CN109000404B - Refrigerator with a door - Google Patents

Refrigerator with a door Download PDF

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Publication number
CN109000404B
CN109000404B CN201710419637.8A CN201710419637A CN109000404B CN 109000404 B CN109000404 B CN 109000404B CN 201710419637 A CN201710419637 A CN 201710419637A CN 109000404 B CN109000404 B CN 109000404B
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China
Prior art keywords
chamber
thawing
unfreezing
refrigerator
refrigerating
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CN201710419637.8A
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Chinese (zh)
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CN109000404A (en
Inventor
戴建斌
徐同
李鹏
朱小兵
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Haier Smart Home Co Ltd
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Qingdao Haier Co Ltd
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D11/00Self-contained movable devices, e.g. domestic refrigerators
    • F25D11/02Self-contained movable devices, e.g. domestic refrigerators with cooling compartments at different temperatures
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00Heating by electric, magnetic or electromagnetic fields
    • H05B6/46Dielectric heating
    • H05B6/48Circuits
    • AHUMAN NECESSITIES
    • A23FOODS OR FOODSTUFFS; TREATMENT THEREOF, NOT COVERED BY OTHER CLASSES
    • A23BPRESERVING, e.g. BY CANNING, MEAT, FISH, EGGS, FRUIT, VEGETABLES, EDIBLE SEEDS; CHEMICAL RIPENING OF FRUIT OR VEGETABLES; THE PRESERVED, RIPENED, OR CANNED PRODUCTS
    • A23B4/00General methods for preserving meat, sausages, fish or fish products
    • A23B4/06Freezing; Subsequent thawing; Cooling
    • A23B4/07Thawing subsequent to freezing
    • AHUMAN NECESSITIES
    • A23FOODS OR FOODSTUFFS; TREATMENT THEREOF, NOT COVERED BY OTHER CLASSES
    • A23LFOODS, FOODSTUFFS, OR NON-ALCOHOLIC BEVERAGES, NOT COVERED BY SUBCLASSES A21D OR A23B-A23J; THEIR PREPARATION OR TREATMENT, e.g. COOKING, MODIFICATION OF NUTRITIVE QUALITIES, PHYSICAL TREATMENT; PRESERVATION OF FOODS OR FOODSTUFFS, IN GENERAL
    • A23L3/00Preservation of foods or foodstuffs, in general, e.g. pasteurising, sterilising, specially adapted for foods or foodstuffs
    • A23L3/36Freezing; Subsequent thawing; Cooling
    • A23L3/365Thawing subsequent to freezing
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D23/00General constructional features
    • F25D23/12Arrangements of compartments additional to cooling compartments; Combinations of refrigerators with other equipment, e.g. stove
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D29/00Arrangement or mounting of control or safety devices
    • F25D29/003Arrangement or mounting of control or safety devices for movable devices
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B6/00Heating by electric, magnetic or electromagnetic fields
    • H05B6/46Dielectric heating
    • H05B6/62Apparatus for specific applications

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Chemical & Material Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Thermal Sciences (AREA)
  • Mechanical Engineering (AREA)
  • Combustion & Propulsion (AREA)
  • Polymers & Plastics (AREA)
  • Food Science & Technology (AREA)
  • Electromagnetism (AREA)
  • Zoology (AREA)
  • Wood Science & Technology (AREA)
  • Health & Medical Sciences (AREA)
  • Nutrition Science (AREA)
  • Freezing, Cooling And Drying Of Foods (AREA)
  • Constitution Of High-Frequency Heating (AREA)
  • Electric Ovens (AREA)

Abstract

The invention provides a refrigerator. This refrigerator is including injecing the box and the thawing apparatus that have the cold-stored room, alternating temperature room and the freezing room that distribute in proper order along the vertical direction of refrigerator, and thawing apparatus includes: a barrel defining a thawing chamber having a forward opening for placing an object to be treated; the device door body is arranged at the front opening of the unfreezing chamber and used for opening and closing the unfreezing chamber; a radio frequency generation module configured to generate a radio frequency signal; the upper electrode plate and the lower electrode plate are respectively and horizontally arranged on the top wall and the bottom wall of the unfreezing chamber and are respectively and electrically connected with the radio frequency generating module so as to generate radio frequency waves with corresponding frequency in the unfreezing chamber according to radio frequency signals and unfreeze objects to be processed in the unfreezing chamber; and the thawing apparatus is disposed in the refrigerating compartment. The unfreezing device is arranged in the refrigerating chamber of the refrigerator, so that the temperature in the unfreezing chamber cannot be influenced in the unfreezing process of the unfreezing device, and the unfreezing progress of the object to be treated cannot be influenced.

Description

Refrigerator with a door
Technical Field
The invention relates to the field of unfreezing, in particular to a refrigerator with a quick unfreezing function.
Background
During the freezing process, the quality of the food is maintained, however, the frozen food needs to be thawed before processing or consumption. In order to facilitate a user to freeze and thaw food, the related art generally defrosts the food by providing a heating device or a microwave device in a refrigerator.
However, the heating device generally needs a long thawing time to thaw food, and the thawing time and temperature are not easy to be controlled, so that water evaporation and juice loss of the food are easily caused, and the quality of the food is lost; the microwave device is used for unfreezing food, the speed is high, the efficiency is high, the loss of nutrient components of the food is low, but the penetration and the absorption of microwaves to water and ice are different, the distribution of internal substances of the food is not uniform, the energy absorbed by a melted area is large, and the problems of uneven unfreezing and local overheating are easily caused. In view of the above, there is a need for a refrigerator having high thawing efficiency, uniform thawing, and guaranteed food quality.
Disclosure of Invention
An object of the present invention is to provide a refrigerator with a small defrosting effect.
A further object of the invention is to avoid excessive thawing of the product to be treated.
In particular, the present invention provides a refrigerator comprising a box body defining a refrigerating compartment, a temperature-changing compartment and a freezing compartment which are sequentially distributed in a vertical direction of the refrigerator, and a thawing apparatus, the thawing apparatus comprising:
a barrel defining a thawing chamber therein having a forward opening for placing an object to be treated;
the device door body is arranged at the front opening of the unfreezing chamber and used for opening and closing the unfreezing chamber;
a radio frequency generation module configured to generate a radio frequency signal; and
the upper electrode plate and the lower electrode plate are respectively horizontally arranged on the top wall and the bottom wall of the unfreezing chamber and are respectively electrically connected with the radio frequency generating module so as to generate radio frequency waves with corresponding frequencies in the unfreezing chamber according to the radio frequency signals and unfreeze the object to be processed in the unfreezing chamber; and is
The thawing device is disposed in the refrigerating compartment.
Optionally, a device air inlet is formed in the rear plate of the barrel, and a gap is left between the rear plate of the barrel and the rear wall of the refrigerating compartment, so that air in the refrigerating compartment enters the defrosting chamber through the device air inlet; and is
The side plates on the two transverse sides of the barrel are provided with device air outlets, and gaps are reserved between the side plates on the two transverse sides of the barrel and the side walls on the two transverse sides of the cold storage chamber, so that gas in the unfreezing chamber is discharged to the cold storage chamber through the device air outlets.
Optionally, the distance between the rear wall of the barrel and the side plates on the two transverse sides and the rear wall of the corresponding refrigerating compartment and the side walls on the two transverse sides is 2-3 mm.
Optionally, the refrigerator is an air-cooled refrigerator;
the refrigerating chamber comprises an air duct cover plate, the air duct cover plate and the rear wall of the liner of the refrigerating chamber are clamped to form a refrigerating air duct, and a refrigerating air inlet is formed in the air duct cover plate to provide refrigerating capacity for the refrigerating chamber; and is
The refrigerating chamber is limited with a plurality of accommodating spaces, and the refrigerating air inlet is positioned in the accommodating space at the lowest part of the refrigerating chamber;
the thawing device is arranged in the accommodating space at the lowest part, so that the refrigerating air duct provides cold for the thawing device.
Optionally, the projection of the device air inlet in the thickness direction of the air duct cover plate is located in the refrigerating air inlet, so that the refrigerating air duct provides cold for the thawing device.
Optionally, the refrigerator further comprises a refrigerating door body, a temperature-changing door body and a freezing door body, wherein the refrigerating door body, the temperature-changing door body and the freezing door body are used for respectively opening and closing the refrigerating chamber, the temperature-changing chamber and the freezing chamber; wherein
The refrigeration door body is provided with a thawing switch for controlling the thawing program to start or stop; and the radio frequency generation module is configured to:
when the unfreezing switch is turned on, the work is started;
and when the defrosting switch is closed, the defrosting switch stops working.
Optionally, the refrigerator further comprises:
and the detection module is configured to detect an incident wave signal and a reflected wave signal of an electric connecting line connecting the radio frequency generation module and the upper electrode plate, and calculate the change rate of the dielectric coefficient of the object to be processed according to the voltage and the current of the incident wave signal and the voltage and the current of the reflected wave signal so as to judge the thawing progress of the object to be processed.
Optionally, the radio frequency generation module is configured to:
when the change rate of the dielectric coefficient of the object to be treated is greater than or equal to a first rate threshold value, the working power of the object to be treated is reduced by 30-40% so as to prevent the object to be treated from being excessively thawed; and/or
And stopping working when the change rate of the dielectric coefficient of the object to be processed is reduced to be less than or equal to a second rate threshold value.
Optionally, the thawing apparatus further comprises:
and the infrared sensor is arranged on the inner wall of the unfreezing chamber to sense whether the object to be processed is placed in the unfreezing chamber.
Optionally, the refrigerator is configured to:
when the change rate of the dielectric coefficient of the object to be processed is reduced to be less than or equal to a second rate threshold value, sending out a visual and/or auditory signal to remind a user;
the emission of the visual and/or acoustic signal is stopped when the substance to be treated is controllably removed from the thawing chamber.
Compared with the unfreezing device arranged in other compartments, the unfreezing device is arranged in the refrigerating compartment of the refrigerator, so that the temperature in the unfreezing cavity is not influenced in the unfreezing process of the unfreezing device, and the unfreezing progress of the object to be treated is not influenced.
Furthermore, the invention judges the thawing progress of the object to be treated by calculating the change rate of the dielectric coefficient of the object to be treated through the detection module. Prior to the present invention, it was generally believed by those skilled in the art that when the temperature of the treatment was high (i.e., the temperature of the treatment was-7℃. or higher), the thermal effects would be significantly attenuated and the treatment would not be excessively thawed. However, this is not the case, and the rf thawing power is usually large, for example, greater than 100W, and when the temperature of the object to be treated is already high, the object to be treated is easily over-thawed. The inventor of the application creatively realizes that when the temperature of the object to be treated is higher, the working power of the radio frequency generation module is reduced by 30-40%, and the object to be treated can be effectively prevented from being excessively thawed. Furthermore, the invention judges whether the unfreezing is finished or not according to the change rate of the dielectric coefficient of the object to be treated, compared with the prior art that whether the unfreezing is finished or not is judged by sensing the temperature of the object to be treated, the judgment is more accurate, the object to be treated can be further prevented from being excessively unfrozen, and tests show that the object to be treated unfrozen by the unfreezing device has the temperature of-4 to-2 ℃ generally when the unfreezing is finished, and the generation of blood water during unfreezing when the object to be treated is meat can be avoided.
The above and other objects, advantages and features of the present invention will become more apparent to those skilled in the art from the following detailed description of specific embodiments thereof, taken in conjunction with the accompanying drawings.
Drawings
Some specific embodiments of the invention will be described in detail hereinafter, by way of illustration and not limitation, with reference to the accompanying drawings. The same reference numbers in the drawings identify the same or similar elements or components. Those skilled in the art will appreciate that the drawings are not necessarily drawn to scale. In the drawings:
fig. 1 is a schematic structural view of a refrigerator according to an embodiment of the present invention, in which all outer door bodies of the refrigerator are removed to show a compartment structure in a cabinet of the refrigerator;
FIG. 2 is a schematic cross-sectional view of the refrigerator shown in FIG. 1;
FIG. 3 is a schematic partial enlarged view of region A in FIG. 2;
FIG. 4 is a schematic cross-sectional view taken along section line B-B in FIG. 3;
FIG. 5 is a graph of the rate of change of the dielectric constant of an object to be treated according to one embodiment of the present invention;
FIG. 6 is a schematic block diagram of the compressor compartment of FIG. 2;
FIG. 7 is a schematic block diagram of the thawing apparatus of FIG. 3 with the apparatus door removed to show the internal structure of the bowl;
fig. 8 is a flowchart of a thawing method for a refrigerator according to an embodiment of the present invention.
Detailed Description
Fig. 1 is a schematic structural view of a refrigerator according to an embodiment of the present invention, in which all outer door bodies of the refrigerator are removed to show a compartment structure in a cabinet of the refrigerator; FIG. 2 is a schematic cross-sectional view of the refrigerator shown in FIG. 1; fig. 3 is a schematic partial enlarged view of the area a in fig. 2. Referring to fig. 1 to 3, the refrigerator 10 may include a cabinet 100 defining a refrigerating compartment 110, a temperature-varying compartment 120, and a freezing compartment 130, a refrigerating door 111, a temperature-varying door 121, and a freezing door 131 for opening and closing the refrigerating compartment 110, the temperature-varying compartment 120, and the freezing compartment 130, respectively, and a thawing device 200 for thawing food materials. In particular, the thawing apparatus 200 may be provided in the refrigerating compartment 110. The thawing apparatus 200 may be secured in the refrigeration compartment 110 by interference fit, snap fit, or the like. Compared with the thawing device 200 arranged in other compartments, the thawing device 200 arranged in the refrigerating compartment 110 of the refrigerator 10 of the invention has no influence on the temperature in the thawing chamber 214 and further on the thawing progress of the object to be treated in the thawing process of the thawing device 200.
In addition, as well known to those skilled in the art, the refrigerating compartment 110 is a storage compartment for preserving food materials at a temperature of 0 to +8 ℃; the freezing chamber 130 is a storage chamber with the preservation temperature of food materials being-20 to-15 ℃; the temperature-changing chamber 120 is a storage chamber capable of changing the storage temperature in a wide range (for example, the adjustment range can be above 4 ℃ and can be adjusted to above 0 ℃ or below 0 ℃), and the storage temperature can generally span the refrigeration temperature, the soft-freezing temperature (generally-4 to 0 ℃) and the freezing temperature, and is preferably-16 to +4 ℃.
Specifically, the thawing device 200 may include a cylinder 210, a device door 220, a radio frequency generation module 230, and upper and lower electrode plates 240a and 240 b. The barrel 210 may include a top plate, a bottom plate, a rear plate, and two opposing lateral side plates, and may define a thawing chamber 214 therein having a forward opening, the thawing chamber 214 being used for placing an object to be treated. The door 220 may be disposed at a forward opening of the thawing chamber 214 for opening or closing the thawing chamber 214. The device door 220 may be installed with the cartridge 210 by an appropriate method, such as a left-hand door, a right-hand door, an up-hand door, or a pull door. The RF generation module 230 may be configured to generate RF signals (generally referred to as RF signals having a frequency of 300KHz to 300 GHz). The upper electrode plate 240a and the lower electrode plate 240b may be horizontally disposed at the top wall and the bottom wall of the thawing chamber 214, respectively, and are electrically connected to the rf generating module 230, respectively, so as to generate rf waves with corresponding parameters in the thawing chamber 214 according to the rf signals generated by the rf generating module 230 and thaw the object to be processed placed in the thawing chamber 214. In the present invention, the upper electrode plate 240a is a transmitting antenna; the lower electrode plate 240b is a receiving antenna. In some embodiments, 50 ohm electrical connections may be used to electrically connect the upper electrode plate 240a and the lower electrode plate 240b to the rf generation module 230, respectively.
In some embodiments, the thawing apparatus 200 may further comprise a detection module 250. The detection module 250 may be configured to detect an incident wave signal and a reflected wave signal of an electrical connection connecting the rf generation module 230 and the upper electrode plate 240a, and calculate a load impedance of the rf generation module 230 based on a voltage and a current of the incident wave signal and a voltage and a current of the reflected wave signal. The calculation formula of the load impedance is as follows:
SWR=Z2/Z1(1)
Z1=U1/l1=R1+jX1(2)
Z2=U2/l2=R2+jX2(3)
in equations (1), (2), (3): SWR is standing wave ratio; z1Is the output impedance; z2Is the load impedance; u shape1Is the incident wave voltage; i is1Is incident wave current; r1Is an output resistor; x1Is an output reactance; u shape2Is the reflected wave voltage; i is2Is a reflected wave current; r2Is a load resistor; x2Is a load reactance (as will be understood by those skilled in the art, the output impedance is the impedance of the electrical connection connecting the RF generation module 230 and the upper electrode plate 240a, and the load impedance is the impedance of the object to be processedImpedance of).
The thawing apparatus 200 may further include a load compensation module 260. The load compensation module 260 may include a compensation unit and a motor for adjusting an impedance of the compensation unit. The compensation unit may be disposed in series with the object to be processed, i.e., when the load impedance of the rf generation module 230 is the sum of the impedance of the object to be processed and the impedance of the compensation unit. The motor may be configured to controllably increase or decrease the impedance of the compensation unit, and thus the load impedance Z of the rf generation module 2302And makes the load impedance Z of the RF generation module 2302And an output impedance Z1Difference (i.e. load impedance Z)2Subtracting the output impedance Z1The obtained value) is more than or equal to a first impedance threshold value and less than or equal to a second impedance threshold value, and the first impedance threshold value is less than the second impedance threshold value, so as to improve the thawing efficiency of the object to be treated. In some preferred embodiments, the first impedance threshold is the output impedance Z1Is-6 to-4%, and the second impedance threshold is the output impedance Z14-6% of the total. Further preferably, the first impedance threshold is the output impedance Z1Of the second impedance threshold is the output impedance Z15% of the total. In other words, the load compensation module may be configured to cause the load impedance Z of the RF generation module 230 to be2And an output impedance Z1The absolute value of the difference is always smaller than the output impedance Z in the whole thawing process15% of (e) may be, for example, the output impedance Z11%, 3% or 5%.
The detection module 250 may be configured to further determine the load impedance Z of the RF generation module 2302And calculating the dielectric coefficient of the object to be treated and the change rate of the dielectric coefficient so as to judge the thawing progress of the object to be treated. The dielectric coefficient of the object to be processed is calculated by the following formula:
X2=1/2πfC (4)
ε=4πKdC/S (5)
in equations (4), (5): f is the frequency of the radio frequency wave; c is the capacitance of the capacitor formed by the upper electrode plate 240a and the lower electrode plate 240 b; epsilon is the dielectric coefficient of the object to be treated; k is an electrostatic constant; d is the thickness of the upper electrode plate; and S is the area of the upper electrode plate.
The rate of change of the permittivity of the object to be treated can be obtained by calculating the value of change Δ ∈ of the permittivity within a unit time Δ t, which may be 0.1 second to 1 second, for example, 0.1 second, 0.5 second, or 1 second. FIG. 5 is a graph showing a rate of change of permittivity of an object to be treated according to an embodiment of the present invention (ordinate: rate of change of permittivity Deltaε/Deltat of the object to be treated; abscissa: thawing time t of the object to be treated, in min). Referring to fig. 5, in some preferred embodiments, the rf generation module 230 may be configured to reduce the operating power by 30% -40%, for example, 30%, 35% or 40%, when the change rate Δ ∈/Δ t of the dielectric coefficient of the object to be processed is greater than or equal to the first rate threshold, so as to prevent the object to be processed from being excessively thawed (as will be understood by those skilled in the art, the excessively thawed object is greater than 0 ℃). The first rate threshold may be 15-20, such as 15, 17, 18, or 20. The RF generation module 230 can be further configured to stop operating when the rate of change of the permittivity Δ ε/Δ t of the object to be treated drops to less than or equal to a second rate threshold. The second rate threshold may be 1-2, such as 1, 1.5, or 2.
It is known to those skilled in the art that the dielectric constant of the object to be processed varies with the temperature of the object to be processed, however, the dielectric constant is usually measured by a special instrument (such as a dielectric constant tester), and the special instrument occupies a large space and is high in cost, and is not suitable for a refrigerator. The dielectric coefficient of the object to be processed is obtained by detecting the incident wave signal and the reflected wave signal of the electric connecting line connecting the radio frequency generation module 230 and the upper electrode plate 240a and calculating, so that the device has the advantages of small occupied space and low cost, and is particularly suitable for a thawing device in a refrigerator. And the difference between the load impedance and the output impedance of the rf generating module 230 is within a predetermined range (greater than or equal to a first impedance threshold and less than or equal to a second impedance threshold) through the load compensating module 260, so as to improve the thawing efficiency of the object to be treated.
Further, the invention judges the thawing progress of the object to be treated by calculating the change rate of the dielectric coefficient of the object to be treated through the detection module 250. Prior to the present invention, it was generally believed by those skilled in the art that when the temperature of the treatment was high (i.e., the temperature of the treatment was-7℃. or higher), the thermal effects would be significantly attenuated and the treatment would not be excessively thawed. However, this is not the case, and the rf thawing power is usually large, for example, greater than 100W, and when the temperature of the object to be treated is already high, the object to be treated is easily over-thawed. The inventor of the present application has creatively recognized that, when the temperature of the object to be treated is high, the operating power of the rf generating module 230 is reduced by 30-40%, which can effectively prevent the object to be treated from being excessively thawed. Furthermore, the invention judges whether the unfreezing is finished or not according to the change rate of the dielectric coefficient of the object to be treated, compared with the prior art that whether the unfreezing is finished or not is judged by sensing the temperature of the object to be treated, the judgment is more accurate, the object to be treated can be further prevented from being excessively unfrozen, and tests show that the object to be treated unfrozen by the unfreezing device has the temperature of-4 to-2 ℃ generally when the unfreezing is finished, and the generation of blood water during unfreezing when the object to be treated is meat can be avoided.
In some embodiments, a thawing switch 113 for controlling the start or stop of a thawing process may be provided on any one of the compartment doors. In some preferred embodiments, the defrost switch 113 is disposed on the refrigeration door 111 to facilitate user adjustment of the defrost switch 113. The rf generation module 230 may be configured to start operating when the defrost switch 113 is turned on; when the defrosting switch 113 is turned off, the operation is stopped. During the thawing process, the user may terminate the thawing process by turning off the thaw switch 113. Any one compartment door body can be also provided with a buzzer (not shown in the figure) for reminding a user that the object to be treated is thawed. The buzzer may be configured to start operating when the detection module 250 determines that the object to be treated is thawed (when the rate of change of the dielectric coefficient of the object to be treated decreases to be equal to or less than the second rate threshold); when the object to be processed is taken out of the thawing chamber 214, the operation is stopped. An infrared sensor 219 may be disposed on an inner wall of the thawing chamber 214 to sense whether the object to be treated is placed in the thawing chamber 214.
Fig. 6 is a schematic structural view of the compressor compartment 140 of fig. 2. Referring to fig. 6, the cabinet 100 of the refrigerator 10 further defines a compressor chamber 140. The compressor chamber 140 may include a main control panel 143 for controlling the operation of the refrigerator 10, a compressor 141, a condensed water collecting structure 144, and an external power line (not shown) for supplying power for the operation of the refrigerator 10, which are sequentially disposed. In some embodiments, the refrigerator 10 may further include a power supply module 142 for supplying power to the radio frequency generation module 230. The power module 142 may be disposed within the compressor compartment 140 of the refrigerator 10 to facilitate heat dissipation and maintenance of the power module 142. The power module 142 may be fixed to an upper wall of the compressor compartment 140 to facilitate electrical connection of the rf generation module 230 with the power module 142. In some embodiments, the power supply module 142 may be a DCDC converter. The DCDC converter may be provided to be electrically connected with the main control board 143 to supply power to the thawing device 200. The DCDC converter may be disposed between the main control board 143 and the compressor 141 to facilitate electrical connection with the main control board 143. In other embodiments, power module 142 may be an ACDC converter. The ACDC converter may be configured to electrically connect to an external power source of the refrigerator 10. Those skilled in the art will appreciate that it is easy to connect the various components of the defrosting apparatus 200 to the control circuit of the refrigerator 10.
Fig. 4 is a schematic cross-sectional view taken along a sectional line B-B in fig. 3. Referring to fig. 3 and 4, the cylinder 210 may further include a vertical partition 211 and a horizontal partition 212 for defining an inner space of the cylinder 210. The vertical partition 211 may be provided to extend from a top plate of the cylinder 210 to a bottom plate of the cylinder 210 in a vertical direction. The rf generation module 230 may be disposed between the vertical partition 211 and the rear plate of the cylinder 210. The horizontal partition 212 may be provided to extend forward from the vertical partition 211 in a horizontal direction. The detection module 250 and the load compensation module 260 may be disposed between the horizontal partition 212 and the top plate of the cylinder 210. The thawing chamber 214 may be enclosed by a vertical partition 211, a horizontal partition 212, and a bottom plate and two lateral side plates of the drum 210. The upper electrode plate 240a may be disposed on a lower surface of the horizontal partition 212, and the lower electrode plate 240b may be disposed on an upper surface of the bottom plate of the cylinder 210. The barrel 210 may further include a baffle 213 extending vertically upward from the front side end of the horizontal partition 212 to the top plate of the barrel 210 to prevent the detection module 250 and the load compensation module 260 from being exposed and to reduce the aesthetic appearance of the thawing apparatus 200. In other embodiments, the horizontal partition 212 may be disposed to extend forward from the rear plate of the cylinder 210 in the horizontal direction, and the vertical partition 211 may be disposed to extend from the horizontal partition 212 to the bottom plate of the cylinder 210 in the vertical direction, according to the actual situation (the size of the rf generation module 230 and the detection module 250, and the load compensation module 260).
The vertical partition 211 may be opened with a first wire passing port 2112, so that the rf generation module 230 is electrically connected to the upper electrode plate 240a through the first wire passing port 2112. The rear plate of the barrel 210 may be formed with a second wire passing port 216 so that the electrical connection of the thawing apparatus 200 is led out from the second wire passing port 216 and connected to the power supply module 142.
In some embodiments, the rear panel of the drum 210 may be formed with a device air intake 215, and the vertical partition 211 at the rear side of the thawing chamber 214 may be formed with a thawing air intake 2111, so that air within the refrigeration compartment 110 enters the thawing chamber 214 of the thawing device 200 through the device air intake 215 and the thawing air intake 2111. The lateral plates of the thawing chamber 214 of the barrel 210 may be provided with device air outlets 218, so that the air in the thawing chamber 214 is discharged to the refrigerating compartment 110 through the device air outlets 218. The rear plate of the barrel 210 may be spaced apart from the rear wall of the compartment 110 to facilitate the air in the compartment 110 to enter the thawing apparatus 200. The lateral plates at both lateral sides of the barrel 210 may have a gap with the lateral walls at both lateral sides of the refrigerating compartment 110, so that the gas in the thawing apparatus 200 is discharged into the refrigerating compartment 110. When the refrigerator 10 is a direct-cooling refrigerator, the rear wall of the refrigerating compartment 110 is the rear wall of the inner container thereof; when the refrigerator 10 is an air-cooled refrigerator, the rear wall of the refrigerating compartment 110 is the front surface of the cover plate of the inner air duct.
In some preferred embodiments, the distance between the rear panel and the lateral side panels of the barrel 210 and the corresponding rear wall and the lateral side walls of the refrigerating compartment 110 may be 2-3 mm, such as 2mm, 2.5mm or 3mm, so as to ensure that the thawing chamber 214 has a larger effective volume while ensuring that the thawing apparatus 200 has a proper air intake and air output.
In some embodiments, the refrigerator 10 according to the present invention may be an air-cooled refrigerator, and the refrigeration compartment 110 may include a duct cover 112. The air duct cover 112 and the rear wall of the inner container of the refrigerating compartment 110 are sandwiched to form a refrigerating air duct, and the air duct cover 112 is provided with a refrigerating air inlet 1121 for providing cold energy to the refrigerating compartment 110. In some preferred embodiments, the refrigerating compartment 110 may define a plurality of accommodating spaces, that is, the number of the accommodating spaces defined in the refrigerating compartment 110 may be two, three, or more than three, and the thawing apparatus 200 may be disposed in the accommodating space adjacent to the refrigerating intake 1121. Referring to fig. 2, since the refrigerating inlet 1121 is generally disposed in the lowermost accommodating space of the refrigerating compartment 110, the thawing device 200 is preferably disposed in the lowermost accommodating space of the refrigerating compartment 110, so that the refrigerating duct provides cold energy to the thawing device 200. In some further preferred embodiments, a projection of the device inlet 215 of the thawing apparatus 200 in the thickness direction of the duct cover 112 may be located inside the refrigeration inlet 1121 to facilitate refrigerating the thawing chamber 214 of the thawing apparatus 200.
In some preferred embodiments, the device inlet 215 and the defrost inlet 2111 of the defrosting device 200 may be disposed at both lateral sides of the rf generation module 230, respectively, to facilitate heat dissipation of the rf generation module 230. In some alternative embodiments, the device inlet 215 and the thaw inlet 2111 of the thawing device 200 may be disposed on the same side of the rf generation module 230.
According to the invention, the device air inlet 215 and the device air outlet 218 are arranged on the unfreezing device 200, so that the unfreezing chamber 214 can be used for placing food materials when a unfreezing instruction is not received, and the storage space in the refrigerating compartment 110 is fully utilized.
The thawing apparatus 200 may further comprise a tray 270. A tray 270 is disposed in the thawing chamber 214, and the object to be processed is placed on the tray 270. The tray 270 may be configured to be controllably moved in the depth direction of the thawing chamber 214 to facilitate placement and removal of the item to be treated. In some preferred embodiments, the distance between the lower surface of the tray 270 and the lower electrode plate 240b may be 8-12 mm, such as 8mm, 10mm, 12mm, to prevent friction with the lower electrode plate 240b during the drawing of the tray 270.
Fig. 7 is a schematic structural view of the thawing apparatus of fig. 3, in which an apparatus door of the thawing apparatus is removed to show an internal structure of the drum. Referring to fig. 1 and 7, the cylinder 210 and the device door 220 may be provided with electromagnetic shielding features 217, respectively. The electromagnetic shielding feature 217 disposed on the barrel 210 and the electromagnetic shielding feature 217 disposed on the apparatus door 220 can be electrically connected to reduce the amount of outward magnetic leakage of the thawing apparatus 200 when the apparatus door 220 is closed. The electromagnetic shielding feature 217 may be a conductive coating applied to the inner wall of the cylinder 210 and the inner surface (surface facing the cylinder 210) of the door assembly 220, a conductive metal mesh attached to the inner wall of the cylinder 210 and the inner surface of the door assembly 220, or a conductive metal mesh formed among the respective plate bodies surrounding the cylinder 210 and in the door assembly 220, or the like.
In some preferred embodiments, the thawing apparatus 200 may further comprise an elastic conductive loop 280. The elastic conductive ring 280 may be disposed at a periphery of the front opening of the thawing chamber 214, so that the elastic conductive ring 280 may be extruded and deformed when the door body 220 is closed, and is tightly attached to the door body 220, i.e., a seal is formed between the elastic conductive ring 280 and the door body 220. The electromagnetic shielding feature 217 disposed on the barrel 210 and the electromagnetic shielding feature 217 disposed on the device door 220 may be respectively disposed in conductive contact with the elastic conductive ring 280, so as to reduce the outward magnetic leakage of the thawing device 200 when the device door 220 is closed. In some preferred embodiments, the elastic conductive loop 280 may be made of silicone, silicone fluoride, EPDM, fluorocarbon-silicon fluoride, and silver-plated aluminum. The elastic conductive ring 280 may have a hollow ring structure, so that it can be tightly attached to the door 220 when the door 220 is closed. The width of the elastic conductive ring 280 may be 20-30 mm, such as 20mm, 25mm or 30mm, to improve the sealing performance of the thawing apparatus 200. In some preferred embodiments, the device intake 215, the thawing intake 2111 and the device outtake 218 of the thawing apparatus 200 may each be provided with a conductive metal mesh 290, and the conductive metal mesh 290 may be provided in conductive connection with the electromagnetic shielding feature 217 provided to the barrel 210 to reduce the amount of magnetic leakage of the thawing apparatus 200.
Particularly, in the present invention, the frequency of the rf signal (i.e. the electromagnetic wave for thawing the object to be treated) generated by the rf generating module 230 may be 40-42 MHz, such as 40MHz, 40.48MHz, 40.68MHz, 41MHz or 42MHz, so as to reduce the thawing time of the object to be treated, improve the temperature uniformity of the object to be treated and reduce the juice loss rate thereof. In a preferred embodiment, the frequency of the RF wave can be a predetermined fixed frequency within a range of 40.48-40.68 MHz, so as to further reduce the thawing time of the object to be treated, improve the temperature uniformity of the object to be treated and reduce the juice loss rate thereof. Among them, when the frequency of the radio frequency wave is 40.68MHz, the thawing effect is best.
For a further understanding of the present invention, preferred embodiments of the present invention are described below with reference to more specific examples, but the present invention is not limited to these examples.
TABLE 1
Example 1 Example 2 Example 3 Example 4 Example 5 Comparative example 1 Comparative example 2
Frequency (MHz) 40 40.48 40.68 41 42 13.56 27.12
In the thawing apparatuses 200 respectively provided with the rf frequencies of the above-described embodiments 1 to 5 and comparative examples 1 to 2, the power of the rf wave was 100W, and the structures of the thawing apparatuses 200 and their operation flows were the same.
The thawing apparatus 200 provided with the frequencies of the respective embodiments and the respective comparative examples was subjected to a thawing effect test. Description of the test: selecting 1kg of beef with the same shape and specification and an initial temperature of-18 ℃, respectively placing the beef on trays 270 in the thawing devices 200 of each embodiment and each proportion, and respectively measuring the thawing time, temperature uniformity and juice loss rate of each embodiment and each proportion, wherein the thawing time is the time from the beginning of thawing to the time when the thawing device 200 judges that the thawing is finished (namely the radio frequency generation module stops working); temperature uniformity: after thawing, respectively measuring the temperatures of four corners and a central point of the beef, and calculating the difference value between the temperature of the central point and the average value of the four corners, wherein the temperature uniformity is the ratio of the difference value to the average value; juice loss rate: and respectively measuring the weight of the beef before thawing and the weight of the beef after thawing, and calculating the difference between the two weights, wherein the juice loss rate is the ratio of the difference to the weight of the beef before thawing.
The results of the thawing effect test according to examples 1 to 7 and according to comparative examples 1 to 2 are shown in table 2.
TABLE 2
Thawing time (min) Temperature uniformity Juice loss (%)
Example 1 19 0.4 0.35
Example 2 18 0.4 0.32
Example 3 18 0.3 0.29
Example 4 19 0.5 0.35
Example 5 20 0.5 0.40
Comparative example 1 25 0.6 0.35
Comparative example 2 23 0.6 0.40
According to the test results of example 5 and comparative example 1 in table 2, it can be seen that under the same power of the rf wave and the same structure of the thawing apparatus 200 and the same work flow, the thawing apparatus 200 using the rf frequency within the scope of the embodiment of the present invention has better thawing effect than the thawing apparatus 200 using the rf frequency in the prior art under the same test conditions, the former has a 20% shorter thawing time and the temperature uniformity has an improved 17% compared to the latter.
According to the test results of the examples 1 to 5 in table 2, it can be seen that the thawing time of the thawing apparatus 200 according to the embodiments of the present invention is 20min or less, the temperature uniformity is 0.5 or less, and the juice loss rate is 0.40% or less. By further optimizing the frequency of the radio frequency (for example, the radio frequency is 40.48-40.68 MHz), the thawing time of the thawing device 200 can be reduced to below 18min, the temperature uniformity can be improved to below 0.4, and the juice loss rate can be reduced to below 0.32%.
Fig. 8 is a flowchart of a thawing method for the refrigerator 10 according to an embodiment of the present invention. Referring to fig. 8, the thawing method of the refrigerator 10 of the present invention may include the steps of:
step S802: judging whether the unfreezing switch 113 is turned on, if so, executing step S804; if not, go to step S802.
Step S804: the power supply module 142 starts operating.
Step S806: judging whether the device door body 220 is closed, if so, executing step S808; if not, go to step S806. In this step, the open/close state of the door 220 may be detected by the door opening detection device. The door opening detection device can detect by utilizing various modes such as a sector switch, a magnetic sensitive switch, a hall switch and the like, and different electric signals are respectively generated when the device door body 220 is completely closed or opened so as to indicate the state of the device door body 220.
Step S808: the rf generation module 230 generates a rf signal of 40-42 MHz, and the detection module 250 detects an incident wave signal and a reflected wave signal of an electrical connection line connecting the rf generation module 230 and the upper electrode plate 240 a. In this step, the frequency of the radio frequency signal generated by the radio frequency generation module 230 is 40.68 MHz. Step S810 and step S811 are performed.
Step S810: and acquiring the voltage and the current of the incident wave signal and the voltage and the current of the reflected wave signal, and calculating the change rate delta epsilon/delta t of the dielectric coefficient of the object to be processed.
Step S812: judging whether the change rate delta epsilon/delta t of the dielectric coefficient of the object to be processed is larger than or equal to a first rate threshold value, if so, executing a step S814; if not, go to step S810.
Step S814: the current working power of the rf generating module 230 is reduced by 30-40%. In this step, the operating power of the rf generation module 230 is reduced by 35%.
Step S816: and acquiring the voltage and the current of the incident wave signal and the voltage and the current of the reflected wave signal, and calculating the change rate delta epsilon/delta t of the dielectric coefficient of the object to be processed.
Step S818: judging whether the change rate delta epsilon/delta t of the dielectric coefficient of the object to be processed is less than or equal to a second rate threshold value, if so, executing a step S820; if not, go to step S816.
Step S820: the power supply module 142 stops operating, the defrost switch 113 resets (i.e., closes), and the buzzer begins operating. In the step, a buzzer is adopted to send out an auditory signal to remind a user of completion of unfreezing.
Step S822: judging whether the object to be processed is taken out from the unfreezing chamber or not, if so, executing step S824; if not; step S822 is performed.
Step S824: the buzzer stops working.
Step S811: obtaining the voltage and current of the incident wave signal and the voltage and current of the reflected wave signal, and calculating the load impedance Z of the RF generation module 2302
Step S813: determining the load impedance Z of the RF generating module 2302And an output impedance Z1If the difference is smaller than the first impedance threshold, execute step S815; if not, go to step S817.
Step S815: the motor of the load compensation module 260 operates to increase the impedance of the compensation unit. The process returns to step S811.
Step S817: determining the load impedance Z of the RF generating module 2302And an output impedance Z1If the difference is greater than the second impedance threshold, execute step S819; if not, go to step S811.
Step S819: the motor of the load compensation module 260 operates to reduce the impedance of the compensation unit. The process returns to step S811. (As will be understood by those skilled in the art, when the process proceeds to step S820, the power supply module 142 stops operating, i.e., stops supplying power, the RF generation module 230, the detection module 250 and the load compensation module 260 all stop operating, i.e., when the change rate Δ ε/Δ t of the permittivity of the object to be processed decreases to be equal to or less than the second rate threshold, the detection module 250 stops detecting the incident wave signal and the reflected wave signal of the electrical connection line connecting the RF generation module 230 and the upper electrode plate 240a, and the load compensation module 260 stops operating.)
One defrosting workflow of the refrigerator 10 of one embodiment of the present invention may include: when the user opens the defrosting switch 113 and the door 220 of the device is closed, the power supply module 142 starts to supply power, the rf generation module 230 generates a 40.68MHz rf signal, and the detection module 250 and the load compensation module 260 start to operate. The detecting module 250 detects an incident wave signal and a reflected wave signal of an electrical connection line connecting the rf generating module 230 and the upper electrode plate, and calculates a load impedance Z of the rf transmitting device 2302And the rate of change of the dielectric constant Δ ε/Δ t. When the change rate delta epsilon/delta t of the dielectric coefficient of the object to be processed is larger than or equal to the first rate threshold, the current working power of the radio frequency generation module 230 is reduced by 35 percent, and simultaneously, in the whole defrosting work flow, when the load impedance Z of the radio frequency generation module 230 is in a Z shape2And an output impedance Z1When the difference is smaller than the first impedance threshold or larger than the second impedance threshold, the load compensation module 260 adjusts the impedance of the compensation unit through the motor, so as to adjust the load impedance Z of the rf generation module 2302Make the load impedance Z of the RF generation module 2302And an output impedance Z1The difference is always equal to or greater than the first impedance threshold and equal to or less than the second impedance threshold. When the dielectric coefficient of the object to be treated changesWhen the speed delta epsilon/delta t is less than or equal to the second speed threshold value, the power supply module 142 stops supplying power, the unfreezing switch 113 is closed, the radio frequency generation module 230, the detection module 250 and the load compensation module 260 stop working, the buzzer starts working, and when the object to be processed is taken out of the unfreezing chamber 214, the buzzer stops working.
Thus, it should be appreciated by those skilled in the art that while a number of exemplary embodiments of the invention have been illustrated and described in detail herein, many other variations or modifications consistent with the principles of the invention may be directly determined or derived from the disclosure of the present invention without departing from the spirit and scope of the invention. Accordingly, the scope of the invention should be understood and interpreted to cover all such other variations or modifications.

Claims (10)

1. A refrigerator including a case defining a refrigerating compartment, a temperature-varying compartment, and a freezing compartment which are sequentially distributed in a vertical direction of the refrigerator, and a thawing apparatus, the thawing apparatus comprising:
a barrel defining a thawing chamber therein having a forward opening for placing an object to be treated;
the device door body is arranged at the front opening of the unfreezing chamber and used for opening and closing the unfreezing chamber;
a radio frequency generation module configured to generate a radio frequency signal; and
the upper electrode plate and the lower electrode plate are respectively horizontally arranged on the top wall and the bottom wall of the unfreezing chamber and are respectively electrically connected with the radio frequency generating module so as to generate radio frequency waves with corresponding frequencies in the unfreezing chamber according to the radio frequency signals and unfreeze the object to be processed in the unfreezing chamber; wherein
The unfreezing device is arranged in the refrigerating chamber and is configured to judge the unfreezing progress of the object to be treated according to the change rate of the dielectric coefficient of the object to be treated; and the thawing apparatus further comprises:
the load compensation module is configured to controllably increase or decrease the load impedance of the radio frequency generation module and enable the difference between the load impedance and the output impedance of the radio frequency generation module to be greater than or equal to a first impedance threshold value and smaller than or equal to a second impedance threshold value.
2. The refrigerator of claim 1, wherein
The rear plate of the barrel is provided with a device air inlet, and a gap is reserved between the rear plate of the barrel and the rear wall of the refrigerating chamber, so that air in the refrigerating chamber enters the unfreezing chamber through the device air inlet; and is
The side plates on the two transverse sides of the barrel are provided with device air outlets, and gaps are reserved between the side plates on the two transverse sides of the barrel and the side walls on the two transverse sides of the cold storage chamber, so that gas in the unfreezing chamber is discharged to the cold storage chamber through the device air outlets.
3. The refrigerator of claim 2, wherein
The distance between the rear wall of the barrel body and the side plates on the two transverse sides and the rear wall of the corresponding cold storage chamber and the side walls on the two transverse sides is 2-3 mm.
4. The refrigerator of claim 2, wherein
The refrigerator is an air-cooled refrigerator;
the refrigerating chamber comprises an air duct cover plate, the air duct cover plate and the rear wall of the liner of the refrigerating chamber are clamped to form a refrigerating air duct, and a refrigerating air inlet is formed in the air duct cover plate to provide refrigerating capacity for the refrigerating chamber; and is
The refrigerating chamber is limited with a plurality of accommodating spaces, and the refrigerating air inlet is positioned in the accommodating space at the lowest part of the refrigerating chamber;
the thawing device is arranged in the accommodating space at the lowest part, so that the refrigerating air duct provides cold for the thawing device.
5. The refrigerator of claim 4, wherein
The device air inlet is in the projection of wind channel cover plate thickness direction is in the cold-stored air inlet, so that the cold-stored wind channel provides cold energy for thawing apparatus.
6. The refrigerator according to claim 1, further comprising a refrigerating door body, a temperature-changing door body and a freezing door body for opening and closing the refrigerating chamber, the temperature-changing chamber and the freezing chamber respectively; wherein
The refrigeration door body is provided with a thawing switch for controlling the thawing program to start or stop; and the radio frequency generation module is configured to:
when the unfreezing switch is turned on, the work is started;
and when the defrosting switch is closed, the defrosting switch stops working.
7. The refrigerator of claim 1, further comprising:
and the detection module is configured to detect an incident wave signal and a reflected wave signal of an electrical connection line connecting the radio frequency generation module and the upper electrode plate, and calculate the change rate according to the voltage and the current of the incident wave signal and the voltage and the current of the reflected wave signal.
8. The refrigerator of claim 7, wherein the radio frequency generation module is configured to:
when the change rate is greater than or equal to a first rate threshold value, the working power of the device is reduced by 30-40% so as to prevent the object to be treated from being excessively thawed; and/or
And when the change rate is reduced to be less than or equal to a second rate threshold value, stopping the work.
9. The refrigerator of claim 8, wherein the thawing device further comprises:
and the infrared sensor is arranged on the inner wall of the unfreezing chamber to sense whether the object to be processed is placed in the unfreezing chamber.
10. The refrigerator of claim 9, wherein the refrigerator is configured to:
when the change rate is reduced to be less than or equal to a second rate threshold value, sending out a visual and/or auditory signal to remind a user;
the emission of the visual and/or acoustic signal is stopped when the substance to be treated is controllably removed from the thawing chamber.
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CN209893774U (en) * 2019-01-04 2020-01-03 青岛海尔股份有限公司 Refrigerating and freezing device
CN113932551A (en) * 2020-07-13 2022-01-14 青岛海尔电冰箱有限公司 Refrigerator temperature control method and refrigerator
CN214371184U (en) * 2020-12-02 2021-10-08 海信(山东)冰箱有限公司 Radio frequency thawing refrigerator

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Address after: 266101 Haier Industrial Park, Haier Road, Laoshan District, Shandong, Qingdao, China

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