[0001] The invention relates to a dryer with a heat pump and a water container comprising
an electrode and a process for its operation. The invention relates in particular
to a dryer with a drum for laundry items to be dried; a process air circuit, wherein
heated process air is moved by means of a blower above and through the laundry items
to be dried; a heat pump circuit comprising an evaporator, a compressor and a condenser;
a water container for the collection of water condensed at the evaporator, the water
container being in contact with at least one electrode and an electric pump for pumping
water out of the water container, wherein the electric pump is adapted to start pumping
when at least one of the electrodes senses its contact with water in the water container;
and a control unit comprising a clock for measuring the time elapsed during a drying
process.
[0002] Currently, several systems are known which allow to detect the end of a drying stage
with different levels of technological readiness, cost and accuracy based on the sensing
sensors used. The sensor might measure for example temperature, temperature difference,
relative humidity, electrical resistance or conductivity, capacitance, near infrared
radiation (NIR), radar-microwaves. Only a few of them are commercially available and
implemented in the market such as electrical resistance measurement, capacitance,
autodry. In general, all these solutions look for a variable that is directly related
to the water content of laundry items to be dried and deliver a signal to show the
end of the drying process.
[0003] In general, clothes dryers are used as exhaust air or circulating air dryers. In
both cases, air (so-called "process air") is led by means of a blower over a heating
device and into a drum containing wet clothes as a drying chamber. The hot air takes
up humidity from the clothes to be dried. In the case of exhaust air driers, the air
which is loaded with humidity is upon exiting the drum in general led out of the dryer
with no heat energy being recovered. In the case of circulating air dryers, however,
the process air is moved in a circle. Circulating air dryers are thus generally designed
as condensation dryers.
[0004] Condensation dryers whose function is based upon the condensation of evaporated humidity
from clothes do no require a tube for exhausted air and allow the recovery of energy
from the heated process air, for example by using a heat pump. Condensation dryers
are very popular, because they can be used in bathrooms which are located inside an
apartment or laundries of larger living complexes.
[0005] By using a heat pump, a loss of energy can be reduced significantly. In a condensation
dryer equipped with a heat pump, the cooling of the warm humid process air is effected
mainly in the evaporator of the heat pump, where the heat energy transferred is used
for evaporating the refrigerant utilized in the heat pump circuit. The refrigerant
of the heat pump which evaporated due to the heating is led through a compressor to
the condenser of the heat pump, where heat energy is set free on account of the condensation
of the gaseous refrigerant. This heat energy is used for heating the process air before
it is introduced into the drum.
[0006] During the drying process, liquid water is formed in the evaporator and can be collected
and/or led away in various ways. For example, the condensed water from the evaporation
can be conducted to a draining pump to be pumped to a drainage system out of the dryer.
The condensed water can however also be collected in a reservoir, and, once it reaches
a certain level, pumped out or into another container with a corresponding pump. One
possibility of detecting the level of water is by means of electrodes which provide
a signal once the water in the reservoir reaches the electrodes.
[0007] The publications
EP 3187652 A1 and
EP 3252211 A1 each describe a method for controlling a heat pump laundry drying machine, wherein
the drying machine comprises an outdoor textiles drying procedure for drying outdoor
textiles. In this regard, outdoor textiles have a waterproof and breathable thin film
material with a micro-porous structure. The method involves detecting a signal indicative
of the humidity of the outdoor textile. The step of detecting a signal indicative
of the humidity of the outdoor textile includes inter alia the detection of a level
and/or the temporal gradient of a level of water removed from the outdoor textile
to be dried and collected in a water container. If for example the level of water
does not increase for a given time interval, reasonably it means that there is no
more water to be removed from the textile in the drum and that the textile is thus
substantially dry. It is also disclosed that the number of activation of a pump driving
water removed from the textile contained in the drum to a container may also be representative
of the laundry humidity status within the drum.
[0008] In view of this situation, it was an object of the present invention to provide a
dryer with a heat pump which allows a better control of the drying process. Preferably,
the dryer allows a better assessment of the water content in laundry items to be dried
and of the change in the humidity of the laundry items to be dried.
[0009] This object is achieved according to the present invention by means of the dryer
and the process for its operation pursuant to the independent claims. Preferred embodiments
of the dryer according to the invention are shown especially in the dependent claims.
Preferred embodiments of the process correspond to preferred embodiments of the dryer
and vice versa even if not expressly stated herein.
[0010] The invention is thus directed to a dryer with a drum for laundry items to be dried;
a process air circuit, wherein heated process air is moved by means of a blower above
and through the laundry items to be dried; a heat pump circuit comprising an evaporator,
a compressor and a condenser; a water container for the collection of water condensed
at the evaporator, the water container being in contact with at least one electrode
and an electric pump for pumping water out of the water container, wherein the electric
pump is adapted to start pumping when at least one of the electrodes senses its contact
with water in the water container; and a control unit comprising a clock for measuring
the time elapsed during a drying process; wherein the control unit is adapted to measure
and register time periods Δt
i, wherein i is an integer from 1 to n, during the drying process in which the electric
pump is not running between pumping steps of a preset duration Δt
op and to analyze the measured time periods Δt
i with respect to the development of the drying process.
[0011] The drum is usually rotatable around a horizontal or vertical axis, preferably a
horizontal axis.
[0012] The term "water" must not be interpreted too narrowly in that it refers essentially
to an aqueous liquid with essentially consists of water.
[0013] The number n will depend on the progress of the drying process and depend especially
on the intended level of humidity remaining in the laundry items to be dried.
[0014] In a preferred embodiment of the dryer, the control unit is adapted to stop a drying
process when the time periods Δt
i increase with time such that a time period Δt
i is equal or larger than a preset time period Δt
isetmin. Namely, in the course of a drying process the amount of water removed from the laundry
items per time unit will decrease. Accordingly, the time periods Δt
i increase with time. The preset time period Δt
isetmin will depend on the intended final humidity of the laundry items, and also of the
amount of laundry items to be dried. In general, the preset time period Δt
isetmin will be larger if a less humid final state of the laundry is desired. In a typical
drying process, desired final states might be for example the dryness levels "iron
dry", "wardrobe dry" or "bone dry". They would then in general correspond to different
values of the preset time period Δt
isetmin.
[0015] The water container might have different shapes and have different volumes. The water
container might be for example a cylindrical or a cubic shape. Often the water container
will have in its height direction the same cross-section. In a preferred embodiment,
the water container is tapered. As result thereof, the cross-section in the water
container will decrease in its height direction. Water arriving from the evaporator
will thus lead to a faster increase of the water level in the water container. In
this manner, the determination of the time periods Δt
i can be made more often and the accuracy of the entire evaluation of the drying process
can be increased.
[0016] It is preferred with the present invention that a height position of the at least
one electrode in the water container is adjustable. In this manner, the start of the
pump can be prolonged by increasing the height position of the at least one electrode.
This might perhaps be useful in the case of very wet and/or many laundry items to
be dried.
[0017] In a preferred embodiment of the dryer, the dryer thus contains a system for measuring
the load with laundry items to be dried. The system is not limited as long as the
load can be determined. The electric current for the rotation of the drum could be
evaluated or the weight of the laundry items could be determined by means of a balance.
[0018] In a further preferred embodiment of the dryer of the present invention, the control
unit is adapted to set the values of the preset duration Δt
op in dependence of the load with laundry items to be dried. Namely, if a large amount
of water is to be removed from the laundry items, it might be useful to have larger
time periods during which the pump will work. This might decrease the frequency of
On and Offs of the pump during drying phases during which it is not necessary to closely
observe the drying process. In accordance with the present invention, the values of
the preset duration Δt
op can be set differently for different phases in a drying process.
[0019] In the present invention, a dryer is moreover preferred, wherein the control unit
is adapted to set the values of the preset duration Δt
op in dependence of the type and/or material of the laundry items to be dried. In this
manner, the different speeds at which laundry items might release the water contained
therein might be accounted for.
[0020] Preferred is also a dryer, wherein the control unit is adapted to count the number
of pumping periods Δt
op to determine the amount of water removed from the laundry items. This would provide
further information on the course and the trend of a drying process.
[0021] In a preferred dryer, the volume of the water container is adjustable to the load
with laundry items to be dried. This would allow to account for different loads and
humidity levels of the laundry items without detrimental effects on the accuracy of
the evaluation of the measured time periods.
[0022] In a preferred embodiment of the inventive dryer, the preset time interval Δt
op is set smaller when a time period Δt
i is smaller than a preset minimum time period Δt
isetmin.
[0023] It is preferred in the dryer according to the present invention that two electrodes
are used and the control unit is adapted to measure the electric conductivity I between
the two electrodes and to sense a contact with the water in the water container once
the electric conductivity I has reached a given value I
set.
[0024] In the dryer of the present invention, the electric pump and the at least one electrode
are preferably formed as a one-piece pump-electrode-system that is placed in an upper
part of the water container. A one-piece pump-electrode-system has the advantage that
it is compact. It is however also possible in the dryer of the present invention that
the electric pump and the at least one electrode are formed as separate parts.
[0025] The dryer of the present invention is preferably a washer-dryer comprising a lye
container in which a rotable drum is placed.
[0026] In the dryer of the present invention, a refrigerant in the heat pump circuit is
preferably selected from the group consisting of butane, propane, a butane-isopropane
mixture, carbon dioxide and a fluoro hydrocarbon compound.
[0027] Preferably, the dryer of the present invention comprises in the air process channel
an additional heating, preferably an electrical resistance heating, for heating process
air. This might help to heat the process air if necessary.
[0028] The invention is moreover directed to a process for operating a dryer with a drum
for laundry items to be dried; a process air circuit, wherein heated process air is
moved by means of a blower above and through the laundry items to be dried; a heat
pump circuit comprising an evaporator, a compressor and a condenser; a water container
for the collection of water condensed at the evaporator, the water container being
in contact with at least one electrode and an electric pump for pumping water out
of the water container, wherein the electric pump is adapted to start pumping when
at least one of the electrodes senses its contact with water in the water container;
and a control unit comprising a clock for measuring the time elapsed during a drying
process; wherein the control unit is adapted to measure and register time periods
Δt
i, wherein i is an integer from 1 to n, during the drying process in which the electric
pump is not running between pumping steps of a preset duration Δt
op and to analyze the measured time periods Δt
i with respect to the development of the drying process, wherein the process comprises
the steps
- (a) starting a drying process;
- (b) starting the clock;
- (c) starting the electric pump to pump when at least one of the electrodes senses
its contact with water in the water container for a preset duration Δtop;
- (d) measuring and registering a time period Δti, wherein i is an integer from 1 to n, in which the electric pump is not running;
- (e) repeating steps (c) and (d); and
- (f) analyzing the measured time periods Δti with respect to the development of the drying process.
[0029] The clock can start with the beginning of a drying process or preferably with the
first time, the electric pump starts to pump water out of the water container. The
water pumped out of the water container can be pumped into a drainage system or into
another container where it might be collected for example for a washing cycle in a
washer-dryer or for a final disposal.
[0030] The meaning of the term "to analyze the measured time periods Δt
i with respect to the development of the drying process" refers in general to the course
and speed of the drying process, for example the development of the humidity state
in the laundry items. Preferably, the term refers to the determination, preferably
a very accurate determination of humidity levels in laundry items to be dried and
thus to the intended endpoint of a drying process.
[0031] At the start of a drying program, there is no or little water in the water container
such that the electrodes are not in contact with the water and the pump is not working.
As the drying process evolves, water coming from the evaporator reaches the water
reservoir and fills. When it reaches the level determined by the position of the electrodes,
the electrodes provide a signal to the control unit of the dryer which then triggers
the start of the pump.
[0032] It is noted here that the term control unit is used herein with a broad meaning in
that it covers all control subunits that are in charge of controlling or conducting
the working of the different parts of the dryer. A subunit can be envisaged that is
in charge of controlling the contact of water with the electrodes and the evaluation
of electrode signals to then effect the working of the water pump.
[0033] The heat pump in the dryer according to the present invention comprises an evaporator,
a condenser and a compressor. The compressor is in general located in the flow direction
of the refrigerant between the evaporator and the condenser. In the heat pump, a relaxation
valve (also called "throttle valve") is placed in general in flow direction of the
refrigerant between the condenser and the evaporator.
[0034] The refrigerant used in the heat pump preferably circulates in the heat pump circuit
in turbulent flow. Turbulent flow can be established via an appropriate design of
the flow channel and/or by means of suitable actuation means (for example compressor).
[0035] With an increasing degree of dryness of the laundry items to be dried, in particular
clothes, a lower heating power or even an increasing cooling power is required. In
particular, upon completion of a drying phase, the temperature in the process air
circuit would increase strongly. Thus, in general, the heating pump and, if applicable,
the (electrical) heating in the dryer are controlled such that a maximum admissible
temperature in the drying chamber is not exceeded.
[0036] The invention has a number of advantages. It allows to reduce the complexity of a
dryer and of the drying processes occurring therein. In embodiments it is possible
to take advantage of electrode pumps that are existing already in some appliances,
in particular heat pump washer-dryers, and to use in this respect existing electrodes
as drying sensors for example for a heat pump washer-dryer. There would be then no
need of sensors, for example sensors placed in the drum, to determine the drying level
of the laundry to be dried. The accuracy of the estimation of the water content in
the laundry to be dried can be very high allowing a precise control of already existing
drying programs and also the development of new ones.
[0037] The present invention allows moreover to use the values of the time periods Δt
i between subsequent time intervals Δt
set in which the electric pump works by means of artificial intelligence (Al) for the
learning of the dryer depending on the use, the kind of clothing and so on. This may
allow to determine in which manner a user uses the dryer and howe the dryer is able
to learn it through the data monitoring for learning.
[0038] Moreover, the dryer allows a better control of the drying process, in particular
of the water content in the laundry items to be dried. It is thus possible to indirectly
also control the heat pump circuit, such that the temperature in the heat pump circuit
can be kept better in an optimum range.
[0039] Non-limiting examples for dryers according to the present invention or for parts
which make a technical contribution to the invention and in which the process of the
present invention can be implemented, are shown in Figs. 1 to 5.
Fig. 1 shows a vertically cut condensation dryer according to a first embodiment wherein
a water container is provided for condensate originating from the evaporator and wherein
the container is equipped with an electric pump and electrodes for detecting a water
level.
Fig. 2 shows a water container that is used in a non-limiting embodiment of the dryer
of the present invention. An electric pump for pumping up water and electrodes used
for detecting when the water in the water container reaches the height position of
the electrodes are used here as separate parts.
Fig. 3 shows a water container that is used in a further non-limiting embodiment of
the dryer of the present invention. In this embodiment, an electric pump for pumping
up water and the electrodes used for detecting when the water in the water container
reaches the height position of the electrodes constitute a one-piece pump-electrode-system.
Fig. 4 shows a diagram with the development of the water content in laundry items
to be dried over time.
Fig. 5 is an alternative diagram which shows the development of the water content
in laundry items to be dried over time. Here the amount of condensed water is shown.
[0040] Fig. 1 shows a vertically cut condensation dryer 1 (in the following abbreviated
as "dryer") according to a first embodiment wherein a water container 5 is provided
for condensate originating from the evaporator 8 of a heat pump and wherein the water
container 5 is equipped with an electric pump 6 and electrodes 7 for detecting a water
level.
[0041] The dryer shown in Fig. 1 depicts a drum 2 as drying chamber which is rotatable around
a horizontal axis. Within the drum, tappets 14 are fixed in order to move the laundry
items (which are not shown here) during a rotation of the drum 3. An electric heating
device 13 which supports here the heat pump, a heat pump 8, 9, 10, 11, as well as
a blower 12 are provided in a process air circuit 3. Warm process air is thus moved
to the drum 3, cooled after having passed through the drum 2 and warmed again after
the condensation of the humidity contained in the process air. The heated process
air is led from the rear, i.e. from the side of the drum 3 opposite to the access
door 17, through its perforated floor into the drum 2, comes into contact with the
laundry items to be dried and flows through the opening for filling the drum 2 to
a lint filter 20 within the dryer door 17 that closes the opening for filling the
dryer 1. Thereafter, the air stream in the dryer door 17 is directed downwards and
is moved within the process air circuit 3 to the evaporator 8. There, the humidity
taken up from the laundry items condenses due to the cooling and the condensed water
is collected by the water container 5. The condensed water can be deposed therefrom.
[0042] Behind the evaporator 8, the process air is moved by means of blower 12 again to
the heating device 13 which is however also heated by the condenser 9 of the heat
pump 8, 9, 10, 11.
[0043] The control of the dryer 1 is achieved by means of a control unit 4 which may be
adjusted by a user by means of an operator panel 15.
[0044] In the heat pump 8, 9, 10, 11, the refrigerant is evaporated in evaporator 8, compressed
in compressor 11 which is here a variable power compressor and subsequently condensed
in condenser 9. 10 is a throttle.
[0045] Process air is fed through the drum 2 in a process air circuit 3 by means of a blower
12. After passing through the drum 2, the moist, warm process air is directed into
the evaporator 8 of a heat pump 8,9,10,11, which also has a variable-speed compressor
11, a throttle 10 and a condenser 9. The arrows shown in Fig. 1 indicate the flow
direction of the coolant in the air pump and of the air in the process air circuit.
[0046] The refrigerant of the heat pump 8,9,10,11 evaporated in the evaporator 8 is led
to the condenser 9 via the speed-dependent compressor 11. In the condenser 9, the
refrigerant liquefies, releasing heat to the process air flowing in the process air
circuit 3. The refrigerant, which is now in liquid form, is again fed to the evaporator
8 via the throttle 10, thus closing the refrigerant circuit. In this embodiment, a
temperature sensor S
TWPK 18 between evaporator 8 and compressor 11 measures the temperature TK of the refrigerant.
[0047] In the embodiment shown in Fig. 1, the electric heater 13 serves to heat the process
air more rapidly. In other embodiments of the invention, the electric heater 18 may
be omitted.
[0048] An optical/acoustical indication device 16 allows the user of the dryer to display,
for example, operating parameters and/or an expected duration of the drying process.
[0049] In the process according to the invention, process air is repeatedly circulated through
the process air circuit 3 until preferably a desired degree of drying of the laundry
items is achieved.
[0050] As regards the inventive process conducted in the dryer 1 it is noted that the control
unit 4 is adapted to measure and register time periods Δt
i, wherein i is an integer from 1 to n, during the drying process in which the electric
pump 6 is not running between pumping steps of a preset duration Δt
op and to analyze the measured time periods Δt
i with respect to the development of the drying process.
[0051] The dryer 1 of Fig. 1 further enables precise control of the operation of the heat
pump, so that a drying phase can be efficiently controlled by regulating the blower
12 and the compressor 11 so that a predetermined maximum temperature T
max for the temperature of the process air is not exceeded.
[0052] Fig. 2 shows a water container 5 that is used in a non-limiting embodiment of the
dryer of the present invention. An electric pump 6 for pumping up water 22 and electrodes
7 used for detecting when the water 22 in the water container 5 reaches the height
position of the electrodes 7 are used here as separate parts. 31 indicates condensed
water from the evaporator not shown here. 25 indicates here a pump support and 26
an electrode support which are here in contact with the water container 5. 21 indicates
a tube for carrying away pumped off water.
[0053] Fig. 3 shows a water container 5 that is used in a further non-limiting embodiment
of the dryer of the present invention. In this embodiment, an electric pump 6 for
pumping up water 22 and the electrodes 7 used for detecting when the water 22 in the
water container 5 reaches the height position 24 of the electrodes 7 constitute here
a one-piece pump-electrode-system 27. 31 indicates condensed water from the evaporator
not shown here. 21 indicates a tube for carrying away pumped off water.
[0054] Fig. 4 shows a diagram with the development of the water content in laundry items
to be dried over time. In the very beginning the water content in the laundry items
is quite high. Upon the start of the pump, the water content in the laundry items
decreases. As can be seen there is a roughly linear but pronounced decline of the
water content in the beginning. This is indicated by the term "Δt
i ≈ constant". As the drying process continues the decrease of the water content in
the laundry items to be dried decreases, i.e. the slope decreases and slight increasing
Δt
i values can be seen. The dashed line indicates the beginning of the drying zone. In
the drying zone, several definite endpoints are shown for the laundry to be dried,
namely iron, wardrobe and bone dry. The user of the drier may select one of these
endpoints.
[0055] Fig. 5 is an alternative diagram which shows the development of the water content
in laundry items to be dried over time. Here the amount of condensed water is shown.
28 points to a line which indicated the amount of condensed water removed from the
dryer. 29 indicates on the other hand the condensed water as registered by a scale.
Reference Signs
[0056]
- 1
- Dryer
- 2
- Drum
- 3
- Process air circuit
- 4
- Control unit
- 5
- Water container; condensate collection container
- 6
- Electric pump in water container
- 7
- Electrodes in water container
- 8
- Evaporator
- 9
- Condenser
- 10
- Throttle
- 11
- (variable power) Compressor
- 12
- Blower
- 13
- Electric heating device
- 14
- Drum ribs for taking along laundry items
- 15
- Operator panel
- 16
- Optical/acoustical indication device
- 17
- Access door
- 18
- Temperature sensor STWPK in the coolant circuit for measuring a temperature TK of the coolant
- 19
- Clock
- 20
- Fluff filter
- 21
- Tube for pumped off water
- 22
- Water
- 23
- Tapered water container
- 24
- Height position of the electrode(s)
- 25
- Pump support
- 26
- Electrode support
- 27
- One-piece pump-electrode-system
- 28
- Amount of condensed water removed from drier
- 29
- Amount of condensed water registered by a scale
- 30
- Percentage of humidity remaining in the laundry items
- 31
- Condensed water from evaporator
1. Dryer (1) with a drum (2) for laundry items to be dried; a process air circuit (3),
wherein heated process air is moved by means of a blower (12) above and through the
laundry items to be dried; a heat pump circuit (8, 9, 11) comprising an evaporator
(8), a compressor (11) and a condenser (9); a water container (5) for the collection
of water (31) condensed at the evaporator (8), the water container (5) being in contact
with at least one electrode (7) and an electric pump (6) for pumping water (22) out
of the water container (5), wherein the electric pump (6) is adapted to start pumping
when at least one of the electrodes (7) senses its contact with water (22) in the
water container (5); and a control unit (4) comprising a clock (19) for measuring
the time elapsed during a drying process; characterized in that the control unit (4) is adapted to measure and register time periods Δti, wherein i is an integer from 1 to n, during the drying process in which the electric
pump (6) is not running between pumping steps of a preset duration Δtop and to analyze the measured time periods Δti with respect to the development of the drying process.
2. Dryer (1) according to claim 1, wherein the control unit (4) is adapted to stop a
drying process when the time periods Δti increase with time such that a time period Δti is equal or larger than a preset time period Δtisetmin.
3. Dryer (1) according to claim 1 or 2, wherein the water container (5) is tapered.
4. Dryer (1) according to any of claims 1 to 3, wherein a height position (24) of the
at least one electrode (7) in the water container (5) is adjustable.
5. Dryer (1) according to any of claims 1 to 4, containing a system for measuring the
load with laundry items to be dried.
6. Dryer (1) according to any of claims 1 to 5, wherein the control unit (4) is adapted
to set the values of the preset duration Δtop in dependence of the load with items to be dried.
7. Dryer (1) according to any of claims 1 to 6, wherein the control unit (4) is adapted
to set the values of the preset duration Δtop in dependence of the type and/or material of the laundry items to be dried.
8. Dryer (1) according to any of claims 1 to 7, wherein the control unit (4) is adapted
to count the number of pumping periods Δtop to determine the amount of water removed from the laundry items.
9. Dryer (1) according to any of claims 1 to 8, wherein the volume of the water container
(5) is adjustable to the load with laundry items to be dried.
10. Dryer (1) according to any of claims 1 to 9, wherein the preset time interval Δtop is set smaller when a time period Δti is smaller than a preset minimum time period Δtisetmin.
11. Dryer (1) according to any of claims 2 to 10, wherein two electrodes (7) are used
and the control unit (4) is adapted to measure the electric conductivity I between
the two electrodes (7) and to sense a contact with the water (22) in the water container
(5) once the electric conductivity I has reached a given value Iset.
12. Dryer (1) according to any of claims 1 to 11, wherein the electric pump (6) and the
at least one electrode (7) are formed as a one-piece pump-electrode-system (27) that
is placed in an upper part of the water container (5).
13. Dryer (1) according to any of claims 1 to 12, wherein the dryer (1) is a washer-dryer
comprising a lye container in which a rotable drum (2) is placed.
14. Dryer (1) according to any of claims 1 to 13, wherein a refrigerant in the heat pump
circuit (13, 14, 15) is selected from the group consisting of butane, propane, a butane-isopropane
mixture, carbon dioxide and a fluoro hydrocarbon compound.
15. Process for operating a dryer (1) with a drum (2) for laundry items to be dried; a
process air circuit (3), wherein heated process air is moved by means of a blower
(12) above and through the laundry items to be dried; a heat pump circuit (8, 9, 11)
comprising an evaporator (8), a compressor (11) and a condenser (9); a water container
(5) for the collection of water (31) condensed at the evaporator (8), the water container
(5) being in contact with at least one electrode (7) and an electric pump (6) for
pumping water (22) out of the water container (5), wherein the electric pump (6) is
adapted to start pumping when at least one of the electrodes (7) senses its contact
with water (22) in the water container (5); and a control unit (4) comprising a clock
(19) for measuring the time elapsed during a drying process;
characterized in that the control unit (4) is adapted to measure and register time periods Δt
i, wherein i is an integer from 1 to n, during the drying process in which the electric
pump (6) is not running between pumping steps of a preset duration Δt
op and to analyze the measured time periods Δt
i with respect to the development of the drying process, wherein the process comprises
the steps
(a) starting a drying process;
(b) starting the clock (19);
(c) starting the electric pump (6) to pump when at least one of the electrodes (7)
senses its contact with water (22) in the water container (5) for a preset duration
Δtop;
(d) measuring and registering a time period Δti, wherein i is an integer from 1 to n, in which the electric pump (6) is not running;
(e) repeating steps (c) and (d); and
(f) analyzing the measured time periods Δti with respect to the development of the drying process.