EP3124680B1 - Procédé pour adapter des paramètres de fonctionnement lors du séchage dans un séchoir de pompe à chaleur - Google Patents

Procédé pour adapter des paramètres de fonctionnement lors du séchage dans un séchoir de pompe à chaleur Download PDF

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Publication number
EP3124680B1
EP3124680B1 EP15178434.5A EP15178434A EP3124680B1 EP 3124680 B1 EP3124680 B1 EP 3124680B1 EP 15178434 A EP15178434 A EP 15178434A EP 3124680 B1 EP3124680 B1 EP 3124680B1
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EP
European Patent Office
Prior art keywords
drying
drum
rotation direction
rotation speed
rotating
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP15178434.5A
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German (de)
English (en)
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EP3124680A1 (fr
Inventor
Roberto Ragogna
Fabio GARZENA
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Electrolux Appliances AB
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Electrolux Appliances AB
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Priority to EP15178434.5A priority Critical patent/EP3124680B1/fr
Priority to CN201610601620.XA priority patent/CN106436241B/zh
Publication of EP3124680A1 publication Critical patent/EP3124680A1/fr
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Publication of EP3124680B1 publication Critical patent/EP3124680B1/fr
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    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F58/00Domestic laundry dryers
    • D06F58/32Control of operations performed in domestic laundry dryers 
    • D06F58/34Control of operations performed in domestic laundry dryers  characterised by the purpose or target of the control
    • D06F58/36Control of operational steps, e.g. for optimisation or improvement of operational steps depending on the condition of the laundry
    • D06F58/38Control of operational steps, e.g. for optimisation or improvement of operational steps depending on the condition of the laundry of drying, e.g. to achieve the target humidity
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2101/00User input for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2101/14Time settings
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2101/00User input for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2101/20Operation modes, e.g. delicate laundry washing programs, service modes or refreshment cycles
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/02Characteristics of laundry or load
    • D06F2103/04Quantity, e.g. weight or variation of weight
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/02Characteristics of laundry or load
    • D06F2103/06Type or material
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/02Characteristics of laundry or load
    • D06F2103/08Humidity
    • D06F2103/10Humidity expressed as capacitance or resistance
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/28Air properties
    • D06F2103/32Temperature
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/28Air properties
    • D06F2103/34Humidity
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/28Air properties
    • D06F2103/36Flow or velocity
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/38Time, e.g. duration
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/44Current or voltage
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2103/00Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers
    • D06F2103/50Parameters monitored or detected for the control of domestic laundry washing machines, washer-dryers or laundry dryers related to heat pumps, e.g. pressure or flow rate
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2105/00Systems or parameters controlled or affected by the control systems of washing machines, washer-dryers or laundry dryers
    • D06F2105/16Air properties
    • D06F2105/24Flow or velocity
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2105/00Systems or parameters controlled or affected by the control systems of washing machines, washer-dryers or laundry dryers
    • D06F2105/26Heat pumps
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2105/00Systems or parameters controlled or affected by the control systems of washing machines, washer-dryers or laundry dryers
    • D06F2105/46Drum speed; Actuation of motors, e.g. starting or interrupting
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F2105/00Systems or parameters controlled or affected by the control systems of washing machines, washer-dryers or laundry dryers
    • D06F2105/52Changing sequence of operational steps; Carrying out additional operational steps; Modifying operational steps, e.g. by extending duration of steps
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F25/00Washing machines with receptacles, e.g. perforated, having a rotary movement, e.g. oscillatory movement, the receptacle serving both for washing and for centrifugally separating water from the laundry and having further drying means, e.g. using hot air 
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F58/00Domestic laundry dryers
    • D06F58/02Domestic laundry dryers having dryer drums rotating about a horizontal axis
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F58/00Domestic laundry dryers
    • D06F58/20General details of domestic laundry dryers 
    • D06F58/206Heat pump arrangements

Definitions

  • the invention relates to a method of operating a heat-pump dryer during a drying program in a way to provide optimized drying specifically for a low amount of laundry.
  • EP 2 832 921 A1 suggests to operate an electrically heated dryer or a heat-pump dryer dependent on the drying air temperature.
  • the dryer has a common motor for driving the drum and the drying air fan in the forward and backward rotation direction at the nominal rotation speed.
  • the drying air fan is designed such that the conveyance rate is lower when the fan is rotated in the backward direction as compared to the conveyance rate when rotated in the forward direction.
  • the ratio of the periods rotating the forward direction to the periods of rotating in the backward direction is low. If the drying air temperature is reaching a certain level, the ratio of forward/rearward drum and fan rotation is increased.
  • the rotation speed of the heat pump compressor can be higher than in the second phase.
  • thermo protector circuit adapted to cut the power supply to the compressor when predetermined temperature or voltage load thresholds are exceeded. Activation of the thermo protector circuit is detected by monitoring the temperature of the refrigerant, and in response to detecting such activation, a corrective action is performed, such as switching on a compressor cooling fan or modifying drum/process fan motor parameters.
  • a method for operating a heat-pump dryer during a drying program comprises: a cabinet; a drum arranged within the cabinet and being adapted to receive laundry for drying the laundry within the drum using drying air; an air channel adapted to guide the drying air from at least one air outlet at the drum to at least one air inlet at the drum for providing an air circulation arrangement; a drying air fan adapted to convey the drying air through the air circulation arrangement; a heat pump system comprising a first heat exchanger adapted to heat the drying air, a second heat exchanger adapted to cool the drying air for humidity condensation, and a compressor adapted to circulate refrigerant through the first and second heat exchangers; and a temperature sensor adapted to detect a refrigerant temperature of the heat pump system.
  • the dryer comprises: a fan motor adapted to drive the drying air fan selectively in a first rotation direction or in a second rotation direction and/or to drive the drying air fan selectively at least at a first rotation speed or at a second rotation speed, and a drum motor adapted to drive the drum selectively in a first rotation direction or in a second rotation direction.
  • the dryer further comprises: a motor adapted to drive in a synchronized manner the drying air fan and the drum selectively in a first rotation direction or in a second rotation direction.
  • the heat pump system further comprises an expansion device and/or a cooling air fan for cooling the compressor or an auxiliary heat exchanger of the heat pump system and/or one or more further components as described below in the detailed embodiment.
  • the dryer may be a dryer or a washer-dryer implementing the drying function/program.
  • the air circulation arrangement is provided by the air channel and the fluidly connected drum.
  • the drum may be arranged in a tub and the at least one inlet and/or outlet opening is provided at the tub.
  • the drying air guiding by the tub is providing the connection between the drum and the at least one inlet and/or outlet where applicable.
  • the drum may be rotated by a drum motor around a horizontal axis, around an axis inclined relative to the vertical axis, or around a vertical axis.
  • a drum motor around a horizontal axis, around an axis inclined relative to the vertical axis, or around a vertical axis.
  • one motor is provided for rotating the drum and another motor is provided for rotating the drying air fan.
  • the method comprises: starting a drying program; monitoring the refrigerant temperature of the heat pump system; and in dependency of the temperature of the heat pump system, adapting at least one of:
  • An adaptation may be made for the drying air fan for example by adapting the ratio of rotating the fan in the first rotation direction / in the second rotation direction, and/or the adaption is made by adapting the ratio of the first rotation speed / the second rotation speed.
  • different fan rotation speeds result in different conveyance rates (at least in one rotation direction).
  • the drum motor also drives the drying air fan, the ratios are both synchronously increased.
  • the drum motor and/or the fan motor are variable speed motors.
  • the first rotation direction can also be denoted as 'forward' rotation direction or clockwise direction.
  • the second rotation direction can be denoted as 'backward' rotation direction or counterclockwise direction. From the construction aspect a preference for the 'forward' direction is given by mechanical layout and/or energy efficiency and/or drying air flow efficiency and/or laundry movement in drum.
  • the drying air fan is designed such that at the same rotation speed or rotation speeds the conveyance rate when rotating in the first rotation direction is higher than the conveyance rate when rotating in the second rotation direction.
  • the drying program has a first drying phase which is before the temperature reaches (the first time) at or above the first threshold value, and a second drying phase after the first drying phase.
  • Adapting the temporal ratios in dependency of the temperature of the heat pump system comprises: if the temperature of the heat pump system is at or above a first threshold value, changing the drying mode of the drying program from a first drying phase to a second drying phase by one or more of: a) increasing the temporal ratio of rotating the drum in the first rotation direction to rotating the drum in the second rotation direction, b) increasing the temporal ratio of rotating the drying air fan in the first rotation direction to rotating the drying air fan in the second rotation direction, and c) increasing the temporal ratio of rotating the drying air fan at the first rotation speed to rotating the drying air fan at the second rotation speed or changing rotating the drying air fan at the second rotation speed to rotating the drying air fan at the first rotation speed, wherein the first rotation speed is higher than the second rotation speed.
  • the compressor when it is detected that the temperature of the heat pump system is at or above the first threshold value, the compressor is deactivated or is deactivated after a predetermined delay time. Additionally or alternatively a fan for cooling the compressor is activated.
  • Adapting in dependency of the temperature may be provided in that, when the drum is rotating in the first rotation direction, the rotation speed is higher as compared to the rotation speed when the drum is rotated in the second rotation direction. And/or, when the drum is rotating in the first rotation direction, the duration of uninterrupted rotation in the first rotation direction is longer than the duration of uninterrupted rotation of the drum in the second rotation direction.
  • Adapting in dependency of the temperature may be provided additionally or alternatively in that, when the drying air fan is rotating in the first rotation direction, the rotation speed is higher as compared to the rotation speed when the drying air fan is rotated in the second rotation direction. And/or, when the drying air fan is rotating in the first rotation direction, the duration of uninterrupted rotation in the first rotation direction is longer than the duration of uninterrupted rotation of the drying air fan in the second rotation direction.
  • drum motor speed is adapted in dependency of the temperature of the heat pump system, or the rotation speed of drum rotation in the first direction is adapted in dependency of the temperature of the heat pump system while the rotation speed of rotating the drum in the second rotation direction is constant.
  • the drum motor speed is adapted in dependency of the temperature of the heat pump system by one of the following: if the temperature of the heat pump system is at or above a first threshold value, increasing the absolute value of the drum rotation speed; and if the temperature of the heat pump system is at or above a first threshold value, increasing the rotation speed of rotating the drum in the first rotation direction and maintaining the rotation speed of rotating the drum in the second rotation direction.
  • the fan motor may be adapted to drive the drying air fan selectively at least at a first rotation speed and at a second rotation speed, wherein the first rotation speed is higher than the second rotation speed. Then the method may further comprise: when the temperature of the heat pump system is at or above the first threshold value, increasing the temporal ratio of rotating the drying air fan at the first rotation speed to rotating the drying air fan at the second rotation speed.
  • the drying program comprises at least a first and optionally a second drying phase and subsequent to the drying phases a cooling phase, wherein in the cooling phase at least one of the following is applied:
  • drying program is proceeding to the cooling phase in dependency of one or more of the following conditions:
  • a drying phase may be provided in which the laundry at least temporally is moved in a 'cradle movement'.
  • This drying phase may be a pre-drying phase preceding a or the first drying phase, wherein in the pre-drying phase, the method provides one or more of the following:
  • control unit may be adjusted or adapted for the different phases of the drying program in dependency of user selection or process parameters. For example one or more of the following applies:
  • the dryer may be implemented by a washer dryer providing at least one washing program.
  • a tub is arranged in the cabinet and the drum is arranged in the tub, and/or the at least one outlet of the drum is at least one outlet of the tub, or the at least one inlet of the drum is at least one inlet of the tub, or the at least one outlet of the drum is at least one outlet of the tub and the least one inlet of the drum is at least one inlet of the tub, and/or the fan is driven by a or the motor independent of a or the motor driving the drum.
  • the drum and fan can be rotated/activated independent of each other. If this option is provided the speed and/or direction of rotation can be adjusted independent of each other
  • the method when the drying program is started, provides immediately at the beginning of the drying program a phase of detecting whether laundry is loaded into the drum or not.
  • a humidity sensor e.g. conductivity sensor
  • the presence of load in the drum is determined by evaluating the drum and/or fan motor parameters (current and/or torque and/or power and/or phase shift).
  • the dryer may comprise an option selector to be activated and/or a program selector for setting a drying program by the user for drying silk laundry or for drying a laundry load of maximum or less than 3 kg, 2 kg, 1 kg, 0.8 kg or 0.5 kg.
  • the laundry is dried according to any of the above method and embodiments thereof.
  • the method and/or the dryer implementing the method may comprise one or more features and/or elements and/or steps in any arbitrary combination or sub-combination as disclosed above and/or below in the detailed embodiment.
  • Fig. 1 shows a perspective outer appearance of an exemplary laundry dryer 2.
  • the laundry dryer is a dryer only, but in alternative embodiments the dryer function according to the control method is implemented by a washer-dryer in which the rotatable drum is arranged in a tub and which provides a washing arrangement including (for example) a detergent dispenser, a heater for heating wash liquid and a drain pump for draining out of the liquids.
  • the laundry dryer 2 has an outer housing 4 or cabinet including a front wall 6. At the front wall 6 a loading opening 8 is provided which is closed by a door 10.
  • the dryer is a front-loading dryer having a horizontal drum rotation axis, but in alternative embodiments the drum may be inclined relative to the horizontal and vertical directions, or the dryer may be a vertical rotation axis dryer in which the drum rotates around a vertical axis and where top-loading is provided. This correspondingly applies for the washer-dryer implementing the drying program.
  • the dryer 2 has a control panel 12 arranged at the upper region of the front wall 6 and a condensate drawer 14 in which the condensate collected from drying is stored until removal by the user.
  • the drum 16 is arranged inside the housing 4, in which laundry 18 is received.
  • the flow of drying air F is indicated by the arrows, wherein the drying air F leaves the drum 16 at an outlet 24 and enters a process air channel 20 at the front channel 20c.
  • the drying air is guided through a fluff filter element 26 towards a second heat exchanger 34 and a first heat exchanger 32.
  • the first and second heat exchangers 32, 34 are arranged in a battery channel 20a of the process air channel 20.
  • the first heat exchanger 32 is a condenser which heats the drying air
  • the second heat exchanger 34 is an evaporator which cools the drying air for humidity removal in form of condensed water.
  • the drying air leaving the first heat exchanger 32 is entering a rear channel 20b in which a drying air fan 28 is arranged which conveys the drying air.
  • the fan 28 is driven by a motor 30 which at same time drives the rotation of the drum 16.
  • a belt driven by the motor 30 is wound around the drum mantel for driving the fan.
  • the drum and fan 28 are driven in a synchronous manner according to the gear ratio.
  • Synchronous rotation includes a forward and backward rotation according to the motor forward and backward rotation.
  • the fan speed is identical to the motor speed as the fan is arranged on an axis of the motor 30, while via the belt the rotation of the motor is gear-reduced in an exemplary ratio of motor rotation speed/drum rotation speed of 50:1.
  • the first and second heat exchangers 32, 34 are part of a heat pump system 44 which further comprises an expansion device 38 and a compressor 36.
  • a refrigerant loop 40 is formed, wherein the refrigerant pumped by the compressor 36 passes first the condenser 32, is forwarded to the expansion device 38 from where it expands into the second heat exchanger 34 and from where it is sucked into the compressor 36.
  • Heat can be removed from the heat pump system (in addition to the heat deposited in the drying air and laundry for drying the laundry) by activating a cooling air fan 42 which provides a flow of cooling air from the outside of the cabinet 4 towards the outer surfaces of the compressor 36. After passing the compressor 36, the cooling air is exhausted out of the cabinet 4.
  • the condensate that condenses at the evaporator 34 flows down and collects in a condensate collector 48. From the condensate collector 48 the condensate is pumped by a draining pump 50 through a drain conduit 52 into the condensate drawer 14 from where it can be removed by the user as mentioned above.
  • a temperature sensor is provided which detects the outlet temperature To of the drying air.
  • another temperature sensor is provided which detects the inlet temperature Ti of the drying air.
  • a temperature sensor is provided which detects the refrigerant temperature Tr at this position.
  • the outlet of the drying air is arranged in a gasket which is provided between the tub surrounding the drum and the front wall 6 of the washer-dryer.
  • the inlet 22 of the drying air is then provided at an upper and rear side position of the tub from where the drying air enters the drum 16.
  • Such drum has a perforated back wall and/or peripheral drum mantel through which the drying air enters into the drum.
  • the drying air flow F can also be reverted in view of the inlet/outlet of the washer-dryer as described here.
  • Fig. 3 is a block diagram of components of the dryer 2 that interact for enabling a control unit 60 to control the drying operation or program.
  • the control unit 60 has a memory 62 in which program parameters and look-up tables are stored such that the control unit, by retrieving corresponding data from the memory 62, can control different basic drying programs preferably under conditions as set by the user via option selectors at the control panel 12.
  • Such user-settable options are for example: the final drying degree, the load of the laundry loaded by the user and inputted by him/her, the type of laundry, the duration of drying, a silent- or night-mode option by which the operation noise can be reduced by corresponding input of the user under the control of the control unit, and/or an energy option.
  • the control unit 60 receives the signals from the sensors for the refrigerant temperature Tr, the inlet temperature Ti of the drying air, the outlet temperature To of the drying air, and a humidity signal H from the humidity sensor (e.g. conductivity electrodes).
  • the control unit sends control signals to a drum motor inverter 64 and receives operation parameters therefrom.
  • the drum motor inverter 64 supplies the power to the motor 30 driving the drum 16 and the drying air fan 28.
  • the control unit 60 sends control signals to a compressor motor inverter 66 and receives operation parameters therefrom.
  • the inverter 66 powers a compressor motor 67 for driving the compressor 36.
  • the control unit 60 controls the draining pump 50, a motor 68 for driving the cooling air fan 68 and optionally, if a separate motor 70 is provided for the drying air fan 28, the drying air fan motor 70.
  • the separate motor 70 is provided, such that the rotation speed of the drying air fan 28 can be set by the control unit 60 independent of the drum rotation speed via inverter 64 and drum motor 30.
  • the separate motor 70 is provided, the motor 30 does not drive the drying air fan 28.
  • an exemplary drying program is described which is designed to efficiently dry small laundry loads, in particular valuable and/or delicate laundry pieces which the user wishes to dry separately from the other laundry types and within a reasonable drying time.
  • the drying program is specifically convenient for drying silk laundry like silk scarfs or silk shirts.
  • the time diagram of Fig. 4 shows a complete run of the drying program with the phases A, B1, B2, B3 and C.
  • the diagram shows as curve Tr the temporal development of the refrigerant temperature, where the temperature in °C is indicated at the right Y-axis.
  • the curve D shows the absolute value of the drum rotation speed.
  • the left Y-axis indicates the motor rotation speed D in rpm, wherein the gear ratio of between motor rotation speed and drum rotation speed is 50:1 (when the motor axis turns 50 times the drum rotates a full 360° rotation.
  • FIG. 4 shows in the lower region the drum/motor rotation direction with the two states CW and CCW.
  • the clockwise rotation direction or first rotation direction CW is indicated in a height of corresponding to 10°C on the right Y-axis and the counter clockwise rotation CCW or second rotation direction is shown in a height corresponding to 2°C at the right Y-axis.
  • CW has the value 10
  • CCW has the value 2.
  • Phase A proceeds to a pre-drying phase B1 where the drying already has been started and during which the laundry pieces within the drum 16 are equally distributed and detangled.
  • phase B1 the program proceeds to a first drying phase B2 during which the laundry drying is continued and the refrigerant temperature Tr is further increasing.
  • the drying program proceeds from phase B2 to a second drying phase B3 during which the laundry is dried up to a predetermined final humidity Hset.
  • the drying program proceeds to a cooling phase C during which laundry cooling is provided for a predetermined duration.
  • Fig. 5 shows the phases A and B1 has well as the beginning of phase B2 in more detail.
  • the conductivity sensor is provided and the control unit 60 monitors and averages the conductivity/humidity signal H. Additionally or alternatively the signal sent from the drum motor inverter 64 to the control unit 60 is evaluated, whether for example the torque signal, the current signal, the power signal, the phase signal, the voltage signal or any other signal available from the inverter 64 indicates whether laundry has been loaded or not.
  • the drying program is aborted and a respective indication is displayed on the control panel 12 to motivate the user to check whether laundry has correctly been loaded - compare S12 in Fig. 7 .
  • phase A With the start of the drying program at the beginning of phase A, the refrigerant temperature Tr continuously rises during the phases A, B1 and B2 until the threshold Tr1 is exceeded.
  • phase A is ended and phase B1 started.
  • the duration of CW and CCW rotation are selected such short, such that the drum does not provide a full turn.
  • the drum is rotated for three seconds with 15 rpm in each rotation direction, such that the rotation angle of the drum within these periods is only 270°.
  • the laundry twisted before in the initialization phase A (e.g. in the form of a laundry roll) is detangled and flatly distributed within the drum. This increases the surface area of the laundry pieces and improves removal of humidity from the laundry.
  • the rotation directions in these extended rotation periods following to each cradle period in phase B1 are in the sequence of CCW-CW-CCW. It has been found that by operating the drum in the CCW rotation direction the small number of normally light-weight pieces of laundry is not sucked by the air flow towards the outlet 24 of the drum 16 where the inlet grill of the fluff filter element 26 is arranged. As the drying air fan 28 is designed such that at the same rotation speed in CCW rotation direction the air flow rate is much lower than in the CW rotation direction, the risk that the laundry is transported towards and fixed at the outlet 24 is much lower in CCW direction than in CW direction.
  • the phase B1 is provided for a predetermined duration and then the drying program proceeds to the first drying phase B2.
  • a pre-drying of the laundry pieces was achieved and the laundry was detangled and distributed in the drum, such that in the first drying phase B2 the drying can be intensified by increasing the average air flow.
  • Each of the periods of CW rotation is longer than the respective following period of CCW rotation. In average this results in a higher air flow rate through the drum as compared to the initialization phase B1. Due to the higher air flow, more humidity can be removed from the laundry.
  • the highest drum rotation speed D3 and thus the highest fan rotation speed is lower than the maximum possible or nominal rotation speed D4 (corresponding to 2750 rpm motor speed and fan rotation speed).
  • the refrigerant temperature Tr increases in waves until reaching the threshold Tr1.
  • the reason for the increase in waves is that during rotation of the drum in CCW direction the drying air flow rate is reduced and less heat is removed from the condenser 32 such that the refrigerant temperature detected at the outlet of the condenser 32 increases in these periods.
  • the drying air flow rate is higher and more heat is removed from condenser 32.
  • the refrigerant temperature is decreasing.
  • the net effect of increase and decrease is that the refrigerant temperature Tr is rising.
  • Fig. 6 shows in detail the transition from the first drying phase B2 to the second drying phase B3.
  • the ratio of the duration of CW rotation direction divided by the duration of rotation of CCW rotation direction is increased. This increase of the ratio is true for each one of the repeating periods of clockwise CW rotation period followed by a CCW rotation period, as well as for the average over the total duration in B3 (when compared with the respective ratios in phase B2).
  • the second drying phase B3 is continued until a predetermined laundry humidity Hset is reached or is below the predetermined target humidity Hset of the laundry.
  • the humidity H is determined from the humidity sensor by evaluation in the control unit 60. Alternatively based on the starting humidity, the laundry load and other parameters the control unit 60 can estimate the duration of the phase B3 (or the total drying time of the drying program) such that the second drying phase B3 is terminated as soon as the estimated time is lapsed.
  • the duration of CW rotation is shorter than the duration of the CCW rotation during the cooling phase C and also cooling phase C is terminating with a CCW rotation.
  • Fig. 7 shows a flow diagram of the drying program.
  • the drying program is started at S0 and an increment counter with the variable n is set to zero at S2.
  • Initialization phase A is started during which it is detected whether wet laundry is present in the drum 16 or not.
  • Initialization phase A is executed for a predetermined period and proceeds to S6 where it is checked whether load is in the drum. If no load was detected, the program proceeds to S6 where it is checked whether the count n is less than a predetermined count N. If count n is not less than the predetermined count N, in S12 the drying program aborts and the user is informed via the display at the control panel 12 that an error occurred. For example by displaying the question "Load Correct?" Optionally it can be checked by the initialization phase A (S4 + modified S6) whether the load is above a threshold weight which would not allow to properly execute the drying program dedicated for small laundry loads.
  • the program proceeds to S14 where the pre-drying phase B1 or cradle phase is executed by distributing or spreading the laundry within the drum by the movements and reduced drying air flow rate as described above.
  • the pre-drying phase B1 is continued in this example for 3 minutes.
  • the program proceeds to S16 for executing the first drying phase B2 which is the main drying phase.
  • the main drying phase B2 is continued in the loop S16-S18-S20 as long as either the refrigerant temperature Tr has exceeded the refrigerant threshold Tr1 (step S18) or the laundry has already reached a humidity H lower than the predetermined final humidity Hset (step S20).
  • the program proceeds to S22 for executing the second drying phase B3.
  • the program proceeds to the cooling phase C in S26. Otherwise the program proceeds back to S16.
  • the loop S22-S24 is repeatedly executed until the laundry humidity H is less than the target humidity Hset. If in S24 the laundry humidity H ⁇ Hset, then the program proceeds to S26 where the cooling phase C is executed for 150 sec in this example.
  • Phase Drum Rotation Speed D + Duration (motor speed) Phase A off: 2 sec CW: 180 sec @ 40 rpm (2000 rpm) off: 2 sec CCW: 15 sec @ 40 rpm (2000 rpm) Phase B 1 off: 3 sec CCW: 3 sec @ 15 rpm (750 rpm) off: 3 sec CW: 3 sec @ 15 rpm (750 rpm) off: 3 sec CCW: 3 sec @ 15 rpm (750 rpm) off: 3 sec CW: 40 sec @ 46 rpm (2300 rpm) off: 3 sec CCW: 3 sec @ 15 rpm (750 rpm) off: 3 sec CW: 3 sec @ 15 rpm (750 rpm) off: 3 sec CCW: 3 sec @ 15 rpm (750 rpm) off: 3 sec CCW: 3 sec @ 15 rpm (750 rpm) off: 3 sec CCW: 3 sec @ 15 rpm (750 rpm) off: 3 sec CCW: 3 sec @ 15 rpm (750
  • the rotation speeds given here are only examples for optimized parameters applicable in one model of dryer.
  • the absolute values of the rotation speeds and the durations in each rotation direction have to be adapted in dependency of one or more of: the drum diameter, the drum internal design, the gear ratio between the drum motor rotation speed and the drum rotation speed, possibly (if not 1:1) the gear ratio between drum or drying air fan motor rotation speed and drying air fan rotation speed, the conveyance capacity of the drying air fan, the drying air flow resistance, and the geometry of the at least one drying air outlet 24 (and the design of the entrance grill of the fluff filter element 26.
  • first action is to reduce the risk that the laundry is getting stuck and twisted.
  • the CW drum rotation speed has been reduced form the nominal speed.
  • the nominal speed is in a dryer-only (no washer dryer) or is for the standard drying program in a washer dryer 2900 rpm for cotton and 2750 rpm for other cycles.
  • the nominal speed is reduced to 2300 rpm. This speed reduction decreases airflow enough to allow silk piece to tumble freely in the drum without getting stuck between drum and filter.
  • drum movement CCW at the reduced speed is able to well "open” (or lay out) the clothes such that the opening effect of the cradle movement in phase B1 is more effective in crease prevention.
  • the main part of drying cycle is performed with drum reversing (e.g. 2 sec OFF/ 90 sec 2300 rpm CW/2 sec OFF/30 sec CCW).
  • phase B3 After the reach of NTC temperature threshold Tr1, a safer motor reversing is activated in drying phase B3.
  • the main purpose of phase B3 is to increase average airflow: drum speed for CW direction is increased to 2750 rpm and its duration is extended to 240sec, while CCW rotation has been reduced to 10 sec but always to 2300 rpm.

Landscapes

  • Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Control Of Washing Machine And Dryer (AREA)
  • Detail Structures Of Washing Machines And Dryers (AREA)

Claims (14)

  1. Procédé d'exploitation d'un séchoir à pompe à chaleur (2) pendant un programme de séchage, le séchoir comprenant :
    une carrosserie (4),
    un tambour (16) agencé au sein de la carrosserie et adapté pour recevoir du linge (18) pour sécher le linge au sein du tambour en utilisant de l'air de séchage (F), un canal d'air (20) adapté pour guider l'air de séchage depuis au moins un refoulement d'air (24) au niveau du tambour (16) vers au moins une admission d'air (22) au niveau du tambour pour fournir un agencement de circulation d'air,
    un ventilateur à air de séchage (28) adapté pour acheminer l'air de séchage (F) à travers l'agencement de circulation d'air, dans lequel le ventilateur à air de séchage (28) est conçu pour que, à la même vitesse ou aux mêmes vitesses de rotation, la cadence d'acheminement lors de la rotation dans le premier sens de rotation (CW) soit plus élevée que la cadence d'acheminement lors de la rotation dans le second sens de rotation (CCW),
    un système de pompe à chaleur (44) comprenant un premier échangeur de chaleur (32) adapté pour chauffer l'air de séchage, un second échangeur de chaleur (34) adapté pour refroidir l'air de séchage pour une condensation d'humidité, et un compresseur (36) adapté pour faire circuler un fluide frigorigène à travers les premier et second échangeurs de chaleur,
    un capteur de température adapté pour détecter une température de fluide frigorigène (Tr) du système de pompe à chaleur (44), et
    a) un moteur de ventilateur (70) adapté pour entraîner le ventilateur à air de séchage (28) sélectivement dans un premier sens de rotation (CW) ou dans un second sens de rotation (CCW) ou pour entraîner le ventilateur à air de séchage sélectivement au moins à une première vitesse de rotation ou à une seconde vitesse de rotation, et un moteur de tambour (30) adapté pour entraîner le tambour (16) sélectivement dans un premier sens de rotation (CW) ou dans un second sens de rotation (CCW), ou
    b) un moteur (30) adapté pour entraîner de manière synchronisée le ventilateur à air de séchage (28) et le tambour (16) sélectivement dans un premier sens de rotation (CW) ou dans un second sens de rotation (CCW), dans lequel le programme de séchage comprend au moins une première phase de séchage (B2) et une seconde phase de séchage (B3) ;
    dans lequel le procédé comprend :
    le démarrage d'un programme de séchage,
    la surveillance de la température de fluide frigorigène (Tr) du système de pompe à chaleur (44), et en dépendance de la température (Tr) du système de pompe à chaleur, l'adaptation d'au moins l'un parmi :
    - le rapport temporel de la rotation du tambour (16) dans le premier sens de rotation (CW) sur la rotation du tambour dans le second sens de rotation (CCW),
    - le rapport temporel de la rotation du ventilateur à air de séchage (28) dans le premier sens de rotation (CW) sur la rotation du ventilateur à air de séchage dans le second sens de rotation (CCW), et
    - le rapport temporel de la rotation du ventilateur à air de séchage à la première vitesse de rotation sur la rotation du ventilateur à air de séchage à la seconde vitesse de rotation ou le changement de la rotation du ventilateur à air de séchage à la seconde vitesse de rotation à la rotation du ventilateur à air de séchage à la première vitesse de rotation, dans lequel la première vitesse de rotation est plus élevée que la seconde vitesse de rotation,
    dans lequel l'adaptation des rapports temporels en dépendance de la température (Tr) du système de pompe à chaleur (44) comprend : si la température du système de pompe à chaleur est à ou au-dessus d'une première valeur seuil (Tr1), le changement du mode de séchage du programme de séchage de la première phase de séchage (B2) à la seconde phase de séchage (B3) par une ou plusieurs parmi :
    - l'augmentation du rapport temporel de la rotation du tambour (16) dans le premier sens de rotation (CW) sur la rotation du tambour dans le second sens de rotation (CCW),
    - l'augmentation du rapport temporel de la rotation du ventilateur à air de séchage (28) dans le premier sens de rotation (CW) sur la rotation du ventilateur à air de séchage dans le second sens de rotation (CCW), et
    - l'augmentation du rapport temporel de la rotation du ventilateur à air de séchage à la première vitesse de rotation sur la rotation du ventilateur à air de séchage à la seconde vitesse de rotation ou du changement de la rotation du ventilateur à air de séchage à la seconde vitesse de rotation à la rotation du ventilateur à air de séchage à la première vitesse de rotation, dans lequel la première vitesse de rotation est plus élevée que la seconde vitesse de rotation.
  2. Procédé selon la revendication 1, dans lequel
    lors de la rotation du tambour (16) dans le premier sens de rotation (CW), la vitesse de rotation est plus élevée en comparaison à la vitesse de rotation lorsque le tambour est mis en rotation dans le second sens de rotation (CCW), ou
    lors de la rotation du tambour dans le premier sens de rotation, la durée de rotation ininterrompue dans le premier sens de rotation est plus longue que la durée de rotation ininterrompue du tambour dans le second sens de rotation.
  3. Procédé selon l'une quelconque des revendications précédentes, dans lequel
    lors de la rotation du ventilateur à air de séchage (28) dans le premier sens de rotation (CW), la vitesse de rotation est plus élevée en comparaison à la vitesse de rotation lorsque le ventilateur à air de séchage est mis en rotation dans le second sens de rotation (CCW), ou lors de la rotation du ventilateur à air de séchage dans le premier sens de rotation, la durée de rotation ininterrompue dans le premier sens de rotation est plus longue que la durée de rotation ininterrompue du ventilateur à air de séchage dans le second sens de rotation.
  4. Procédé selon l'une quelconque des revendications précédentes,
    dans lequel la vitesse du moteur de tambour ou la vitesse de rotation du tambour (D) est adaptée en dépendance de la température (Tr) du système de pompe à chaleur (44), ou
    dans lequel la vitesse de rotation du tambour (D) dans le premier sens de rotation (CW) est adaptée en dépendance de la température (Tr) du système de pompe à chaleur tandis que la vitesse de rotation de la rotation du tambour dans le second sens de rotation (CCW) est constante.
  5. Procédé selon la revendication 4, dans lequel la vitesse de rotation du tambour (D) est adaptée en dépendance de la température (Tr) du système de pompe à chaleur (44) par l'un des éléments suivants :
    - si la température du système de pompe à chaleur est à ou au-dessus d'une première valeur seuil (Tr1), l'augmentation de la valeur absolue de la vitesse de rotation du tambour (D), et
    - si la température du système de pompe à chaleur est à ou au-dessus d'une première valeur seuil (Tr1), l'augmentation de la vitesse de rotation du tambour (D) dans le premier sens de rotation (CW) et le maintien de la vitesse de rotation du tambour dans le second sens de rotation (CCW).
  6. Procédé selon l'une quelconque des revendications précédentes, dans lequel le ventilateur à air de séchage (28) est entraîné par le moteur (70) indépendamment du moteur (30) entraînant le tambour (16).
  7. Procédé selon l'une quelconque des revendications précédentes, dans lequel le programme de séchage comprend au moins une première et une seconde phase de séchage (B2, B3) et ultérieurement aux phases de séchage, une phase de refroidissement (C), dans lequel, dans la phase de refroidissement, au moins l'un des éléments suivants est appliqué :
    - le rapport de la durée de rotation du tambour (16) dans le premier sens de rotation (CW) sur la durée de rotation du tambour dans le second sens de rotation (CCW) est diminué en comparaison à la phase de séchage précédente ou seconde phase de séchage (B3), ou bien ce rapport est diminué à moins de 1,
    - le rapport de la durée de rotation du ventilateur à air de séchage (28) dans le premier sens de rotation (CW) sur la durée de rotation du ventilateur à air de séchage dans le second sens de rotation (CCW) est diminué en comparaison à la phase de séchage précédente ou seconde phase de séchage (B3), ou bien ce rapport est diminué à moins de 1,
    - la vitesse de rotation (D) du tambour dans le premier sens de rotation (CW) est réduite en comparaison à la vitesse de rotation dans la phase de séchage précédente ou seconde phase de séchage (B3),
    - la vitesse de rotation (D) du tambour dans le second sens de rotation (CCW) est réduite en comparaison à la vitesse de rotation dans la phase de séchage précédente ou seconde phase de séchage (B3),
    - la vitesse de rotation du ventilateur à air de séchage (28) dans le premier sens de rotation (CW) est réduite en comparaison à la vitesse de rotation dans la phase de séchage précédente ou seconde phase de séchage (B3), et
    - la vitesse de rotation du ventilateur à air de séchage (28) dans le second sens de rotation (CCW) est réduite en comparaison à la vitesse de rotation dans la phase de séchage précédente ou seconde phase de séchage (B3).
  8. Procédé selon la revendication 7, dans lequel le programme de séchage procède à la phase de refroidissement (C) en dépendance d'une ou de plusieurs des conditions suivantes :
    - l'humidité du linge (H) est à ou en dessous d'une humidité seuil ou cible prédéterminée (Hset),
    - un paramètre indiquant l'humidité du linge est inférieur ou égal à une valeur de consigne,
    - la température (To) de l'air évacué du tambour (16) est plus élevée qu'une valeur de consigne,
    - un gradient de température de l'air évacué (ΔTo) du tambour est plus élevé qu'une valeur de consigne, et
    - un temps de séchage tel que fixé par un utilisateur ou tel que déterminé par le séchoir (2) s'est écoulé.
  9. Procédé selon l'une quelconque des revendications précédentes, dans lequel une phase de préséchage (B1) précède une ou la première phase de séchage (B2), dans lequel, dans la phase de préséchage, le procédé assure un ou plusieurs des éléments suivants :
    - une ou plusieurs périodes sont prévues dans lesquelles le tambour (16) est mis en rotation en alternance dans le premier et le second sens de rotation (CW, CCW), dans lequel, dans chaque sens de rotation, l'angle de la rotation est inférieur à 360°, 270°, 200°, 180°, 150° ou 100°,
    - le rapport de la durée de rotation du tambour (16) dans le premier sens de rotation (CW) sur la durée de rotation du tambour dans le second sens de rotation (CCW) est inférieur par rapport à la première phase de séchage (B2) suivante,
    - le rapport de la durée de rotation du ventilateur à air de séchage (28) dans le premier sens de rotation (CW) sur la durée de rotation du ventilateur à air de séchage dans le second sens de rotation (CCW) est plus inférieur par rapport à la première phase de séchage (B2) suivante,
    - la durée de rotation du tambour (16) ou du ventilateur à air de séchage (28) dans le premier sens de rotation (CW) dans la phase de préséchage (B1) est plus courte que dans la première phase de séchage (B2),
    - la durée de rotation du tambour ou du ventilateur à air de séchage dans le second sens de rotation (CCW) dans la phase de préséchage (B1) est plus courte que dans la première phase de séchage (B2),
    - la vitesse de rotation du tambour (16) dans le premier sens de rotation est inférieure en comparaison à la vitesse de rotation (D) dans la première phase de séchage suivante,
    - la vitesse de rotation (D) du tambour (16) dans le second sens de rotation est inférieure en comparaison à la vitesse de rotation dans la première phase de séchage suivante,
    - la vitesse de rotation du ventilateur à air de séchage (28) dans le premier sens de rotation est inférieure à la vitesse de rotation dans la première phase de séchage suivante, et
    - la vitesse de rotation du ventilateur à air de séchage (28) dans le second sens de rotation est inférieure à la vitesse de rotation dans la première phase de séchage suivante.
  10. Procédé selon l'une quelconque des revendications précédentes, dans lequel un ou plusieurs des éléments suivants :
    - le rapport de la durée de rotation du tambour (16) dans le premier sens de rotation (CW) sur la durée de rotation du tambour dans le second sens de rotation (CCW),
    - le rapport de la durée de rotation du ventilateur à air de séchage (28) dans le premier sens de rotation sur la durée de rotation du ventilateur à air de séchage dans le second sens de rotation,
    - la vitesse de rotation (D) du tambour (16) dans le premier sens de rotation,
    - la vitesse de rotation (D) du tambour (16) dans le second sens de rotation,
    - la vitesse de rotation du ventilateur à air de séchage (28) dans le premier sens de rotation, et
    - la vitesse de rotation du ventilateur à air de séchage (28) dans le second sens de rotation ;
    dans une ou plusieurs des phases suivantes :
    - une ou la phase de préséchage (B1),
    - une ou la première phase de séchage (B2),
    - une ou la seconde phase de séchage (B3), et
    - une ou la phase de refroidissement (C) ;
    sont dépendants d'un ou de plusieurs des éléments suivants :
    - un programme de traitement du linge ou des options de traitement du linge fixés par un utilisateur via un dispositif d'entrée (12) du séchoir (2),
    - un type de linge tel que fixé par un utilisateur ou tel qu'estimé par le séchoir,
    - la durée du programme de traitement du linge fixée par un utilisateur ou tel qu'estimée par le séchoir,
    - dans le cas où le programme de séchage fait partie d'un programme de lavage et de séchage, une estimation de la teneur en eau dans le linge (18) au commencement d'un programme de séchage d'après la différence de poids du linge entre le poids du linge sec et le poids du linge humide à la fin du programme de lavage,
    - la quantité ou le poids de linge (18) à sécher,
    - le degré d'humidité (H) actuelle du linge,
    - la température (Ti, To) de l'air de séchage (F),
    - la température ambiante,
    - la température interne du séchoir, et
    - la durée depuis le début du séchage.
  11. Procédé selon l'une quelconque des revendications précédentes, dans lequel le capteur de température adapté pour détecter la température de fluide frigorigène (Tr) du système de pompe à chaleur (44) est agencé en l'une des positions suivantes du système de pompe à chaleur :
    - un refoulement du premier échangeur de chaleur (32) pour détecter la température de fluide frigorigène (Tr),
    - un refoulement du compresseur (36) pour détecter la température de fluide frigorigène,
    - le compresseur (36) pour détecter la température de compresseur,
    - le second échangeur de chaleur (34) pour détecter la température de fluide frigorigène, ou
    - un dispositif de détente (38) agencé entre le second et le premier échangeur de chaleur pour détecter la température de fluide frigorigène.
  12. Procédé selon l'une quelconque des revendications précédentes, dans lequel le séchoir (2) est mis en oeuvre par une machine à laver séchante fournissant au moins un programme de lavage,
    dans lequel une cuve est agencée dans la carrosserie (4) et le tambour (16) est agencé dans la cuve,
    dans lequel l'au moins un refoulement (24) du tambour est au moins un refoulement de la cuve, ou l'au moins une admission (22) du tambour est au moins une admission de la cuve, ou l'au moins un refoulement du tambour est au moins un refoulement de la cuve et l'au moins une admission du tambour est au moins une admission de la cuve, et
    dans lequel le ventilateur à air de séchage (28) est entraîné par un ou le moteur (70) indépendamment d'un ou du moteur (30) entraînant le tambour (16).
  13. Procédé selon l'une quelconque des revendications précédentes, dans lequel, lorsque le programme de séchage est démarré, le procédé assure immédiatement au commencement du programme de séchage une phase (A) servant à détecter si du linge (18) est chargé ou non dans le tambour (16).
  14. Procédé selon l'une quelconque des revendications précédentes, dans lequel le séchoir (2) comprend un sélecteur d'options à activer par l'utilisateur ou comprend un sélecteur de programmes (12) pour sélectionner un programme de séchage pour sécher du linge de soie ou pour sécher une charge de linge maximale ou de moins de 2 kg ou 1 kg, dans lequel, lorsque l'utilisateur a sélectionné une telle option ou un tel programme, le linge est séché selon l'une quelconque des revendications précédentes.
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CN109629199A (zh) * 2019-01-07 2019-04-16 青岛海尔滚筒洗衣机有限公司 一种干衣方法及衣物处理设备
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CN112941801B (zh) * 2019-12-10 2023-11-17 博西华电器(江苏)有限公司 衣物处理设备及操作其的方法和装置
CN111021019B (zh) * 2019-12-26 2022-12-09 青岛海尔洗衣机有限公司 干衣设备的控制方法
CN113718500A (zh) * 2020-05-25 2021-11-30 合肥海尔滚筒洗衣机有限公司 热泵式干衣设备的控制方法
CN113756072A (zh) * 2021-09-30 2021-12-07 珠海格力电器股份有限公司 一种衣物烘干方法、装置及电器设备
CN114016271B (zh) * 2021-11-19 2022-11-25 珠海格力电器股份有限公司 丝绸烘干的控制方法、控制装置及衣物处理设备

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CN106436241A (zh) 2017-02-22
EP3124680A1 (fr) 2017-02-01

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