The present invention relates to refrigerating and freezing technologies, and particularly relates to an air-cooled refrigerator.
As for a refrigerator with an evaporator at the bottom in the prior art, a cooling chamber is located on the lower portion of the refrigerator, the evaporator is internally provided at the bottom of the cooling chamber, and in order to increase the volume rate and safety of the technology of providing the evaporator at the bottom, a heating wire, e.g., an aluminum tube heating wire, is generally adopted as a defrosting device of the evaporator. However, in order to balance safety and other factors, the temperature of the aluminum tube heating wire will not be set too high, and it may lead to a situation that a fault occurs if large ice blocks a water drainage outlet and cannot be melted in time.
One objective of the present invention is to overcome at least one defect in the prior art and to provide an air-cooled refrigerator.
One further objective of the present invention is to prevent a water drainage outlet of a cooling chamber of the refrigerator from being blocked.
Another further objective of the present invention is that as for the air-cooled refrigerator where the cooling chamber is located at the bottom and an evaporator is obliquely provided in the cooling chamber, defrosting water on the evaporator is collected by a water receiving tray to the greatest extent.
Yet another further objective of the present invention is to optimize the shape of a heating wire to make the evaporator heated more evenly.
Particularly, the present invention provides an air-cooled refrigerator, including:
Further, the bottom wall of the bottom liner includes:
Further, an inclination angle of the third oblique portion is greater than that of the second oblique portion.
Further, the water receiving tray includes:
Further, a distance between the front plate segment and the first oblique portion is configured as any numerical value within a range from 20 mm to 45 mm.
Further, the heating wire includes:
Further, the heating wire also includes:
Further, a plurality of limiting parts are provided on positions of a rear portion of an upper surface of the middle plate segment facing towards the plurality of connection sections to limit the connection sections.
Further, a plurality of water drainage holes are also formed in a front portion of the upper surface of the middle plate segment to discharge water received by the water receiving tray into the water receiving tank through the water drainage holes and gaps between the through holes and the extension portion.
Further, a distance between a bottom end of the extension portion and the water drainage outlet is configured as any numerical value within a range from 3 mm to 5 mm.
In the air-cooled refrigerator of the present invention, the water receiving tray is provided between the evaporator and the bottom wall of the bottom liner. The heating wire is provided between the water receiving tray and the evaporator in the coiled manner. The plurality of through holes are formed in the region of the water receiving tray facing towards the water receiving tank. The heating wire has the extension portion extending to the water receiving tank through the through holes. After the extension portion penetrates through the through holes, at least part of the extension portion is provided in the water receiving tank, which may reduce the distance between the heating wire and the water drainage outlet, so that heat of the heating wire can be transferred to the water drainage outlet in time to prevent the impact on the water drainage efficiency due to blocking of the water drainage outlet by large-volume ice. Additionally, while the extension portion prevents the water drainage outlet from being blocked, it may also avoid additional heating wires at the water drainage outlet, thus reducing the cost of the refrigerator.
Further, in the air-cooled refrigerator of the present invention, the front plate segment may abut against the first oblique portion, the middle plate segment obliquely extends upwards from the rear end of the front plate segment, and the rear plate segment obliquely extends upwards from the rear end of the middle plate segment. When the evaporator is provided on the middle plate segment, it may be completely enclosed with the front plate segment, the middle plate segment and the rear plate segment to collect the defrosting water on the evaporator to the greatest extent.
Further, in the air-cooled refrigerator of the present invention, the parallel sections of the heating wire are parallelly provided at the bottom of the evaporator at intervals in the transverse direction, and the heating wire is coiled in an S shape under the connection of the connection sections, such that the length of the heating wire is increased while the evaporator may be evenly heated. Additionally, the expansion section of the heating wire extends towards the two sides to conduct defrosting heating on the region in front of the evaporator, which makes the action region of the heating wire more comprehensive and further guarantees smooth defrosting and water drainage.
These and other objectives, advantages and features of the present invention will be better understood by those skilled in the art in the light of the detailed description of specific embodiments of the present invention in conjunction with the accompanying drawings below.
Some specific embodiments of the present invention will be described below in detail in an exemplary and non-limiting manner with reference to the accompanying drawings. Identical reference numerals in the accompanying drawings indicate identical or similar components or parts. It should be understood by those skilled in the art that these accompanying drawings are not necessarily drawn to scale. In the accompanying drawings:
In the description of the embodiment, it should be understood that, orientation or position relationships indicated by terms “longitudinal,” “transverse,” “length,” “width,” “thickness,” “upper,” “lower,” “front,” “rear,” “left,” “right,” “vertical,” “horizontal,” “top,” “bottom,” “depth,” etc. are based on orientations of a refrigerator in normal use as a reference, and can be determined with reference to orientation or position relationships as shown in accompanying drawings. For example, “front” for indicating an orientation refers to a side of the refrigerator facing towards a user. It is merely for ease of describing the present invention and simplifying the description, and not for indicating or implying the device or component referred to should have a specific orientation and be constructed and operated in the specific orientation, and thus it cannot be interpreted as the limitation on the present invention.
See
See
That is, the evaporator 220 in the embodiment is provided on the lower portion of the bottom liner 100. Such a manner may avoid the reduction of depth of the freezing compartment due to the occupation of a rear space of the freezing compartment by an evaporator in a traditional refrigerator. Especially for a side-by-side refrigerator, it is especially important to increase the depth dimension of the freezing compartment when its transverse dimension is small. Thus, the space utilization of the refrigerator 1 is improved, and objects that are large and difficult to be divided are stored advantageously.
Additionally, in the traditional refrigerator, the freezing compartment on the lowest portion has a low position, a user needs to bend down significantly or squat down to pick up and place objects in the freezing compartment. Thus, it is inconvenient for the user to use, especially for the elderly. However, in the embodiment, the lower space of the bottom liner 100 is occupied by the cooling chamber 140, and thus the height of the freezing compartment 160 above the cooling chamber 140 is raised, which reduces the degree of bending down when the user picks up and places the objects in the freezing compartment 160, thereby improving the user experience of the user.
See
See
See
See
See
The evaporator 220 inside the cooling chamber 140 conducts heat exchange with surrounding air, to reduce the temperature of the air to form a refrigeration air flow. With the promotion of the centrifugal fan, the refrigeration air flow is discharged from the cooling chamber 140 to the air supply duct 150, and then enters the freezing compartment 160 from the air supply outlet 242 in the air duct back plate 240, so as to conduct heat exchange with air in the freezing compartment 160 to reduce the temperature of the freezing compartment 160. The refrigeration air flow may flow back to the cooling chamber 140 via the front return air inlet 232 in the return air cover 230 after heat exchange to continue to conduct heat exchange with the evaporator 220, thereby forming a circulating air flow path.
See
In a using process of the refrigerator 1, since the temperature of the evaporator 220 is lower than the outside temperature, water vapor in outside air may be condensed by the evaporator 220 and then frosted onto the surface of the evaporator 220, which is prone to affecting the refrigeration effect and efficiency of the refrigerator and even causes a quality fault.
The heating wire 400 is provided between the water receiving tray 300 and the evaporator 200 in the coiled manner, and may heat the evaporator 220 at intervals according to certain parameters to melt frost on the evaporator 220. For instance, when a compressor of the refrigerator 1 starts to work, the temperature of the evaporator 220 is reduced, a large amount of condensed water or defrosting water is produced at this time, and the heating wire 400 is started to conduct defrosting. Of course, starting and stopping of the heating wire 400 may also be controlled by other control logics, and in order not to obscure the invention point of the invention, it will not be described in detail herein.
The water receiving tray 300 is provided between the evaporator 220 and the bottom wall of the bottom liner 100. After the defrost on the evaporator 220 is melted by the heating wire 400, the water receiving tray 300 may receive and collect the defrosting water, and divert the defrosting water into the water receiving tank 1241 on the bottom wall of the bottom liner 100. The water drainage outlet 1241a is formed at the bottom of the water receiving tank 1241. The water drainage outlet 1241a may generally communicate the water receiving tank 1241 with a compressor compartment located below the rear side of the bottom liner 100 to evaporate the defrosting water in the compressor compartment, thus preventing the defrosting water from dripping onto other components of the refrigerator 1 and causing a fault.
The water drainage outlet 1241a is located at the bottom of the water receiving tank 1241. The heating wire 400 is provided between the water receiving tray 300 and the evaporator 220. In other words, there is a certain distance between the water drainage outlet 1241a and the heating wire 400, and there is also the water receiving tray 300 spaced between them, which may cause the situation that some large-volume ice cannot be melted by the heating wire 400 in time when falling in the water drainage outlet 1241a, resulting in blocking of the water drainage outlet 1241a and disadvantageous water drainage.
Thus, in order to overcome the above defects, in the refrigerator of the embodiment, the plurality of through holes 322 are formed in the region of the water receiving tray 300 facing towards the water receiving tank 1241, and the heating wire 400 has the extension portion 412 extending to the water receiving tank 1241 through the through holes 322. At least part of the extension portion 412 is provided in the water receiving tank 1241, which may reduce the distance between the heating wire 400 and the water drainage outlet 1241a so that heat of the heating wire 400 can be transferred to the water drainage outlet 1241a in time to prevent the water drainage outlet 1241a from being blocked. Additionally, since the heating wire 400 is provided between the water receiving tray 300 and the evaporator 220, the extension portion 412 may define the position between the water receiving tray 300 and the heating wire 400 when extending to the water receiving tank 1241 through the through holes 322.
Additionally, while the extension portion prevents the water drainage outlet from being blocked, it may also avoid additional heating wires at the water drainage outlet, thus reducing the cost of the refrigerator.
In some specific embodiments of the present invention, the extension portion 412 may be formed by bending the middle of the heating wire 400 towards the water receiving tray 300. The diameter of the heating wire 400 may be slightly smaller than the dimensions of the through holes 322 to allow the extension portion 412 to pass through the through holes 322. For example, the diameter of the heating wire 400 may be 4.5 mm, and the widths of the through holes 322 may be 6 mm, etc., which will not be enumerated herein.
The heating wire 400 may also be configured as an aluminum tube heating wire. The water receiving tray 300 may also be configured as an aluminum water receiving tray. The aluminum water receiving tray 300 mainly acts to effectively and quickly transfer the heat of the heating wire 400 to all portions of the evaporator 220 to increase the heating area of the evaporator 220, thereby improving the defrosting efficiency.
In some specific embodiments of the present invention, the distance between the bottom end of the extension portion 412 and the water drainage outlet 1241a may also be configured as any numerical value within a range from 3 mm to 5 mm, e.g., 3 mm, 4 mm or 5 mm, so as to make the extension portion get close to the water drainage outlet 1241a to the greatest extent on the premise of not affecting the water drainage effect of the water drainage outlet 1241a to prevent the water drainage outlet 1241a from being blocked.
See
In the embodiment, the second oblique portion 126 is obliquely provided relative to the front end of the bottom wall of the bottom liner 100. The evaporator 220 may be directly or indirectly provided on the second oblique portion 126, and the water receiving tank 1241 is formed at the sunken portion 124 located on the lower side of the second oblique portion 126, which enables the defrosting water on the evaporator 220 to be smoothly discharged into the water receiving tank 1241 when the evaporator 220 is obliquely provided on the second oblique portion 126.
In some specific embodiments, the inclination angle of the third oblique portion 128 is greater than that of the second oblique portion 126, and the inclination angle of the third oblique portion 128 relative to the horizontal direction may also be set within a range from 36 to 37 degrees, e.g., 36 degrees, 36.5 degrees and 37 degrees, preferably 36.7 degrees.
See
The evaporator 220 has an overall flat cuboid shape, and is provided on the middle plate segment 320, and the bottom of a front end of the evaporator abuts against the junction of the middle plate segment 320 and the front plate segment 310, such that the evaporator 220 is provided at the inclination angle of the second oblique portion 126 to achieve the technical effect of oblique provision of the evaporator 220 in the above embodiments.
In the embodiment, the front plate segment 310 may abut against the first oblique portion 122, the middle plate segment 320 obliquely extends upwards from the rear end of the front plate segment 310, and the rear plate segment 330 obliquely extends upwards from the rear end of the middle plate segment 320. When the evaporator 220 is provided on the middle plate segment 320, it may be completely enclosed by the front plate segment 310, the middle plate segment 320 and the rear plate segment 330 to collect the defrosting water on the evaporator 220 to the greatest extent.
Further, in the embodiment, the evaporator 220 is provided on the middle plate segment 320, and the middle plate segment 320 obliquely extends upwards from the rear end of the front plate segment 310, with its front end being located above the water receiving tank 1241. In other words, the front end of the evaporator 220 is also inclined towards the water receiving tank 1241, which may also reduce the distance between the front portion of the evaporator 220 and the water receiving tank 1241, thus reducing the distance between the whole heating wire 400 and the water receiving tank 1241. In the present invention, it is precisely because of the cooperation of the modes of the extension portion 412 and oblique provision of the evaporator 220 that the distance between the heating wire 400 and the water receiving tank 1241 is reduced to heat the water drainage outlet 1241a.
See
In some specific embodiments, the distance between the front plate segment 310 and the first oblique portion 122 may also be configured as any numerical value within a range from 20 mm to 45 mm, e.g., 20 mm, 30 mm or 45 mm.
See
That is, the heating wire 400 in the embodiment is provided in a manner of being coiled in an S shape, and the number of the parallel sections 410 and the distance between every two adjacent parallel sections 410 may be configured according to the area of the evaporator 220, such that the evaporator 220 may be evenly heated. The extension portion 412 may be formed by downwards bending the parallel sections 410, so as to protrude from the surface of the heating wire 400 and extend downwards to heat the water drainage outlet 1241a.
See
Correspondingly, the side portions of the water receiving tray 300 may also extend towards the two sides to form expansion plate segments 340 to bear the expansion section 430.
See
In the embodiment, the limiting parts 350 may be a plurality of clamping grooves arched from the upper surface of the middle plate segment 320, and the connection sections 420 on the same side may extend into the clamping grooves, so as to limit the heating wire 400 and the middle plate segment 320 to simplify assembly processes. In some preferable embodiments, the limiting parts 350 have a shape of semisphere, which minimizes the impact on the refrigeration air flow.
See
At this point, it should be recognized by those skilled in the art that, although multiple exemplary embodiments of the present invention have been exhaustively shown and described herein, many other variations or modifications in accordance with the principles of the present invention may still be directly determined or derived from the disclosure of the present invention without departing from the spirit and scope of the present invention. Therefore, the scope of the present invention should be understood and recognized as covering all these other variations or modifications.
Number | Date | Country | Kind |
---|---|---|---|
202010832828.9 | Aug 2020 | CN | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2021/112100 | 8/11/2021 | WO |