Field of the invention
[0001] The invention relates to a heating system comprising an enclosure in which there
is an air circuit, the said heating system allowing the heating of the air external
to the enclosure and of a liquid, the said air circuit incorporating:
- a heating body,
- a heat exchanger suited to the exchange of heat between the air of the air circuit
and the liquid,
- forced-circulation means allowing a forced circulation of air in the air circuit,
the said enclosure comprising a first and a second opening each of which is provided
with shutoff means, the said openings allowing communication between the air external
to the enclosure and the air circuit.
[0002] The invention also relates to a method of heating air and a liquid, the said heating
method using a heating system according to the invention.
Prior art
[0003] Heating systems such as wood-burning stoves, gas-fired space heaters and charcoal
heaters are very widespread. In general, these systems are used to heat the room in
which they are located, chiefly by radiation and by convection. Wood-burning stoves
additionally capable of producing hot water also exist. In these, it is known practice
to have a hot water circuit that is independent of and external to the heating body
of the heating system, so as to avoid any corrosion problems.
[0004] Document
EP0332039 describes such a heating system that allows the heating both of the air surrounding
an enclosure containing the heating body of the heating system and of water. In this
system, an air/water heat exchanger for heating the water is placed inside the enclosure
without being in contact with the heating body. The enclosure of the system described
in document
EP0332039 comprises two hot air circuits I and II, circuit I being in direct contact with the
heating body. In a hot water production mode, a fan is switched on to draw hot air
through the air/water heat exchanger. The switching-on of the fan also causes the
opening of a shutter that allows the air to circulate in the closed circuit I. In
this mode, the transmission of heat from circuit I to circuit II is possible only
via a wall that separates these two circuits. The hot air that heats the water therefore
circulates in a closed circuit in circuit I in the hot water production mode. In a
hot air production mode, the fan is switched off and the abovementioned shutter is
closed. By contrast, two other shutters are then opened to allow increased heat transfer
between air circuits I and II. Finally, two openings respectively capture the cooler
air surrounding the enclosure of the heating system and discharge the hot air out
of the enclosure in the hot air production mode.
[0005] In the latter mode, the transmission of heat to the outside of the enclosure is afforded
by natural convection because the fan is switched off. At the same time, the cool
external air entering via the openings into circuit I has to pass through the air/water
heat exchanger to come into contact with the heating body, thus cooling the water
circuit. Such a system additionally entails the presence of various shutters within
the enclosure of the heating system. Such elements that are not accessible from the
outside are not easy to replace or to service. Finally, such a system proposes two
exclusive modes of operation: air heating or water heating.
Summary of the invention
[0006] It is one of the objects of the present invention to provide a heating system that
allows the heating both of the air surrounding the heating system and of a liquid
while at the same time reducing the extent to which the liquid is cooled by the air
external to the heating system when heating of this external air is desired. To this
end, the heating system according to the invention is characterized in that:
- the first opening is situated between the heating body and the heat exchanger along
the air circuit,
- the second opening is situated between the heat exchanger and the forced-circulation
means along the air circuit.
[0007] When heating the air external to the enclosure, the first and second openings are
at least partially open. Air external to the enclosure enters the latter via one opening
and is heated up upon contact with the heating body. For the most part, the heated
air emerges from the enclosure via the other opening. Given the position of the two
openings the amount of air passing through the heat exchanger in this embodiment is
small and therefore the cooling of the liquid by the air external to the enclosure
is likewise reduced.
[0008] The heating system according to the invention is preferably characterized in that
when the system is in operation, the forced-circulation means are in operation when
the first and second openings are at least partially open. The forced-circulation
means therefore ensure forced air convection when the openings are at least partially
open, making it possible to increase the power for heating the air external to the
enclosure by comparison with the existing systems.
[0009] The heating system of the invention is preferably characterized in that the heat
exchanger is situated underneath the heating body. Thus, the air heated by the heating
body and which is directed towards the upper interior part of the enclosure by natural
convection will have little heating effect on the liquid passing through the exchanger.
This is because cold air naturally positions itself underneath the hot air. Such a
preferred embodiment thus allows one to limit any overheating of the liquid in the
event of unwanted shutdown of the forced-circulation means and/or unwanted closure
of the openings.
[0010] The heating system of the invention is preferably characterized in that the first
and second openings are not at the same height, and in that the air external to the
enclosure enters the inside of the enclosure through the lowermost opening and re-emerges
therefrom via the uppermost opening. Such a preferred embodiment encourages, when
the air external to the enclosure is being heated, the transfer of cold air rather
than of hot air from the outside of the enclosure to the inside. This is because the
lower down it is situated, the colder is the air external to the enclosure.
[0011] The heating system is preferably characterized in that:
- the enclosure has two opposite lateral faces,
- the first opening is situated on one of the said lateral faces of the enclosure,
- the second opening is situated on the other of the said lateral faces of the enclosure.
[0012] Thus, the streams of air entering and leaving the enclosure are advantageously isolated
from one another, thereby reducing the mixing between the incoming cold air and the
outgoing hot air when heating of the air external to the enclosure is desired.
[0013] The heating system is preferably characterized in that:
- the enclosure comprises a front face,
- the first and second openings are situated on the said front face of the enclosure.
This preferred embodiment provides an easy access to the first and second openings,
which is particularly useful when the enclosure is at least partially inserted into
a wall.
[0014] It is another object of the invention to provide a method that allows the obtention
of hybrid operating modes other than the two exclusive modes of operation that are
heating the air external to the enclosure and heating the water. To achieve this,
another aspect of the invention relates to a heating method using a heating system
as described in the preceding paragraphs, the said method comprising one of the following
two steps:
- actuating the shut-off means in the direction of increasing the size of the openings
when the ratio between the power used to heat the air external to the enclosure and
the power used to heat the liquid is to be increased,
- actuating the shut-off means in the direction of reducing the size of the openings
when the ratio between the power used to heat the air external to the enclosure and
the power used to heat the liquid is to be reduced.
By modifying the size of the openings of the enclosure, the ratio between the amount
of air circulating in a circuit within the enclosure and passing through the heat
exchanger and the amount of air entering and leaving via the two openings is modified.
The air circuit allows the liquid to be heated while the other air circuit with air
entering and leaving via the two openings allows the air external to the enclosure
to be heated.
Brief description of the figures
[0015] These aspects of the invention together with others will be clarified in the detailed
description of some specific embodiments of the invention, reference being made to
the figures in which:
- Figure 1
- schematically shows the principle of the heating system of the invention when the
openings are closed;
- Figure 2
- schematically shows the principle of the heating system of the invention when the
openings are open;
- Figure 3
- shows a perspective view of one embodiment of the heating system according to the
invention;
- Figure 4
- is a view in section parallel to the front face of the heating system of Figure 3;
- Figure 5
- is a view in section parallel to the lateral faces of the heating system of Figure
3;
- Figure 6
- shows three positions of the shut-off means with respect to the openings of the enclosure
of the heating system.
The figures are not drawn to scale. In general, elements that are similar are denoted
by similar references in the figures. The presence of reference numerals in the drawings
cannot be considered to imply any limitation, even when these numbers are indicated
in the claims.
Detailed description of specific embodiments
[0016] The general principle of the heating system 10 according to the invention is illustrated
in Figures 1 and 2. With reference to these figures, the heating system 10 comprises
an enclosure 15. The enclosure 15 is designed to form within it an air circuit. In
this air circuit there are a heating body 20, forced-circulation means 70 and a heat
exchanger 30.
[0017] The heating body 20 represents the heat source of the heating system 10. The heating
body 20 is typically in the form of a cavity into which a fuel (wood being one example
of this) can be introduced and from which the flue gases emerge via a pipe that has
not been depicted in Figures 1 and 2.
[0018] The heating system 10 is typically located in a room 110 that is to be heated by
heating the air external and adjacent to the enclosure 15. The heating system 10 is
also capable of heating a liquid such as water. The heat exchanger 30 is used to heat
the liquid and is typically provided with a cold water inlet 90 and with a hot water
outlet 100. This inlet and outlet can be connected to a central heating circuit or
to a primary circuit for heating a reserve of water contained for example in a boiler.
A pump may be used to ensure that the liquid circulates correctly through the heat
exchanger 30.
[0019] The enclosure 15 comprises at least a first and a second opening 40. Each of the
openings 40 is equipped with shut-off means 80 allowing it to be completely or partially
closed off. As illustrated in Figure 2, one example of shut-off means 80 is a shutter
capable of completely covering an opening 40.
[0020] Forced-circulation means 70 are able to ensure forced circulation of air inside the
enclosure 15. One example of forced-circulation means is a turbine fan.
[0021] When rapid heating of the liquid is required, the openings 40 are preferably completely
shut off by the shut-off means 80 and the forced-air-circulation means 70 are preferably
in operation: the air heated up by the heating body 20 then circulates in a closed
circuit through the enclosure 15. This situation is illustrated in Figure 1 where
the arrows indicate one possible direction of circulation of air through the enclosure
15 in a closed circuit. The forced-circulation means 70 can be mounted in a direction
such that they cause the air to flow in the opposite direction to the one illustrated
in Figure 1.
[0022] Figure 2 shows the heating system 10 of the invention when heating of the air external
to the enclosure 15 is required. In this case, the two openings 40 allowing communication
between the air external to the enclosure 15 and the air circuit are at least partially
open. The position of the openings 40 makes it possible to obtain an air circuit adjacent
to the heating body 20 while at the same time reducing the flow of air passing through
the heat exchanger 30. This property is illustrated in Figure 2 using the difference
in thickness of the arrows representing the different air flows. More specifically,
a first opening 40 needs to be situated between the heating body 20 and the heat exchanger
30 along the air circuit and a second opening 40 needs to be situated between the
heat exchanger 30 and the forced-circulation means 70 along the air circuit. The pressure
drops at the heat exchanger 30 have preferably to be greater than those at the openings
40 when these openings are at least partially open in order therefore to allow the
air flow through the openings 40 to be greater than the air flow through the heat
exchanger 30. For preference, the forced-circulation means 70 are also in operation
when the openings are at least partially open.
[0023] One particular embodiment of the invention is illustrated in Figure 3. In this case,
the enclosure 15 of the heating system 10 is typically that of a wood-burning stove
or of a charcoal heater located in a room 110 that is to be heated.
[0024] In this embodiment, it is generally possible to access the heating body 20 from the
front face 150 of the enclosure 15 via a glazed door. The front face 150 of the enclosure
15 is the face represented furthest forward in Figure 3. The enclosure 15 of the heating
system 10 of Figure 3 also comprises two opposite lateral faces 151 and 152 which
are perpendicular to the front face 150. The front face 150 and the two lateral faces
151 and 152 are indicated in Figures 4 and 5 which are, respectively, a section parallel
to the front face 150 and a section parallel to the lateral faces 151 and 152 of the
heating system of Figure 3. The flue gases are typically removed from the heating
body 20 via a pipe connected to a chimney. This pipe has not been depicted in Figures
3 to 5 for reasons of clarity and is generally situated at the rear (the face opposite
the front face 150 of the enclosure 15) or on top of the enclosure 15.
[0025] As illustrated in Figures 3 to 5, the heat exchanger 30 is preferably situated underneath
the heating body 20. Likewise, a first opening 40 is situated above the heat exchanger
30, whereas a second opening 40 is situated underneath the heat exchanger 30. When
heating of the air external to the enclosure 15 is required, the air external to the
enclosure 15 typically enters via the opening 40 situated underneath the heat exchanger
30 and re-emerges via the opening situated above the heat exchanger 30, thanks to
the action of the forced-circulation means 70 which may be a fan. The fact that the
second opening 40 is situated underneath the first opening 40 means that colder air
can be drawn into the enclosure 15. A flow of air in the other direction is possible
if the fan 70 forces air to flow in the other direction.
[0026] In one embodiment as shown in Figures 3 to 5, the enclosure 15 comprises two opposite
lateral faces 151 and 152. In order to reduce the mixing between the cold air entering
the enclosure 15 and the hot air leaving the enclosure 15, it is preferable for each
of the two openings 40 to be positioned one on each of the two opposite lateral faces,
as has been illustrated in Figure 3.
[0027] For ease of access to the openings 40, particularly when the enclosure 15 is built
into a wall, it is preferable for the first and second openings 40 to be positioned
on the front face 150 of the enclosure 15. The front face 150 of the enclosure 15
is the face depicted furthest forwards in Figure 3.
[0028] When rapid heating of the liquid is required, it is preferable for the openings 40
to be completely shut off using the shut-off means 80. When rapid heating of the air
external to the enclosure 15 is required, it is preferable for the openings 40 to
be completely opened and for the forced-circulation means 70 to be actuated. The air
conveyed by the forced-circulation means 70 can then enter via one of the openings
40 and re-emerge via the other, the flow of air passing through the heat exchanger
30 being reduced.
[0029] In some instances it may be advantageous to heat both the air external to the enclosure
15 and the liquid passing through the heat exchanger 30. Typically, the openings 40
are then only partially shut off by the shut-off means 80. The ratio between the power
used for heating the air external to the enclosure 15 and the power used for heating
the liquid can be modified by changing the percentage used closure of the openings
40 by the shut-off means 80. If it is desirable for the liquid to be heated more rapidly,
then the openings 40 are shut off further. If it is desirable to heat the air external
to the enclosure 15 more rapidly, then the openings 40 are opened wider. The size
of the two openings 40 is preferably modified by the shut-off means in the same manner.
[0030] Figure 6 shows three possible configurations of the shut-off means 80 when the latter
are in the form of a square plate and the openings 40 are in the form of a circle.
In scenario (a) of Figure 6, the shut-off plate 80 does not cover the opening 40 at
all and this opening is therefore wide open (maximum heating of external air). In
scenario (b), the shut-off plate 80 partially covers the opening 40 (mixed heating
of the air external to the enclosure and of the liquid), whereas scenario (c) corresponds
to the configuration in which the opening 40 is completely shut off (maximum heating
of the liquid). The shut-off plate 80 can be moved manually or by an electric motor
for example.
[0031] The enclosure 15 may comprise more than two openings 40. However, at least one first
opening 40 needs to be situated between the heating body 20 and the heat exchanger
30 along the air circuit while at least one second opening 40 needs to be situated
between the heat exchanger 30 and the forced-air-circulation means 70 along the air
circuit. Likewise, it may be preferable to use several fans 70 rather than just one,
for space and/or noise reasons. The enclosure 15 may comprise more than one heating
body 20 to increase the heating power of the heating system 10 and more than one heat
exchanger 30 to allow more than one liquid to be heated.
[0032] The present invention has been described in conjunction with some specific embodiments
which are purely illustrative and must not be considered to be limiting. In general,
the present invention is not restricted to the examples illustrated and/or described
hereinabove. The use of the verbs "comprise", "include" and so on or any other variant
or conjugation thereof does not in any way exclude the presence of elements other
than those mentioned. The use of the indefinite article "one", "a", "an" or of the
definite article "the" when introducing an element does not exclude there being a
plurality of such elements.
[0033] To sum up, the invention can also be described as follows. Heating system 10 comprising
an enclosure 15, the said heating system 10 allowing the heating of the air external
to the enclosure 15 and at least one liquid. The enclosure 15 incorporates at least
one heating body 20, at least one heat exchanger 30 and forced-circulation means 70.
There is an air circuit within the enclosure 15. The enclosure 15 comprises at least
two openings 40 of which the positions with respect to the other elements make it
possible, when heating the air external to the enclosure 15, to reduce the flow of
air passing through the heat exchanger 30 while keeping the forced-circulation means
70 in operation.
1. Heating system (10) comprising an enclosure (15) in which there is an air circuit,
the said heating system (10) allowing the heating of the air external to the enclosure
(15) and of a liquid,
the said air circuit incorporating:
- a heating body (20),
- a heat exchanger (30) suited to the exchange of heat between the air of the air
circuit and the liquid,
- forced-circulation means (70) allowing a forced circulation of air in the air circuit,
the said enclosure (15) comprising a first and a second opening (40) each of which
is provided with shutoff means (80), the said openings (40) allowing communication
between the air external to the enclosure (15) and the air circuit,
wherein, when the shut-off means (80) completely shut-off the openings (40), the air
heated up by the heating body circulates in a closed air circuit through the enclosure
(15),
characterized in that,
- the first opening (40) is situated between the heating body (20) and the heat exchanger
(30) along the air circuit,
- the second opening (40) is situated between the heat exchanger (30) and the forced-circulation
means (70) along the air circuit.
2. Heating system (10) according to claim 1, characterized in that when the system is in operation, the forced-circulation means (70) are in operation
when the first and second openings (40) are at least partially open.
3. Heating system (10) according to either one of the preceding claims, characterized in that the heat exchanger (30) is situated underneath the heating body (20).
4. Heating system (10) according to any one of the preceding claims, characterized in that the first and second openings (40) are not at the same height, and in that the air external to the enclosure (15) enters the inside of the enclosure (15) through
the lowermost opening (40) and re-emerges therefrom via the uppermost opening (40).
5. Heating system (10) according to any one of the preceding claims,
characterized in that:
- the enclosure (15) has two opposite lateral faces (151, 152),
- the first opening (40) is situated on one of the said lateral faces (151) of the
enclosure (15),
- the second opening (40) is situated on the other of the said lateral faces (152)
of the enclosure (15).
6. Heating system (10) according to any one of claims 1 to 4,
characterized in that:
- the enclosure (15) comprises a front face (150),
- the first and second openings (40) are situated on the said front face (150) of
the enclosure (15).
7. Method for heating air and a liquid, the said heating method using a heating system
(10) according to any one of the preceding claims and comprising one of the following
two steps:
- actuating the shut-off means (80) in the direction of increasing the size of the
openings (40) when the ratio between the power used to heat the air external to the
enclosure (15) and the power used to heat the liquid is to be increased,
- actuating the shut-off means (80) in the direction of reducing the size of the openings
(40) when the ratio between the power used to heat the air external to the enclosure
(15) and the power used to heat the liquid is to be reduced.
1. Heizsystem (10), umfassend ein Gehäuse (15), in dem sich ein Luftkreislauf befindet,
wobei das Heizsystem (10) das Erwärmen von Luft außerhalb des Gehäuses (15) und einer
Flüssigkeit ermöglicht, wobei der Luftkreislauf einschließt:
- einen Heizkörper (20),
- einen Wärmetauscher (30), der sich zum Austauschen von Wärme zwischen der Luft aus
dem Luftkreislauf und der Flüssigkeit eignet,
- Zwangsumwälzungsmittel (70), die eine Zwangsumwälzung von Luft in dem Luftkreislauf
ermöglichen,
wobei das Gehäuse (15) eine erste und eine zweite Öffnung (40) umfasst, die jeweils
mit Verschlussmitteln (80) bereitgestellt sind, wobei die Öffnungen (40) eine Verbindung
zwischen der Luft außerhalb des Gehäuses (15) und dem Luftkreislauf zulassen,
wobei, wenn die Verschlussmittel (80) die Öffnungen (40) vollständig verschließen,
die von dem Heizkörper erwärmte Luft in einem geschlossenen Luftkreislauf durch das
Gehäuse (15) zirkuliert,
dadurch gekennzeichnet, dass
- die erste Öffnung (40) zwischen dem Heizkörper (20) und dem Wärmetauscher (30) entlang
des Luftkreislaufs angeordnet ist,
- die zweite Öffnung (40) zwischen dem Wärmetauscher (30) und dem Zwangsumwälzungsmittel
(70) entlang des Luftkreislaufs angeordnet ist.
2. Heizsystem (10) nach Anspruch 1, dadurch gekennzeichnet, dass, wenn das System in Betrieb ist, die Zwangsumwälzungsmittel (70) in Betrieb sind,
wenn die erste und zweite Öffnung (40) mindestens teilweise geöffnet sind.
3. Heizsystem (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass der Wärmetauscher (30) unterhalb des Heizkörpers (20) angeordnet ist.
4. Heizsystem (10) nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die erste und zweite Öffnung (40) nicht die gleiche Höhe aufweisen, und dadurch,
dass die Luft außerhalb des Gehäuses (15) durch die unterste Öffnung (40) in das Gehäuse
(15) eintritt und daraus aus der obersten Öffnung (40) wieder austritt.
5. Heizsystem (10) nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet, dass:
- das Gehäuse (15) zwei gegenüberliegende Seitenflächen (151, 152) aufweist,
- die erste Öffnung (40) an einer der Seitenflächen (151) des Gehäuses (15) angeordnet
ist und
- die zweite Öffnung (40) an der anderen der Seitenflächen (152) des Gehäuses (15)
angeordnet ist.
6. Heizsystem (10) nach einem der Ansprüche 1 bis 4,
dadurch gekennzeichnet, dass:
- das Gehäuse (15) eine vordere Fläche (150) umfasst,
- die erste und zweite Öffnung (40) an der vorderen Fläche (150) des Gehäuses (15)
angeordnet sind.
7. Verfahren zum Erwärmen von Luft und einer Flüssigkeit, wobei das Heizverfahren ein
Heizsystem (10) nach einem der vorhergehenden Ansprüche verwendet und einen der folgenden
zwei Schritte umfasst:
- Betätigen des Verschlussmittels (80) in Richtung der Erhöhung der Größe der Öffnungen
(40), wenn das Verhältnis zwischen der verwendeten Energie zum Erwärmen der Luft außerhalb
des Gehäuses (15) und der verwendeten Energie zum Erwärmen der Flüssigkeit erhöht
werden muss,
- Betätigen des Verschlussmittels (80) in Richtung der Reduzierung der Größe der Öffnungen
(40), wenn das Verhältnis zwischen der verwendeten Energie zum Erwärmen der Luft außerhalb
des Gehäuses (15) und der verwendeten Energie zum Erwärmen der Flüssigkeit reduziert
werden muss.
1. Système de chauffage (10) comprenant une enceinte (15) dans laquelle il y a un circuit
d'air, ledit système de chauffage (10) permettant le chauffage de l'air extérieur
à l'enceinte (15) et d'un liquide,
ledit circuit d'air comprenant :
- un corps de chauffe (20),
- un échangeur de chaleur (30) approprié pour l'échange de chaleur entre l'air du
circuit d'air et le liquide,
- des moyens de circulation forcée (70) permettant une circulation forcée d'air dans
le circuit d'air,
ladite enceinte (15) comprenant une première et une seconde ouverture (40), chacune
d'elles étant dotée de moyens d'arrêt (80), lesdites ouvertures (40) permettant une
communication entre l'air extérieur à l'enceinte (15) et le circuit d'air,
système de chauffage dans lequel, quand les moyens d'arrêt (80) ferment complètement
les ouvertures (40), l'air chauffé par le corps de chauffe circule, dans un circuit
d'air fermé, à travers l'enceinte (15),
caractérisé en ce que
- la première ouverture (40) est située, le long du circuit d'air, entre le corps
de chauffe (20) et l'échangeur de chaleur (30),
- la seconde ouverture (40) est située, le long du circuit d'air, entre l'échangeur
de chaleur (30) et les moyens de circulation forcée (70).
2. Système de chauffage (10) selon la revendication 1, caractérisé en ce que, quand le système est en fonctionnement, les moyens de circulation forcée (70) sont
en fonctionnement quand les première et seconde ouvertures (40) sont au moins partiellement
ouvertes.
3. Système de chauffage (10) selon l'une ou l'autre des revendications précédentes, caractérisé en ce que l'échangeur de chaleur (30) est situé au-dessous du corps de chauffe (20).
4. Système de chauffage (10) selon l'une quelconque des revendications précédentes, caractérisé en ce que les première et seconde ouvertures (40) ne sont pas à la même hauteur, et en ce que l'air extérieur à l'enceinte (15) entre à l'intérieur de l'enceinte (15) à travers
l'ouverture (40) la plus basse et ressort de ladite enceinte par l'ouverture (40)
la plus haute.
5. Système de chauffage (10) selon l'une quelconque des revendications précédentes,
caractérisé en ce que :
- l'enceinte (15) comprend deux faces latérales opposées (151, 152),
- la première ouverture (40) est située sur l'une desdites faces latérales (151) de
l'enceinte (15),
- la seconde ouverture (40) est située sur l'autre desdites faces latérales (152)
de l'enceinte (15).
6. Système de chauffage (10) selon l'une quelconque des revendications 1 à 4,
caractérisé en ce que :
- l'enceinte (15) comprend une face frontale (150),
- les première et seconde ouvertures (40) sont situées sur ladite face frontale (150)
de l'enceinte (15).
7. Procédé de chauffage d'air et d'un liquide, ledit procédé de chauffage utilisant un
système de chauffage (10) selon l'une quelconque des revendications précédentes et
comprenant l'une des deux étapes suivantes :
- l'actionnement des moyens d'arrêt (80) dans la direction d'augmentation de la taille
des ouvertures (40), quand le rapport entre la puissance utilisée pour chauffer l'air
extérieur à l'enceinte (15), et la puissance utilisée pour chauffer le liquide, doit
être augmenté,
- l'actionnement des moyens d'arrêt (80) dans la direction de réduction de la taille
des ouvertures (40), quand le rapport entre la puissance utilisée pour chauffer l'air
extérieur à l'enceinte (15), et la puissance utilisée pour chauffer le liquide, doit
être réduit.