[0001] The present invention relates to a domestic washer-drier machine which provides for
washing and drying the laundry.
[0002] Domestic washer-drier machines are known to comprise a support and housing structure,
a washing tank being housed therein, which is provided with a front opening that can
be closed by means of a porthole door that is hinged in front of the housing. Within
the washing tank, a basket is pivotally housed about a horizontal or inclined axis,
for the laundry to be accommodated therein to be washed and/or dried. The basket also
defines a front opening that is located such as to match the opening of the washing
tank, in order to load/unload the laundry.
[0003] The washing tank is suitable to contain the washing liquid during the laundry washing
steps and to be a portion of the drying circuit during the laundry drying step.
[0004] A washing water delivery system that can be connected to the water supply is provided
in order to load the tank with mains water and detergent substances and aids. On the
bottom of the washing tank, a drain duct is provided with a discharge pump being associated
therewith, which provides for the removal of the washing liquid from the tank and
controls, together with the supply electrovalves, the level of liquid within the tank.
For the recirculation of the washing liquid during the various washing and rinsing
steps a recirculation duct complete with recirculation pump may be provided having
a first intake end connected to the tank bottom to be capable of taking the washing
liquid to be recirculated and a second re-feed end of the liquid to the laundry basket
which is arranged proximate to the upper portion of the basket. An electric resistance
being arranged within the tank in the gap between the tank wall and laundry basket
is provided to heat the washing liquid contained in the tank.
[0005] The drying circuit of prior art washer-drier machines typically comprises an intake
unit, a heat exchanger and a heating unit with electric resistances communicating
with each other by means of a drying duct.
[0006] In such a loop circuit, the air flow generated by the intake unit is heated by the
electric resistances and blown to the basket, where it causes the water contained
within the tissues to evaporate as it passes through the wet laundry. In the heat
exchanger, which is generally a container separate from the washing tank and provided
with a spray nozzle, the wet air is cooled by a jet of cold water. Due to this cooling,
the vapour condensates and is collected and discharged together with the cooling water.
The dehumidified air is then sucked again by the intake unit and recirculated.
[0007] The cooling water is usually supplied to the heat exchanger by means of a cooling
duct with a dedicated electrovalve which controls the loading of the mains water to
the heat exchanger (condenser).
[0008] Prior art drying devices, while being satisfactory under many aspects, however, have
a high consumption of electric power and cooling water during the drying step.
[0009] It is further known, also in the household appliance field, to use zeolites for absorbing
moisture. Zeolites are minerals with a regular crystalline and microporous structure
comprising a high amount of micro-cavities with a very high total surface and a huge
void volume within the crystals. Due to said configuration, zeolites are suitable
to contain a considerable moisture amount by means of adsorption of water molecules
on the wide surfaces of the microporous structure thereof. By subsequently heating
the zeolite mineral, the water molecules are desorbed and released in the form of
water vapour.
[0010] The experiences with dish-washing machines with zeolite dehumidification devices
are not advantageously applicable to washer-drier machines for treating laundry, in
that the passage of the drying air through one or more zeolite batteries would cause
a considerable flow resistance and a corresponding power increase and power consumption
of the intake unit.
[0011] Accordingly, the object of the present invention is to provide a washer-drier machine,
having such characteristics as to increase the drying power while reducing the energy
and water consumption during the drying step.
[0012] This and other objects are achieved by means of a washer-drier machine according
to claim 1. Advantageous embodiments are the object of the dependent claims.
[0013] According to a first aspect of the invention, the washer-drier machine comprises
a washing tank suitable to contain the washing liquid, a basket suitable to accommodate
the laundry and rotatably supported within the washing tank, a drying circuit with
a intake unit, a heat exchanger and a heating unit communicating with each other by
means of a drying circuit, and configured to convey a drying air flow through the
basket, wherein the drying circuit further comprises an absorption device having:
[0014] - an absorption chamber defining a passage for the drying air flow,
[0015] - a zeolite cartridge arranged in the absorption chamber in contact with this drying
air flow, such as to absorb the moisture therefrom,
[0016] - heating means arranged in a heat-exchange relationship with the zeolite cartridge
and suitable to cause the release of the moisture from the zeolite cartridge,
[0017] wherein the washer-drier machine is configured such that, during a drying program,
the drying air is conveyed both through the heat exchanger for a dehumidification
through condensation and through the absorption device for a moisture absorption by
means of the zeolite cartridge.
[0018] Due to the combined use of the condensation and adsorption by means of zeolites,
on the one hand a cooling water saving and, on the other hand, a considerable reduction
in the zeolite amount and accordingly in the size and flow resistance as compared
with a dehumidification based only on zeolite absorption are obtained.
[0019] In accordance with a further aspect of the present invention, the washer-drier machine
comprises a recirculation duct and a recirculation pump associated therewith, which
is suitable to take washing liquid from the tank bottom and re-feed the same in the
basket, wherein this recirculation duct is arranged in a heat exchange relationship
with the zeolite cartridge of the absorption device and wherein the washer-drier machine
is configured such that, during a washing step, the heated and recirculated washing
liquid heats the zeolite cartridge so that the latter releases the previously absorbed
moisture.
[0020] Thereby, the thermal energy of the washing liquid is used to "regenerate" the zeolite
cartridge, thus preparing the latter for absorbing moisture during a subsequent drying
step.
[0021] In order to better understand the present invention and appreciate the advantages
thereof, several embodiments thereof will be described below by way of non-limiting
example, with reference to the annexed drawings, in which:
[0022] Fig. 1 is a side sectional view of a washer-drier machine according to an embodiment
of the invention;
[0023] Fig. 2 is an enlarged view of a detail of the washer-drier machine section from Fig.
1;
[0024] Fig. 3 is an enlarged sectional view of a detail of the washer-drier machine according
to an embodiment;
[0025] Fig. 4 is a schematic front view of a drying circuit of the washer-drier machine
according to a further embodiment;
[0026] Fig. 4A illustrates a detail in Fig. 4;
[0027] Fig. 5 is a front schematic view of a drying circuit of the washer-drier machine
according to a further embodiment;
[0028] Fig. 6 is a front schematic view of a drying circuit of the washer-drier machine
according to a further embodiment.
[0029] With reference to the figures, a washer-drier machine 1 comprises a support and housing
structure 2, a washing tank 3 being housed therein, which is provided with a front
opening that can be closed by means of a porthole door 4 being hinged in the front
of the housing 2. Within the washing tank 3, a basket 5 is pivotally housed about
a horizontal or inclined axis, for the laundry to be accommodated therein to be washed
and/or dried. The basket 5 also defines a front opening that is located such as to
match the opening of the washing tank 3, in order to be capable of carrying out the
loading/unloading of the laundry.
[0030] The washing tank 3 is suitable to contain the washing liquid during the laundry washing
steps, and to be a portion of the drying circuit during the laundry drying step.
[0031] On the bottom 13 of the washing tank 3, a drain duct 14 is provided with a discharge
pump 15 being associated therewith, which provides for the removal of the washing
liquid from the tank 3 and controls, together with the supply electrovalves 6, the
level of liquid within the tank 3.
[0032] To heat the washing liquid contained within the tank 3, a coiled electric resistance
11 is provided, which is arranged within the tank 3, particularly on the bottom 13
of the latter, in the gap between the tank wall 3 and the laundry basket 5.
[0033] The washer-drier machine 1 further comprises a closed-loop drying circuit with a
suction unit, for example an fan impeller 17 driven by an electric motor 18, a heat
exchanger 10 as well as a heating unit with electric resistance 21, which communicate
with each other by means of a drying duct 16.
[0034] In such a loop circuit, the air flow 22 generated by the suction unit 17, 18 is heated
by the electric resistance 21 and blown to the basket 5, where it causes the water
contained within the tissues to evaporate as it passes through the wet laundry. The
heat exchanger 10 is arranged downstream of the laundry basket 5 (with reference to
the direction of the drying air flow 22) and cools the wet air flowing from the basket
5.
[0035] Due to this cooling, the vapour condensates and is collected and discharged, for
example together with a cooling water volume. The dehumidified air is then sucked
back by the suction unit 17, 18 and recirculated.
[0036] According to a first aspect of the invention, the drying circuit further comprises
an absorption device 23 suitable to absorb moisture from the drying air 22. The absorption
device 23 comprises an absorption chamber 24 defining a passageway 25 for the drying
air flow 22 and a zeolite cartridge 26 arranged in the absorption chamber 24 in contact
with the drying air flow 22, such as to absorb the moisture therefrom.
[0037] The absorption device 23 further comprises heating means 27 arranged in a heat exchange
relationship with the zeolite cartridge 26 and suitable to cause moisture to be released
from the zeolite cartridge 26 (thermal "regeneration" of the zeolite mineral).
[0038] The washer-drier machine 1 is thus configured such that, during a drying program,
the drying air 22 is conveyed both through the heat exchanger 10 for a dehumidification
by means of condensation and through the absorption device 23 for moisture absorption
through the zeolite cartridge 26.
[0039] Due to the combined use of condensation and adsorption by means of zeolites in a
same drying circuit, on the one hand, a cooling water saving, and on the other hand,
a considerable reduction in the amount of zeolite and accordingly of the consequent
size and flow resistance are obtained as compared with a dehumidification based only
on zeolite adsorption.
[0040] In order to facilitate a better understanding of the inventive concept, reference
will be made throughout the description to an "absorption device containing at least
one zeolite cartridge". However, the inventors do not intend to limit this patent
application to zeolite minerals. The latter are a preferred though non-limiting example
of hygroscopic absorbing substances suitable to release moisture in response to heating.
Accordingly, any particular reference to the "zeolite" material can be automatically
intended as referred to one or more equivalent absorbing and thermally regenerable
materials.
[0041] A first aspect of the invention, therefore, provides a washer-drier machine having
the characteristics described above and being configured such that the drying air
flow is dehumidified by means of two separate dehumidifiers (heat exchanger 10 and
absorption device 23) which are the one based on the principle of cooling condensation
and the other on the principle of water vapour adsorption.
[0042] According to the particular embodiment, the heat exchanger 10 and the absorption
device 23 are arranged:
- in series between the tank 3 and the suction unit 17, 18 or
- in parallel between the tank 3 and the suction unit 17, 18
and can be operated simultaneously or alternately or one after the other during a
same drying cycle.
[0043] A drying action in two steps, only one of them following the principle of water vapour
adsorption by means of zeolites, permits the use of a very reduced zeolite mineral
amount, and accordingly, the maintenance of air flow sections 22 which are substantially
constant, indispensable for a low-energy consumption suction.
[0044] In accordance with a second aspect of the invention, the washer-drier machine comprises
a recirculation duct 7 with a recirculation pump 8 associated therewith, which are
suitable to take washing liquid from the tank 3 bottom and re-feed it in the basket
5 or more generally in the tank 3, for example in order to increase the soaking time
during washing.
[0045] This recirculation duct 7 is advantageously arranged in a heat exchange relationship
with the zeolite cartridge 26 of the absorption device 23 and the washer-drier machine
1 is configured such that, during a washing step, a heated and recirculated washing
liquid 12 flow heats the zeolite cartridge 26 causing the latter to release the previously
absorbed moisture.
[0046] Thereby, the thermal energy which is anyway required for the washing phase, is exploited
for "regenerating" the zeolite cartridge, thereby preparing the latter to absorb moisture
during a subsequent drying step.
[0047] In the exemplary embodiment in Fig. 1, the drying circuit 16 is connected to the
bottom of the tank 3 in an inlet point 9 which is preferably arranged below the fill-up
levels during the washing step 19 and rinsing step 20. Thereby, during the washing
and rinsing steps, the lye closes the inlet 9 of the drying circuit 16, thereby preventing
water vapour to be conveyed to the zeolite of the absorption device 23.
[0048] Downstream of the tank inlet point 9 (with reference to the drying air 22 flow direction)
the drying duct 16 is extended, preferably vertically, upwards and defines a condensation
chamber 28 of the heat exchanger 10. By way of example, a spraying nozzle 46 can be
provided, which can be connected to the water network and suitable to inject a cold
water jet in the condensation chamber 28.
[0049] The present invention is not limited to this particular embodiment and the heat exchanger
10 may be provided by means of cold sources alternative to the cold water jet.
[0050] Downstream of the heat exchanger 10, the drying duct 16 is connected to the absorption
device 23, which is arranged above the condensation chamber 28 to prevent the risk
of cooling water or condensate flowing to the zeolite cartridge 26.
[0051] The absorption device 23 comprises a support structure 29 with a side wall 30 innerly
defining a substantially tubular, preferably cylindrical absorption chamber 24 with
zeolite cartridge seats along the side wall 30, as well as a heating jacket 27 externally
formed about the side wall 30, such as to be capable of heating the zeolite cartridge/s
26 arranged in their respective seats.
[0052] In accordance with an embodiment, the heating jacket 27 comprises a heating fluid
duct 45 connected to the recirculation duct 7 for recirculating the hot washing liquid
12 during the washing steps. This duct can be configured as an annular cross section
tube provided around the side wall 30.
[0053] In accordance with a further embodiment, the heating jacket 27 further comprises
an electric resistance 31 in a heat exchange relationship with the inside of the heating
fluid duct 45, preferably arranged within this duct 45.
[0054] The electric power supply of this electric resistance 31 is controlled by the control
unit 38 to be capable of increasing the temperature of the heating jacket 27 relative
to the temperature of the hot washing liquid 12, in order to further facilitate the
thermal regeneration of the absorbing material, particularly a zeolitic one.
[0055] The zeolite cartridges 26 are provided and accommodated within the absorption chamber
24 such as to define the air passageway 25. The absorbing material (zeolite) of the
zeolite cartridge 26 is advantageously enclosed in a reticular or filtering protection
cover.
[0056] Downstream of the absorption device 23, the drying duct 16 leads the drying fluid
to the suction unit 17, 18 arranged proximate to the top or above the washing tank
3. From the suction unit 17, 18, the drying duct 16 is extended to a mouth 32 thereof
which is arranged proximate to the loading opening of the basket 5 where it re-feeds
the drying air 22 to the basket 5. Along this last tract of the duct 16, downstream
of the suction unit 17, 18 the heating unit 21 is arranged, for example an electric
resistance placed within the duct 16.
[0057] In accordance with an alternative embodiment, the heat exchanger 10 can comprise
a condensation surface provided by cooling water accommodated on the tank bottom.
To the purpose, the washing tank 3 can define therein a condensation space 33 suitable
to contain a cooling water volume 34 that forms a free water surface spaced away from
the basket 5 such as to be capable of cooling the drying air flow 22 downstream of
the basket 5 within the washing tank 3.
[0058] Preferably, this condensation space 33 is formed at the tank bottom 13, approximately
below the basket 5.
[0059] Fig. 3 illustrates an embodiment of the drying circuit, in which the absorption device
23 and the heat exchanger 10 are arranged in parallel in the drying duct 16 downstream
of the tank 3 and upstream of the suction unit 17, 18. A selection valve 35 suitable
to adjust the flow rate of the partial air flows 22 through the absorption device
23 and the heat exchanger 10 can be arranged downstream of these devices 10, 23 in
a junction point 36 (this is the preferred solution, in order to avoid deposit accumulation
in the valve area) or, alternatively, upstream of said devices 10, 23 in a bifurcation
point of the duct 16.
[0060] The selection valve can be advantageously configured as an electro-thermal valve,
i.e. controlled by means of a thermal expansion element (for example, wax) that can
be heated by means of a control electric current.
[0061] In accordance with an embodiment, the absorption device 23 defines an air passageway
longer and/or with a greater flow section than that of the heat exchanger 10, in order
to allow for a high vapour absorption, while maintaining the flow characteristics
similar to those of the air flow through the heat exchanger 10.
[0062] In accordance with an embodiment, the absorption device 23 and the heat exchanger
10 are configured as a prefabricated individual dehumidification accessory, which
can be connected to the drying duct 16 and placeable outside the washing tank 3 and
optionally outside the housing 2 of the washer-drier machine 1.
[0063] Advantageously, the washer-drier machine comprises a control unit 38 configured to
control the selection valve 35 such as to divide the drying air flow 22 in two partial
flows which are conveyed the one through the heat exchanger 10 and the other through
the absorption device 23 and to adjust the flow rate ratio of the two partial flows
as a function of the residual moisture in the laundry (which can be detected, in a
known manner, for example by means of electric conductivity means or by means temperature
sensors of the drying air 22 temperature upstream and downstream of the basket 5 and
comparison of the detected values) or, in an indirect manner, as a function of the
drying time, by preferring the dehumidification by condensation with very wet laundry
(at the beginning of the drying cycle) and dehumidification by adsorption with not
very wet laundry (almost at the end of the drying cycle).
[0064] The control unit 38 can be further configured and/or set by the user such that the
drying air flow 22 is alternatively conveyed through the heat exchanger 10 and the
absorption device 23. Preferably, the control unit 38 is configured to allow selecting
a drying program, wherein during a first time interval the dehumidification is carried
out by means of condensation and during a subsequent second time interval the dehumidification
is carried out by means of absorption.
[0065] Fig. 4 and 4A illustrate an embodiment in which the absorption device 23 is connected
in series with the heat exchanger 10. The absorption chamber 24 has an elongated arched
shape and circumferentially extends very proximate to the side wall 39 of the tank
3 in order to lengthen the drying air passage 22 along the absorbing material as much
as possible.
[0066] Similarly, the heat exchanger 10 can be also provided with an elongated arched shape
circumferentially extended proximate to the side wall 39 of the washing tank 3.
[0067] In order to reduce the depth size of the washer-drier machine is advantageous to
arrange the heat exchanger 10 and absorption device 23 in a same vertical plane. The
inlet aperture 40 of the heat exchanger 10 is arranged below the lower third H/3 of
the total height H of the tank 3 and the outlet port 41 of the heat exchanger 10 positioned
above two thirds 2H/3 of the total height H of the tank 3. The absorption device 23
is placed approximately diametrically opposite the heat exchanger 10 (with reference
to the basket rotation axis) and also the inlet port 42 of the absorption device 23
is positioned below the lower third H/3 of the total height H of the tank 3 and the
outlet opening 43 of the absorption device 23 is positioned above two thirds 2H/3
of the total height H of the tank 3.
[0068] The outlet port 41 of the heat exchanger 10 is connected to inlet port of the absorption
device 23 by means of a tube in the shape of an inverted siphon 44.
[0069] The invention also contemplates that both the condensation chamber 28 and the absorption
chamber can be partially defined by the rear and/or partially defined by the rear
and/or side wall of the washing tank 3 and, possibly by one or more lid elements which
are separately fabricated and subsequently connected to the tank.
[0070] This allows using the same tank base for washing machines (without additional lids)
and for washer-drier machines (with added lids defining together with the tank) the
condensation 10 and absorption 23 chambers.
[0071] Fig. 5 illustrates a further embodiment of the invention, wherein the heat exchanger
10 and the absorption device 23 are connected in parallel in the drying duct 16 and
at least partially provided by the tank wall 3, as described above with reference
to the embodiment in Fig. 4.
[0072] The supply of the drying air flow 22 to the heat exchanger and absorption device
can be is piloted by the control unit 38 as described with reference to Fig. 3.
[0073] Fig. 6 illustrates a further embodiment of the invention, wherein the heat exchanger
10 and the absorption device 23 are connected in parallel in the drying circuit and
wherein the inlet port 40 of the heat exchanger 10 (condenser) is arranged above a
tank fill-up level to create a free surface of cooling water 34 in the tank 3, whereas
the inlet port 42 of the absorption device 23 is arranged below this fill-up level.
[0074] This particular configuration allows executing three different dehumidification steps
by the drying air flow 22.
[0075] A first dehumidification step provides two condensation steps:
[0076] - along the free surface of cooling water 34 in the tank 3 and
[0077] - through the heat exchanger 10,
[0078] provided that the inlet of the absorption device is sealed by means of the cooling
water 34 on the tank bottom. The inlet tube section of the absorption device 23 is
sized such that the depression created by the intake unit 17, 18 cannot raise the
water level to the absorbing material cartridge.
[0079] A second dehumidification step provides simultaneously carrying out the condensation
by means of the heat exchanger 10 and the absorption by means of the absorption device
23,
[0080] provided that the absorption device inlet is cleared by means of the lowering or
complete drainage of the cooling water 34 on the tank bottom.
[0081] It will be thus appreciated that said dehumidification steps can be controlled by
controlling the cooling water level on the tank bottom, and accordingly by means of
a targeted piloting of the electrovalves for the supply and the water discharge pump.
[0082] A third possible dehumidification step provides only moisture absorption by means
of the absorption device 23. To the purpose, a selection or control valve 35 (shown
in dotted lines in Fig. 6) piloted by the control unit 38 and suitable to open and
close and/or control the air passing through the heat exchanger.
[0083] Obviously, to the washer-drier machine according to the present invention, those
skilled in the art, aiming at meeting contingent and specific requirements, may carry
out further modifications and variations, all being however contemplated within the
scope of protection of the invention, such as defined in the annexed claims.
1. A washer-drier machine (1) for washing and drying the laundry comprising:
- a washing tank (3) suitable to contain the washing liquid;
- a basket (5) suitable to accommodate the laundry and being pivotally supported within
the washing tank (3);
- a drying circuit with a suction unit (17, 18), a heat exchanger (10) and a heating
unit (21) which communicate with each other by means of a drying duct (16), said drying
circuit being suitable of delivering a drying air flow (22) through said basket (5),
characterized in that
the drying circuit further comprises an absorption device (23), having:
- an absorption chamber (24) in communication with the drying duct (16) and defining
a passageway (25) for the drying air flow (22),
- a cartridge (26) of absorbing material, particularly zeolite, arranged in the absorption
chamber (24) in contact with the passageway (25),
- heating means (27) arranged in a heat exchange relationship with the cartridge (26)
of absorbing material and suitable to cause the release of the moisture from the cartridge
(26),
wherein the washer-drier machine (1) is configured such that, during a drying program,
the drying air (22) is conveyed both through said heat exchanger (10) for a dehumidification
by means of condensation and through the absorption device (23) for a moisture absorption
by means of the absorbing material.
2. The washer-drier machine (1) according to claim 1, wherein said heat exchanger (10)
and said absorption device (23) are arranged in series between the tank (3) and the
suction unit (17, 18).
3. The washer-drier machine (1) according to claim 1, wherein said heat exchanger (10)
and said absorption device (23) are arranged in parallel between the tank (3) and
the intake unit (17, 18) and can be activated simultaneously or alternatively or one
after the other during a same drying cycle.
4. The washer-drier machine (1) according to any preceding claims, comprising a recirculation
duct (7) with recirculation pump (8) which take, during a washing step, hot washing
liquid from the bottom of the tank (3) and re-feed it in the tank (3), said recirculation
duct (7) being arranged in a thermal relationship with the absorbing material cartridge
(26) of the absorption device (23), thereby causing the latter to release the previously
absorbed moisture.
5. The washer-drier machine(1) according to any preceding claim, wherein the drying duct
(16) is connected to the bottom of the tank (3) in an inlet point (9) arranged below
the fill-up levels during the washing step (19) and during the rinsing step (20),
such that the lye closes the inlet (9) of the drying duct (16), thereby preventing
the water vapour from being conveyed to the absorption device (23).
6. The washer-drier machine (1) according to the preceding claim, wherein the heat exchanger
(10) comprises a condensation chamber (28) and a spraying nozzle (46) connectable
to the water network and suitable to inject a cold water jet in the condensation chamber
(28).
7. The washer-drier machine (1) according to claim 2 and those depending therefrom, wherein
the absorption device (23) is arranged downstream and above the condensation chamber
(28).
8. The washer-drier machine(1) according to any preceding claim, wherein the absorption
device (23) comprises a side wall (30) which internally defines said tubular absorption
chamber (24) with cartridge seats along the side wall (30), as well as a heating jacket
(27) provided outside around the side wall (30), such as to be capable of heating
the absorbing material cartridge (26) arranged within the seat thereof.
9. The washer-drier machine (1) according to the preceding claim, wherein the heating
jacket (27) comprises a heating fluid duct (45) connected to the recirculation duct
(7) as well as an electric resistance (31) in a heat exchange relationship with the
inside of the heating fluid duct (45).
10. The washer-drier machine (1) according to any preceding claim, wherein the heat exchanger
(10) comprises a condensation space (33) provided by the tank (13) bottom and suitable
to contain a volume of cooling water (34) which forms a free water surface spaced
from the basket (5) such as to cool the drying air flow (22) downstream of the basket
(5) within the washing tank (3).
11. The washer-drier machine (1) according to claim 3 and the ones depending therefrom,
comprising a selection valve (35) suitable to adjust the flow rate of the partial
flows in the area (22) through the absorption device (23) and the heat exchanger (10).
12. The washer-drier machine (1) according to the preceding claim, comprising a control
unit (38) configured to control the selection valve (35) such as to divide the flow
of drying air (22) in two partial flows the one being conveyed to the heat exchanger
(10) and the other through the absorption device (23) and to adjust the flow rate
ratio of the two partial flows as a function of the residual moisture in the laundry.
13. Washer-drier machine(1) according to any preceding claim, wherein said absorption
device (23) defines a longer air passage and/or with a higher flow section than that
of the heat exchanger (10).
14. Washer-drier machine(1) according to any preceding claim, wherein the absorption device
(23) and the heat exchanger (10) are configured as a prefabricated dehumidification
unit, which can be connected to the drying duct (16) and placed outside the washing
tank (3).
15. The washer-drier machine (1) according to any preceding claim, wherein the absorption
chamber (24) has an arched elongate shape and is extended circumferentially very proximate
to a side wall (39) of the tank (3).
16. The washer-drier machine (1) according to any preceding claim, wherein the heat exchanger
(10) and the absorption device (23) are connected in parallel in the drying circuit
and an inlet port (40) of the heat exchanger (10) is arranged above a tank fill-up
level to create a free surface of cooling water (34) within the tank (3), while an
inlet port (42) of the absorption device (23) is arranged below this fill-up level,
wherein the washer-drier machine is configured to activate and deactivate the absorption
device (23) by controlling the level of the cooling water on the tank bottom.