EP3635169B1 - Kleidungspflegevorrichtung mit bewegungssensor - Google Patents

Kleidungspflegevorrichtung mit bewegungssensor Download PDF

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Publication number
EP3635169B1
EP3635169B1 EP18753440.9A EP18753440A EP3635169B1 EP 3635169 B1 EP3635169 B1 EP 3635169B1 EP 18753440 A EP18753440 A EP 18753440A EP 3635169 B1 EP3635169 B1 EP 3635169B1
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EP
European Patent Office
Prior art keywords
hand unit
base unit
unit
care system
garment care
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EP18753440.9A
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English (en)
French (fr)
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EP3635169A1 (de
Inventor
Orhan KAHYA
Mohankumar Valiyambath Krishnan
Yao Hean CHIAH
Winson Garcia LIM
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Koninklijke Philips NV
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Koninklijke Philips NV
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Priority claimed from EP17187966.1A external-priority patent/EP3447188A1/de
Priority claimed from EP17187973.7A external-priority patent/EP3447187A1/de
Application filed by Koninklijke Philips NV filed Critical Koninklijke Philips NV
Publication of EP3635169A1 publication Critical patent/EP3635169A1/de
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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
    • D06F75/00Hand irons
    • D06F75/08Hand irons internally heated by electricity
    • D06F75/10Hand irons internally heated by electricity with means for supplying steam to the article being ironed
    • D06F75/12Hand irons internally heated by electricity with means for supplying steam to the article being ironed the steam being produced from water supplied to the iron from an external source
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F87/00Apparatus for moistening or otherwise conditioning the article to be ironed or pressed

Definitions

  • the present invention relates to the field of garment care.
  • Garment care systems comprising a base unit and a hand unit connected by a hose cord are known. They are sometimes referred to as pressurized steam generators.
  • the hand unit transfers a signal to the base unit reflecting that user is requesting the generation of steam to be provided to the hand unit via the hose cord.
  • the signal is transferred in an analog form on a dedicated electrical wire.
  • Document US 2013/125427 discloses an iron comprising a control unit connected to a sensor, configured to monitor at least one motion dependent variable of the iron and generate a reference signal, and configured to control a water outflow rate of at least one water outlet opening of the iron based on the reference signal.
  • Document JP H04 208200 discloses a method to perform ironing by controlling a heater in accordance with a frequency of detection of a status detecting sensor within a predetermined time.
  • Document JP H05 76700 discloses a method of detecting the temperature gradient of a base, a position and an operation of an iron to change correspondingly a water supply amount of an electrically driven water supply device.
  • Document WO 82/03520 discloses a method of detecting the last used of an energised appliance and shutting off the appliance after a given time has elapsed from this last use without further use.
  • Patent WO 2005/014917 discloses an ironing system comprising an iron with at least one operating means, such as: heating; steaming; steering; blowing; or suctioning means.
  • the system comprise at least one sensor adapted to detect an ironing surface, a user or a movement induced by the user, wherein the operating means is activated when the sensor is activated.
  • Document JP H04 319398 discloses an iron having a heater for heating the soleplate of an iron body and a power supply for powering the heater controlled with a temperature adjustment section on the basis of temperature data of a temperature detection element.
  • It is an object of the present invention to propose an improved garment care system comprising a base unit and a hand unit connected by a hose cord, that avoids or mitigates above-mentioned problems.
  • the garment care system for treating garments according to the invention comprises:
  • signal such as the digital movement signal which is generated by the hand unit
  • the base unit can be transferred to the base unit on this single communication wire.
  • the hand unit and the base unit are implicitly arranged for serial communication, the number of wires in the hose cord can be limited to only one wire.
  • Fig. 1 schematically shows a first embodiment of a garment care system 10 in accordance with the invention.
  • the garment care system 10 comprises a hand unit 12 for treating garments.
  • the garment care system 10 comprises also comprises a movement sensor 126 arranged in the hand unit 12.
  • the movement sensor 126 and the first microcontroller 110 are adapted to generate a digital movement signal characterizing the movement of the hand unit 12.
  • the garment care system 10 also comprises a base unit 11 for resting the hand unit 12.
  • the garment care system 10 also comprises a hose cord 13 connecting the base unit 11 and the hand unit 12.
  • the hose cord 13 comprises a duct 135 for carrying a fluid from the base unit 11 to the hand unit 12.
  • the hose cord 13 also comprises a single communication wire 134a for carrying the digital movement signal from the hand unit 12 to the base unit 11, and for bidirectional digital communication between the base unit 11 and the hand unit 12.
  • the hand unit 12 is a steam iron for ironing garments.
  • the hand unit 12 is a steamer head for spraying steam over garments.
  • the digital movement signal corresponds to any one of acceleration signal, velocity signal, angular position signal, position signal, dual positions signal.
  • those sensors can be used in combination in the hand unit 12.
  • a dual positions signal can be generated by a so-called ball sensor.
  • the movement sensor 126 cooperates with a first microcontroller 110 as follows.
  • the first microcontroller 110 is adapted to simply re-direct the signal generated by movement sensor 126 on the single communication wire 134a.
  • the digital movement signal sent on the single communication wire 134a corresponds to a processed or identified digital movement signal (for example short user's stroke, long user's stroke, device moving, device not moving, horizontal movement of the device, vertical movement of the device, speed of the device, movement strength and /or a combination thereof) after analysis by the microcontroller of the sensor information (e.g. level of acceleration signal(s), duration of acceleration, movement of ball sensor, frequency of acceleration value).
  • the processed or identified digital movement signal is then sent by the first microcontroller 110 on the single communication wire 134a.
  • the digital movement signal also comprises an orientation of the hand unit.
  • the movement sensor 126 is an acceleration sensor of the type Micro Electro-Mechanical Systems (MEMS) which is adapted to generate at least one acceleration signal along any axis X, Y, Z forming an orthonormal reference, with Z corresponding to a vertical direction, and X-Y forming a horizontal plane.
  • MEMS Micro Electro-Mechanical Systems
  • the orientation of the hand unit may be measured in terms of axis X, axis Y, and axis Z.
  • the hand unit 12 When the hand unit 12 is being used to press a garment on a surface (such as an ironing board) with a soleplate 129a, the hand unit 12 may be considered to be in a horizontal position X-Y. In other words, the iron 12 is oriented as such that the surface of the soleplate 129a is substantially in the X-Y plane.
  • the hand unit 12 When a user stands the hand unit 12 on its end, such that the soleplate 129a does not touch a garment on an ironing board, for example, then the hand unit 12 may be considered to be orientated such that the surface of the soleplate 129a is in a plane substantially perpendicular to the X-Y plane. In this orientation, the hand unit 12 may be considered to be "upright".
  • the sensor is capable of determining an orientation and movement of the iron 12 in any other orientation.
  • the movement of the hand unit 12 can be measured in terms of the change in position of the hand unit 12 along the X axis, Y axis and/or the Z axis.
  • an amount of movement e.g. an absolute and/or relative distance
  • a speed of movement of the iron 12 may also be measured by the sensor 126.
  • the first microcontroller 110 may be configured to adjust an operating parameter of the hand unit 12 based on a predetermined relationship between the measured orientation and/or the identified motion of the hand unit and predefined displacement pattern.
  • the hand unit 12 may include storage means, such as a memory, for storing a database or look-up table.
  • the database or look-up table may include a plurality of relationships, each relationship defining an operating parameter adjustment to be made responsive to a determination that the hand unit is in a particular orientation and/or that the hand unit has moved in a particular way.
  • Fig.2 shows example readings from a sensor 126 of the type accelerometer used in a hand unit 12 according to the invention when being rested and oriented in three different orientations.
  • Fig.3 shows example readings from a sensor 126 of the type accelerometer used in a hand unit 12 according to the invention when being moved in three different orientations.
  • the hand unit 12 is considered to be held “horizontally” (i.e. in the X-Y plane), and moved in the directions indicated by the arrows.
  • a predefined displacement pattern may correspond to the amount of an average linear displacement along a given direction D of the hand unit 12.
  • the given direction D corresponds to X axis, as illustrated in row (a) of Fig.3 .
  • the average linear displacement may correspond to an average value of a stroke length of a user using the hand unit.
  • the stroke length along a given direction D corresponds to the linear distance of the hand unit between a starting position with zero speed, to the next position with zero speed.
  • the average value of a stroke length of a user is the average linear distance that allows classifying a stroke length between a short stroke and a long stroke.
  • a short stroke is smaller than the average linear distance
  • a long stroke is larger than the average linear distance.
  • the average linear displacement of the garment care device may include more than a single straight line between two points.
  • the average linear displacement may be measured in a first and second direction, wherein the second direction is orthogonal to the first.
  • the shape of the arc may be determined by the relative size of the average linear displacement in the first direction and the average linear displacement in the second direction.
  • the size of the arc may be determined by the absolute size of the average linear displacement in the first and second directions. Additional directions may also be measured to identify more complex movement characteristics for comparison with the predefined displacement pattern.
  • Fig.4A is an illustration of an example of a signal AS generated by an accelerometer used in a hand unit according to the invention.
  • the senor 126 is an accelerometer, and the output signal generated by the sensor 126 is an acceleration signal AS varying along the time in the given direction D, such as, for example, the X axis.
  • the characteristics of the output signal correspond to the time interval d1 between two consecutive zero-crossing points of the output signal.
  • the characteristics of the predefined signal correspond to a given duration threshold d0:
  • the given duration threshold d0 corresponds to the average value of the time interval between two consecutive zero-crossing points of the output signal corresponding to an average value of a user's stroke length.
  • the time interval d1 between two consecutive zero-crossing points of the output signal should be calculated with an offset corresponding to the estimated value of the noise level.
  • An example is illustrated in Fig.4B .
  • the given duration threshold d0 has a value in the range [200; 800] ms, preferably 550 ms.
  • an average value for a short stroke has is less than 20 cm, and an average value for a long stroke is more than 20 cm.
  • the first microcontroller 110 may be adapted to adjust an operating parameter of the hand unit 12, in particular adjust the temperature of a steam chamber 129b such that:
  • Adjusting the temperature of the steam chamber 129b also results in a variation of temperature of the soleplate 129a.
  • the temperature difference of 5 degrees between T1 and T2 is just given as an example. More generally, the temperature absolute difference between T1 and T2 could be up to 30 degrees.
  • Fig. 5 schematically shows an embodiment of a hand unit 12 of the garment care system in accordance with the invention
  • Fig. 6 schematically shows an embodiment of a base unit 11 of the garment care system in accordance with the invention.
  • the base unit 11 comprises a second microcontroller120.
  • the second microcontroller120 and the first microcontroller110 are arranged for serial communication via the single communication wire 134a.
  • microcontroller is used, but that the invention also envisages alternative devices, such as microprocessors (with associated memory and any auxiliary circuits or dedicated communication modules.
  • the base unit 11 comprises a first interface 111 coupled to the second microcontroller120.
  • the first interface 111 corresponds to an Input/Output unit.
  • the second microcontroller120 is coupled to the hose cord 13 through the first interface 111.
  • the hand unit 12 comprises a second interface 121 coupled to the first microcontroller110.
  • the second interface 121 corresponds to an Input/Output unit.
  • the first microcontroller110 is coupled to the hose cord 13 through the second interface 121.
  • the first interface 111 and the second interface 121 are arranged for using a serial asynchronous receiver/transmitter communication protocol.
  • the communication protocol is defined by the base unit 11 being adapted to periodically sending to the hand unit 12 a command signal on the single communication wire 134a, and the hand unit 12 being adapted to sending to the base unit 11 the digital movement signal after receiving the command signal.
  • the base unit 11 is adapted to periodically sending the command signal with a time period in the range [10 ms; 100 ms]:
  • the time period is 30 ms.
  • the base unit 11 comprises a steam generator 119b for generating steam as fluid in the hose cord 13.
  • the base unit 11 may be adapted to vary the temperature of the steam generator 119b based on the digital movement signal obtained from sensor 126 as described above. For example, if the hand unit 12 moves above a certain value (for example the acceleration or the velocity of the hand unit 12 is above a certain threshold), then the temperature of the steam generator 119b is increased by a certain quantity.
  • the steam generator 119b may be supplied in water by a pump 149 from a water reservoir 119a.
  • Fig. 7 schematically shows a second embodiment of a garment care system for treating garments in accordance with the invention.
  • the base unit 11 only comprises a pump 149 for providing water as fluid in the hose cord 13, from water reservoir 119a, and the base unit 11 is adapted to vary the flow rate of the pump 149 based on the digital movement signal.
  • the flow rate of the pump increased by a certain quantity.
  • the pump is activated when the hand unit moves and the pump is stopped when the hand unit is not moved by the user.
  • the first microcontroller 110 may be adapted to adjust an operating parameter of the garment care system, in particular adjust the flow rate of the pump 149 such that:
  • Adjusting the flow rate value applied to the water pump allows varying the amount of steam that exits the steam vents of the hand unit.
  • This selection of flow rate is relevant if it is primarily considered that short strokes reflect a situation in which user is ironing a relatively small area with tough wrinkles that requires a higher amount of steam.
  • flow rate absolute difference between FR1 and FR2 is just given as an example. More generally, the flow rate difference between could be up to 50 g/mn or up to 100 g/mn.
  • the first microcontroller 110 can also be adapted to adjust the temperature of the steam chamber 129b, as in the embodiment of Fig.1 .
  • the first microcontroller 110 may be adapted to control the amount of steam that exits the steam chamber 129b such that:
  • This selection of steam rate is relevant if it is primarily considered that short strokes reflect a situation in which user is ironing a relatively small area with tough wrinkles that requires a higher amount of steam.
  • steam rate absolute difference between SR1 and SR2 is just given as an example. More generally, the steam rate difference between could be up to 150 g/mn.
  • Fig.8A-8B-8C-8D illustrate various predefined displacement patterns used as a reference in a hand unit according to as aspect of the invention.
  • the predefined displacement pattern may correspond to any one of the following displacement patterns:
  • Above reference displacement patterns are preferably stored in a memory.
  • the acceleration signal of each of those displacement patterns is stored.
  • the output signal of the sensor 126 is successively compared to any one of those stored acceleration signals. If the output signal of the sensor 126 matches with one of those stored acceleration signal, an operating parameter of the garment care device can be adjusted by the control unit as follows:
  • Detecting the displacement pattern of Fig.8A may be conducted as follows:
  • Detecting the displacement pattern of Fig.8B may be conducted as follows, for clockwise direction:
  • Detecting the displacement pattern of Fig.8B may be conducted as follows, for counter clockwise direction:
  • Detecting the displacement pattern of Fig.8C may be conducted as follows:
  • Fig.8D it depicts a hand unit according to the invention as described previously comprising a steam chamber.
  • the sensor 126 (not shown) is adapted to generate an acceleration signal AS varying along the time in a vertical direction Z.
  • the at least one operating parameter comprises the steam amount generated by the steam generator, such that if the acceleration signal AS along the vertical direction Z is above a threshold larger than 1 g, the steam mount generated by the steam generator is reduced, alternatively stopped.
  • the threshold is 1 g + 50 mg.
  • an additional condition is that the acceleration signal AS along the vertical direction Z should be larger than this threshold during a certain duration, for example 80 ms.
  • the first microcontroller 110 may adjust the steam mount accordingly.
  • Reducing the steam amount may either results in decreasing the steam amount by a certain percentage, or completely stopping the generation of steam.
  • Detecting the displacement pattern of Fig.8D may be conducted as follows:
  • the hand unit 12 comprises a soleplate 129a being in contact with a steam chamber 129b, and the base unit 11 is adapted to vary the temperature of the steam chamber 129b based on the digital movement signal as described above.
  • the temperature of the steam chamber 129b is increased by a certain quantity.
  • the temperature of the steam chamber is increased when the hand unit moves and the temperature of the steam chamber is decreased when the hand unit is not moved by the user.
  • Fig. 9a schematically shows a first embodiment of a hose cord for use in the garment care system in accordance with the invention.
  • the hose cord comprises the single communication wire 134a.
  • the hose cord also comprises also comprises the duct 135 for carrying a fluid (in particular water or steam from the base unit 11 to the hand unit 12)
  • a fluid in particular water or steam from the base unit 11 to the hand unit 12
  • the hose cord also comprises three power wires 131, 132, 133 for supplying electrical power to the hand unit 12.
  • the three power wires 131, 132, 133 correspond to the earth, live and neutral, respectively.
  • the power wire 133 is used as neutral for electrical signals carried by the single communication wire 134a.
  • the hose cord 13 may also further include an outer sheath 139, which is used to protect the power wires 131, 132, 133, the single communication wire 134a, and the duct 135.
  • the base unit 11 is adapted to offset by a given DC value, the voltage on the single communication wire 134a, for providing power supply to the movement sensor 126.
  • the value of the DC voltage is 24 Volts.
  • the communication wire 134a is not only used to carry signals between the hand unit and the base unit, but also used to provide power supply to the movement sensor.
  • the power wire 133 is used as neutral for electrical signals carried by the single communication wire 134a, and as neutral of the DC voltage carried by the single communication wire 134a.
  • Fig. 9b schematically shows a second embodiment of a hose cord for use in the garment care system in accordance with the invention.
  • the hose cord 13 further comprises an additional wire 134b, and the base unit 11 is adapted to apply a given DC value on the additional wire 134b, for providing power supply to the movement sensor 126.
  • the value of the DC voltage is 24 Volts. This means that the communication wire 134a is only used to carry signals between the hand unit and the base unit, and the power supply to the movement sensor 126 is provided separately via the additional wire 134b.
  • the power wire 133 is used as neutral for electrical signals carried by the single communication wire 134a, and as neutral of the DC voltage carried by the additional wire 134b.
  • the movement sensor 126 is an acceleration sensor of the type Micro Electro-Mechanical Systems (MEMS)
  • MEMS Micro Electro-Mechanical Systems
  • this sensor can be used to control, for example, the heating element in the hand unit 12 depending on the orientation and/or movements of the hand unit 12.
  • a stationary iron may be controlled by the base unit 11 to be heated less than a moving iron, thus adjusting the heating to the iron's use.
  • Other sensors such as temperature sensors or light sensors, may also be used.
  • the hand unit 12 comprises at least one light unit 124, such as light-emitting diode ("LED").
  • LED light-emitting diode
  • the light unit 124 may for example be controlled such as it reflects the movement of the hand unit: for example with flashing light having a frequency being proportional to the movement value or amplitude.
  • the second microcontroller120 is adapted to control the light unit 124 via the single communication wire 134a, based on the digital movement signal carried on the single communication wire 134a from the hand unit 12 to the base unit 11.
  • LED(s) in hand unit 12 may be controlled from the base unit 11, while sensors in the hand unit 12 may be read out from the base unit 11, their data being transmitted from the hand unit 12 to the base unit 11 on the single communication wire 134a.

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  • Health & Medical Sciences (AREA)
  • Public Health (AREA)
  • Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Professional, Industrial, Or Sporting Protective Garments (AREA)

Claims (14)

  1. Kleidungspflegesystem (10) zur Behandlung von Kleidungsstücken, wobei das Kleidungspflegesystem (10) umfasst:
    - eine Handeinheit (12) zur Behandlung von Kleidungsstücken,
    - einen Bewegungssensor (126), der mit einem ersten in der Handeinheit (12) angeordneten Mikrocontroller (110) zusammenarbeitet, um ein digitales Bewegungssignal zu erzeugen;
    - eine Basiseinheit (11) zum Auflegen der Handeinheit (12), wobei die Handeinheit (12) eine Sohlplatte (129a) umfasst,
    - ein Schlauchkabel (13) zum Verbinden der Basiseinheit (11) und der Handeinheit (12), wobei das Schlauchkabel (13) umfasst:
    a) einen Kanal (135) zum Transportieren einer Flüssigkeit von der Basiseinheit (11) zur Handeinheit (12),
    b) einen einzelnen Kommunikationsdraht (134a) zum Übertragen des digitalen Bewegungssignals von der Handeinheit (12) zur Basiseinheit (11) und zur bidirektionalen digitalen Kommunikation zwischen der Basiseinheit (11) und der Handeinheit (12),
    - und dadurch gekennzeichnet, dass:
    die Sohlplatte (129a) in Kontakt mit einer Dampfkammer (129b) steht;
    die digitale Bewegung die Bewegung der Handeinheit (12) und eine Ausrichtung der Handeinheit (12) kennzeichnet, und
    die Basiseinheit (11) angepasst ist, um die Temperatur der Dampfkammer (129b) basierend auf dem digitalen Bewegungssignal zu variieren.
  2. Kleidungspflegesystem nach Anspruch 1, wobei das digitale Bewegungssignal einem Beschleunigungssignal, einem Geschwindigkeitssignal, einem Winkelpositionssignal, einem Positionssignal oder einem Doppelpositionssignal entspricht.
  3. Kleidungspflegesystem nach Anspruch 1, wobei der Bewegungssensor (126) ein Beschleunigungssensor vom Typ Mikroelektromechanische Systeme (MEMS) ist.
  4. Kleidungspflegesystem nach einem der vorhergehenden Ansprüche, wobei:
    - die Basiseinheit (11) einen zweiten Mikrocontroller (120) umfasst,
    - der zweite Mikrocontroller (120) und der erste Mikrocontroller (110) zur seriellen Kommunikation über den einzelnen Kommunikationsdraht (134a) angeordnet sind.
  5. Kleidungspflegesystem nach Anspruch 4, wobei die Basiseinheit (11) eine erste Schnittstelle (111) umfasst, die mit dem zweiten Mikrocontroller (120) gekoppelt ist, und wobei die Handeinheit (12) eine zweite Schnittstelle (121) umfasst, die gekoppelt ist zum ersten Mikrocontroller (110).
  6. Kleidungspflegesystem nach Anspruch 5, wobei die erste Schnittstelle (111) und die zweite Schnittstelle (121) zur Verwendung eines seriellen asynchronen Empfänger/Sender-Kommunikationsprotokolls angeordnet sind.
  7. Kleidungspflegesystem nach Anspruch 6, wobei das Kommunikationsprotokoll dadurch definiert ist, dass die Basiseinheit (11) angepasst ist, um periodisch ein Befehlssignal an den einzelnen Kommunikationsdraht (134a) an die Handeinheit (12) zu senden, und das Handeinheit (12) angepasst ist, um das digitale Bewegungssignal nach dem Empfangen des Befehlssignals an die Basiseinheit (11) zu senden.
  8. Kleidungspflegesystem nach Anspruch 7, wobei die Basiseinheit (11) dazu ausgelegt ist, das Befehlssignal periodisch mit einer Zeitdauer im Bereich [10 ms; 100 ms] zu senden.
  9. Kleidungspflegesystem nach Anspruch 1, wobei die Basiseinheit (11) einen Dampferzeuger (119b) zum Erzeugen von Dampf als das Fluid umfasst, wobei die Basiseinheit (11) angepasst ist, um die Temperatur des Dampferzeugers (119b) basierend auf dem digitalen Bewegungssignal zu variieren.
  10. Kleidungspflegesystem nach Anspruch 1, wobei die Basiseinheit (11) eine Pumpe (149) zum Bereitstellen von Wasser als Fluid umfasst, wobei die Basiseinheit (11) angepasst ist, um die Strömungsrate der Pumpe (149) basierend auf dem digitalen Bewegungssignal zu variieren.
  11. Kleidungspflegesystem nach Anspruch 1, wobei die Basiseinheit (11) angepasst ist, um die Spannung an dem einzelnen Kommunikationsdraht (134a) um einen gegebenen Gleichstromwert zu versetzen, um eine Stromversorgung für den Bewegungssensor (126) bereitzustellen.
  12. Kleidungspflegesystem nach Anspruch 1, wobei das Schlauchkabel (13) ferner umfasst einen zusätzlichen Draht (134b), und wobei die Basiseinheit (11) angepasst ist, um einen gegebenen Gleichstromwert an den zusätzlichen Draht (134b) anzulegen, um eine Stromversorgung für den Bewegungssensor (126) bereitzustellen.
  13. Kleidungspflegesystem nach Anspruch 4, wobei die Handeinheit (12) eine Lichteinheit (124) umfasst, wobei der zweite Mikrocontroller (120) angepasst ist, um die Lichteinheit (124) über den einzelnen Kommunikationsdraht (134a) basierend auf dem digitalen Bewegungssignal zu steuern, das auf dem einzelnen Kommunikationsdraht (134a) von der Handeinheit (12) zur Basiseinheit (11) übertragen wird.
  14. Kleidungspflegesystem nach einem der Ansprüche 1 bis 13, wobei das Schlauchkabel (13) ferner drei Stromkabel (131, 132, 133) zum Zuführen von elektrischem Strom an die Handeinheit (12) umfasst.
EP18753440.9A 2017-08-25 2018-08-21 Kleidungspflegevorrichtung mit bewegungssensor Active EP3635169B1 (de)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
EP17187966.1A EP3447188A1 (de) 2017-08-25 2017-08-25 Kleidungspflegesystem mit bewegungssensor und schlauchkabel
EP17187973.7A EP3447187A1 (de) 2017-08-25 2017-08-25 Kleidungspflegevorrichtung mit bewegungssensor
PCT/EP2018/072578 WO2019038295A1 (en) 2017-08-25 2018-08-21 CLOTHING MAINTENANCE SYSTEM WITH MOTION SENSOR AND PIPE CORD

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EP3635169A1 EP3635169A1 (de) 2020-04-15
EP3635169B1 true EP3635169B1 (de) 2020-10-28

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EP (1) EP3635169B1 (de)
CN (1) CN111201346B (de)
RU (1) RU2729293C1 (de)
WO (1) WO2019038295A1 (de)

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EP4008832A1 (de) * 2020-12-04 2022-06-08 Koninklijke Philips N.V. Kleidungspflegevorrichtung mit ventilsystem

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CN111201346B (zh) 2021-05-07
WO2019038295A1 (en) 2019-02-28
RU2729293C1 (ru) 2020-08-05
EP3635169A1 (de) 2020-04-15
CN111201346A (zh) 2020-05-26

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