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EP 1 070 925 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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01.09.2004 Bulletin 2004/36 |
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Date of filing: 09.06.2000 |
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International Patent Classification (IPC)7: F25D 21/00 |
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Automatic refrigeration apparatus with defrost control
Automatisches Kältegerät mit Abtausteuerung
Appareil frigorifique automatique avec commande de dégivrage
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Designated Contracting States: |
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DE FR GB IT |
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Priority: |
20.07.1999 IT PN990062
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Date of publication of application: |
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24.01.2001 Bulletin 2001/04 |
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Proprietor: ELECTROLUX PROFESSIONAL S.p.A. |
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33170 Pordenone (IT) |
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Inventors: |
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- Pacorich, Massimo
33033 Codroipo, Udine (IT)
- Spolaor, Fabio
30020 Torre di Mosto, Venezia (IT)
- Tesolin, Luigi
33083 Chions, Pordenone (IT)
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Representative: Giugni, Valter et al |
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PROPRIA S.r.l.,
Via Mazzini 13 33170 Pordenone 33170 Pordenone (IT) |
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References cited: :
EP-A- 0 707 183 US-A- 4 327 556 US-A- 5 231 844
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US-A- 4 297 852 US-A- 4 528 821 US-A- 5 809 789
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] The present invention refers to a refrigeration apparatus comprising a refrigerating
circuit, preferably of the type with fan-cooled evaporator, associated to control
means to perform automatic defrost phases of the same evaporator.
[0002] Defrosting the evaporator is generally known to become necessary owing to frozen
water vapour accumulating on the surface of same evaporator (thereby bringing about
the so-called "packing" or icing effect), whose heat-exchange efficiency with the
ambient to be refrigerated, ie. cooled down, therefore decreases significantly, thereby
affecting the performance of the whole apparatus to a substantial extent.
[0003] It is therefore a commonly known practice to let the evaporator undergo defrosting
at more or less regular intervals by having the related defrost cycles started and
carried out automatically through the use of appropriate means, such as for instance
an electric heating element or hot-gas systems.
[0004] In the most simple cases, automatic defrost phases are started and terminated at
pre-determined, regular time intervals. As an alternative thereto, the defrost phases
can be caused to terminate on the basis of a thermostatic control, for instance on
the basis of the surface temperature of the evaporator itself.
[0005] Examples of such known solutions are disclosed in US 4,297,852, US 4,528,821, US
4,327,556, EP 0 707 183 and US 5,231,844, wherein automatic defrost phases are substantially
controlled on the basis of time measured as the duration period of a certain operation,
such as door opening time, compressor run time, duration of the previous defrosting
operation.
[0006] These solutions can actually be implemented with simple means, but generally turn
out to be rather inaccurate since they do not take into due account the actual extent
of packing, or icing, of the evaporator, which can vary in a substantial manner depending
on the operating conditions of the refrigeration apparatus. The amount of frost that
forms on the evaporator can in fact vary depending on a whole set of parameters, such
as the relative ambient humidity and the humidity released by the food items stored
in the apparatus, but in particular depending on the number of openings of the door
of the apparatus and the duration of these openings.
[0007] So, after all, if evaporator defrosting is not correlated to the actual operating
conditions, the same defrost process can most easily take place either all too frequently
or all too seldom with respect to the real needs. In any case, the result is unfailingly
a waste of energy and a loss of efficiency by the apparatus, apart of course from
possible alterations in the storage quality and preservability of the foodstuffs.
[0008] In order to correlate defrost in a manner that is more accurately correlated to the
amount of frost accumulated on the evaporator, the solution has been suggested, for
instance in US-A-5 692 385, according to which defrost is started in response to variations
in the static pressure of the air circulating through the evaporator. As an alternative
thereto, JP-A-09159328 teaches to control defrosting by making use of a neural-network
control rule that is driven by temperatures and air volumes measured at different
points in the refrigeration apparatus.
[0009] Anyway, these prior-art solutions require the use of particularly sophisticated,
critical and expensive measurement instruments and control methods, such as to practically
discourage a utilization thereof in refrigeration apparatuses of usual home or commercial
type.
[0010] It therefore is a main purpose of the present invention to provide an automatic refrigeration
apparatus with an improved defrost control, which is at the same time simple, reliable
and accurate, while taking substantially into account the actual operating conditions
of the same apparatus.
[0011] According to the present invention, this aim is reached in an automatic refrigeration
apparatus with defrost control having the characteristics as recited in the appended
claims.
[0012] Anyway, features and advantages of the present invention can be more readily understood
from the description that is given below by way of non-limiting example with reference
to the accompanying drawings, in which:
- Figure 1 is a schematical view of a preferred embodiment of a refrigeration apparatus
adapted to implement the present invention; and
- Figure 2 is a block diagram illustrating schematically the functional correlation
between various control means of the refrigeration apparatus of Figure 1.
[0013] Referring now in particular to Figure 1, the refrigeration apparatus is for example
a refrigerator, preferably of a commercial or professional type, but it can also be
a freezer or a combination refrigerator/freezer appliance.
[0014] The apparatus comprises an outer casing 3 provided mainly with at least a compartment
4 to store items such as foodstuffs therein.
[0015] Located above the compartment 4 there is provided a so-called technical or machine
compartment 5 accommodating a refrigerating circuit that preferably is of the type
comprising such functional component parts as a compressor 6, an evaporator 7 and
a condenser 8.
[0016] The evaporator 7 is preferably of the finned type and is fan-assisted by a fan 9,
which is adapted to circulate according to a closed-loop pattern inside the compartment
4, through appropriate apertures 19 provided in the top wall of the same compartment,
a flow of air that is cooled by the evaporator. The latter is preferably associated
to a further functional component part, such as an electric defrost heating element
10.
[0017] The refrigeration apparatus further comprises a plurality of probes, or sensors,
which are generally indicated at 12, 13, 14 in the Figures, and which are adapted
to detect the temperature Tc of the air in the compartment 4, the temperature of the
evaporator 7 and the opened and closed condition of at least an access door (generally
indicated at 22 in Figure 1) of the compartment 4, respectively.
[0018] In a preferred manner, the apparatus also comprises further probes 15 and 16, which
are adapted to detect the temperature of the condenser 8 and the temperature of the
ambient in which the apparatus itself is installed, respectively.
[0019] In particular, according to a feature of the present invention the probe 13 is adapted
to detect the contact temperature Te of the evaporator 7 in correspondence of its
zone 19 at which the refrigerant gas flows into the evaporator coming from the condenser
8 through a flow throttling member 11. As this will more readily understood at a later
point in this description, this feature of the invention enables the operating conditions
of the evaporator 7 to be detected in a particularly accurate and quick manner, since,
as this has also been found experimentally, under determined operating conditions
the above cited inflow zone 19 represents the point at which the temperature Te of
the evaporator is more stable and meaningful.
[0020] Referring now also to Figure 2, the probes 12 - 16 can be noticed to be adapted to
drive associated inputs of control means 17 with respective reference signals that
are indicative of the corresponding operational quantities being controlled. Correspondingly,
and according to a programming scheme that will be described in greater detail further
on, said control means 17 are adapted to actuate the functional component parts 1
- 10 associated to the refrigerating circuit so as to keep the cold storage compartment
4 conditioned to pre-determined optimum average values of temperature and, possibly,
also moisture. In a per sè known manner, and according to a temperature set by means
of the control means 17, this is obtained mainly through phases of actuation, ie.
energization of the compressor 6 and the fan 9 with defrost phases of the evaporator
7 included therebetween. In the preferred example being described here, the defrost
phases are mainly brought about by de-energizing, ie. switching off the compressor
6 and energizing, ie. switching on the electric heating element 10.
[0021] As illustrated in Figure 2, the control means 17 comprise preferably a microprocessor
18 (for example, of the Motorola 6805B32 type) that is driven by the probes 12 - 16
and comprises a plurality of outputs which are in turn adapted to drive respective
functional component parts 6, 9, 10.
[0022] Obviously, said control means 17 will also comprise a setting input 20 adapted to
be driven by selection means 21. These selection means may for instance comprise a
keyboard or a push-button unit, or any appropriate so-called "user interface" device,
by means of which the user is able to easily set (with an operation that is represented
schematically by the arrow 25 in Figure 2) the storage temperature that should desirably
prevail in the compartment 4 under steady-state conditions.
[0023] The present invention is based mainly on the consideration that, to the purpose of
providing optimum defrost phases that enable efficiency losses of the refrigeration
apparatus to be minimized along with the resulting alterations in the quality of the
stored items, it is of paramount importance that the instants be most accurately determined
at which it is appropriate for each defrost phase to be started. As this has been
found even experimentally, a condition of such a packing, ie. excessive icing of the
evaporator 7 as to urge the starting of a defrost phase occurs in different manners
depending on two main different operating conditions, ie.:
- the apparatus is subject to one or more openings of the door 22, so as this occurs
during the regular use of a refrigerator, or the like. Theoretically, it is only through
an opening of the door 22 that humidity gets into the storage compartment 4 (where
it freezes down on the evaporator);
- the apparatus is operating with its door 22 closed, as this happens for instance during
periods in which the user is away. Under these conditions, in practice, air (and humidity)
infiltrations can take place through the gaskets of the door 22 and/or humidity can
be released by the food items stored in the storage compartment 4. Also in this case,
therefore, the need arises for the evaporator 7 to be duly defrosted, but this shall
of course happen in a different manner, ie. according to different criteria with respect
to the operating mode described in connection with the preceding condition.
[0024] According to the present invention, as this has also been found experimentally, the
need for the evaporator to be defrosted under the two above-described different operating
conditions is discriminated on the basis of respective, significantly different parameters.
Such a discrimination can be carried out by detecting, through the sensor 14, whether
the refrigeration apparatus operates in a condition in which its door 22 is substantially
open or in a condition in which the same door can be considered as being substantially
closed. To such a purpose, the microprocessor 18 can be easily set so as to be able
to control the beginning of the defrost phases according to a first or a second mode
of operation depending on the probe 14 detecting an open or closed condition of the
door 22. In a preferred manner, the microprocessor 18 is adapted to select the above
cited first mode of operation, when the door 22 is sensed as being substantially open,
throughout a period lasting until a certain time (for instance, 30 minutes) has elapsed
from the door having been closed again. Once this pre-determined additional period
of time (which is preferably adjustable) has elapsed, the same microprocessor 18 is
adapted to select the above cited second mode of operation. It should be noticed that,
according to actual needs and the various operating conditions, the term "substantially
open door" as used above can be intended to mean the exact instant in which the door
is opened, possibly with an appropriate delay time.
[0025] When the first defrost control mode is so selected (ie. in a substantially open condition
of the door 22), the microprocessor is preferably so set as to determine the beginning
of a defrost phase upon it detecting, through the corresponding signal delivered by
the probe 13, that the afore cited temperature Te of the evaporator 7 decreases at
a rate which is faster than a pre-determined value S. In other words, such a rate
corresponds to the slope of the curve representing the variations vs. time of the
temperature Te. This can be performed, in a per sè known manner for those of ordinary
skill in the art, by repeatedly comparing the values of the temperature Te at pre-set
time intervals t, eg. every 5 minutes.
[0026] It should be noticed that this mode of control is accurate and quick in its response,
since it is not affected by the temperature rise that takes place in the compartment
4 when the door of the apparatus is opened. Furthermore, such a fast-rate decrease
of the temperature Te indicates that, owing to a packing or heavily iced condition,
the evaporator 7 is no longer in any acceptable heat-exchanging state with the compartment
4 to ensure an appropriate cooling down of the same compartment.
[0027] When the second defrost control mode is selected (ie. in a substantially closed condition
of the door 22), the microprocessor 18 is preferably so set as to determine the beginning
of a defrost phase upon it detecting, through the corresponding signals delivered
by the probes 13 and 12 that the difference between the temperature Te of the evaporator
and the actual temperature Tc in the storage compartment 4 exceeds a pre-determined
threshold value D, which may for instance be set at approx. 2-3°C.
[0028] It should be noticed that this control mode is particularly accurate and effective
when the door of the apparatus is closed, since it enables the actual heat-exchange
process to be measured, which is taking place between the evaporator 7 and the storage
compartment 4, whose temperature (as opposed to what happens in the first control
mode) is not substantially affected by warm air entering the same compartment from
the outside ambient.
[0029] In any case, in the non-limiting example that is being described, the microprocessor
18 determines the beginning of the defrost phase by switching off the compressor 6
and the fan 9, while switching on the electric heating element 10.
[0030] In both modes of defrost control, the end of each so started defrost phase can be
determined in any of a variety of manners suiting the particular purpose, preferably
upon the microprocessor 18 detecting, through the signal delivered by the probe 13,
that the temperature Te of the evaporator has risen beyond a pre-established threshold
value F, eg. approx. 20°C.
[0031] The general operation of the apparatus can at this point go on in a substantially
usual manner, that is not described here for reasons of greater simplicity.
[0032] It will of course be appreciated that the above described refrigeration apparatus
may be subject to a number of modifications without departing from the scope of the
present invention.
[0033] So, by mere way of example the probe 14 may be comprised of a usual microswitch or
any other equivalent (optical, magnetic, etc.) monitoring device adapted to sense
or detect the above cited open or closed conditions of the door 22.
1. Automatic refrigeration apparatus, comprising at least a refrigerating circuit provided
with at least an evaporator (7) and driven by control means (17) to cool down to a
pre-set steady-state temperature at least a storage compartment (4) accessible through
at least a door (22), said control means being driven with respective signals by a
plurality of sensor means and being in turn adapted to drive the functional component
parts of the apparatus in view of carrying out automatic evaporator defrost phases,
said sensor means comprising a monitoring device (14) adapted to detect an open or
closed condition of said door, said control means (17) being adapted to drive the
functional component parts (6, 9, 10), in response to the signals received from said
sensor means (12-16), so as to selectively determine the beginning of said defrost
phases of the evaporator (7) according to a first or a second operating mode when
said monitoring device (14) detects a substantially open or a substantially closed
condition of the door (22) of said storage compartment (4), respectively, characterized in that said sensor means comprise at least a first probe (13) adapted to detect the contact
temperature (Te) of the evaporator (7) at a refrigerant-gas inflow zone (19) thereof,
in said substantially open condition of the door (22), the control means (17) being
adapted to determine the beginning of said defrost phases upon they detecting, through
the corresponding signal delivered by the first probe (13), the above cited temperature
(Te) of the evaporator (7) to decrease at a faster rate than a pre-established value
(S).
2. Automatic refrigeration apparatus, comprising at least a refrigerating circuit provided
with at least an evaporator (7) and driven by control means (17) to cool down to a
pre-set steady-state temperature at least a storage compartment (4) accessible through
at least a door (22), said control means being driven with respective signals by a
plurality of sensor means and being in turn adapted to drive the functional component
parts of the apparatus in view of carrying out automatic evaporator defrost phases,
said sensor means comprising a monitoring device (14) adapted to detect an open or
closed condition of said door, said control means (17) being adapted to drive the
functional component parts (6, 9, 10), in response to the signals received from said
sensor means (12-16), so as to selectively determine the beginning of said defrost
phases of the evaporator (7) according to a first or a second operating mode when
said monitoring device (14) detects a substantially open or a substantially closed
condition of the door (22) of said storage compartment (4), respectively, characterized in that said sensor means comprise at least a first probe (13) adapted to detect the contact
temperature (Te) of the evaporator (7) at a refrigerant-gas inflow zone (19), and
at least a second probe (12), adapted to detect the temperature (Tc) in said storage
compartment (4), in said substantially closed condition of the door (22), the control
means (17) being adapted to determine the beginning of said defrost phases upon they
detecting, through the corresponding signals delivered by the first and the second
probe (13, 12), the difference between said temperature (Te) of the evaporator (7)
and said temperature (Tc) in the storage compartment (4) to exceed a pre-established
threshold value (D).
3. Automatic refrigeration apparatus according to any of the preceding claims, characterized in that said control means (17) are adapted to drive the functional component parts (6, 9,
10) so as to control said defrost phases of the evaporator (7) according to said first
mode of operation, when the door (22) is substantially open, up to a certain period
of time after the same door has been closed again, after which additional period of
time the same control means (17) are then adapted to control said defrost phases according
to said second mode of operation.
4. Automatic refrigeration apparatus, comprising at least a refrigerating circuit provided
with at least an evaporator (7) and driven by control means (17) to cool down to a
pre-set steady-state temperature at least a storage compartment (4) accessible through
at least a door (22), said control means being driven with respective signals by a
plurality of sensor means and being in turn adapted to drive the functional component
parts of the apparatus in view of carrying out automatic evaporator defrost phases,
said sensor means comprising a monitoring device (14) adapted to detect an open or
closed condition of said door, said control means (17) being adapted to drive the
functional component parts (6, 9, 10) , in response to the signals received from said
sensor means (12-16), so as to selectively determine the beginning of said defrost
phases of the evaporator (7) according to a first or a second operating mode when
said monitoring device (14) detects a substantially open or a substantially closed
condition of the door (22) of said storage compartment (4), respectively, characterized in that said sensor means comprise at least a first probe (13) adapted to detect the contact
temperature (Te) of the evaporator (7) at a refrigerant-gas inflow zone (19) thereof,
the control means (17) being adapted to determine the end of said defrost phases upon
they detecting, through the corresponding signal delivered by said first probe (13),
the above cited temperature (Te) of the evaporator (7) to exceed a pre-established
threshold value (F).
1. Automatische Kühlvorrichtung, welche mindestens einen Kühlkreislauf umfasst, der mit
mindestens einem Verdampfer (7) ausgestattet ist und von Steuerungsmitteln (17) angesteuert
wird, um mindestens ein Aufbewahrungsfach (4), welches durch mindestens eine Tür (22)
zugänglich ist, auf eine vorher eingestellte Dauerzustandstemperatur abzukühlen, wobei
die besagten Steuerungsmittel durch zugehörige Signale von einer Anzahl von Sensormitteln
angesteuert werden und ihrerseits so ausgelegt sind, dass sie die funktionellen Bestandteile
der Vorrichtung dergestalt ansteuern, dass automatische Phasen zum Abtauen des Verdampfers
ablaufen, wobei die besagten Sensormittel eine Überwachungsvorrichtung (14) umfassen,
die so ausgelegt ist, dass sie den offenen oder geschlossenen Zustand der besagten
Tür erkennen, wobei die besagten Steuerungsmittel (17) so ausgelegt sind, dass sie
die funktionellen Bestandteile (6, 9, 10) als Reaktion auf die von den besagten Sensormitteln
(12 - 16) aufgenommenen Signalen dergestalt ansteuern, dass sie auf selektive Weise
den Beginn der besagten Abtauphasen des Verdampfers (7) gemäß einem ersten oder einem
zweiten Betriebsmodus festlegen, wenn die besagte Überwachungsvorrichtung (14) einen
im Wesentlichen offenen bzw. einen im Wesentlichen geschlossenen Zustand der Tür (22)
des besagten Aufbewahrungsfachs (4) erkennt, dadurch gekennzeichnet, dass die besagten Sensormittel mindestens eine erste Sonde (13) umfassen, welche so ausgelegt
ist, dass sie die Kontakttemperatur (Te) des Verdampfers (7) in seinem Kühlgas-Einströmbereich
(19) bei besagtem, im Wesentlichen offenen Zustand der Tür (22) feststellt, wobei
die Steuerungsmittel (17) so ausgelegt sind, dass sie den Beginn der besagten Abtauphasen
festlegen, sobald sie durch das entsprechende, von der ersten Sonde (13) gelieferte
Signal erkennen, dass die oben angeführte Temperatur (Te) des Verdampfers (7) mit
einer schnelleren Änderungsgeschwindigkeit als ein vorher festgelegter Wert (S) absinkt.
2. Automatische Kühlvorrichtung, welche mindestens einen Kühlkreislauf umfasst, der mit
mindestens einem Verdampfer (7) ausgestattet ist und von Steuerungsmitteln (17) angesteuert
wird, um mindestens ein Aufbewahrungsfach (4), welches durch mindestens eine Tür (22)
zugänglich ist, auf eine vorher eingestellte Dauerzustandstemperatur abzukühlen, wobei
die besagten Steuerungsmittel durch zugehörige Signale von einer Anzahl von Sensormitteln
angesteuert werden und ihrerseits so ausgelegt sind, dass sie die funktionellen Bestandteile
der Vorrichtung dergestalt ansteuern, dass automatische Phasen zum Abtauen des Verdampfers
ablaufen, wobei die besagten Sensormittel eine Überwachungsvorrichtung (14) umfassen,
die so ausgelegt ist, dass sie den offenen oder geschlossenen Zustand der besagten
Tür erkennen, wobei die besagten Steuerungsmittel (17) so ausgelegt sind, dass sie
die funktionellen Bestandteile (6, 9, 10) als Reaktion auf die von den besagten Sensormitteln
(12 - 16) aufgenommenen Signalen dergestalt ansteuern, dass sie auf selektive Weise
den Beginn der besagten Abtauphasen des Verdampfers (7) gemäß einem ersten oder einem
zweiten Betriebsmodus festlegen, wenn die besagte Überwachungsvorrichtung (14) einen
im Wesentlichen offenen bzw. einen im Wesentlichen geschlossenen Zustand der Tür (22)
des besagten Aufbewahrungsfachs (4) erkennt, dadurch gekennzeichnet, dass die besagten Sensormittel mindestens eine erste Sonde (13) umfassen, welche so ausgelegt
ist, dass sie die Kontakttemperatur (Te) des Verdampfers (7) in seinem Kühlgas-Einströmbereich
(19) erkennt, sowie mindestens eine zweite Sonde (12), die so ausgelegt ist, dass
sie die Temperatur (Tc) in dem besagten Aufbewahrungsfach (4) im besagten geschlossenen
Zustand der Tür (22) erkennt, wobei die Steuerungsmittel (17) so ausgelegt sind, dass
sie den Beginn der besagten Abtauphasen festlegen, sobald sie über die entsprechenden
Signale, die von der ersten und der zweiten Sonde (13, 12) geliefert werden, feststellen,
dass die Differenz zwischen der besagten Temperatur (Te) des Verdampfers (7) und der
besagten Temperatur (Tc) im Aufbewahrungsfach (4) einen vorher eingestellten Schwellwert
(D) übersteigt.
3. Automatische Kühlvorrichtung gemäß einem beliebigen der vorhergehenden Ansprüche,
dadurch gekennzeichnet, dass die besagten Steuerungsmittel (17) so ausgelegt sind, dass sie die funktionellen
Bestandteile (6, 9, 10) dergestalt ansteuern, dass die besagten Abtauphasen des Verdampfers
(7) gemäß dem besagten ersten Betriebsmodus, wenn nämlich die Tür (22) im Wesentlichen
geöffnet ist, über eine gewisse Zeitspanne, nachdem die Tür wieder geschlossen worden
ist, gesteuert werden, wobei nach dieser zusätzliche Zeitspanne die Steuerungsmittel
(17) dann so angepasst werden, dass sie die besagten Abtauphasen gemäß dem besagten
zweiten Betriebsmodus steuern.
4. Automatische Kühlvorrichtung, welche mindestens einen Kühlkreislauf umfasst, der mit
mindestens einem Verdampfer (7) ausgestattet ist und von Steuerungsmitteln (17) angesteuert
wird, um mindestens ein Aufbewahrungsfach (4), welches durch mindestens eine Tür (22)
zugänglich ist, auf eine vorher eingestellte Dauerzustandstemperatur abzukühlen, wobei
die besagten Steuerungsmittel durch zugehörige Signale von einer Anzahl von Sensormitteln
angesteuert werden und ihrerseits so ausgelegt sind, dass sie die funktionellen Bestandteile
der Vorrichtung dergestalt ansteuern, dass automatische Phasen zum Abtauen des Verdampfers
ablaufen, wobei die besagten Sensormittel eine Überwachungsvorrichtung (14) umfassen,
die so ausgelegt ist, dass sie den offenen oder geschlossenen Zustand der besagten
Tür erkennen, wobei die besagten Steuerungsmittel (17) so ausgelegt sind, dass sie
die funktionellen Bestandteile (6, 9, 10) als Reaktion auf die von den besagten Sensormitteln
(12 - 16) aufgenommenen Signalen dergestalt ansteuern, dass sie auf selektive Weise
den Beginn der besagten Abtauphasen des Verdampfers (7) gemäß einem ersten oder einem
zweiten Betriebsmodus festlegen, wenn die besagte Überwachungsvorrichtung (14) einen
im Wesentlichen offenen bzw. einen im Wesentlichen geschlossenen Zustand der Tür (22)
des besagten Aufbewahrungsfachs (4) erkennt, dadurch gekennzeichnet, dass die besagten Sensormittel mindestens eine erste Sonde (13) umfassen, welche so ausgelegt
ist, dass sie die Kontakttemperatur (Te) des Verdampfers (7) an seinem Kühlgas-Einströmbereich
(19) feststellen, wobei die Steuerungsmittel (17) so ausgelegt sind, dass sie das
Ende der besagten Abtauphasen festlegen, sobald sie über das entsprechende Signal,
das von der besagten ersten Sonde (13) geliefert wird, feststellen, dass die oben
angegebene Temperatur (Te) des Verdampfers (7) einen vorher festgelegten Schwellwert
(F) überschreitet.
1. Dispositif de réfrigération automatique, comportant au moins un circuit réfrigérant
muni d'au moins un évaporateur (7) et entraîné par des moyens de commande (17) pour
refroidir jusqu'à une température en régime permanent préétablie au moins un compartiment
de stockage (4) accessible par l'intermédiaire d'au moins une porte (22), lesdits
moyens de commande étant entraînés à l'aide de signaux respectifs par une pluralité
de moyens capteurs et étant à leur tour adaptés pour entraîner les parties constituantes
fonctionnelles du dispositif en vue d'effectuer des phases de décongélation d'évaporateur
automatiques, lesdits moyens capteurs comportant un dispositif de surveillance (14)
adapté pour détecter une condition ouverte ou fermée de ladite porte, lesdits moyens
de commande (17) étant adaptés pour entraîner les parties constituantes fonctionnelles
(6, 9, 10), en réponse aux signaux reçus depuis lesdits moyens capteurs (12-16), de
manière à déterminer de façon sélective le début desdites phases de décongélation
de l'évaporateur (7) conformément à un premier ou un second mode de fonctionnement
lorsque ledit dispositif de surveillance (14) détecte une condition sensiblement ouverte
ou sensiblement fermée de la porte (22) dudit compartiment de stockage (4), respectivement,
caractérisé en ce que lesdits moyens capteurs comportent au moins une première sonde (13) adaptée pour
détecter la température de contact (Te) de l'évaporateur (7) dans une zone d'admission
de gaz réfrigérant (19) de celui-ci, dans ladite condition sensiblement ouverte de
la porte (22), les moyens de commande (17) étant adaptés pour déterminer le début
desdites phases de décongélation lorsqu'ils détectent, par l'intermédiaire du signal
correspondant délivré par la première sonde (13), que la température citée ci-dessus
(Te) de l'évaporateur (7) diminue à une vitesse plus rapide qu'une valeur préétablie
(S).
2. Dispositif de réfrigération automatique, comportant au moins un circuit réfrigérant
muni d'au moins un évaporateur (7) et entraîné par des moyens de commande (17) pour
refroidir jusqu'à une température en régime permanent préétablie au moins un compartiment
de stockage (4) accessible par l'intermédiaire d'au moins une porte (22), lesdits
moyens de commande étant entraînés à l'aide de signaux respectifs par une pluralité
de moyens capteurs et étant à leur tour adaptés pour entraîner les parties constituantes
fonctionnelles du dispositif en vue d'effectuer des phases de décongélation d'évaporateur
automatiques, lesdits moyens capteurs comportant un dispositif de surveillance (14)
adapté pour détecter une condition ouverte ou de fermée de ladite porte, lesdits moyens
de commande (17) étant adaptés pour entraîner les parties constituantes fonctionnelles
(6, 9, 10), en réponse aux signaux reçus depuis lesdits moyens capteurs (12-16), de
manière à déterminer de façon sélective le début desdites phases de décongélation
de l'évaporateur (7) conformément à un premier ou un second mode de fonctionnement
lorsque ledit dispositif de surveillance (14) détecte une condition sensiblement ouverte
ou sensiblement fermée de la porte (22) dudit compartiment de stockage (4), respectivement,
caractérisé en ce que lesdits moyens capteurs comportent au moins une première sonde (13), adaptée pour
détecter la température de contact (Te) de l'évaporateur (7) dans une zone d'admission
de gaz réfrigérant (19), et au moins une seconde sonde (12), adaptée pour détecter
la température (Tc) dans ledit compartiment de stockage (4), dans ladite condition
sensiblement fermée de la porte (22), les moyens de commande (17) étant adaptés pour
déterminer le début desdites phases de décongélation lorsqu'ils détectent, par l'intermédiaire
des signaux correspondants délivrés par la première et la seconde sonde (13, 12),
que la différence entre ladite température (Te) de l'évaporateur (7) et ladite température
(Tc) dans le compartiment de stockage (4) dépasse une valeur de seuil préétablie (D).
3. Dispositif de réfrigération automatique selon l'une quelconque des revendications
précédentes, caractérisé en ce que lesdits moyens de commande (17) sont adaptés pour entraîner les parties constituantes
fonctionnelles (6, 9, 10) de manière à commander lesdites phases de décongélation
de l'évaporateur (7) conformément audit premier mode de fonctionnement, lorsque la
porte (22) est sensiblement ouverte, jusqu'à une certaine période de temps après que
cette même porte ait été fermée à nouveau, après laquelle période supplémentaire de
temps, les mêmes moyens de commande (17) sont alors adaptés pour commander lesdites
phases de décongélation conformément audit second mode de fonctionnement.
4. Dispositif de réfrigération automatique, comportant au moins un circuit réfrigérant
muni d'au moins un évaporateur (7) et entraîné par des moyens de commande (17) pour
refroidir jusqu'à une température en régime permanent préétablie au moins un compartiment
de stockage (4) accessible par l'intermédiaire d'au moins une porte (22), lesdits
moyens de commande étant entraînés à l'aide de signaux respectifs par une pluralité
de moyens capteurs et étant à leur tour adaptés pour entraîner les parties constituantes
fonctionnelles du dispositif en vue d'effectuer des phases de décongélation d'évaporateur
automatiques, lesdits moyens capteurs comportant un dispositif de surveillance (14)
adapté pour détecter une condition ouverte ou fermée de ladite porte, lesdits moyens
de commande (17) étant adaptés pour entraîner les parties constituantes fonctionnelles
(6, 9, 10), en réponse aux signaux reçus depuis lesdits moyens capteurs (12-16), de
manière à déterminer de façon sélective le début desdites phases de décongélation
de l'évaporateur (7) conformément à un premier ou un second mode de fonctionnement
lorsque ledit dispositif de surveillance (14) détecte une condition sensiblement ouverte
ou sensiblement fermée de la porte (22) dudit compartiment de stockage (4), respectivement,
caractérisé en ce que lesdits moyens capteurs comportent au moins une première sonde (13) adaptée pour
détecter la température de contact (Te) de l'évaporateur (7) dans une zone d'admission
de gaz réfrigérant (19) de celui-ci, les moyens de commande (17) étant adaptés pour
déterminer la fin desdites phases de décongélation lorsqu'ils détectent, par l'intermédiaire
du signal correspondant délivré par ladite première sonde (13), que la température
citée ci-dessus (Te) de l'évaporateur (7) dépasse une valeur de seuil préétablie (F).

