[0001] The present invention relates to a cooler comprising a heat controlled special compartment.
[0002] In conventional coolers, generally there is a cooler compartment in which food products
are placed to be cooled, and a freezer compartment in which food products are placed
to be frozen, maintained at a temperature cooler than the cooler compartment. Nowadays,
with the rapid advancement in technology, the new generation coolers further comprise
a special compartment, commonly called the zero degrees compartment, usually provided
in the cooler compartment, in which delicatessen type food products such as cheese
or meat are placed, and whose temperature is intended to be maintained at a temperature
range between the temperatures of the cooler compartment and the freezer compartment,
such as between - 2 to +3°C.
[0003] In present zero degrees compartments available in the coolers of the state of the
art, average temperature swings have high values such as approximately from 2,5 to
3,5°C, with negative effects on the shelf lives of the food products stored in said
compartments. In the state of the art, heat control in such compartments is usually
attempted to be performed in a precise manner by using special flaps, engine mechanisms
and heat sensors. A compartment is enabled to be maintained at desired temperatures
with lower temperature swings by adjusting the aperture of a flap according to running/halted
durations of a compressor and the temperature information received from the heat sensors
positioned in said compartment. But the flaps, engine mechanisms, heat sensors and
the electronic cards enabling controlling said components, cause complications.
[0004] State of the art Turkish patent document no
TR 2015/11066 mentions a cooler comprising a heat controlled special compartment. In the invention
disclosed in said document, the special compartment is cooled in a controlled manner
together with the cooler compartment and the freezer compartment already provided
on the cooler, and the interior of said special compartment is thus maintained at
a desired temperature.
[0005] In the international patent application No.
WO2013182374A1, a cooling appliance having a fresh food compartment and a freezing compartment that
are kept at different temperatures is disclosed.
[0006] In the international patent application No.
WO2012089604A2, a cooling appliance having a control unit to determine the cut-in and cut-out times
of the compressor and the fan is disclosed.
[0007] In the international patent application No.
WO9942770A1, a refrigerator comprising a refrigerator compartment, a freezer compartment and
a low-temperature storage chamber formed in the refrigerator compartment having a
temperature lower than that of the refrigerator compartment is disclosed.
[0008] In the European patent application No.
EP2988081A1, a refrigerator comprising storage compartments, a cool air supplying unit and a
heat-exchanger to divide a flow path at which cool air is provided to flow along the
cool air supplying unit is disclosed.
[0009] In the European patent application No.
EP2413074A1, a refrigerator comprising two fresh-food sub-compartments designed to operate at
different ranges of temperatures is disclosed.
[0010] In the European patent application No.
EP1314940A1, a refrigerator with a multipurpose storage chamber is disclosed.
[0011] In the United States patent application No.
US2003131617A1, a cooling appliance comprising a refrigeration compartment, a cold storage compartment
and a freezer compartment which are separated from one another by partition walls
and at least one door or flap is disclosed.
[0012] In the European patent application No.
EP3029399A1, a refrigerator comprising a refrigerating compartment that is divided into a refrigerating
section and an alternate temperature section is disclosed.
[0013] The aim of the present invention is to realize a cooler in which the temperature
in a special compartment is conveniently and cost-effectively maintained at a desired
temperature range.
[0014] The cooler comprising a heat controlled special compartment, realized to achieve
the aim of the present invention and disclosed in the first claim and the dependent
claims, comprises a control unit determining the times in which a fan is turned on
and off at least when the compressor is halted or operated, by controlling the data
received from a first heat sensor measuring the temperature in at least one cooler
compartment and from a second heat sensor measuring the temperature in the special
compartment. The control unit determines whether the fan should be activated depending
on the temperatures of at least the cooler compartment and the special compartment,
and enables maintaining the temperature in the special compartment between determined
temperature values and enables maintaining the homogeneity of the air temperature
in the cooler compartment.
[0015] According to the invention, when the compressor is not running, i.e. is turned off,
the control unit does not activate the fan until the temperature in the cooler compartment
reaches an upper limit temperature determined by the producer and saved in the control
unit, or until the temperature in the special compartment reaches a lower limit temperature
determined by the producer and saved in the control unit, and activates the fan upon
the cooler compartment temperature reaching said cooler compartment upper limit temperature,
or upon the special compartment temperature reaching said special compartment lower
limit temperature. By this, when the compressor is not running, i.e. is turned off,
the fan is enabled to be not activated almost at a predefined ratio depending on conditions
such as the temperature values measured by the sensors, compressor operation ratio,
the ambient temperature, the door being opened, loading of new items, and the like.
When the fan is not activated, the air pouring from the surface of an evaporator which
is cold, enables the special compartment to be cooled for some more time, and the
homogeneity of the air temperature in the cooler compartment is provided by activation
of the fan later on.
[0016] In an embodiment of the invention, when the compressor is initially activated after
a halted period, the control unit activates the fan after a duration predetermined
by the producer and saved in the control unit, following activation of the compressor.
In an embodiment of the invention, the duration predetermined by the producer and
saved in the control unit, is equal to a percentage ratio of the total running duration
of the compressor. By this, the fan is prevented from blowing air hotter than 0°C
towards the special compartment when the compressor is activated, thereby avoiding
an instantaneous temperature increase in the special compartment.
[0017] In an embodiment of the invention, after the control unit activates the fan while
the compressor is running, the control unit continues running the fan for a duration
predetermined by the producer and saved in the control unit. By this, temperature
swings likely to occur in the cooler compartment due to delayed activation of the
fan are regulated when the compressor is initially activated after a halted duration,
providing temperature homogeneity in the cooler compartment.
[0018] In an embodiment of the invention, while the compressor is running, after elapsing
of a duration following activation of the fan, determined by the producer and saved
in the control unit, the control unit halts the fan when the cooler compartment temperature
reaches a lower limit temperature determined by the producer and saved in the control
unit, or when the special compartment temperature reaches an upper limit temperature
determined by the producer and saved in the control unit. The special compartment
is thus prevented from overheating.
[0019] In an embodiment of the invention, the control unit runs the fan until the cooler
compartment temperature reaches the fan halting cooler compartment temperature determined
by the producer and saved in the control unit, if, following halting of the fan while
the compressor is running, the cooler compartment temperature reaches an upper limit
temperature determined by the producer and saved in the control unit, or if, after
completion of the maximum halted duration for the fan determined by the producer and
saved in the control unit, the cooler compartment temperature has a value higher than
the fan activating cooler compartment temperature determined by the producer and saved
in the control unit.
[0020] In an embodiment of the invention, the control unit activates the fan, if, while
the compressor is running, the special compartment temperature reaches a compressor
halting special compartment temperature determined by the producer and saved in the
control unit, before the cooler compartment temperature reaches a compressor halting
cooler compartment temperature determined by the producer and saved in the control
unit. The special compartment is thus prevented from overcooling.
[0021] In an embodiment of the invention, while the compressor is running, the control unit
halts the compressor, if the cooler compartment temperature reaches a compressor halting
cooler compartment temperature determined by the producer and saved in the control
unit.
[0022] In an embodiment of the invention, the cooler of the invention further comprises
at least one third heat sensor measuring the surface temperature of the evaporator.
By this, the control unit determines whether the fan should be activated depending
on also the surface temperature of the evaporator, and enables maintaining the temperature
in the special compartment between determined temperature values as well as enables
maintaining the homogeneity of the air temperature in the cooler compartment.
[0023] When the compressor is halted, i.e. turned off, the control unit provided in the
cooler of the invention does not activate the fan until the evaporator surface temperature
reaches a limit temperature determined by the producer and saved in the control unit,
and activates the fan if the evaporator surface temperature reaches said evaporator
limit temperature. The temperature in the special compartment is thus prevented from
increasing by not running the fan to an extent when the compressor is not running.
In the meanwhile, the air pouring from the surface of the evaporator enables the special
compartment to be kept cool for some more time, and temperature homogeneity in the
cooler compartment is provided by activation of the fan later on.
[0024] In an embodiment of the invention, the cooler of the invention further comprises
at least one heater heating during the defrosting process the air around the evaporator
in order to defrost the snow or ice forming around the evaporator.
[0025] In an embodiment of the invention, when initiating the defrosting process which is
performed to defrost the snow or ice forming around the evaporator, the control unit
does not activate the fan until the evaporator surface temperature reaches an upper
limit temperature determined by the producer and saved in the control unit, or until
the temperature in the special compartment reaches a lower limit temperature determined
by the producer and saved in the control unit, and activates the fan upon the evaporator
surface temperature reaching said evaporator limit temperature, or upon the special
compartment temperature reaching said special compartment lower limit temperature.
Thus, by the delayed activation of the fan, the fan is prevented from blowing air
of a temperature hotter than 0°C towards the special compartment, thereby maintaining
the air in the special compartment at a desired temperature. The air pouring from
the surface of the evaporator when the fan is not activated, enables the special compartment
to stay cool for some more time, and the temperature swings in the cooler compartment
due to delayed activation of the fan are eliminated by the activation of the fan,
providing temperature homogeneity in the cooler compartment.
[0026] In an embodiment of the invention, during the defrosting process which is performed
to defrost the snow or ice forming around the evaporator, the control unit halts the
fan and activates the heater after temperature homogeneity is provided in the cooler
compartment. By this, the air heated by the heater enabling defrosting the snow around
the evaporator, is prevented from being directed by the fan towards the special compartment,
avoiding an instantaneous temperature increase in the special compartment.
[0027] By means of the invention, the temperature in the special compartment is easily and
cost-effectively maintained at a temperature range in which spoiling of the food products
placed therein is prevented, by the control unit determining the times when the fan
is activated or halted while the compressor is running or halted, according to data
obtained from at least one first heat sensor measuring the cooler compartment temperature
and from at least one second heat sensor measuring the special compartment temperature.
In an embodiment of the invention, in order to maintain the special compartment temperature
at a desired range, in determining the times at which the fan is activated or halted
while the compressor is running or halted, the control unit also uses the evaporator
surface temperature measured by a third heat sensor. In the cooler of the invention,
the special compartment temperature is maintained at a desired temperature range also
during the defrosting process in which the snow or ice forming around the evaporator
is defrosted.
[0028] The cooler realized to achieve the aims of the present invention is illustrated in
the accompanying drawing, wherein:
Figure 1 is a schematic view of the cooler of the invention.
[0029] The elements in the figure are numbered individually and the correspondence of these
numbers are given hereinafter.
- 1. Cooler
- 2. Cooler compartment
- 3. Special compartment
- 4. Compressor
- 5. Evaporator
- 6. Fan
- 7. First heat sensor
- 8. Second heat sensor
- 9. Control unit
- 10. Third heat sensor
- 11. Heater
[0030] The cooler (1) comprises at least one cooler compartment (2), at least one special
compartment (3) provided in the cooler compartment (2) and maintained at a temperature
lower than the cooler compartment (2), at least one compressor (4) enabling circulating
a refrigerant fluid by compressing it, at least one evaporator (5) enabling the cooler
compartment (2) to be cooled, at least one fan (6) enabling air circulation in the
cooler compartment (2), at least one first heat sensor (7) measuring the temperature
in the cooler compartment (2) and at least one second heat sensor (8) measuring the
temperature in the special compartment (3). In the cooler (1), the food products desired
to be cooled are placed in the cooler compartment (2), and the food products such
as delicatessen products like cheese or meat, desired to be stored in more sensitive
conditions are placed in the special compartment (3). The compressor (4) runs in given
time intervals also known as compressor running durations, depending on at least the
temperature in the cooler compartment (2), and compresses the refrigerant fluid and
pumps it towards the evaporator (5). The evaporator (5) enables cooling the interior
of the cooler compartment (2) as a result of the heat transfer performed by means
of the refrigerant fluid pumped by the compressor (4), and the fan (6) circulates
air inside the cooler compartment (2) so as to homogenize the air temperature in the
cooler compartment (2). Snow and ice forms around the evaporator (5) due to cold.
From time to time, the cooler (1) performs the defrosting process in order to remove
the snow and ice forming around the evaporator (5), and the compressor (4) does not
run during said defrosting process.
[0031] The symbols below are used to disclose the cooler (1) of the invention:
TFF: The cooler compartment (2) temperature detected by the first heat sensor (7).
TZD: The special compartment (3) temperature detected by the second heat sensor (8).
TFF-ul: The cooler compartment (2) upper limit temperature at which the fan (6) is turned
on, determined by the producer and saved in the control unit (9).
TFF-ll: The cooler compartment (2) lower limit temperature at which the fan (6) is turned
off, determined by the producer and saved in the control unit (9).
TZD-ul: The special compartment (3) upper limit temperature at which the fan (6) is turned
off, determined by the producer and saved in the control unit (9).
TZD-ll: The special compartment (3) lower limit temperature at which the fan (6) is turned
on, determined by the producer and saved in the control unit (9).
TFANcut-in: The cooler compartment (2) temperature at which the fan (6) is turned on, determined
by the producer and saved in the control unit (9).
TFANcut-out: The cooler compartment (2) temperature at which the fan (6) is turned off, determined
by the producer and saved in the control unit (9).
TFFcut-out: The cooler compartment (2) temperature at which the compressor (4) is turned off,
determined by the producer and saved in the control unit (9).
TZDcut-out: The special compartment (3) temperature at which the compressor (4) is turned off,
determined by the producer and saved in the control unit (9).
TE: The evaporator (5) surface temperature detected by the third heat sensor (10).
TEl: The evaporator (5) surface temperature at which the fan (6) is turned on, determined
by the producer and saved in the control unit (9).
[0032] The cooler (1) of the invention comprises at least one control unit (9) configured
to determine the times in which the fan (6) is turned on and off at least during the
running or halted durations of the compressor (4), by controlling the data received
at least from the first heat sensor (7) and the second heat sensor (8). By this, the
control unit (9) determines whether the fan (6) should be activated depending on the
temperatures of at least the cooler compartment (2) and the special compartment (3),
and enables maintaining the temperature in the special compartment (T
ZD) between determined temperature values and enables maintaining the homogeneity of
the air temperature (T
FF) in the cooler compartment.
[0033] According to the invention, during the halted duration of the compressor (4), the
control unit (9) is configured to not turn the fan (6) on until the cooler compartment
(2) temperature (T
FF) reaches an upper limit temperature (T
FF-ul), or until the special compartment (3) temperature (T
ZD) reaches a lower limit temperature (T
ZD-ll), and to turn the fan (6) on upon the cooler compartment (2) temperature (T
FF) reaching said upper limit temperature (T
FF-ul) or upon the special compartment (3) temperature (T
ZD) reaching said lower limit temperature (T
ZD-ll). The temperature in the special compartment (3) is thus prevented from increasing
by not running the fan (6) to an extent during the halted duration of the compressor
(4). In the meanwhile, the air pouring from the surface of the evaporator (5) enables
the special compartment (3) to be kept cool for some more time, and by turning the
fan (6) on after some time, the special compartment (3) temperature (T
ZD) is prevented from increasing excessively and the temperature homogeneity is provided
in the cooler compartment (2).
[0034] In an embodiment of the invention, when the compressor (4) is activated, the control
unit (9) is configured to turn the fan (6) on after elapsing of a certain duration
(t
1) following the activation of the compressor (4). By this, the fan (6) is prevented
from blowing air hotter than 0°C towards the special compartment (3) when the compressor
(4) is activated, thereby avoiding an instantaneous temperature increase in the special
compartment (3).
[0035] In an embodiment of the invention, the control unit (9) is configured to keep the
fan (6) turned on for a duration (t
2) after turning the fan on (6) during the running duration of the compressor (4).
By this, the temperature swings are regulated, likely to occur in the cooler compartment
(2) arising due to delaying activation of the fan (6) when the compressor (4) is initially
activated, providing temperature homogeneity in the cooler compartment (2).
[0036] In an embodiment of the invention, after the fan (6) has been kept turned on for
a duration (t
2) during the running duration of the compressor (4), the control unit (9) is configured
to turn the fan (6) off upon the cooler compartment (2) temperature (T
FF) reaching a lower limit temperature (T
FF-ll), or upon the special compartment (3) temperature (T
ZD) reaching an upper limit temperature (T
ZD-ul). The temperature (T
FF) in the special compartment (3) is thus prevented from increasing excessively.
[0037] In an embodiment of the invention, following turning off of the fan (6) during the
running duration of the compressor (4) if the cooler compartment (2) temperature (T
FF) is higher than the fan (6) activating cooler compartment (2) temperature (T
FANcut-in) upon the cooler compartment (2) temperature (T
FF) reaching an upper limit temperature (T
FF-ul) or upon completion of a maximum halted duration (t
3), the control unit (9) is configured to turn the fan (6) on until the cooler compartment
(2) temperature (T
FF) reaches a fan (6) halting cooler compartment (2) temperature (T
FANcut-out).
[0038] In an embodiment of the invention, the control unit (9) is configured to turn the
fan (6) on if the special compartment (3) temperature (T
FF) reaches a compressor (4) halting special compartment (3) temperature (T
ZDcut-out) before the cooler compartment (2) temperature (T
FF) reaches a compressor (4) halting cooler compartment (2) temperature (T
FFcut-out) during the compressor (4) running duration. The special compartment (3) temperature
(T
FF) is thus prevented from decreasing excessively.
[0039] In an embodiment of the invention, the control unit (9) is configured to turn the
compressor (4) off upon the cooler compartment (2) temperature (T
FF) reaching a compressor (4) halting cooler compartment (2) temperature (T
FFcut-out) during the running duration of the compressor (4).
[0040] In an embodiment of the invention, the cooler (1) of the invention further comprises
at least one third heat sensor (10) measuring the surface temperature of the evaporator
(5).
[0041] In an embodiment of the invention, the control unit (9) is configured to not turn
the fan (6) on during the halted duration of the compressor (4) until the evaporator
(5) surface temperature (T
E) reaches a limit temperature (T
El), and to turn the fan (6) on upon the evaporator (5) surface temperature (T
E) reching said evaporator limit temperature (T
El). The temperature (T
ZD) of the special compartment (3) is thus prevented from increasing by not running
the fan (6) to an extent during the halted duration of the compressor (4). In the
meanwhile, the air pouring from the surface of the evaporator (5) enables the special
compartment (3) to be kept cool for some more time, and temperature homogeneity in
the cooler compartment (2) is provided by activation of the fan (6) after some time.
[0042] In an embodiment of the invention, the cooler (1) of the invention further comprises
at least one heater (11) increasing during the defrosting process the temperature
in the vicinity of the evaporator (5) in order to defrost the snow forming around
the evaporator (5).
[0043] In an embodiment of the invention, during defrosting, the control unit (9) is configured
to not turn the fan (6) on until the evaporator (5) surface temperature (T
E) reaches a limit temperature (T
El) or until the special compartment (3) temperature (T
ZD) reaches a lower limit temperature (T
ZD-ll), and to turn the fan (6) on upon the evaporator (5) surface temperature (T
E) reaching said evaporator limit temperature (T
El) or upon the special compartment (3) temperature (T
ZD) reaching said special compartment lower limit temperature (T
ZD-ll). Thus, by the delayed activation of the fan (6), the fan (6) is prevented from blowing
air of a temperature hotter than 0°C towards the special compartment (3), thereby
maintaining the air temperature in the special compartment (3) at a desired level.
The air pouring from the surface of the evaporator (5) in the meanwhile enables keeping
the special compartment (3) cold for some more time. Temperature homogeneity in the
cooler compartment (2) is provided following activation of the fan (6).
[0044] In an embodiment of the invention, the control unit (9) is configured to turn the
fan (6) off and to turn the heater (11) on after temperature homogeneity in the cooler
compartment (2) is provided during defrosting period. By this, when the temperature
of the air around the evaporator (5) is thus increased in order to defrost the snow
around the evaporator (5), this heated air is prevented from being blown towards the
special compartment (3) by the fan (6), avoiding a rapid increase of the special compartment
(3) temperature.
[0045] By means of the invention, the temperature in the special compartment (3) is easily
and cost-effectively maintained at a desired temperature range, by determining the
times when the fan (6) is turned on and off during the operating or halted durations
of the compressor (4), in accordance with the data obtained by at least one first
heat sensor (7) measuring the cooler compartment (2) temperature and by at least one
second heat sensor (8) measuring the special compartment (3) temperature. In addition,
in an embodiment of the invention, the evaporator (5) surface temperature measured
by a third heat sensor (10), is also used to determine times at which the fan (6)
is turned on and off during the halted durations of the compressor (4). In the cooler
(1) of the invention, the special compartment (3) temperature is maintained at a desired
temperature range also during the defrosting process in which the snow or ice forming
around the evaporator (5) is defrosted.
1. A cooler (1) comprising at least one cooler compartment (2), at least one special compartment (3) provided
in the cooler compartment (2) maintained at a temperature lower than the cooler compartment
(2), at least one compressor (4) enabling circulating a refrigerant fluid by compressing
it, at least one evaporator (5) enabling the cooler compartment (2) to be cooled,
at least one fan (6) enabling air circulation in the cooler compartment (2), at least
one first heat sensor (7) measuring the temperature in the cooler compartment (2)
and at least one second heat sensor (8) measuring the temperature in the special compartment
(3), at least one control unit (9) configured to determine the times at which the
fan (6) is turned on and off at least during the operating or halted durations of
the compressor (4), by controlling the data received at least from the first heat
sensor (7) and the second heat sensor (8) characterized by the control unit (9) configured to not turn the fan (6) on until the cooler compartment
(2) temperature (TFF) reaches an upper limit temperature (TFF-ul) or until the special compartment (3) temperature (TZD) reaches a lower limit temperature (TZD-ll), and to turn the fan (6) on upon the cooler compartment (2) temperature (TFF) reaching said upper limit temperature (TFF-ul) or upon the special compartment (3) temperature (TZD) reaching said lower limit temperature (TZD-ll), during the halted duration of the compressor (4).
2. A cooler (1) according to claim 1 , characterized by the control unit (9) configured to turn the fan (6) on when the compressor (4) is
activated, after elapsing of a certain duration (t1) following the activation of the compressor (4).
3. A cooler (1) according to claim 2, characterized by the control unit (9) configured to keep the fan (6) turned on for a duration (t2), after turning the fan on (6) during the running duration of the compressor (4).
4. A cooler (1) according to claim 3, characterized by the control unit (9) configured to turn the fan (6) off upon the cooler compartment
(2) temperature (TFF) reaching a lower limit temperature (TFF-ll), or upon the special compartment (3) temperature (TZD) reaching an upper limit temperature (TZD-ul), after the fan (6) has been kept turned on for a duration (t2) during the running duration of the compressor (4).
5. A cooler (1) according to claim 4, characterized by, the control unit (9) configured to turn the fan (6) on until the cooler compartment
(2) temperature (TFF) reaches a fan (6) halting cooler compartment (2) temperature (TFANcut-out), if the cooler compartment (2) temperature (TFF) is higher than the fan (6) activating cooler compartment (2) temperature (TFANcut-in) upon the cooler compartment (2) temperature (TFF) reaching an upper limit temperature (TFF-ul) or upon completion of a maximum halted duration (t3), following turning off of the fan (6) during the running duration of the compressor
(4).
6. A cooler (1) according to claim 4, characterized by the control unit (9) configured to turn the fan (6) on during the compressor (4)
running duration, if the special compartment (3) temperature (TFF) reaches a compressor (4) halting special compartment (3) temperature (TZDcut-out) before the cooler compartment (2) temperature (TFF) reaches a compressor (4) halting cooler compartment (2) temperature (TFFcut-out).
7. A cooler (1) according to any one of the claims 2 to 6, characterized by the control unit (9) configured to turn the compressor (4) off upon the cooler compartment
(2) temperature (TFF) reaching a compressor (4) halting cooler compartment (2) temperature (TFFcut-out) during the running duration of the compressor (4).
8. A cooler (1) according to any one of the preceding claims, characterized by at least one third heat sensor (10) measuring the surface temperature of the evaporator
(5).
9. A cooler (1) according to claim 8, characterized by the control unit (9) configured to not turn the fan (6) on until the evaporator (5)
surface temperature (TE) reaches a limit temperature (TEl), and to turn the fan (6) on upon the evaporator (5) surface temperature (TE) reaching said evaporator limit temperature (TEl), during the halted duration of the compressor (4).
10. A cooler (1) according to any one of the preceding claims, characterized by at least one heater (11) increasing during the defrosting process the temperature
in the vicinity of the evaporator (5) in order to defrost the snow forming around
the evaporator (5).
11. A cooler (1) according to claim 10, characterized by the control unit (9) configured to not turn the fan (6) on until the evaporator (5)
surface temperature (TE) reaches a limit temperature (TEl) or until the special compartment (3) temperature (TZD) reaches a lower limit temperature (TZD-ll), and to turn the fan (6) on upon the evaporator (5) surface temperature (TE) reaching said evaporator limit temperature (TEl) or upon the special compartment (3) temperature (TZD) reaching said special compartment lower limit temperature (TZD-ll) during defrosting.
12. A cooler (1) according to claim 11, characterized by the control unit (9) configured to turn the fan (6) off and to turn the heater (11)
on, after temperature homogeneity in the cooler compartment (2) is provided during
defrosting.
1. Ein Kühler (1) umfasst mindestens ein Kühlerfach (2), mindestens ein spezielles Fach (3), das in dem Kühlfach
(2) vorgesehen ist und auf einer niedrigeren Temperatur als das Kühlfach (2) gehalten
wird, mindestens einen Kompressor (4), der die Zirkulation eines Kältemittels durch
dessen Komprimierung ermöglicht, mindestens einen Verdampfer (5), der eine Kühlung
des Kühlfachs (2) ermöglicht, mindestens einen Lüfter (6), der eine Luftzirkulation
im Kühlfach (2) ermöglicht, mindestens einen ersten Wärmesensor (7), der die Temperatur
im Kühlfach (2) misst, und mindestens einen zweiten Wärmesensor (8), der die Temperatur
im Spezialfach (3) misst, mindestens eine Steuereinheit (9), die konfiguriert ist,
um die Ein- und Ausschaltzeiten des Lüfters (6) zumindest während der Betriebs- oder
Stillstandszeiten des Kompressors (4) zu bestimmen, durch Steuern der zumindest von
dem ersten Wärmesensor (7) und dem zweiten Wärmesensor (8) empfangenen Daten; gekennzeichnet ist es dadurch, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Lüfter (6) nicht einschaltet,
bis die Temperatur (TFF) des Kühlfachs (2) eine obere Grenztemperatur (TFF-ul) erreicht
oder bis die Temperatur (TZD) des Spezialfachs (3) eine untere Grenztemperatur (TZD-ll)
erreicht und den Lüfter (6) einzuschalten, wenn die Temperatur (TFF) des Kühlfachs
(2) die obere Grenztemperatur (TFF-ul) erreicht oder wenn die Temperatur (TZD) des
Spezialabteils (3) die untere Grenztemperatur (TZD-11) während der angehaltenen Dauer
des Kompressors (4) erreicht.
2. Ein Kühler (1), wie in Anspruch 1 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Lüfter (6) einschaltet, wenn
der Kompressor (4) aktiviert wird, nachdem eine bestimmte Zeitdauer (t1) nach der
Aktivierung des Kompressors (4) verstrichen ist.
3. Ein Kühler (1), wie in Anspruch 2 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Lüfter (6) für eine Dauer
(t2) eingeschaltet hält, nachdem der Lüfter (6) während der Laufzeit des Kompressors
(4) eingeschaltet wurde.
4. Ein Kühler (1), wie in Anspruch 3 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Lüfter (6) abschaltet, wenn
die Temperatur (TFF) des Kühlfachs (2) eine untere Grenztemperatur (TFF-ll) erreicht,
oder wenn die Temperatur (TZD) des Spezialfachs (3) eine obere Grenztemperatur (TZD-ul)
erreicht, nachdem der Lüfter (6) für eine Dauer (t2) während der Betriebsdauer des
Kompressors (4) eingeschaltet gehalten wurde.
5. Ein Kühler (1), wie in Anspruch 4 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Lüfter (6) einschaltet, bis
die Temperatur (TFF) des Kühlfachs (2) eine Temperatur des Lüfters (6) erreicht, die
das Kühlfach (2) anhält (TFANcut-out), wenn die Temperatur (TFF) des Kühlfachs (2)
höher ist als die des Lüfter (6) aktivierende Temperatur (TFANcut-in) des Kühlfachs
(2), wenn die Temperatur (TFF) des Kühlfachs (2) eine obere Grenztemperatur (TFF-ul)
erreicht, oder nach Ablauf einer maximalen Stillstandsdauer (t3) nach Abschalten des
Lüfters (6) während der Laufzeit des Kompressors (4).
6. Ein Kühler (1), wie in Anspruch 4 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Lüfter (6) während der Laufzeit
des Kompressors (4) einschaltet, wenn die Temperatur (TFF) des Spezialfachs (3) eine
Temperatur (TFF) des Kompressors (4) erreicht, die das Spezialfach (3) anhält ( TZDcut-out),
bevor die Temperatur (TFF) des Kühlfachs (2) eine Temperatur des Kompressors (4) erreicht,
die das Kühlfach (2) (TFFcut-out) anhält.
7. Ein Kühler (1), wie in den Ansprüchen 2 bis 6 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Kompressor (4) abschaltet,
wenn die Temperatur (TFF) des Kühlfachs (2) eine Temperatur (TFFcut-out) des Kühlfachs
(2) des Kompressors (4) erreicht, die während der Betriebsdauer des Kompressors (4)
anhält.
8. Ein Kühler (1), wie in einem der vorherigen Ansprüchen aufgeführt, ist dadurch gekennzeichnet, dass mindestens ein dritter Wärmesensor (10) die Oberflächentemperatur des Verdampfers
(5) misst.
9. Ein Kühler (1), wie in Anspruch 8 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Lüfter (6) nicht einschaltet,
bis die Oberflächentemperatur (TE) des Verdampfers (5) eine Grenztemperatur (TEI)
erreicht, und den Lüfter (6) einzuschalten, wenn die Oberflächentemperatur (TE) des
Verdampfers (5) die Verdampfergrenztemperatur (TE1) erreicht, während der Dauer des
Stillstands des Kompressors (4).
10. Ein Kühler (1), wie in einem der vorherigen Ansprüchen aufgeführt, ist dadurch gekennzeichnet, dass mindestens eine Heizung (11) während des Abtauvorgangs die Temperatur in der Umgebung
des Verdampfers (5) erhöht, um den sich um den Verdampfer (5) bildenden Schnee abzutauen.
11. Ein Kühler (1), wie in Anspruch 11 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) so konfiguriert ist, dass sie den Lüfter (6) nicht einschaltet,
bis die Oberflächentemperatur (TE) des Verdampfers (5) eine Grenztemperatur (TEI)
erreicht oder bis die Temperatur (TZD) des Spezialfachs (3) eine niedrigere Grenztemperatur
(TZD-ll) erreicht, und den Lüfter (6) einzuschalten, wenn die Oberflächentemperatur
(TE) des Verdampfers (5) die Verdampfergrenztemperatur (TE1) erreicht oder wenn die
Temperatur (TZD) des Spezialfachs (3) die untere Grenztemperatur (TZD-11) des Spezialfachs
während des Abtauens erreicht.
12. Ein Kühler (1), wie in Anspruch 11 aufgeführt, ist dadurch gekennzeichnet, dass die Steuereinheit (9) dazu konfiguriert ist, den Lüfter (6) abzuschalten und die
Heizung (11) einzuschalten, nachdem während des Abtauens eine Temperaturhomogenität
in dem Kühlfach (2) bereitgestellt ist.
1. Une glacière (1) comprenant au moins un compartiment réfrigérant (2), au moins un compartiment spécial (3) prévu
dans le compartiment réfrigérant (2) maintenu à une température inférieure à celle
du compartiment réfrigérant (2), au moins un compresseur (4) permettant de faire circuler
un fluide réfrigérant en le comprimant, au moins un évaporateur (5) permettant de
refroidir le compartiment réfrigérant (2), au moins un ventilateur (6) permettant
la circulation de l'air dans le compartiment réfrigérant (2), au moins un premier
capteur de chaleur (7) mesurant la température dans le compartiment réfrigérant (2)
et au moins un second capteur de chaleur (8) mesurant la température dans le compartiment
spécial (3), au moins une unité de commande (9) configurée pour déterminer les moments
où le ventilateur (6) est mis en marche et arrêté au moins pendant les durées de fonctionnement
ou d'arrêt du compresseur (4), en contrôlant les données reçues au moins du premier
capteur de chaleur (7) et du second capteur de chaleur (8) caractérisé par l'unité de commande (9) configurée pour ne pas mettre en marche le ventilateur (6)
tant que la température du compartiment réfrigérant (2) (TFF) n'a pas atteint une température limite supérieure (TFF-ul) ou tant que la température du compartiment spécial (3) (TZD) n'a pas atteint une température limite inférieure (TZD-ll), et de mettre en marche le ventilateur (6) lorsque la température du compartiment
réfrigérant (2) (TFF) atteint ladite température limite supérieure (TFF-ul) ou lorsque la température du compartiment spécial (3) (TZD) atteint ladite température limite inférieure (TZD-ll), pendant la durée d'arrêt du compresseur (4).
2. Une glacière (1) selon la déclaration 1, caractérisée par l'unité de commande (9) configurée pour mettre en marche le ventilateur (6) lorsque
le compresseur (4) est activé, après l'écoulement d'une certaine durée (t1) suivant l'activation du compresseur (4).
3. Une glacière (1) selon la déclaration 2, caractérisée par l'unité de commande (9) configurée pour maintenir le ventilateur (6) en marche pendant
une durée (t2), après avoir mis en marche le ventilateur (6) pendant la durée de fonctionnement
du compresseur (4).
4. Une glacière (1) selon la déclaration 3, caractérisée par l'unité de commande (9) configurée pour arrêter le ventilateur (6) lorsque la température
du compartiment réfrigérant (2) (TFF) atteint une température limite inférieure (TFF-ll), ou lorsque la température du compartiment spécial (3) (TZD) atteint une température limite supérieure (TZD-ul), après que le ventilateur (6) a été maintenu en marche pendant une durée (t2) au cours de la durée de fonctionnement du compresseur (4).
5. Une glacière (1) selon la déclaration 4, caractérisée par le fait que l'unité de commande (9) est configurée pour mettre en marche le ventilateur (6) jusqu'à
ce que la température du compartiment de la glacière (2) (TFF) atteigne une température du compartiment de la glacière (2) d'arrêt du ventilateur
(6) (TFANcut-out), si la température du compartiment réfrigérant (2) (TFF) est supérieure à la température du compartiment réfrigérant (2) activée par le ventilateur
(6) (TFANcut-in) lorsque la température du compartiment réfrigérant (2) (TFF) atteint une température limite supérieure (TFF-ul) ou à l'issue d'une durée maximale d'arrêt (t3), après l'arrêt du ventilateur (6) pendant la durée de fonctionnement du compresseur
(4).
6. Une glacière (1) selon la déclaration 4, caractérisée par l'unité de commande (9) configurée pour mettre en marche le ventilateur (6) pendant
la durée de fonctionnement du compresseur (4), si la température du compartiment spécial
(3) (TFF) atteint une température de compartiment spécial (3) d'arrêt du compresseur (4) (TZDcut-out) avant que la température du compartiment réfrigérant (2) (TFF) n'atteigne une température de compartiment réfrigérant (2) d'arrêt du compresseur
(4) (TFFcut-out).
7. Une glacière (1) selon l'une des déclarations 2 à 6, caractérisée par l'unité de commande (9) configurée pour arrêter le compresseur (4) lorsque la température
du compartiment (2) de la glacière (TFF) atteint une température d'arrêt du compresseur (4) du compartiment (2) de la glacière
(TFFcut-out) pendant la durée de fonctionnement du compresseur (4).
8. Une glacière (1) selon l'une quelconque des déclarations précédentes, caractérisée par au moins un troisième capteur de chaleur (10) mesurant la température de surface
de l'évaporateur (5).
9. Une glacière (1) selon la déclaration 8, caractérisée par l'unité de commande (9) configurée pour ne pas mettre en marche le ventilateur (6)
avant que la température de surface (TE) de l'évaporateur (5) n'atteigne une température limite (TEl), et pour mettre en marche le ventilateur (6) lorsque la température de surface (TE) de l'évaporateur (5) atteint ladite température limite de l'évaporateur (TEl), pendant la durée d'arrêt du compresseur (4).
10. Une glacière (1) selon l'une quelconque des déclarations précédentes, caractérisée par au moins un dispositif de chauffage (11) augmentant pendant le processus de dégivrage
la température à proximité de l'évaporateur (5) afin de dégivrer la neige se formant
autour de l'évaporateur (5).
11. Une glacière (1) selon la déclaration 10, caractérisée par l'unité de commande (9) configurée pour ne pas mettre le ventilateur (6) en marche
avant que la température de surface de l'évaporateur (5) (TE) n'atteigne une température limite (TEl) ou que la température du compartiment spécial (3) (TZD) n'atteigne une température limite inférieure (TZD-ll), et de mettre le ventilateur (6) en marche lorsque la température de surface (TE) de l'évaporateur (5) atteint ladite température limite de l'évaporateur (TEl) ou lorsque la température du compartiment spécial (3) (TZD) atteint ladite température limite inférieure du compartiment spécial (TZD-ll) pendant le dégivrage.
12. Une glacière (1) selon la déclaration 11, caractérisée par l'unité de commande (9) configurée pour éteindre le ventilateur (6) et allumer le
chauffage (11), après que l'homogénéité de la température dans le compartiment de
la glacière (2) est assurée pendant le dégivrage.