Cosmetic refrigerator
By incorporating a cooling plate and water collection box structure into the beauty refrigerator, the problem of condensate collection and drainage is solved, maintaining the dryness of the storage cavity and improving the user experience.
Patent Information
- Application Number
- CN202423172338.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-23
AI Technical Summary
Existing beauty refrigerators are prone to condensation during the cooling process, which is difficult to collect and drain effectively, affecting the dryness of the storage environment and making maintenance difficult.
A cooling plate and a water collection box are installed in the beauty refrigerator. The cooling plate has a guide section to guide the condensate into the water collection box. Combined with a moisture-absorbing component and a drainage structure, the condensate is collected and discharged.
It effectively collects and drains condensate, keeps the storage cavity dry, reduces maintenance difficulty, and improves user experience.
Smart Images

Figure CN223580374U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to refrigeration equipment technical field especially relates to a beauty refrigerator. BACKGROUND
[0002] The beauty refrigerator is designed for storing skin care products and cosmetics, and is suitable for home or professional makeup room. The beauty refrigerator on the current market adopts semiconductor direct cooling technology to carry out refrigeration, which is easy to form condensate water on the cold transmission metal piece or the side wall of the refrigerator, and cannot meet the dryness requirement of the storage environment of the cosmetics. At the same time, limited by the structure design, it is difficult to collect or discharge these moisture, which increases the maintenance difficulty of the refrigerator.
[0003] It should be noted that the information disclosed in the background section of the utility model is only intended to increase the understanding of the overall background of the utility model, and should not be regarded as acknowledging or implying in any form that the information constitutes prior art known to those skilled in the art. CONTENT OF THE UTILITY MODEL
[0004] The utility model provides a beauty refrigerator, the structure is optimized to realize effective and convenient treatment to condensate water.
[0005] According to one aspect of the utility model, a beauty refrigerator is provided, comprising:
[0006] The box body is provided with a storage cavity for storing articles in the box body;
[0007] The refrigeration device is arranged outside the storage cavity and is configured to generate cold quantity;
[0008] The cold conduction structure is configured to transfer cold quantity to the storage cavity, and the cold conduction structure comprises a cold conduction plate and a cold conduction block, the cold conduction plate is arranged on the first cavity wall of the storage cavity, and the cold conduction block is arranged between the cold end of the refrigeration device and the cold conduction plate; and
[0009] The water treatment device comprises a first water collecting box and a drainage structure, the first water collecting box is arranged in the storage cavity and located below the cold conduction plate, and the position of the first water collecting box corresponds to the position of the cold conduction block, the first water collecting box is configured to collect condensate water on the cold conduction plate, and the drainage structure is configured to guide the condensate water collected by the first water collecting box out of the storage cavity.
[0010] In some embodiments, the first water collecting box has an opening, the cold conduction plate comprises a cold conduction plate body and a first flow guide part connected to one end of the cold conduction plate body close to the first water collecting box, and the first flow guide part is bent and extended to the opening of the first water collecting box in a direction away from the first cavity wall relative to the cold conduction plate body.
[0011] In some embodiments, the first angle α between the first cold plate body and the first flow guide portion on the side of the cold plate facing away from the first cavity wall is 120-150 degrees.
[0012] In some embodiments, the cold plate body comprises a first cold plate and a second cold plate connected to the first cold plate,
[0013] In the vertical direction, the second cold plate is located between the first cold plate and the first water collecting box,
[0014] In the horizontal direction, the width of the second cold plate is smaller than that of the first cold plate, and the second cold plate is arranged in position corresponding to the first water collecting box.
[0015] In some embodiments, the first cold plate is provided with a second flow guide portion bent towards the first cavity wall at one end close to the second cold plate, and the second flow guide portion is connected to the second cold plate.
[0016] In some embodiments, the second angle β between the second flow guide portion and the second cold plate on the side of the cold plate facing away from the first cavity wall is 120-150 degrees.
[0017] In some embodiments, the third angle γ between the extension direction of the second flow guide portion and the horizontal direction is such that the height of the end of the second flow guide portion close to the first water collecting box is smaller than that of the end of the second flow guide portion away from the first water collecting box in the vertical direction.
[0018] In some embodiments, the third angle γ is 10-30 degrees.
[0019] In some embodiments, the water treatment device further comprises a second water collecting box arranged outside the storage cavity, and the two ends of the drainage structure are arranged in the first water collecting box and the second water collecting box, respectively, to guide the condensed water in the first water collecting box out of the second water collecting box.
[0020] The drainage structure comprises a moisture absorbing member having a moisture absorbing function, and the two ends of the moisture absorbing member are arranged in the first water collecting box and the second water collecting box, respectively, to absorb the condensed water in the first water collecting box out of the second water collecting box through the moisture absorbing member.
[0021] In some embodiments, the makeup refrigerator further comprises a heat dissipation fin arranged close to the hot end of the refrigeration device, and the drainage structure comprises a moisture absorbing rope and a moisture absorbing cloth, the moisture absorbing cloth is attached to the heat dissipation fin, one end of the moisture absorbing rope is arranged in the first water collecting box, the other end is connected to the moisture absorbing cloth, and the lower end of the moisture absorbing cloth is located in the second water collecting box.
[0022] In some embodiments, the makeup refrigerator further comprises a fan configured to deliver air flow to the moisture absorbing cloth and / or the heat dissipation fin.
[0023] In some embodiments, the makeup refrigerator further comprises a water guide structure mounted on a second cavity wall of the storage cavity, the second cavity wall being connected with the first cavity wall, the water guide structure being configured to guide the condensed water formed on the surface thereof to the cold plate.
[0024] In some embodiments, the water guide structure comprises a plurality of water collecting grooves extending to the side of the cold plate away from the first cavity wall, the height of the end of the water collecting groove close to the first cavity wall being less than the height of the end of the water collecting groove away from the first cavity wall in the vertical direction.
[0025] In some embodiments, the cabinet is arranged to be inclined with respect to the vertical direction, so that the condensed water on the water guide structure flows from the side away from the first cavity wall to the side close to the first cavity wall.
[0026] In some embodiments, the cabinet has an inclination angle δ between the bottom surface and the horizontal plane, the inclination angle δ being 3-5 degrees.
[0027] In some embodiments, the refrigeration device is a semiconductor refrigeration module.
[0028] Based on the above technical solution, the utility model discloses a cold plate arranged in the storage cavity, and the cold plate fully transfers cold energy to the storage cavity. In the process of transferring cold energy, the condensed water generated on the cold plate flows to the lower part of the storage cavity under the action of gravity, and then the first water collecting box arranged below the cold plate can timely collect the condensed water. In addition, the drainage structure can timely drain the condensed water collected by the first water collecting box out of the storage cavity, so as to avoid the accumulation and diffusion of the condensed water in the storage cavity and affect the quality of the stored articles. BRIEF DESCRIPTION OF DRAWINGS
[0029] The accompanying drawings, which are included to provide a further understanding of the utility model and constitute a part of the utility model, illustrate the illustrative embodiments of the utility model and the description thereof and do not constitute an improper limitation of the utility model. In the drawings:
[0030] Figure 1 Fig. 1 shows a structure schematic view of a makeup refrigerator according to some embodiments of the utility model.
[0031] Figure 2 Fig. 2 shows a layout schematic view of a cold plate and a water treatment device in a makeup refrigerator according to some embodiments of the utility model.
[0032] Figure 3 Fig. 3 shows a structure schematic view of a cold plate in a makeup refrigerator according to some embodiments of the utility model.
[0033] Figure 4 Fig. 4 shows a left view of the cold plate in Fig. 3. Figure 3
[0034] Fig. 4 shows a left view of the cold plate in Fig. 3.Figure 5 A layout schematic diagram of a storage cavity, a cold-guiding structure, a heat dissipation fin and a fan in a makeup refrigerator according to some embodiments of the present utility model is shown.
[0035] Figure 6 A sectional view of a flow-guiding structure in a makeup refrigerator according to some embodiments of the present utility model is shown.
[0036] Figure 7 A box body inclination schematic diagram of a makeup refrigerator according to some embodiments of the present utility model is shown.
[0037] In the figure:
[0038] 1, box body; 101, outer shell; 102, inner liner; 11, storage cavity; 111, first cavity wall; 112, second cavity wall; 2, refrigeration device; 3, cold-guiding plate; 31, cold-guiding plate body; 311, first cold-guiding plate; 311a, second flow-guiding part; 312, second cold-guiding plate; 32, first flow-guiding part; 4, first water collecting box; 5, drainage structure; 51, moisture absorbing rope; 52, moisture absorbing cloth; 6, second water collecting box; 7, heat dissipation fin; 8, fan; 9, flow-guiding structure; 91, water collecting groove; 10, cold-guiding block. DETAILED DESCRIPTION
[0039] The technical solutions in the embodiments will be clearly and completely described below with reference to the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present utility model.
[0040] In the description of the present utility model, it should be understood that the orientations or positional relationships indicated by the terms "center", "transverse", "longitudinal", "front", "back", "left", "right", "up", "down", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like are based on the orientations or positional relationships shown in the drawings, and are only for the convenience of describing the present utility model and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the scope of protection of the present utility model.
[0041] Reference Figure 1 As shown in the drawings, in some embodiments of the makeup refrigerator provided by the present utility model, the makeup refrigerator comprises a box body 1, a refrigeration device 2, a cold-guiding structure and a water treatment device. The box body 1 is internally provided with a storage cavity 11 for storing articles. The refrigeration device 2 is arranged outside the storage cavity 11 and is configured to generate cold. The cold-guiding structure is configured to transfer cold to the storage cavity 11, and the cold-guiding structure comprises a cold-guiding plate 3 and a cold-guiding block 10.Figure 5 As shown, the cold-conducting plate 3 is disposed on the first cavity wall 111 of the storage cavity 11, and the cold-conducting block 10 is disposed between the cold end of the refrigeration device 2 and the cold-conducting plate 3. (Reference) Figure 2 As shown, the water treatment device includes a first water collection box 4 and a drainage structure 5. The first water collection box 4 is disposed in the storage cavity 11 and located below the cooling plate 3. The positions of the first water collection box 4 and the cooling block 10 are corresponding. The first water collection box 4 is configured to collect condensate on the cooling plate 3. The drainage structure 5 is configured to discharge the condensate collected by the first water collection box 4 to the outside of the storage cavity 11.
[0042] Here, the cooling block 10 can transfer the cold energy generated by the cold end of the refrigeration device 2 to the cooling plate 3. The cooling plate 3 is set on the first cavity wall 111 of the storage cavity 11, which can fully transfer the cold energy into the storage cavity 11, so that the cold energy can be fully diffused in the storage cavity 11.
[0043] The positions of the refrigeration unit 2 and the cold-conducting block 10 can be adjusted to accommodate the layout requirements of surrounding components, ensuring effective cold air transfer while improving the overall flexibility of the beauty refrigerator's layout. The shape and specifications of the cold-conducting block 10 can also be adapted. For example, considering the layout of other components in the beauty refrigerator (such as the fan), the refrigeration unit 2 and the cold-conducting block 10 can be offset relative to the cold-conducting plate 3, thereby leaving suitable installation space for other components.
[0044] During the transfer of cooling energy, condensation occurs on the cooling plate 3. Under the influence of gravity, this condensation flows / drips downwards into the storage cavity 11. The first water collection box 4, located below the cooling plate 3, collects this condensation promptly. Furthermore, the closer the area on the cooling plate 3 is to the cooling block 10, the lower its temperature, and the more condensation occurs in that area. Therefore, by positioning the first water collection box 4 corresponding to the cooling block 10, the condensation on the cooling plate 3 can be effectively collected, preventing the concentrated condensation from affecting the items stored in the storage cavity 11.
[0045] by Figure 1 Taking the direction shown as an example, the refrigeration device 2 and the cooling block 10 are located behind the cooling plate 3 (not shown in the figure) and are arranged biased towards the right side of the cooling plate 3. Therefore, in Figure 1 In the embodiment shown, the first water collection box 4 is positioned corresponding to the position of the cooling block 10, that is, it is positioned below the cooling plate 3 and slightly to its right, so that the first water collection box 4 can effectively collect the condensate generated at the corresponding positions of the cooling plate 3 and the cooling block 10.
[0046] The cold-lead plate 3 and the cold-lead block 10 can be made of a material with high heat transfer efficiency to achieve efficient transfer of cold. For example, copper, aluminum alloy or the like can be used. In the case of mass production, aluminum alloy can be selected in consideration of production cost and heat transfer performance.
[0047] In addition, the drainage structure 5 is arranged to drain the condensed water collected by the first water collecting box 4 out of the storage cavity 11, which can avoid the condensed water from accumulating and spreading in the storage cavity 11 to affect the quality of the stored articles.
[0048] Reference Figure 2 As shown, in some embodiments, the first water collecting box 4 has an opening, and the cold-lead plate 3 includes a cold-lead plate body 31 and a first flow guide portion 32 connected to one end of the cold-lead plate body 31 close to the first water collecting box 4. The first flow guide portion 32 is bent relative to the cold-lead plate body 31 in a direction away from the first cavity wall 111 and extends to the opening of the first water collecting box 4.
[0049] The first flow guide portion 32 can guide the flow direction of the condensed water, so that the condensed water can flow smoothly into the first water collecting box 4. By forming a bend between the first flow guide portion 32 and the cold-lead plate body 31, the falling condensed water can be collected at this position, thereby more concentratedly and efficiently flowing into the first water collecting box 4.
[0050] In addition, by reasonably setting the size, bending direction, bending angle and other parameters of the first flow guide portion 32, the cold-lead plate body 31 and the first water collecting box 4 can be adaptively arranged according to the layout requirements inside the different storage cavities 11, thereby improving the design flexibility of the makeup refrigerator.
[0051] Reference Figure 2 As shown, in some embodiments, on the side of the cold-lead plate 3 away from the first cavity wall 111, the first flow guide portion 32 and the cold-lead plate body 31 have a first included angle a at the connection therebetween, and the size of the first included angle a is 120-150 degrees.
[0052] The size of the first included angle a is 120-150 degrees, which is beneficial to effectively and timely guide and collect the condensed water.
[0053] In one specific example, the size of the first included angle a is 140 degrees.
[0054] When designing the makeup refrigerator, the cold-lead plate 3 can also be adaptively designed according to the partitioning requirements of the internal storage cavities 11.
[0055] Reference Figure 3As shown, in some embodiments, the cold plate body 31 comprises a first cold plate 311 and a second cold plate 312 connected with the first cold plate 311. In the vertical direction, the second cold plate 312 is located between the first cold plate 311 and the first water collecting box 4. In the horizontal direction, the width of the second cold plate 312 is less than the width of the first cold plate 311, and the second cold plate 312 is arranged in correspondence with the position of the first water collecting box 4.
[0056] By designing the cold plate body 31 to comprise the first cold plate 311 and the second cold plate 312, different partitions can be formed in the storage cavity 11 by adjusting the size and shape of the first cold plate 311 and the second cold plate 312, etc. Here, the width of the second cold plate 312 is set to be less than the width of the first cold plate 311, so that the area beside the corresponding second cold plate 312 on the first cavity wall 111 can be arranged with modules such as sterilization, temperature sensing, fragrance, etc. to meet the diversified needs of users. Alternatively, a refrigeration fan can also be arranged in this area to improve the air circulation efficiency in the storage cavity 11 and improve the refrigeration effect.
[0057] Here, the position of the second cold plate 312 in the width direction of the first cold plate 311 can be set according to the layout position of the refrigeration device 2. For example, Figure 1 The refrigeration device 2 and the cold block 10 are arranged behind the first cold plate 311 (not shown in the figure) and are biased to the right side of the first cold plate 311. The space on the left side of the back of the first cold plate 311 can be arranged with other components of the beauty refrigerator, such as a fan.
[0058] In this case, referring to Figure 3 , the left side surface of the first cold plate 311 generates less condensate water, while the right side surface generates more condensate water. Here, the second cold plate 312 can be connected to the right side of the first cold plate 311 in the width direction to ensure that the condensate water generated on the right side surface is effectively introduced into the first water collecting box 4. The condensate water generated on the left side surface of the first cold plate 311 is less likely to be collected and, due to the surface tension of the droplets, the condensate water is usually adsorbed on the first cold plate 311 and is less likely to directly drip to the bottom of the storage cavity 11, and the treatment method for this part of the condensate water is introduced below.
[0059] As shown in Figure 3 and Figure 4 , in some embodiments, one end of the first cold plate 311 close to the second cold plate 312 is provided with a second flow guide part 311a bent towards the first cavity wall 111, and the second flow guide part 311a is connected with the second cold plate 312.
[0060] The second flow guide part 311a is arranged on the first cold guide plate 311, and the bending structure introduces additional resistance in the flow path of the condensed water, which helps to slow down the flow rate of the condensed water. Especially when there is a large amount of condensed water formed on the first cold guide plate 311, the resistance brought by the bending structure makes the condensed water not quickly slide down, but slowly flows under the guidance of the cold guide plate body 31, avoiding the problem of splashing or overflowing due to too fast water flow.
[0061] In embodiments where the first cold guide plate 311 and the second cold guide plate 312 have different widths, slowing down the water flow rate helps to avoid the condensed water directly dripping from the edge of the first cold guide plate 311 which is longer than the second cold guide plate 312, and cannot be collected by the first water collecting box 4.
[0062] In addition, for example, Figure 1 The first cold guide plate 311 and the second cold guide plate 312 are arranged on the first cavity wall 111 of the refrigerator door of the makeup refrigerator relative to the storage cavity 11. Compared to arranging the first cold guide plate 311 and the second cold guide plate 312 as a flat plate structure extending from the upper part to the lower part of the storage cavity 11, arranging the second flow guide part 311a bent towards the first cavity wall 111 at one end of the first cold guide plate 311 close to the second cold guide plate 312 can make the depth of the space at the lower part of the storage cavity 11 (relative to the refrigerator door) larger, thereby increasing the volume of the storage cavity 11 and improving the carrying capacity of the makeup refrigerator.
[0063] As an example, the space at the lower part of the storage cavity 11 can be provided with a drawer for storage, thereby facilitating the formation of different storage partitions in the storage cavity 11 and realizing the personalized layout of the storage cavity 11.
[0064] The bending degree of the second flow guide part 311a can be adjusted according to the surface structure of the first cavity wall 111. For example, a suitable bending angle is adopted so that the first cold guide plate 311 as a whole can be fitted with the surface of the first cavity wall 111, and sufficient cold quantity transmission efficiency is ensured. Alternatively, the bending angle can be selected according to its deceleration and flow guide effect on the condensed water, so that the condensed water can flow smoothly into the first water collecting box 4.
[0065] Referring to Figure 4 As shown in some embodiments, on the side of the cold guide plate 3 away from the first cavity wall 111, the second flow guide part 311a has a second included angle β at the connection with the second cold guide plate 312, and the size of the second included angle β is 120-150 degrees.
[0066] The size of the second included angle β is 120-150 degrees, which is beneficial to make the condensed water obtain a suitable flow rate and realize effective guidance and collection of the condensed water.
[0067] In a specific example, the size of the second included angle β is 122 degrees.
[0068] In addition, in order to make the condensed water flow into the first water collecting box 4 more conveniently, the second flow guide part 311a can also be provided in an inclined manner. With reference to the drawings, in some embodiments, the second flow guide part 311a has a third included angle γ between the extending direction and the horizontal direction, so that the height of the end of the second flow guide part 311a close to the first water collecting box 4 is less than the height of the end of the second flow guide part 311a away from the first water collecting box 4 in the vertical direction. Figure 3
[0069] Here, under the guidance of the inclined second flow guide part 311a, the condensed water can flow to the first water collecting box 4 more quickly, improve the collection efficiency of the condensed water, and also reduce the evaporation of the condensed water during the flow, further guaranteeing the appropriate humidity in the storage cavity 11.
[0070] In the embodiments in which the amount of condensed water generated on the left and right side surfaces of the first cooling plate 311 is inconsistent, the second flow guide part 311a can be provided to be inclined to the right, so that the small amount of condensed water generated on the left side surface of the first cooling plate 311 is guided from the left side of the second flow guide part 311a to the right side, and further collected with the condensed water generated on the right side surface of the first cooling plate 311, and then flows into the first water collecting box 4.
[0071] Here, the inclination of the second flow guide part 311a can be adjusted according to actual design requirements.
[0072] In some embodiments, the third included angle γ is 10-30 degrees.
[0073] The third included angle γ is 10-30 degrees, which is beneficial to make the condensed water flow to the first water collecting box 4 at a suitable speed, and improve the collection efficiency of the condensed water.
[0074] With reference to the drawings, Figure 2 In some embodiments, the water treatment device further comprises a second water collecting box 6 provided outside the storage cavity 11, and the two ends of the drainage structure 5 are respectively provided in the first water collecting box 4 and the second water collecting box 6, so as to guide the condensed water in the first water collecting box 4 out to the second water collecting box 6.
[0075] The drainage structure can timely guide the condensed water in the first water collecting box 4 out to the second water collecting box 6 outside the storage cavity 11, can reduce the evaporation / diffusion phenomenon of the collected condensed water in the storage cavity 11, effectively guarantee the dryness of the internal environment of the storage cavity 11, and also avoids the trouble of the user needing to frequently clean the accumulated water in the first water collecting box 4, and can improve the user experience of the beauty refrigerator.
[0076] In some embodiments, the water drainage structure 5 comprises a hygroscopic member having a hygroscopic function, and the two ends of the hygroscopic member are arranged in the first water collecting box 4 and the second water collecting box 6 respectively, so as to draw out the condensed water in the first water collecting box 4 to the second water collecting box 6 through the hygroscopic member.
[0077] Compared with the related art, the setting of the water drainage pipe or the water drainage hole for water drainage can cause the phenomenon that the external air enters the storage cavity through the pipe or the hole, thereby affecting the humidity and cleanliness inside the storage cavity. The hygroscopic member of the utility model occupies a small layout space and does not have a pipe / hole structure that can introduce external air, thereby effectively preventing the external air from entering the storage cavity 11 and improving the sealing performance of the storage cavity 11.
[0078] As an example, the hygroscopic member can be a hygroscopic rope or a hygroscopic cloth made of a hygroscopic material such as cotton, nylon, linen, fiber, etc.
[0079] Reference Figure 2 As shown in the drawings, in some embodiments, the makeup refrigerator further comprises a heat dissipation fin 7 arranged close to the hot end of the refrigeration device 2, the water drainage structure 5 comprises a hygroscopic rope 51 and a hygroscopic cloth 52, the hygroscopic cloth 52 is attached to the heat dissipation fin 7, one end of the hygroscopic rope 51 is arranged in the first water collecting box 4, the other end is connected to the hygroscopic cloth 52, and the lower end of the hygroscopic cloth 52 is located in the second water collecting box 6.
[0080] The hygroscopic rope 51 gradually absorbs and transports the condensed water in the first water collecting box 4 to the hygroscopic cloth 52 through the capillary effect principle. The hygroscopic cloth 52 has a large surface area and can effectively evaporate and dissipate the moisture, thereby forming a humidity difference between the two ends of the hygroscopic rope 51, increasing the water drainage efficiency of the hygroscopic rope 51 from the storage cavity 11 to the outside of the storage cavity 11, and preventing the condensed water in the first water collecting box 4 from accumulating and overflowing.
[0081] The heat dissipation fin 7 can help the refrigeration device 2 to dissipate heat quickly and improve the working efficiency of the refrigeration device 2. At the same time, the hygroscopic cloth 52 is attached to the heat dissipation fin 7, which also takes advantage of the heat emitted by the hot end of the refrigeration device 2, so that the moisture on the hygroscopic cloth 52 can evaporate quickly. The evaporation of the moisture on the hygroscopic cloth 52 also has a cooling effect on the heat dissipation fin 7.
[0082] Further, under the working condition that the working power of the refrigeration device 2 is high and the amount of condensed water inside the storage cavity 11 increases, the temperature of the hot end of the refrigeration device 2 increases and the heat dissipation of the heat dissipation fin 7 increases, thereby the evaporation rate of the moisture on the hygroscopic cloth 52 increases and the water drainage efficiency of the hygroscopic rope 51 also increases. Therefore, the utility model sets the hygroscopic rope 51, the hygroscopic cloth 52 and the heat dissipation fin 7 to jointly realize the discharge and treatment of the condensed water in the storage cavity 11, which can effectively prevent the condensed water in the first water collecting box 4 from accumulating under various working conditions.
[0083] As an example, the moisture absorption rope 51 is made of polyester fiber material, and the moisture absorption cloth 52 is made of a composite material of PET and fiber.
[0084] Further, referring to Figure 5 illustrated, in some embodiments, the beauty refrigerator further includes a fan 8 configured to deliver airflow to the moisture absorption cloth 52 and / or the heat dissipation fin 7.
[0085] The surface convection effect of the moisture absorption cloth 52 and / or the heat dissipation fin 7 is enhanced by the fan 8, which can further improve the evaporation efficiency of moisture and enhance the cooling effect of the heat dissipation fin 7 on the hot end of the refrigeration device 2.
[0086] During the use of the beauty refrigerator, not only the surface of the cold guide plate 3 will produce condensed water. Corresponding structures can be provided on other cavity walls of the storage cavity 11 for collecting and guiding condensed water, which is of great significance for further improving the environment in the storage cavity 11.
[0087] Referring to Figure 1 illustrated, in some embodiments, the beauty refrigerator further includes a flow guide structure 9 mounted on the second cavity wall 112 of the storage cavity 11, the second cavity wall 112 being connected with the first cavity wall 111, and the flow guide structure 9 being configured to guide the condensed water formed on the surface thereof to the cold guide plate 3.
[0088] The flow guide structure 9 guides the condensed water to the cold guide plate 3, so that the condensed water can flow to the first water collecting box 4 along the existing flow path (for example, the path guided by the flow guide structure on the surface of the cold guide plate 3). This way simplifies the processing flow of the condensed water and avoids the complexity caused by multiple-point dispersed processing.
[0089] In addition to the second cavity wall 112, corresponding flow guide structures can also be provided on other cavity walls in the storage cavity 11 that produce condensed water.
[0090] In some embodiments, the flow guide structure 9 includes a plurality of water collecting grooves 91 extending to the side of the cold guide plate 3 away from the first cavity wall 111. In the vertical direction, the height of the end of the water collecting groove 91 close to the first cavity wall 111 is less than the height of the end of the water collecting groove 91 away from the first cavity wall 111.
[0091] The groove structure of the water collecting groove 91 can effectively collect condensed water. Moreover, the heights of the two ends of the water collecting groove 91 are different, so that under the action of gravity, the condensed water can naturally flow downward along the water collecting groove 91 until it flows to the cold guide plate 3.
[0092] As an example, the plurality of water collecting grooves 91 can be arranged in a row, and the cross-sectional structure of the water collecting groove 91 formed thereby can refer to Figure 6 illustrated.
[0093] In addition, the condensate water in the box 1 can be conveniently collected by tilting the box 1 as a whole. The tilting of the box 1 also facilitates the user to access the items in the makeup refrigerator, thereby improving the user experience.
[0094] The tilting of the box 1 can conveniently tilt the box 1 and all the components in the box 1. By controlling the tilting direction and angle of the box 1, the condensate water in the storage cavity 11 can be caused to flow to the preset collection position.
[0095] Reference Figure 7 As shown in some embodiments, the box 1 is tilted relative to the vertical direction so that the condensate water on the flow guide structure 9 flows from the side away from the first cavity wall 111 to the side close to the first cavity wall 111. Thus, the condensate water on the flow guide structure 9 can flow to the cold plate 3 and then flow into the first water collecting box 4, thereby facilitating the collection and treatment of the condensate water.
[0096] Reference Figure 7 As shown in some embodiments, the bottom surface of the box 1 has an inclination angle δ relative to the horizontal plane, and the inclination angle δ is 3-5 degrees.
[0097] The inclination angle δ is 3-5 degrees, which is beneficial to achieve good condensate water collection effect while the makeup refrigerator can be stably placed.
[0098] It should be noted that, in order to achieve the collection of the condensate water, the box 1 as a whole does not necessarily be tilted as shown in the above embodiments, but only the components in the storage cavity 11 that generate condensate water can be tilted. In actual design, the design cost, change cost (for example, the production cost change caused by changing the structure) and other factors can be considered comprehensively.
[0099] In some embodiments of the present application, the refrigeration device 2 of the makeup refrigerator is a semiconductor refrigeration module.
[0100] The semiconductor refrigeration module realizes refrigeration based on the thermoelectric effect of semiconductors, has the characteristics of high reliability, low noise / vibration, fast temperature control response, easy integration, etc., and is especially suitable for small, functionally designed, and home environment used products such as makeup refrigerators.
[0101] Of course, with the development of the use scenarios of the makeup refrigerator, the refrigeration device 2 can also adopt other forms of refrigeration modules such as compression refrigeration and absorption refrigeration to meet different user needs.
[0102] Please refer to Figures 1 to 7 The present application discloses a makeup refrigerator.
[0103] In the present embodiment, the makeup refrigerator comprises a cabinet 1, a refrigeration device 2, a cold conduction structure, a water treatment device, a heat dissipation fin 7, a fan 8 and a flow guide structure 9.
[0104] As shown in Figure 1 , Figure 2 and Figure 5 , the cabinet 1 comprises an outer shell 101 and a cabinet liner 102, and the inside of the cabinet liner 102 forms a storage cavity 11 for storing articles. The refrigeration device 2 is arranged between the outer shell 101 and the cabinet liner 102, and the refrigeration device 2 is configured to generate cold energy. In the present embodiment, the refrigeration device 2 is a semiconductor refrigeration module. The end close to the storage cavity 11 is the cold end, and the end away from the storage cavity 11 is the hot end. The cold conduction structure is configured to transfer the cold energy generated by the refrigeration device 2 to the storage cavity 11. The cold conduction structure comprises a cold conduction block 10 and a cold conduction plate 3, and the cold conduction plate 3 is arranged on a first cavity wall 111 of the storage cavity 11, and the cold conduction block 10 is arranged between the cold end of the refrigeration device 2 and the cold conduction plate 3. In the present embodiment, the side of the refrigerator door of the makeup refrigerator is the front side. The first cavity wall 111 is the rear cavity wall of the storage cavity 11. The refrigeration device 2, the cold conduction structure, the water treatment device, the heat dissipation fin 7 and the fan 8 are all located in the rear part of the makeup refrigerator.
[0105] As shown in Figure 2 , the water treatment device comprises a first water collecting box 4, a drainage structure 5 and a second water collecting box 6. The first water collecting box 4 is arranged inside the storage cavity 11 and below the cold conduction plate 3, and is used to collect condensed water on the cold conduction plate 3, and the second water collecting box 6 is arranged outside the storage cavity 11.
[0106] As shown in Figure 5 , the heat dissipation fin 7 is arranged close to the hot end of the refrigeration device 2, and the fan 8 is arranged near the heat dissipation fin 7 and is used to send air to the heat dissipation fin 7.
[0107] As shown in Figure 2 , the drainage structure 5 comprises a moisture absorbing rope 51 and a moisture absorbing cloth 52, the moisture absorbing cloth 52 is attached to the heat dissipation fin 7, one end of the moisture absorbing rope 51 is arranged in the first water collecting box 4, the other end is connected to the moisture absorbing cloth 52, and the lower end of the moisture absorbing cloth 52 is located in the second water collecting box 6.
[0108] As shown in Figure 2 , the cold conduction plate 3 comprises a cold conduction plate body 31 and a first flow guide part 32 connected to one end of the cold conduction plate body 31 close to the first water collecting box 4, and the first flow guide part 32 is bent and extended to the opening of the first water collecting box 4 relative to the cold conduction plate body 31 in a direction away from the first cavity wall 111.
[0109] In addition, as shown in 1 and Figure 6As shown, the flow guide structure 9 is installed on the second cavity wall 112 of the storage cavity 11, and is used to collect the small amount of condensed water generated on the second cavity wall 112. The flow guide structure 9 includes a plurality of water collection grooves 91 extending to the surface of the heat conduction plate 3. In this embodiment, the second cavity wall 112 is a side wall of the storage cavity 11.
[0110] In this embodiment, the box body 1 is inclined backward by an angle δ (as shown in Figure 7 , so that the condensed water condensed in the water collection groove 91 can flow along the groove to the heat conduction plate 3, and then further to the first water collection box 4, thereby realizing the collection of the condensed water on the second cavity wall 112. In this embodiment, the size of δ is 3 degrees.
[0111] Referring again to Figure 3 and Figure 4 , the heat conduction plate body 31 includes a first heat conduction plate 311 and a second heat conduction plate 312 connected to the first heat conduction plate 311. The end of the first heat conduction plate 311 close to the second heat conduction plate 312 is provided with a second flow guide part 311a bent towards the first cavity wall 111, and the second flow guide part 311a is connected to the second heat conduction plate 312. In the vertical direction, the second heat conduction plate 312 is located between the first heat conduction plate 311 and the first water collection box 4. In the horizontal direction, the width of the second heat conduction plate 312 is smaller than the width of the first heat conduction plate 311, and the second heat conduction plate 312 is provided in position corresponding to the first water collection box 4. On the side of the heat conduction plate 3 away from the first cavity wall 111, the connection between the heat conduction plate body 31 and the first flow guide part 32 has a first included angle α, and the connection between the second flow guide part 311a and the second heat conduction plate 312 has a second included angle β, and the sizes of the first included angle α and the second included angle β can be set within the range of 120-150 degrees. In this embodiment, the heat conduction plate 3 has three bends (forming two bend structures) on the path of the condensed water flow. Through the two bend structures of the first flow guide part 32 and the second flow guide part 311a, the condensed water on the heat conduction plate 3 is guided to flow smoothly into the first water collection box 4 below.
[0112] As shown in Figure 3 , the second flow guide part 311a is further inclined and arranged so that its extension direction has an included angle of 10-30 degrees with respect to the horizontal direction, so that the condensed water on the left side of the first heat conduction plate 311 can flow down along the edge of the second flow guide part 311a to the right side and then flow into the first water collection box 4. In this way, the first water collection box 4 can be designed to be small in size, leaving space for other functional modules around it.
[0113] In the working process of the makeup refrigerator, the condensed water condenses on the cold guide plate 3, and is guided to flow into the first water collecting box 4 through the two bending structures of the first flow guide part 32 and the second flow guide part 311a, and then is guided to flow out to the second water collecting box 6 and the moisture absorbing cloth 52 through the moisture absorbing rope 51. The moisture absorbing cloth 52 is attached to the heat dissipation fins 7, and cooperates with the fan 8 to accelerate the evaporation of the condensed water on the moisture absorbing cloth 52, so as to realize the whole drainage process of the storage cavity 11. In this process, the evaporation of the condensed water can take away part of the heat of the hot end of the refrigeration device 2, and improves the heat dissipation effect of the refrigeration device 2.
[0114] It should be finally pointed out that: the above embodiments are only used to illustrate the technical solutions of the present application but not to limit it; although the present application has been described in detail with reference to the preferred embodiments, it should be understood by those skilled in the art that the specific embodiments of the present application can be modified or some technical features can be replaced by equivalent ones without departing from the principles of the present application, and these modifications and equivalent replacements should be included in the technical solution range of the present application claimed.
Claims
1. A beauty refrigerator, characterized in that, include: Box (1), the box (1) is provided with a storage cavity (11) for storing items; A refrigeration device (2) is disposed outside the storage cavity (11) and is configured to generate cooling capacity; A cooling structure is configured to transfer the cooling capacity to the storage cavity (11). The cooling structure includes a cooling plate (3) and a cooling block (10). The cooling plate (3) is disposed on the first cavity wall (111) of the storage cavity (11), and the cooling block (10) is disposed between the cold end of the refrigeration device (2) and the cooling plate (3). and The water treatment device includes a first water collection box (4) and a drainage structure (5). The first water collection box (4) is disposed in the storage cavity (11) and located below the cooling plate (3). The first water collection box (4) is positioned corresponding to the cooling block (10). The first water collection box (4) is configured to collect condensate on the cooling plate (3). The drainage structure (5) is configured to discharge the condensate collected by the first water collection box (4) to the outside of the storage cavity (11).
2. The beauty refrigerator according to claim 1, characterized in that, The first water collection box (4) has an opening, and the cooling plate (3) includes a cooling plate body (31) and a first flow guide (32) connected to one end of the cooling plate body (31) near the first water collection box (4). The first flow guide (32) bends away from the first cavity wall (111) relative to the cooling plate body (31) and extends to the opening of the first water collection box (4).
3. The beauty refrigerator according to claim 2, characterized in that, On the side of the cooling plate (3) away from the first cavity wall (111), the connection between the cooling plate body (31) and the first flow guide (32) has a first included angle α, the size of which is 120~150 degrees.
4. The beauty refrigerator according to claim 2, characterized in that, The cold-conducting plate body (31) includes a first cold-conducting plate (311) and a second cold-conducting plate (312) connected to the first cold-conducting plate (311). In the vertical direction, the second cold guiding plate (312) is located between the first cold guiding plate (311) and the first water collection box (4). In the horizontal direction, the width of the second cold-conducting plate (312) is smaller than the width of the first cold-conducting plate (311), and the second cold-conducting plate (312) is positioned corresponding to the first water collection box (4).
5. The beauty refrigerator according to claim 4, characterized in that, The first cooling plate (311) has a second flow guide (311a) at one end near the second cooling plate (312), which is bent toward the first cavity wall (111), and the second flow guide (311a) is connected to the second cooling plate (312).
6. The beauty refrigerator according to claim 5, characterized in that, On the side of the cooling plate (3) away from the first cavity wall (111), the connection between the second flow guide (311a) and the second cooling plate (312) has a second included angle β, the size of which is 120~150 degrees.
7. The beauty refrigerator according to claim 5, characterized in that, The second guide section (311a) has a third included angle γ between its extension direction and the horizontal direction, so that the height of the end of the second guide section (311a) near the first water collection box (4) in the vertical direction is less than the height of the end of the second guide section (311a) away from the first water collection box (4).
8. The beauty refrigerator according to claim 7, characterized in that, The third included angle γ is 10 to 30 degrees.
9. The beauty refrigerator according to any one of claims 1 to 8, characterized in that, The water treatment device also includes a second water collection box (6) disposed outside the storage cavity (11). The two ends of the drainage structure (5) are respectively disposed in the first water collection box (4) and the second water collection box (6) to drain the condensate in the first water collection box (4) into the second water collection box (6).
10. The beauty refrigerator according to claim 9, characterized in that, The drainage structure (5) includes a moisture-absorbing component with a moisture-absorbing function. The two ends of the moisture-absorbing component are respectively disposed in the first water collection box (4) and the second water collection box (6) so as to absorb the condensate in the first water collection box (4) into the second water collection box (6) through the moisture-absorbing component.
11. The beauty refrigerator according to claim 9, characterized in that, It also includes heat dissipation fins (7) arranged close to the hot end of the refrigeration device (2). The drainage structure (5) includes a moisture-absorbing rope (51) and a moisture-absorbing cloth (52). The moisture-absorbing cloth (52) is attached to the heat dissipation fins (7). One end of the moisture-absorbing rope (51) is arranged in the first water collection box (4), and the other end is connected to the moisture-absorbing cloth (52). The lower end of the moisture-absorbing cloth (52) is located in the second water collection box (6).
12. The beauty refrigerator according to claim 11, characterized in that, It also includes a fan (8) configured to deliver airflow to the absorbent cloth (52) and / or the heat dissipation fins (7).
13. The beauty refrigerator according to claim 1, characterized in that, It also includes a flow guide structure (9) installed on a second cavity wall (112) of the storage cavity (11), the second cavity wall (112) being connected to the first cavity wall (111), the flow guide structure (9) being configured to guide condensate formed on its surface to the cooling plate (3).
14. The beauty refrigerator according to claim 13, characterized in that, The flow guiding structure (9) includes a plurality of water collection troughs (91) extending to the side of the cooling plate (3) away from the first cavity wall (111). In the vertical direction, the height of the end of the water collection trough (91) near the first cavity wall (111) is less than the height of the end of the water collection trough (91) away from the first cavity wall (111).
15. The beauty refrigerator according to claim 13, characterized in that, The housing (1) is inclined relative to the vertical direction so that the condensate on the flow guiding structure (9) flows from the side away from the first cavity wall (111) to the side close to the first cavity wall (111).
16. The beauty refrigerator according to claim 1, characterized in that, The bottom surface of the box (1) has an inclination angle δ with respect to the horizontal plane, and the inclination angle δ is 3 to 5 degrees.
17. The beauty refrigerator according to claim 1, characterized in that, The refrigeration device (2) is a semiconductor refrigeration module.