33 may be provided with a limiting portion 34. The limiting portion 34 may be disposed on the sidewall of the second water receiving tray 3. The limiting portion 34 may be provided with a limiting hole 303, into which the lower end of the drain pipe 4 may be inserted. By providing the limiting portion 34 on the second water receiving portion 33, the limiting portion 34 is used to limit the movement of the lower end of the drain pipe 4, thereby effectively preventing the drain pipe 4 from moving or becoming dislocated due to vibration or other external forces. This facilitates the smooth discharge of condensate and avoids leakage or blockage caused by improper positioning of the drain pipe 4.

[0110] like Figure 7 and Figure 8As shown, in some embodiments, the barrier portion 31 may be provided with an overflow hole 304. The overflow hole 304 may be located at one end of the barrier portion 31 away from the bottom of the water receiving tray 3, and the overflow hole 304 may connect the first water receiving trough 301 and the second water receiving trough 302. By providing the overflow hole 304 at one end of the barrier portion 31 away from the bottom of the water receiving tray 3, when the liquid in the first water receiving trough 301 reaches the liquid level at the overflow hole 304, the liquid in the first water receiving portion 32 will flow into the second water receiving portion 33 through the overflow hole 304, thereby preventing excessive liquid in the second water receiving portion 33 from overflowing into the press chamber 2 and causing a safety hazard.

[0111] It should be noted that, since the space inside the second compartment 202 is required to arrange components of the refrigeration system such as the condenser 12 and the fan 13, there is less space left inside the second compartment 202 for the arrangement of the second water receiving part 33. In the design, the area of the first water receiving part 32 is larger than the area of the second water receiving part 33, thereby increasing the area of water evaporation in the water receiving tray 3.

[0112] In this embodiment, by arranging the drain pipe 4 above the second water receiving part 33 and providing an overflow hole 304 on the partition part 31, the condensed water can first evaporate in the second tank body 202 with higher evaporation efficiency. When the liquid in the second water receiving part 33 rises to the liquid level height where the overflow hole 304 is located, the condensed water with a certain amount of heat flows into the first water receiving part 32 through the overflow hole 304. The heat of the hot air blown through the condenser 12 is used to enhance the evaporation capacity of the condensed water. At the same time, the condensed water is first precipitated in the second water receiving part 33, so that the condensed water flowing into the first water receiving part 32 is cleaner than that in the second water receiving part 33, thereby improving the durability of the water receiving tray 3.

[0113] like Figure 8 As shown, in some embodiments, a plurality of overflow holes 304 can be provided. The plurality of overflow holes 304 can be arranged in a horizontal arrangement at the same height of the barrier portion 31 .

[0114] During the defrosting period of the refrigerator, the drain pipe 4 will continuously discharge condensed water to the second water receiving part 33. The setting of multiple overflow holes 304 allows the liquid to flow more efficiently between the first water receiving tank 301 and the second water receiving tank 302, thereby quickly discharging excess liquid from the second water receiving part 33, preventing blockage or liquid accumulation caused by insufficient liquid flow rate in a single overflow hole 304, and further reducing the risk of liquid overflowing into the compressor chamber 2.

[0115] like Figure 6 As shown, in some embodiments, the condenser 12 may be provided with a condensation pipe 14. The condensation pipe 14 may be extended and arranged in the first water receiving portion 32 and extended and arranged in the first water receiving tank 301.

[0116] In order to further improve the evaporation efficiency of the condensed water in the first water receiving part 32, the condenser tube 14 provided in the condenser 12 is extended into the first water receiving tank 301, so that the condenser tube 14 can directly heat the condensate in the water receiving tank. Since the condenser tube 14 of the condenser 12 itself has a relatively high temperature, it can accelerate the evaporation process of the condensate in the water receiving tank by contacting with the condensate, thereby avoiding the long-term accumulation of the condensate in the first water receiving part 32. This not only improves the evaporation efficiency of the condensed water in the first water receiving tank 301, but also avoids problems such as mold growth caused by the accumulation of condensate. Moreover, by utilizing the waste heat of the condenser tube 14 to heat the condensate in the first water receiving tank 301, the evaporation of the condensed water can be accelerated without the need for additional energy consumption, thereby reducing the overall energy consumption of the equipment.

[0117] like Figure 6 and Figure 7 As shown, in some embodiments, a buckle 5 may be provided in the first water receiving portion 32. The buckle 5 may be provided on the first water receiving portion 32. The buckle 5 may be located on the inner side wall of the first water receiving groove 301, and the condensing tube 14 may be fixed to the first water receiving portion 32 by engaging with the buckle 5.

[0118] like Figure 7 As shown, in some embodiments, there can be multiple buckles 5.

[0119] like Figure 7 and Figure 8 As shown, in some embodiments, an extension portion 35 may be provided on one side of the barrier portion 31 facing the second chamber 202. A perforation 305 may be provided at the top of the extension portion 35, which may connect the second chamber 202 with the second water receiving tank 302. The condensation pipe 14 may extend into the first water receiving tank through the perforation 305.

[0120] Since the condenser 12 is located in the second chamber 202 and the first water receiving portion 32 is located in the first chamber 201, the condensing pipe 14 provided on the condenser 12 needs to extend from the second chamber 202 into the first chamber 201. By providing an extension portion 35 on the barrier portion 31, the extension portion 35 extends from the rear side of the barrier portion 31 toward the second chamber 202, allowing the condensing pipe 14 to directly pass through the extension portion 35 located in the second chamber 202 and then extend into the first water receiving portion 32 located in the first chamber 201. This not only optimizes the utilization of the internal space of the second bin body 202, but also avoids reserving a spacing space above the partition part 31 for the condenser 14 to extend from the second bin body 202 to the first bin body 201, thereby affecting the air flow in the second bin body 202 to flow back to the first bin body 201 through this spacing space, causing the problem of poor internal gas flow efficiency, and reducing the influence of the setting of the condenser 14 extending into the first water receiving part 32 on the formation of the internal air duct of the compressor bin 2.

[0121] Figure 9 for Figure 4 A schematic diagram on the left side of the middle; Figure 10 for Figure 4 A cross-sectional view of Figure 11 for Figure 4 Another cross-sectional view of .

[0122] like Figure 9 and Figure 10 As shown, in some embodiments, the bottom wall of the press chamber 2 may be provided with a first air inlet 204. The first air inlet 204 can be used to connect the outside of the press chamber 2 with the first chamber body 201. The first air inlet 204 can be provided on a side of the first water receiving portion 32 away from the barrier portion 31. By providing the first air inlet 204 on the bottom wall of the press chamber 2, external air can enter the first chamber body 201 of the press chamber 2 through these air inlet holes.

[0123] like Figure 11 As shown, in some embodiments, a spacing area 306 may be formed between the first water receiving portion 32 and the top wall of the press chamber 2 .

[0124] When the fan 13 is started, air outside the compressor chamber 2 can enter the first chamber body 201 through the first air inlet 204 , flow through the spacer 306 , pass over the top of the first water receiving trough 301 , and then flow toward the communication port 203 .

[0125] The spacer 306 is formed above the first water receiving portion 32 and between the top wall of the press chamber 2, allowing airflow within the first chamber 201 to pass smoothly through this area and flow over the first water receiving trough 301. This optimizes the flow path of air within the first chamber 201 and reduces airflow resistance within the device. This smoother airflow efficiently evaporates the liquid in the water receiving tray 3 and improves heat dissipation within the press chamber 2.

[0126] Specifically, when the fan 13 is started, external air can enter the first silo 201 through the first air inlet 204 and form an airflow in the compressor silo 2. The airflow can pass through the spacer area 306 and then flow over the first water receiving trough 301, which not only promotes the air flow above the first water receiving trough 301, but also enables the airflow to contact the condensate in the first water receiving trough 301, further accelerating the evaporation efficiency of the condensed water and reducing the accumulation of condensed water in the first water receiving part 32.

[0127] like Figure 9 and Figure 10 As shown, in some embodiments, a plurality of first air inlet holes 204 can be provided. The plurality of first air inlet holes 204 can be arranged in an array on the bottom wall of the press chamber 2.

[0128] like Figure 9As shown, in some embodiments, the bottom wall of the press chamber 2 may be provided with a second air inlet 205. The second air inlet 205 may be used to connect the outside of the press chamber 2 and the first chamber body 201. The second air inlet 205 may be located on a side of the first chamber body 201 near the connecting port 203.

[0129] By adding a second air inlet 205, which is located on the side of the first silo 201 near the connecting port 203 and combined with the first air inlet 204 located away from the baffle 31, external cold air can enter the first silo 201 more quickly and efficiently, forming a smooth airflow circulation in the compressor silo 2, thereby enhancing the air flow within the silo. This reduces the load pressure of the fan 13 during operation and avoids excessive operation of the fan 13 due to insufficient airflow, thereby reducing the system's energy consumption and improving the energy-saving effect of the equipment. Moreover, the design of the second air inlet 205 can further increase the amount of cold air entering the first silo 201, effectively accelerating the heat dissipation of the condenser 12 and the evaporation of the liquid in the water tray 3.

[0130] When the fan 13 is started, the air outside the compressor chamber 2 can enter the first chamber body 201 through the second air inlet hole 205 and flow toward the communication port 203 .

[0131] It should be noted that since the second air inlet hole 205 is located in an area close to the connecting port 203, the air entering the first bin body 201 through the second air inlet hole 205 can flow more directly toward the connecting port 203, thereby increasing the amount of air flowing from the first bin body 201 to the second bin body 202, optimizing the path of the airflow inside the first bin body 201, and avoiding the airflow from concentrating or staying on one end of the first bin body 201 due to wind resistance or obstruction of internal components, so that the airflow in the first bin body 201 can flow more quickly in the entire compressor bin 2, thereby improving the overall liquid evaporation efficiency of the water receiving tray 3.

[0132] like Figure 9 As shown, in some embodiments, a plurality of second air inlet holes 205 may be provided.

[0133] like Figure 9 As shown, in some embodiments, the plurality of second air inlet holes 205 can be arranged vertically staggered with respect to the first water receiving portion 32. Since the first water receiving portion 32 is arranged on the bottom wall of the press chamber 2, by staggering the second air inlet holes 205 with respect to the first water receiving portion 32, external air can flow more smoothly into the first chamber body 201 through the second air inlet holes 205, thereby avoiding the problem of the first water receiving portion 32 being arranged above the bottom wall and blocking the second air inlet holes 205, thereby affecting the air intake efficiency.

[0134] like Figure 7 and Figure 9As shown, in some embodiments, the first water receiving portion 32 located within the first housing 201 can be configured in a trapezoidal shape. By configuring the first water receiving portion 32 in a trapezoidal shape, the area of the first water receiving portion 32 within the first housing 201 can be maximized. Furthermore, the bottom wall located outside the trapezoidal hypotenuse can be provided with multiple second air inlet holes 205 to form a relief space, thereby preventing obstruction of the air entering the second air inlet holes 205 and improving the smoothness of the air entering the second air inlet holes 205.

[0135] like Figure 5 As shown, in some embodiments, the condenser 12 can divide the second chamber 202 into a first sub-area 2021 and a second sub-area 2022. The first sub-area 2021 can be located near the communication port 203 and can be connected to the communication port 203. When the fan 13 is started, the airflow in the second chamber 202 can flow through the first sub-area 2021, the condenser 12, and the second sub-area 2022 in sequence.

[0136] It should be noted that the condenser 12 divides the second chamber 202 into a first sub-area 2021 and a second sub-area 2022. Thus, airflow from the first chamber 201 can first enter the second chamber 202 through the connecting opening 203, then enter along the first sub-area 2021, pass through the condenser 12, and finally flow to the second sub-area 2022. The separation of the condenser 12 allows airflow to fully flow across the surface of the condenser 12, thereby removing more heat and effectively improving the heat dissipation efficiency of the condenser 12. Furthermore, by dividing the second chamber 202 into two sub-areas, airflow is made smoother, reducing the resistance of the fan 13 during operation. The path of airflow through the condenser 12 and the first water receiving portion 32 is optimized, reducing airflow stagnation or excessively rapid passage, and preventing components such as the condenser 12 and the water receiving tray 3 from being adversely affected by local overheating or poor airflow, resulting in more energy-efficient operation.

[0137] like Figure 6 and Figure 10 As shown, in some embodiments, the second water receiving portion 33 can be located within the second sub-region 2022. By locating the second water receiving portion 33 within the second sub-region 2022, when the fan 13 is activated, the airflow enters the second sub-region 2022 after passing through the condenser 12 and flows through the second water receiving trough 302. Because the airflow has been heated after passing through the condenser 12, the airflow can accelerate the evaporation of the condensed water in the water receiving tray 3 when flowing through the water receiving trough, preventing the accumulation of condensate in the first water receiving portion 32 and improving the evaporation efficiency.

[0138] like Figure 5As shown, in some embodiments, the fan 13 may be disposed in the second sub-area 2022. The water receiving portion may be located on a side of the fan 13 away from the condenser 12, and the fan 13 blows air toward the second water receiving portion 33.

[0139] The fan 13 is disposed between the condenser 12 and the first water receiving portion 32. The air supply end of the fan 13 is disposed toward the water receiving portion, and the air inlet end of the fan 13 is disposed toward the condenser 12. Thus, when the fan 13 is operating, the strong airflow generated by the fan 13 can be directed toward one side of the second water receiving portion 33, effectively accelerating the evaporation rate of the liquid, thereby improving the processing efficiency of the condensed water in the second water receiving portion 33 and preventing the condensed water from accumulating in the second water receiving tank 302.

[0140] On the other hand, since the fan 13 blows air toward the second water receiving part 33, the generated airflow not only evaporates the condensed water, but also helps prevent the water vapor from flowing back toward the condenser 12, thereby avoiding the water vapor from condensing on the condenser 12 again, which is beneficial to keeping the surface of the condenser 12 dry and preventing moisture condensation from affecting the condensation efficiency.

[0141] like Figure 5 As shown, in some embodiments, the compressor 15 can be disposed in the second sub-area 2022. The compressor 15 can be located between the air outlet of the fan 13 and the second water receiving portion 33.

[0142] Because the compressor 15 is located between the air outlet of the fan 13 and the second water receiving portion 33, the airflow from the fan 13 can continue to flow toward the second water receiving portion 33 after passing through the compressor 15. The compressor 15 generates heat during operation, and the airflow passing through the compressor 15 removes the heat from the surface of the compressor 15, preventing the operating temperature of the compressor 15 from being too high. This effectively dissipates heat from the compressor 15, reduces the risk of compressor 15 failure, and reduces the need for routine maintenance of the refrigerator.

[0143] Furthermore, the gas flowing through the compressor 15 not only takes away the heat on the surface of the compressor 15 , but the airflow carrying the heat can also improve the evaporation efficiency of the liquid in the second water receiving portion 33 .

[0144] like Figure 5 and Figure 6 As shown, in some embodiments, the second water receiving portion 33 may have a curved sidewall 36. The curved sidewall 36 may enclose the rear side of the barrier portion 31 to form a second water receiving groove 302. The curved sidewall 36 may extend along the outside of the compressor 15. The provision of the curved sidewall 36 can further increase the contact area between the second water receiving groove 302 formed in the second water receiving portion 33 and the air. In addition, the curved sidewall 36 can be provided on the outside of the compressor 15. The heat generated during the operation of the compressor 15 can further increase the evaporation efficiency of the liquid in the second water receiving portion 33.

[0145] The above are merely specific embodiments of the present application, but the scope of protection of this application is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of this application is limited only by the appended claims.

Claims

1. A refrigeration device, characterized in that: include: a housing forming an outer shell of the refrigeration device; The box body is provided with a refrigeration compartment; A press chamber, provided in the bottom area of the box body; a water receiving tray disposed in the press chamber, wherein a baffle is protruding from the top of the water receiving tray, the baffle dividing the interior of the water receiving tray into a first water receiving trough and a second water receiving trough, the first water receiving trough and the second water receiving trough being disposed on opposite sides of the baffle; The top of the baffle portion abuts against the top wall of the press chamber to form a first chamber body and a second chamber body on opposite sides of the baffle portion, respectively. A communication port is provided between the first chamber body and the second chamber body, and the communication port is located on one end of the baffle portion; The condenser and the fan are respectively arranged in the second compartment; When the fan is started, airflow can be formed in the compressor chamber, and the airflow flows from the first chamber body to the second chamber body through the connecting port. The airflow in the first chamber body can flow through the first water receiving trough, and the airflow in the second chamber body can flow through the condenser and the second water receiving trough in sequence.

2. The refrigeration device according to claim 1, characterized in that It also includes a drain pipe, wherein the liquid inlet end of the drain pipe is used to receive the condensate of the refrigeration system, and the liquid outlet end of the drain pipe extends into and is arranged in the second compartment; The second water receiving trough is located below the liquid outlet end of the drain pipe, so that the condensate of the refrigeration system can flow to the second water receiving trough through the drain pipe.

3. The refrigeration device according to claim 2, characterized in that The barrier portion is provided with an overflow hole, the overflow hole is located on one end of the barrier portion away from the bottom of the water receiving tray, and the overflow hole is connected to the first water receiving trough and the second water receiving trough.

4. The refrigeration device according to claim 1, wherein: The condenser is provided with a condensing pipe, and the condensing pipe is extended and arranged in the first water receiving tank.

5. The refrigeration device according to claim 4, characterized in that The blocking portion is provided with an extension portion protruding toward one side of the second bin body, and a perforation is provided on the top of the extension portion, and the perforation connects the second bin body and the second water receiving trough; The condensing pipe extends into the first water receiving tank through the through hole.

6. The refrigeration device according to claim 1, characterized in that The bottom wall of the press chamber is provided with a plurality of first air inlet holes, the first air inlet holes being used to connect the outside of the press chamber with the first chamber body, and the plurality of first air inlet holes being arranged on a side of the first water receiving trough away from the baffle portion; A spacing area is formed between the first water receiving trough and the top wall of the press chamber; When the fan is started, the air outside the compressor compartment can enter the first compartment body through the first air inlet hole, flow through the spacer area, pass over the first water receiving trough, and then flow toward the connecting port.

7. The refrigeration device according to claim 1, characterized in that The bottom wall of the press chamber is provided with a plurality of second air inlet holes, the second air inlet holes being used to connect the outside of the press chamber with the first chamber body; the second air inlet holes are located on a side of the first chamber body close to the communication port; When the fan is started, the air outside the compressor compartment can enter the first compartment body through the second air inlet hole and flow toward the connecting port.

8. The refrigeration device according to claim 1, characterized in that The condenser divides the second chamber into a first sub-region and a second sub-region that are connected to each other, wherein the first sub-region is arranged near the communication port and is connected to the communication port; The second water receiving trough is located in the second sub-region. When the fan is started, the airflow in the second silo can flow through the first sub-region, the condenser and the second sub-region in sequence.

9. The refrigeration device according to claim 8, characterized in that The fan is disposed in the second sub-area, the second water receiving trough is located on a side of the fan away from the condenser, and the fan blows air toward the second water receiving trough.

10. The refrigeration device according to claim 8, characterized in that The system further includes a compressor, which is disposed in the second sub-area and located between the air outlet of the fan and the second water receiving trough.

11. The refrigeration device according to claim 1, wherein: A top plate is provided on the top of the press chamber, and the top plate includes a first top wall, a second top wall, and a vertical connecting wall, wherein the vertical connecting wall is connected between the rear end of the first top wall and the front end of the second top wall; The first storage body is located below the first top wall, the second storage body is located below the second top wall, and the top of the barrier portion abuts against the bottom of the first top wall.