Technical Field
[0001] The invention relates to a refrigerator, especially to a household or commercial
refrigerator which is provided with a dispenser.
Background Art
[0002] The freezing compartment of a refrigerator can usually reach a temperature of lower
than minus ten °C or more. The refrigerator body and the door of the refrigerator
are provided with heat insulating layers to avoid losing of cold energy caused by
heat exchange between the cold air within the refrigerator and the surrounding environment.
However, as the increase in the refrigerator's volume and in the number of the components
of the refrigerator door (for example, a dispenser for dispensing water or ice), some
portions of the refrigerator door which are exposed to the atmosphere may have relatively
low temperature under the influence of the storage compartment. When the difference
between the temperature of the surface exposed to the atmosphere and the atmosphere
temperature reaches dew point temperature, condensation will appear on the surface.
[0003] It is known in prior art that the particular surface temperature of the refrigerator
can be increased by providing a heating element so at to prevent the generating of
condensed water.
US patent No. 6,862,891 B1 discloses a refrigerator which has a heating element located near an ice dispensing
means and a control unit connected with the heating element. The control unit is configured
such that the voltage supplied to the heating element is variable, so that the heating
element may operate at different non-zero voltages for reducing energy consumption.
This patent, when describing related background art, also mentions that the manufacturer
may mount two dew preventing heaters, one of the heaters serving as a backup heater
to be used when the other heater is defective. A refrigerator according to the preamble
of claim 1 is known from
US 5 442 933.
[0004] Whether a refrigerator will dew or generate condensate depends not only on environmental
conditions (for example, temperature and humidity) and the temperature of a particular
surface of the refrigerator, but also on the operation and using conditions of the
refrigerator. Where only an automatically controlled dew preventing heater is provided,
some times it cannot precisely prevent the dewing phenomenon and / or the dew preventing
heater generates excessive heat. For a refrigerator used in a country or district
where weather variation is great, these defects are even more significant. Further,
if all the related factors (for example, ambient temperature, ambient relative humidity,
refrigerator surface temperature, working condition of the refrigerator's cooling
system, and the like) are taken into consideration, the configuration of the refrigerator
will become significantly complicated and some components of the refrigerator, such
as the microprocessor and the memory unit of the control unit, may have to be upgraded.
Summary of the Invention
[0005] In view of these factors, an object of the invention is to solve at least one of
the technical problems found in the prior art, so that the dewing phenomenon can be
prevented or the condensate that has been generated can be removed at a relatively
low cost.
[0006] The invention in one aspect relates to a refrigerator, comprising: a refrigerator
body defining at least one storage space; a door connected to the refrigerator body
for closing at least a part of the storage space; a dispenser provided in the door,
the dispenser comprising a dispenser casing; a first heater for supplying heat to
the dispenser casing; and a control unit, the control unit being configured to automatically
control the operation of the first heater, wherein the operation of the first heater
comprises at least turning on and turning off the first heater, characterized in that
the refrigerator further comprises a second heater arranged near the first heater,
and in a manually initiated auxiliary heating mode the second heater is turned on
for supplying extra heat to the dispenser casing.
[0007] By the combination of the above intelligent and manual means, the control unit of
the invention may have a relatively simple configuration, so that dewing prevention
/ condensate removing functions can be achieved in different weather conditions and
/ or different using conditions at relatively low cost. Further, in the condition
that dewing cannot occur, the second heater can be directly closed by the user or
be kept in a closed state. Thus, unnecessary energy consumption can be reduced, and
dew preventing / condensate removing efficiencies can be increased.
[0008] Other features which are disclosed individually or in combination as features of
the invention are defined in attached claims.
[0009] According to a particular preferred embodiment of the invention, the refrigerator
comprises switching means connected with the second heater, wherein the second heater
is turned on by an operation of manually controlling the switching means, so as to
initiate the auxiliary heating mode.
[0010] According to a particular preferred embodiment of the invention, the second heater
is turned off by an operation of manually controlling the switching means. In an alternative
embodiment, the refrigerator further comprises timing means, the timing means being
configured to generate a signal for turning off the second heater, after the second
heater has been turned on for a predetermined time.
[0011] Particularly preferably, the power of the second heater is lower than the power of
the first heater.
[0012] According to a particular preferred embodiment of the invention, the refrigerator
further comprises a sensing unit, the sensing unit being configured to sense at least
one environmental parameter and feed the parameter to the control unit, and the control
unit being configured to control the first heater based on the sensed environmental
parameter... Particularly preferably, the environmental parameter comprises ambient
temperature and / or ambient relative humidity.
[0013] According to a preferred embodiment of the invention, the first heater and / or the
second heater is disposed on the inner side of the dispenser casing, the inner side
of the dispenser casing being adjacent to the heat insulating layer of the door.
[0014] Since the door generally has an irregular shape at a location corresponding to a
dispenser casing, the dewing possibilities in different areas may be different with
each other. For this end, according to a preferred embodiment of the invention, the
dispenser casing comprises a first area and a second area near the first area, the
first heater being provided in the first area, and the second heater being provided
in the second area. Thus, it is possible that the dewing prevention / condensate removing
operations of the dispenser casing in different areas are controlled differently to
increase dewing prevention / condensate removing efficiencies.
[0015] According to a preferred embodiment of the invention, the dispenser comprises an
ice transfer passage extending through the door, the dispenser casing comprises a
through hole forming a part of the ice transfer passage, and at least a part of the
first heater is arranged along the through hole. Although the temperature in the area
around the ice transfer passage is relatively low, by means of the above provision,
the possibility of generating condensed water in that area can be significantly reduced.
In addition, in the condition that the ice transfer passage is blocked by a closure
element which closes a through hole, the condition that the closure element is frozen
and thus cannot be opened can be advantageously avoided by means of the first heater
provided adjacent to the ice transfer passage.
[0016] According to a preferred embodiment of the invention, a heat conducting element is
provided on the inner side of the dispenser casing, the heat conducting element being
configured to transmit heat from the first heater and / or the second heater to the
dispenser casing. Thus, the heat generated by the heater can be evenly transmitted
to the dispenser casing, by means of which, an amount of the heat generated by the
heater and transmitted toward the storage space will be reduced to some extend.
[0017] According to a particular preferred embodiment of the invention, the dispenser casing
defines a dispensing cavity for receiving at least a part of an outside container,
and the heat conducting element covers at least a major portion of a longitudinal
wall of the dispensing cavity. Thus, it is possible to effectively prevent dewing
on the longitudinal wall in the condition that the longitudinal wall of the dispensing
cavity is not equipped with any heater or the heater is arranged only on a part of
the longitudinal wall (such as on an edge area which is not likely to be touched by
the user).
[0018] Particularly preferably, the heat conducting element comprises a metal foil having
a high heat conductivity, the metal foil establishing face-to-face contacting with
the dispenser casing.
[0019] According to a preferred embodiment of the invention, the first heater comprises
two heating segments which are spaced from each other by a predetermined distance,
and at least a part of the second heater is arranged between the two heating segments.
Thus, when the second heater is not activated, the area in which the second heater
is disposed can be effectively covered by the heat generated by the first heater covers.
[0020] According to a preferred embodiment of the invention, the refrigerator further comprises
a third heater for supplying heat to a longitudinal side wall of the door, so that
it can prevent the longitudinal side wall of the door from dewing or remove any condensate
that has been generated.
[0021] The structure and other objects and advantages of the invention will be apparent
from the description to the preferred embodiments with reference to the drawings.
Brief Description of the Drawings
[0022] The invention will be further understood by reading the following detailed description
with reference to the drawings which are incorporated herein as a part of the description
and illustrate the invention and in which:
Figure 1 is a schematic perspective view of a refrigerator according to a preferred
embodiment of the invention.
Figure 2 is a schematic partial sectional view taken along a direction indicated by
line I-I of Figure 1.
Figure 3 is a schematic view of a partly assembled door of the according to the preferred
embodiment of the invention.
Figure 4 is a schematic layout of a heating unit of a dispenser casing according to
a preferred embodiment of the invention.
Figure 5 is a schematic block diagram of the refrigerator according to a preferred
embodiment of the invention.
Detailed Description of Preferred Embodiments
[0023] Please refer to the drawings, in particular Figures 1 and 2. A refrigerator 1 comprises
a refrigerator body 2 and two doors 3 connected to the refrigerator body 2, as shown
in Figures 1 and 2.
[0024] The refrigerator body 2 comprises an outer shell 11, an inner shell 12 and a heat
insulating layer 6 disposed between the outer shell 11 and the inner shell 12. In
this embodiment, the heat insulating layer 6 is a foam-based insulating layer and
is formed by foaming a heat insulating foam material. The refrigerator body 2 defines
at least one storage space for storing food. In this embodiment, the storage space
comprises a freezing compartment 7 and a refrigerating compartment (not shown) which
are juxtaposed with each other.
[0025] The doors 3 are pivotably connected to the refrigerator body 2 by hinges 4 respectively,
and are rotatable about their corresponding rotation axes which are parallel to a
vertical axis. As shown in Figure 2, it is also provided with a foam-based insulating
layer 6 inside each of the doors 3. The doors 3 are usually closed to avoid escape
of cold air from the freezing compartment 7 and the refrigerating compartment. When
desired, the user may open the corresponding door 3 to perform an operation, such
as taking out food from the freezing compartment or refrigerating compartment, or
putting food into a corresponding storage compartment. The user can open or close
the doors 3 by means of handles 5.
[0026] In this embodiment, each door 3 is configured to completely open or completely close
a corresponding storage compartment. It can be understood that the invention is not
limited thereto, and other embodiments are also possible. For example, in an alternative
embodiment, one of the storage compartments may be opened or closed by two doors 3.
That is to say, each door 3 may only open or close a part of such a storage compartment.
[0027] The door 3 which is corresponded to the freezing compartment 7 (hereinafter referred
to as freezing compartment door) is equipped with a dispenser 8 to allow a user to
take out ice and/or beverage (for example water), such as ice stored in the freezing
compartment and water stored in a water tank arranged in the refrigerating compartment,
without opening the door 3. Although in this embodiment the dispenser 8 is arranged
in the door 3 which is corresponded to the freezing compartment, it shall be appreciated
that it is also possible to arrange the dispenser 8 in a suitable way in the door
3 which is corresponded to the refrigerating compartment.
[0028] As shown in Figures 2 and 3, the freezing compartment door 3 comprises a door panel
13 forming its front surface and an inner lining 23 facing towards the freezing compartment
7 when the freezing compartment door 3 is in its closed position. In this embodiment,
the door panel 13 is made of a sheet metal material, and both sides of the door panel
13 are bent backwardly and extend to form into first and second longitudinal sidewalls
48 and 49 respectively. The heat insulating layer 6 is in tight contact with the door
panel 13 and the first and second longitudinal sidewalls 48 and 49.
[0029] The door panel 13 has an opening 9 corresponding to the dispenser 8, which opening
9 having a substantially square or rectangular shape. The dispenser 8 comprises a
dispenser casing 10 received between the door panel 13 and the inner lining 23. The
dispenser casing 10 forms a cavity 14 which is inwardly recessed and has a front open
end. The shape and dimension of the front open end of the inner cavity 14 correspond
to that of the opening 9 substantially. The inner lining 23 protrudes toward the freezing
compartment 7 at the location corresponded to the dispenser casing 10, with a predetermined
distance between the protruding portion of the inner lining 23 and the dispenser casing
10 for disposing the heat insulating layer 6.
[0030] The dispenser 8 comprises a partition plate 15 within the inner cavity 14. The partition
plate 15 is parallel to a horizontal plane and separates the inner cavity 14 into
upper and lower portions. The portion of the inner cavity 14 located below the partition
plate 15 forms into a dispensing cavity 16 whose front end is kept open. The dispensing
cavity 16 is configured to accept at least a part of an external container such as
a cup. In this embodiment, the dispensing cavity 16 is recessed backwardly from the
front surface of the door 3 with a certain curvature to a predetermined depth.
[0031] The dispensing cavity 16 has a substantially flat support wall 17 for stably putting
the external container thereon. The support wall 17 has a plurality of thin through
holes (not shown), through which any liquid that is splashed out or overflows accidentally
during an ice or water dispensing process flows into a water gathering slot 19 arranged
below the support wall 17.
[0032] The refrigerator 1 comprises a control panel 20 arranged on the freezing compartment
door 3, and the control panel 20 comprises a display screen 21 and a plurality of
buttons or a touch area 22 for controlling the refrigerator 1. The display screen
21 can display the state of the refrigerator 1 and/or selectable parameters, etc.
[0033] In this embodiment, the control panel 20 is arranged along the upper end of the opening
9, closely adjacent to the dispensing cavity 16. The portion of the opening 9 located
above the partition plate 15 is adapted to be conformed to the out profile of the
control panel 20, such that the control panel 20 can be engaged by the corresponding
edge of the opening 9. The portion of the inner cavity 14 located above the partition
plate 15 is shielded by the control panel 20.
[0034] The dispenser casing 10 comprises a cavity wall delimiting the inner cavity 14. The
cavity wall comprises a first portion 24 located below the partition plate 15. The
first portion 24 comprises a longitudinal wall 30 for forming a longitudinal boundary
of the dispensing cavity 16. The longitudinal wall 30 is perpendicular to the horizontal
plane and has a substantially arc-shaped cross-section. The longitudinal wall 30 has
a rear surface which is closely adjacent to the heat insulating layer 6 and an outer
surface which is exposed to the atmosphere.
[0035] The first portion 24 further comprises a bottom wall 31 which is connected to the
lower end of the longitudinal wall 30 and extends forwardly. The bottom wall 31 is
located below the support wall 17 and spaced from the support wall 17 by a certain
distance so as to form the above-mentioned water gathering slot 19.
[0036] The cavity wall of the dispenser casing 10 further comprises a second portion 25
which is connected to the upper end of the first portion 24 and is located above the
partition plate 15. The second portion 25 comprises an inclined wall 26 which extends
from the longitudinal wall 30 and is inclined forwardly. The inclined wall 26 comprises
a through hole 27 which allows ice to pass therethrough. The through hole 27 is configured
as a part of an ice transfer passage 29. The ice transfer passage 29 is used for transferring
ice from an ice storage unit 28 located within the freezing compartment 7 to the dispensing
cavity 16. The second portion 25 further comprises a top wall 32 which forms the upper
boundary of the inner cavity 14. The second portion 25 has a hole 33 through which
a water supply pipe (not shown) passes, which water supply pipe transmitting drinkable
water to the dispensing cavity 16.
[0037] An ice discharge pipe 34 forming a major part of the ice transfer passage 29 is embedded
in the freezing compartment door 3. One end of the ice discharge pipe 34 is connected
to the second portion 25 and is in communication with the through hole 27. The other
end of the ice discharge pipe is oriented towards a discharge outlet of the ice storage
unit 28 within the freezing compartment 7 when the freezing compartment door 3 is
closed. Thereby, the ice discharged from the ice storage unit 28 enters into the ice
discharge pipe 34, and then is guided to the dispensing cavity 16 by means of an ice
outlet 18 provided in the partition plate 15.
[0038] As shown in Figure 2, the portion of the inner cavity 14 which lies above the partition
plate 15 is shielded by the control panel 20; however, the second portion 25 of the
dispenser casing 10 still communicates with the atmosphere, that is, the second portion
25 is still exposed to the atmosphere, because the partition plate 15 is provided
with the ice outlet 18 which is in communication with the portion of the inner cavity
14 which lies above the partition plate 15.
[0039] To prevent air within the freezing compartment 7 from escaping from the freezing
compartment 7 through the ice transfer passage 29 or prevent outside air from entering
into the freezing compartment 7 through the ice transfer passage 29, the dispenser
8 is equipped with a closure element 36 for opening or closing the ice transfer passage
29. Usually, the ice transfer passage 29 is closed by the closure element 36. When
there is a need for dispensing ice, the ice transfer passage 29 is opened by means
of the closure element 36 to allow the transfer of ice. The shape and dimension of
the closure element 36 are substantially corresponded to that of the through hole
27, such that in the closed position the closure element closes the through hole 27
and thus closes the ice transfer passage 29. In this embodiment, the closure element
36 is connected to the second portion 25 of the dispenser casing 10 and is received
in the inner cavity 14.
[0040] Under the influence of the freezing compartment 7, the temperature of the dispenser
casing 10 is usually lower than room temperature/ambient temperature. When the difference
between ambient temperature and the temperature of the dispenser casing 10 reaches
dew point temperature, condensate drops will be generated on the dispenser casing
10. The condensation possibility is relatively high due to the fact that the second
portion 25 of the dispenser casing 10 is close to the ice discharge pipe 34 and forms
a part of the ice transfer passage 29. For this end, the refrigerator I is provided
with a heating unit 37 for increasing the surface temperature of the dispenser casing
10. As shown in Figure 2, the heating unit 37 is arranged between the dispenser casing
10 and the heat insulating layer 6.
[0041] Figure 4 is a schematic diagram of the heating unit 37 according to a preferred embodiment
of the invention. As shown in Figure 4, the heating unit 37 comprises a first heater
38 and a second heater 39 adjacent to the first heater 38, for supplying heat to the
dispenser casing 10. The first heater 38 and the second heater 39 are preferably resistance
heaters, i.e. performing heating by resistors.
[0042] In order to evenly transmit the heat generated by the first heater 38 and the second
heater 39 to the dispenser casing 10, the heating unit 37 further comprises a first
heat conducting element 40 for transmitting the heat generated by the first heater
38 and the second heater 39 to the dispenser casing 10. In this embodiment, the first
heat conducting element 40 is an aluminum foil having a high heat conductivity.
[0043] The first heat conducting element 40 has a hole (not shown) which is corresponded
to the through hole 27. The first heater 38 and the second heater 39 can be arranged
according to the distribution characteristics of condensate drops on the dispenser
casing 10. In this embodiment, the first heater 38 comprises a plurality of arc-shaped
heating segments 35 arranged around the hole. The second heater 39 is arranged close
to the first heater 38 and preferably comprises a portion located between heating
segments 35 of the first heater 38. Preferably, this portion has a shape that corresponds
to the heating segment 35.
[0044] After the first heater 38 and the second heater 39 are arranged in a predetermined
pattern on one side of the first heat conducting element 40, the other side of the
first heat conducting element 40 is closely attached to the inner side of the dispenser
casing 10.
[0045] The heating unit 37 is adhered to the inner side of the dispenser casing 10 by means
of adhesive means (not shown), with the hole of the first heat conducting element
40 being aligned with the through hole 27. The first heat conducting element 40, the
first heater 38 and the second heater 39 all are flexible and deformable, such that
the portion of the heating unit 37 located between line A and line B is arranged on
the inclined wall 26, the portion thereof located above line A is bent and then is
adhered to the top wall 32 of the dispenser casing, and the portion thereof located
below line B is bent and then is connected to the upper end of the longitudinal wall
30. Thereby, in this embodiment, the first heater 38 is mainly arranged on the inclined
wall 26 and the top wall 32 of the dispenser casing 10. The lower end portion of the
first heater 38 extends to the upper end of the longitudinal wall 30. The heating
segment 35 most close to the through hole 27 is arranged around the through hole 27.
The major portion of the second heater 39 is arranged on the inclined wall 26. The
portion located below line B of the second heater extends to the upper end of the
longitudinal wall 30 together with that of the first heater 38.
[0046] In this embodiment, the first heater 38 and the second heater 39 are disposed on
a first region 51 and a second region 52 of the dispenser casing 10 respectively.
The first region 51 is adjacent to the second region 52, but they do not overlap each
other. The first region 51 comprises the majorities of the inclined wall 26 and the
top wall 32 as well as the upper end portion of the longitudinal wall 30 which is
close to the inclined wall 26. The second region 52 has an area smaller than the first
region 51 and is surrounded by the first region 51.
[0047] Preferably, the power of the second heater 39 is lower than that of the first heater
38. Preferably, the power density of the second heater 39 is configured in such a
way that the dispenser casing 10 is not subjected to overheating even if the second
heater 39 is turned on for a long time or always turned on.
[0048] According to a preferred embodiment of the invention, the side of the longitudinal
wall 30 which faces the heat insulating layer 6 is provided with a second heat conducting
element 50, the upper end of which is connected to the first heater 38 and the second
heater 39 or connected to the first heat conducting element 40. Thereby, the first
and second heaters 38 and 39 and/or the first heat conducting element 40 serve as
a heat source for the second heat conducting element 50.
[0049] Since the second heat conducting element 50 is of a high heat conductivity, the heat
generated by the first and second heaters 38 and 39 is also transmitted to other portions
of the longitudinal wall 30 that are not equipped with any heating element, such that
the temperature of the whole longitudinal wall 30 can be increased so as to avoid
the presence of condensate drops. Since the longitudinal wall 30 is located relatively
distant from the ice transfer passage 29, such a configuration allows to avoid the
presence of condensate drops on the longitudinal wall 30 without arranging any heater
on the longitudinal wall 30 or merely by arranging a heater on the marginal region
of the longitudinal wall 30 where is not easy to be touched by the user. Thus, energy
consumption can be lowered. In addition, the situation that the user touches the high
temperature region of the longitudinal wall 30 can be avoided.
[0050] Preferably, the second heat conducting element 50 comprises a metal foil of a high
heat conductivity, such as aluminum foil. In a particularly preferable embodiment,
the second heat conducting element 50 covers at least substantially most of the longitudinal
wall 30. For example, the longitudinal wall 30 is entirely covered by the second heat
conducting element 50. The second heat conduction element 50 is preferably adhered
to the inner side of the longitudinal wall 30.
[0051] In order to prevent the portions of the longitudinal wall 30 which are easy to be
touched by the user from reaching a temperature which is greatly higher than ambient
temperature, only an edge area of the second heat conducting element 50 contacts the
first and second heater 38 and 39. Particularly preferably, the upper end of the second
heat conducting element 50 contacts the first and second heater 38 and 39.
[0052] In the above embodiments, the first and second heater 38 and 39 extend to the upper
end of longitudinal wall 30. However, the invention is not limited thereto. For example,
in an alternative embodiment, the first and second heater 38 and 39 do not extend
to the longitudinal wall 30; rather, the heat conducting element 50 may extend to
a extend that is beyond the longitudinal wall 30 (such as extending to the inclined
wall 26) so as to be contacted with the first and second heater 38 and 39 which lie
outside the longitudinal wall 30.
[0053] The first longitudinal sidewall 48 of the freezing compartment door 3 is located
adjacent to the rotation axis of the freezing compartment door 3, so that the second
longitudinal sidewall 49 opposite to the first longitudinal sidewall 48 is located
distant from the rotation axis of the freezing compartment door 3 and close to the
door of the refrigerating compartment. According to a preferred embodiment of the
invention, the freezing compartment door 3 is provided with a third heater 47 for
supplying heat to the second longitudinal sidewall 49, so as to avoid the presence
of condensate drops on the second longitudinal sidewall 49 due to the difference between
surface temperature and the atmosphere temperature. In this embodiment, the third
heater 47 is attached to the inner side of the second longitudinal sidewall 49.
[0054] The second longitudinal sidewall 49 is provided with a third heat conducting element
54 attached to the inner side thereof. The third heat conducting element 54 is located
between the third heater 47 and the inner surface of the second longitudinal sidewall
49 to evenly transmit the heat generated by the third heater 47 to the second longitudinal
sidewall 49. Preferably, the third heat conducting element 54 is attached to the inner
surface of the second longitudinal sidewall 49 by adhesive means (for example, an
adhesive tape).
[0055] It is most preferably to arrange the third heater 47 and/or the third heat conducting
element 54 on a region of the second longitudinal sidewall 49 which is corresponded
to the dispenser 8 in the longitudinal direction.
[0056] Preferably, the third heater 47 at least partially overlaps the dispenser 8 in a
transverse direction.
[0057] Figure 5 shows a structural schematic diagram of the refrigerator according to a
preferred embodiment of the invention. Now a control method of the first heater 38
and the second heater 39 will be described with reference to Figure 5.
[0058] The refrigerator 1 comprises a control unit 41, and an input unit 43 and a display
unit 44 coupled to the control unit 41 respectively, wherein the input unit 43 comprises
the buttons or touch area 22 located on the control panel 20, and the display unit
44 comprises the display screen 21 located on the control panel 20. The control unit
41 comprises a microprocessor and a memory unit, such that some components of the
refrigerator 1 such as the first heater 38 can be automatically controlled by means
of a program stored in the memory unit.
[0059] The refrigerator 1 further comprises a sensing unit 42 for detecting at least one
environmental parameter. The sensing unit 42 is coupled to the control unit 41 and
feeds back the detected parameter to the control unit 41. In this embodiment, the
sensing unit 42 comprises a temperature sensor for detecting ambient temperature.
The sensing unit 42 controls the operation of the first heater 38, including turning
on and turning off the first heater 38, based on the detected ambient temperature.
[0060] In a preferred embodiment, when the detected ambient temperature is lower than zero
°C, the first heater 38 is turned off. When the detected ambient temperature is between
0 °C and 10 °C, the first heater 38 operates at a first output power and/or operates
at a duty cycle of lower than 0.3. When the detected ambient temperature is between
10 °C and 15 °C, the first heater 38 is turned on at a second output power, or the
first heater 38 is turned on and off in an alternative manner at a second duty cycle
(for example, 0.4). When the detected ambient temperature is between 15 °C and 25
°C, the first heater 38 is turned on at a third output power and/or operates at a
predetermined third duty cycle (for example, 0.5).
[0061] In an alternative embodiment, the sensing unit 42 further comprises a humidity sensor
for detecting ambient relative humidity. The control unit 41 controls the operations
of the first heater 38 based on the detected ambient temperature, ambient relative
humidity and other factors.
[0062] The second heater 39 is controlled independently of the first heater 38. According
to the invention, the second heater 39 is turned on only in an auxiliary heating mode,
which is only manually initiated by the user. Thus, the user can, according to the
dewing phenomenon on the refrigerator 1, make an active decision as to whether the
second heater 39 should be actuated to increase heat for removing or preventing dewing.
[0063] In a preferred embodiment, the auxiliary heating mode is actuated by means of switching
means 45 arranged on the freezing compartment door 3. The switching means 45 is preferably
arranged on the dispenser 8 or near the dispenser 8. Particularly preferably, the
switching means 45 is arranged on the partition plate 15.
[0064] In an embodiment, the switching means 45 is electrically connected to the second
heater 39, and the turning on and off states of the second heater 39 is determined
by the switching on and off states of the switching means 45. Preferably, when the
switching means 45 is in the switching off state and the refrigerator 1 operates in
a normal mode, the first heater 38 is turned on or off based on an instruction from
the control unit 41, and the second heater 39 is turned off. When the user operates
the switching means 45 to switch on it, the refrigerator 1 actuates the auxiliary
heating mode, the second heater 39 is turned on to supply extra heat to the dispenser
casing 10, and at the same time the first heater 38 is turned on or off based on an
instruction from the control unit 41.
[0065] The switching means 45 can be provided independently of the control unit 41. For
example, there is no coupling between the switching means 45 and the microprocessor
of the control unit 41. In an alternative embodiment, the switching means 45 is connected
to the control unit 41. For example, the display unit 44 can display whether the refrigerator
1 is under the normal heating mode or the auxiliary heating mode, or the user can
select the parameters displayed on the display unit 44 by means of the switching means
45 in order to initiate the auxiliary heating mode.
[0066] The second heater 39 can be turned off by manually switching off the switching means
45, so that the auxiliary heating mode is ended. In an alternative embodiment, the
second heater 39 can also be automatically turned off. For example, the control unit
41 is configured in such a manner of automatically turning off the second heater 39
after the second heater 39 has been turned on for a predetermined time, such as 15
minutes. This can be achieved by virtue of timing means connected to the control unit
41. The timing means is configured in such a way that it generates a signal when the
second heater 39 has been turned on for a predetermined time, and then the second
heater 39 is turned off based on this signal. Under the condition that the switching
means 45 is not coupled with the microprocessor of the control unit 41, this can be
achieved by timing means connected to the switching means 45 or timing means embedded
the switching means 45.
[0067] In the embodiment shown in Figure 5, the control manner of the third heater 47 is
the same as that of the first heater 38, that is, being automatically controlled by
the control unit 41 based on detected parameters. In a preferred embodiment, the parameter
comprises ambient temperature, ambient relative humidity and/or the temperature of
the sidewall 49, such that the control unit 41 can control the third heater 47 based
on the ambient temperature, the ambient relative humidity and/or the temperature of
the sidewall 49, so as to for example determine whether or not the third heater 47
should be turned on, or determine the frequency of turning on and off or the duty
cycle of the third heater 47.
1. A refrigerator (1) comprising:
a refrigerator body (2) defining at least one storage space (7);
a door (3) connected to the refrigerator body (2) for closing at least a part of the
storage space (7);
a dispenser (8) provided in the door (3), the dispenser (8) comprising a dispenser
casing (10);
a first heater (38) for supplying heat to the dispenser casing (10); and
a control unit (41), the control unit (41) being configured to automatically control
the operation of the first heater (38), wherein the operation of the first heater
(38) comprises at least turning on and turning off the first heater (38),
characterized in that the refrigerator further comprises a second heater (39) arranged near the first heater
(38), and in a manually initiated auxiliary heating mode the second heater (39) is
turned on for supplying extra heat to the dispenser casing.
2. The refrigerator (1) of claim 1, characterized in that the refrigerator comprises switching means (45) connected with the second heater
(39), wherein the second heater (39) is turned on by an operation of manually controlling
the switching means (45), so as to initiate the auxiliary heating mode.
3. The refrigerator (1) of claim 2, characterized in that the second heater (39) is turned off by an operation of manually controlling the
switching means (45), so as to end the auxiliary heating mode.
4. The refrigerator (1) of claim 1 or 2, characterized in that the refrigerator further comprises timing means, the timing means being configured
to generate a signal, after the second heater (39) has been turned on for a predetermined
time, for turning off the second heater (39).
5. The refrigerator (1) of any one of preceding claims, characterized in that the power of the second heater (39) is lower than the power of the first heater (38).
6. The refrigerator (1) of any one of preceding claims, characterized in that the refrigerator further comprises a sensing unit (42), the sensing unit (42) being
configured to sense at least one environmental parameter and feed the parameter to
the control unit (41), and the control unit (41) being configured to control the first
heater (38) based on the sensed environmental parameter.
7. The refrigerator (1) of claim 6, characterized in that the environmental parameter comprises ambient temperature and / or ambient relative
humidity.
8. The refrigerator (1) of any one of preceding claims, characterized in that the first heater (38) and / or the second heater (39) is disposed on the inner side
of the dispenser casing (10), the inner side of the dispenser casing (10) being adjacent
to the heat insulating layer (6) of the door (3).
9. The refrigerator (1) of any one of preceding claims, characterized in that the dispenser casing (10) comprises a first area (51) and a second area (52) near
the first area (51), the first heater (38) being provided in the first area (51),
and the second heater (39) being provided in the second area (52).
10. The refrigerator (1) of any one of preceding claims, characterized in that the dispenser (8) comprises an ice transfer passage (29) extending through the door
(3), the dispenser casing (10) comprises a through hole (27) forming a part of the
ice transfer passage (29), and at least a part of the first heater (38) is arranged
along the through hole (27).
11. The refrigerator (1) of any one of preceding claims, characterized in that a heat conducting element (40, 50) is provided on the inner side of the dispenser
casing (10), the heat conducting element (40) being configured to transmit heat from
the first heater (38) and / or the second heater (39) to the dispenser casing (10).
12. The refrigerator (1) of claim 11, characterized in that the dispenser casing (10) defines a dispensing cavity (16) for receiving at least
a part of an outside container, and the heat conducting element (50) covers at least
a major portion of a longitudinal wall (30) of the dispensing cavity (16).
13. The refrigerator (1) of claim 11 or 12, characterized in that the heat conducting element (50) comprises a metal foil having a high heat conductivity,
the metal foil establishing face-to-face contacting with the dispenser casing (10).
14. The refrigerator (1) of any one of preceding claims, characterized in that the first heater (38) comprises two heating segments (35) which are spaced from each
other by a predetermined distance, and at least a part of the second heater (39) is
arranged between the two heating segments (35).
15. The refrigerator (1) of any one of preceding claims, characterized in that the refrigerator further comprises a third heater (47) for supplying heat to a longitudinal
side wall (49) of the door (3).
1. Kühlschrank (1), welcher umfasst:
ein Kühlschrankgehäuse (2), welches mindestens einen Speicherraum (7) definiert;
eine Tür (3), die mit dem Kühlschrankgehäuse (2) verbunden ist, zum Schließen wenigstens
eines Teils des Speicherraums (7);
einen Spender (8), der in der Tür (3) vorgesehen ist, wobei der Spender (8) ein Spendergehäuse
(10) umfasst;
eine erste Heizeinrichtung (38) zum Zuführen von Wärme zu dem Spendergehäuse (10);
und
eine Steuereinheit (41), wobei die Steuereinheit (41) dafür ausgebildet ist, den Betrieb
der ersten Heizeinrichtung (38) automatisch zu steuern, wobei der Betrieb der ersten
Heizeinrichtung (38) wenigstens das Einschalten und Ausschalten der ersten Heizeinrichtung
(38) umfasst,
dadurch gekennzeichnet, dass der Kühlschrank ferner eine zweite Heizeinrichtung (39) umfasst, die nahe der ersten
Heizeinrichtung (38) angeordnet ist, und dass in einer manuell ausgelösten Hilfs-Heizbetriebsart
die zweite Heizeinrichtung (39) eingeschaltet wird, um dem Spendergehäuse zusätzliche
Wärme zuzuführen.
2. Kühlschrank (1) nach Anspruch 1, dadurch gekennzeichnet, dass der Kühlschrank Schaltmittel (45) umfasst, die mit der zweiten Heizeinrichtung (39)
verbunden sind, wobei die zweite Heizeinrichtung (39) durch einen Vorgang des manuellen
Steuerns der Schaltmittel (45) eingeschaltet wird, um die Hilfs-Heizbetriebsart auszulösen.
3. Kühlschrank (1) nach Anspruch 2, dadurch gekennzeichnet, dass die zweite Heizeinrichtung (39) durch einen Vorgang des manuellen Steuerns der Schaltmittel
(45) ausgeschaltet wird, um die Hilfs-Heizbetriebsart zu beenden.
4. Kühlschrank (1) nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass der Kühlschrank ferner Zeitsteuerungsmittel umfasst, wobei die Zeitsteuerungsmittel
dafür ausgebildet sind, ein Signal zu erzeugen, nachdem die zweite Heizeinrichtung
(39) eine vorbestimmte Zeit eingeschaltet war, um die zweite Heizeinrichtung (39)
auszuschalten.
5. Kühlschrank (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Leistung der zweiten Heizeinrichtung (39) niedriger als die Leistung der ersten
Heizeinrichtung (38) ist.
6. Kühlschrank (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass der Kühlschrank ferner eine Erfassungseinheit (42) umfasst, wobei die Erfassungseinheit
(42) dafür ausgebildet ist, mindestens einen Umgebungsparameter zu erfassen und den
Parameter in die Steuereinheit (41) einzuspeisen, und wobei die Steuereinheit (41)
dafür ausgebildet ist, die erste Heizeinrichtung (38) auf der Basis des erfassten
Umgebungsparameters zu steuern.
7. Kühlschrank (1) nach Anspruch 6, dadurch gekennzeichnet, dass der Umgebungsparameter die Umgebungstemperatur und/oder die relative Umgebungsfeuchtigkeit
umfasst.
8. Kühlschrank (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die erste Heizeinrichtung (38) und/oder die zweite Heizeinrichtung (39) auf der Innenseite
des Spendergehäuses (10) angeordnet ist, wobei die Innenseite des Spendergehäuses
(10) der wärmeisolierenden Schicht (6) der Tür (3) benachbart ist.
9. Kühlschrank (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das Spendergehäuse (10) einen ersten Bereich (51) und einen zweiten Bereich (52)
in der Nähe des ersten Bereiches (51) umfasst, wobei die erste Heizeinrichtung (38)
in dem ersten Bereich (51) vorgesehen ist und die zweite Heizeinrichtung (39) in dem
zweiten Bereich (52) vorgesehen ist.
10. Kühlschrank (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass der Spender (8) einen Eisübergabekanal (29) umfasst, der sich durch die Tür (3) hindurch
erstreckt, das Spendergehäuse (10) ein Durchgangsloch (27) umfasst, das einen Teil
des Eisübergabekanals (29) bildet, und mindestens ein Teil der ersten Heizeinrichtung
(38) entlang des Durchgangsloches (27) angeordnet ist.
11. Kühlschrank (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass ein wärmeleitendes Element (40, 50) auf der Innenseite des Spendergehäuses (10) vorgesehen
ist, wobei das wärmeleitende Element (40) dafür ausgebildet ist, Wärme von der ersten
Heizeinrichtung (38) und/oder der zweiten Heizeinrichtung (39) auf das Spendergehäuse
(10) zu übertragen.
12. Kühlschrank (1) nach Anspruch 11, dadurch gekennzeichnet, dass das Spendergehäuse (10) einen Ausgabehohlraum (16) zur Aufnahme wenigstens eines
Teils eines äußeren Behälters definiert und das wärmeleitende Element (50) wenigstens
einen Hauptteil einer Längswand (30) des Ausgabehohlraums (16) bedeckt.
13. Kühlschrank (1) nach Anspruch 11 oder 12, dadurch gekennzeichnet, dass das wärmeleitende Element (50) eine Metallfolie mit einer hohen Wärmeleitfähigkeit
umfässt, wobei die Metallfolie einen Anlagekontakt mit dem Spendergehäuse (10) herstellt.
14. Kühlschrank (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die erste Heizeinrichtung (38) zwei Heizsegmente (35) umfasst, welche einen vorbestimmten
Abstand voneinander aufweisen, und wenigstens ein Teil der zweiten Heizeinrichtung
(39) zwischen den zwei Heizsegmenten (35) angeordnet ist.
15. Kühlschrank (1) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass der Kühlschrank ferner eine dritte Heizeinrichtung (47) zur Zuführung von Wärme zu
einer Längsseitenwand (49) der Tür (3) umfasst.
1. Réfrigérateur (1) comprenant :
- un corps de réfrigérateur (2) définissant au moins un espace de stockage (7) ;
- une porte (3) reliée au corps de réfrigérateur (2) pour fermer au moins une partie
de l'espace de stockage (7) ;
- un distributeur (8) prévu dans la porte (3), le distributeur (8) comprenant un boîtier
de distributeur (10) ;
- un premier élément chauffant (38) pour fournir de la chaleur au boîtier de distributeur
(10) ; et
- une unité de commande (41), l'unité de commande (41) étant configurée pour commander
automatiquement le fonctionnement du premier élément chauffant (38), dans laquelle
le fonctionnement du premier élément chauffant (38) comprend au moins la mise en et
hors circuit du premier élément chauffant (38),
caractérisé en ce que le réfrigérateur comprend en outre un deuxième élément chauffant (39) agencé à côté
du premier élément chauffant (38) et, dans un mode de chauffage auxiliaire initié
manuellement, le deuxième élément chauffant (39) est mis en circuit pour fournir de
la chaleur supplémentaire au boîtier du distributeur.
2. Réfrigérateur (1) selon la revendication 1, caractérisé en ce que le réfrigérateur comprend des moyens de commutation (45) reliés au deuxième élément
chauffant (39), dans lequel le deuxième élément chauffant (39) est mis en circuit
par un fonctionnement de commande manuelle des moyens de commutation (45), de manière
à initier le mode de chauffage auxiliaire.
3. Réfrigérateur (1) selon la revendication 2, caractérisé en ce que le deuxième élément chauffant (39) est mis hors circuit par un fonctionnement de
commande manuelle des moyens de commutation (45), de manière à arrêter le mode de
chauffage auxiliaire.
4. Réfrigérateur (1) selon la revendication 1 ou 2, caractérisé en ce que le réfrigérateur comprend en outre des moyens horaires, les moyens horaires étant
configurés pour générer un signal, une fois que le deuxième élément chauffant (39)
a été mis en circuit pendant une durée prédéterminée, pour mettre hors circuit le
deuxième élément chauffant (39).
5. Réfrigérateur (1) selon l'une quelconque des revendications précédentes, caractérisé en ce que la puissance du deuxième élément chauffant (39) est inférieure à la puissance du
premier élément chauffant (38).
6. Réfrigérateur (1) selon l'une quelconque des revendications précédentes, caractérisé en ce que le réfrigérateur comprend en outre une unité de détection (42), l'unité de détection
(42) étant configurée pour détecter au moins un paramètre environnemental et charger
le paramètre dans l'unité de commande (41), et l'unité de commande (41) étant configurée
pour commander le premier élément chauffant (38) à partir du paramètre environnemental
détecté.
7. Réfrigérateur (1) selon la revendication 6, caractérisé en ce que le paramètre environnemental comprend une température ambiante et/ou une humidité
relative ambiante.
8. Réfrigérateur (1) selon l'une quelconque des revendications précédentes, caractérisé en ce que le premier élément chauffant (38) et/ou le deuxième élément chauffant (39) est disposé
sur le côté intérieur du boîtier de distributeur (10), le côté intérieur du boîtier
de distributeur (10) étant adjacent à la couche d'isolation thermique (6) de la porte
(3).
9. Réfrigérateur (1) selon l'une quelconque des revendications précédentes, caractérisé en ce que le boîtier de distributeur (10) comprend une première zone (51) et une seconde zone
(52) à côté de la première zone (51), le premier élément chauffant (38) étant prévu
dans la première zone (51), et le deuxième élément chauffant (39) étant prévu dans
la seconde zone (52).
10. Réfrigérateur (1) selon l'une quelconque des revendications précédentes, caractérisé en ce que le distributeur (8) comprend un passage de transfert de glace (29) s'étendant à travers
la porte (3), le boîtier de distributeur (10) comprend un trou débouchant (27) formant
une partie du passage de transfert de glace (29), et au moins une partie du premier
élément chauffant (38) est agencée le long du trou débouchant (27).
11. Réfrigérateur (1) selon l'une quelconque des revendications précédentes, caractérisé en ce qu'un élément conducteur de chaleur (40, 50) est prévu sur le côté intérieur du boîtier
de distributeur (10), l'élément conducteur de chaleur (40) étant configuré pour transmettre
la chaleur du premier élément chauffant (38) et/ou du deuxième élément chauffant (39)
vers le boîtier de distributeur (10).
12. Réfrigérateur (1) selon la revendication 11, caractérisé en ce que le boîtier de distributeur (10) définit une cavité de distribution (16) pour recevoir
au moins une partie d'un contenant extérieur, et l'élément conducteur de chaleur (50)
couvre au moins une majeure partie d'une paroi longitudinale (30) de la cavité de
distribution (16).
13. Réfrigérateur (1) selon la revendication 11 ou 12, caractérisé en ce que l'élément conducteur de chaleur (50) comprend une feuille métallique présentant une
conductibilité thermique élevée, la feuille métallique établissant un contact en face-à-face
avec le boîtier de distributeur (10).
14. Réfrigérateur (1) selon l'une quelconque des revendications précédentes, caractérisé en ce que le premier élément chauffant (38) comprend deux segments chauffants (35) qui sont
espacés l'un de l'autre d'une distance prédéterminée et au moins une partie du deuxième
élément chauffant (39) est agencée entre les deux segments chauffants (35).
15. Réfrigérateur (1) selon l'une quelconque des revendications précédentes, caractérisé en ce que le réfrigérateur comprend en outre un troisième élément chauffant (47) pour fournir
de la chaleur à une paroi latérale longitudinale (49) de la porte (3).