EP3464706A1 - Ironing system with water delivery mechanism - Google Patents

Ironing system with water delivery mechanism

Info

Publication number
EP3464706A1
EP3464706A1 EP17724358.1A EP17724358A EP3464706A1 EP 3464706 A1 EP3464706 A1 EP 3464706A1 EP 17724358 A EP17724358 A EP 17724358A EP 3464706 A1 EP3464706 A1 EP 3464706A1
Authority
EP
European Patent Office
Prior art keywords
steam iron
water
soleplate
base unit
steam
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.)
Withdrawn
Application number
EP17724358.1A
Other languages
German (de)
English (en)
French (fr)
Inventor
Orhan KAHYA
William Wai Lik WONG
Milind Vishwas DATE
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Koninklijke Philips NV
Original Assignee
Koninklijke Philips NV
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Koninklijke Philips NV filed Critical Koninklijke Philips NV
Publication of EP3464706A1 publication Critical patent/EP3464706A1/en
Withdrawn legal-status Critical Current

Links

Classifications

    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F79/00Accessories for hand irons
    • D06F79/02Stands or supports neither attached to, nor forming part of, the iron or ironing board
    • D06F79/023Stands or supports neither attached to, nor forming part of, the iron or ironing board with means for supplying current to the iron
    • D06F79/026Stands or supports neither attached to, nor forming part of, the iron or ironing board with means for supplying current to the iron for cordless irons
    • 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
    • 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
    • D06F75/14Hand irons internally heated by electricity with means for supplying steam to the article being ironed the steam being produced from water in a reservoir carried by the iron

Definitions

  • the present invention relates to an ironing system with water delivery mechanism, in particular to an ironing system comprising a steam iron and a base unit.
  • the invention has some applications in the field to garment care.
  • a cordless steam iron with energy and water charging offers convenience to users by freeing them from a cord, as compared to more traditional solutions in which energy and steam/water are provided by a cord.
  • a cordless steam iron thus does not restrict freedom of movement of the user.
  • Prior art US6176026B1 discloses a cordless steam iron provided with an external reservoir assembly for automatically re-filling an internal reservoir when the iron rests on an iron stand.
  • the reservoir assembly includes a removable bottle that can be readily filled with water and then placed upside down in a water container.
  • a valve automatically maintains the water level in the container (and the internal reservoir) to a desired maximum level see chain-dotted line A. Water valves cooperate with one another and open automatically when the iron is placed on the stand, to allow water to flow from the container to the reservoir.
  • an ironing system comprising a steam iron and a base unit adapted to cooperate with each other such that the steam iron can take a first position in which the steam iron is docked on the base unit, and a second position in which the steam iron is undocked from the base unit, the steam iron being cordlessly detached from the base unit in the second position.
  • the steam iron comprises:
  • a water reservoir arranged to store water
  • the base unit comprises:
  • a water delivery mechanism for supplying water to the water reservoir when the steam iron is in the first position
  • a power supply unit for supplying energy to the soleplate when the steam iron is in the first position, for heating the soleplate.
  • a temperature sensor for sensing temperature of the soleplate
  • an ironing system for determining, based on a variation of temperature of the soleplate, an amount of water to be supplied to the water reservoir by the water delivery mechanism.
  • a main contributor to the temperature drop of the soleplate is linked to the amount of water consumed during steam ironing of garments. Therefore, the variation of the sensed soleplate temperature can be used to determine the amount of water to be provided by the water delivery mechanism to the water reservoir when the steam iron is in the first position.
  • an ironing system can determine the amount of water to be provided by the water delivery mechanism to the water reservoir when the steam iron is in the first position without using a water sensor in the steam iron. Moreover, this reduces the manufacturing costs when compared to systems including a water sensor.
  • a pump is used at full power to fill a water reservoir of a cordless steam iron when it is docked until, for example, the water reservoir is determined to be full by means of sensed back pressure.
  • the controller can achieve that a proper amount of water is supplied to the water reservoir to reduce the side effects of water being over- supplied and under- supplied, without using sensed back pressure. This can enable that the water reservoir is filled- in to the proper or near correct amount, with reduced stress on the components of the steam iron and/or base unit (e.g. seals).
  • the variation of temperature corresponds to the difference between the temperature of the soleplate when the steam iron is in a current first position, and the temperature of the soleplate when the steam iron was in a previous first position.
  • Measuring the drop of temperature between two successive docking in the first position, when the iron is just undock and when the iron is just docked back, allows an estimation of the amount of water used during ironing, and thus fill-in the water reservoir with about the same amount of water when the steam iron is retuned in the first position.
  • the controller is further adapted to determine the amount of water, based on a time duration between two successive docking of the steam iron on the base unit.
  • adding the time duration between two successive docking of the steam iron on the base unit allows a more accurate determination of the amount of water to be filled-in the water reservoir. Indeed, the longer this time duration, the higher the probability that non-steaming period of time have occurred as well, also contributing to causing a drop of temperature of the soleplate (although for a combination of dry ironing and steam ironing the error margin is not high because the heat energy used to convert water into steam is much higher than heat loss during dry ironing).
  • Using the time duration between two successive docking of the steam iron, together with the sensed drop of temperature allows a more accurate determination of the water consumption.
  • the controller is further adapted to determine, based on the sensed soleplate temperature, a thermal energy amount to be stored in the soleplate by the power supply unit, and to determine, based on the thermal energy amount, the amount of water to be supplied to the water reservoir, such that the amount of water can be fully transformed into steam by the thermal energy amount.
  • the temperature sensor is arranged in a location taken from the set of locations defined by the base unit and the steam iron.
  • Arranging the temperature sensor in the iron, and sensing soleplate temperature directly, allows an accurate sensing of core temperature.
  • the steam iron embeds a source of energy to supply the temperature sensor (e.g. battery), arranging the temperature sensor in the steam iron allows conducting temperature sensing even when the steam iron is undocked from the base unit.
  • the controller is arranged in a location taken from the set of locations defined by the base unit and the steam iron.
  • Arranging the controller in the base unit allows an easy implementation considering the relatively large space in the base unit and accessibility to continuous power supply.
  • Arranging the controller in the steam iron allows conducting calculations even when the steam iron is undocked from the base unit, provided that the steam iron embeds a source of energy to supply the controller (e.g. battery).
  • the steam iron comprises a heating element for receiving energy supplied by the power supply unit.
  • Using a heating element in the steam iron defines a cost-effective solution for heating the soleplate.
  • the heating element and the power supply unit are adapted to be electrically connected when the steam iron is in the first position.
  • the base unit comprises an induction system powered by the power supply unit for generating electromagnetic energy towards the steam iron when the steam iron is in the first position.
  • the controller is further adapted to generate a first alert signal when the steam iron is in the second position, if the time duration elapsed since the steam iron was undocked from the first position exceeds a given time duration threshold.
  • the generation of this alert signal reminds the user to return the steam iron on the base unit if the undocked period is too long, which would anyway reflects the need to supplying energy to the soleplate and/or fill-in water in the water reservoir.
  • the user can re-dock the steam iron before the performance of steam generation is reduced due to a lack of thermal energy and/or water. This can enhance ironing performance.
  • the controller is further adapted to generate a second alert signal when the steam iron is in the first position, after the thermal energy amount is stored in the soleplate and the amount of water supplied to the water reservoir.
  • This alert mechanism allows informing the user that the steam iron is ready for ironing. Hence, premature (i.e. too early) undocking from the base unit may be avoided.
  • the present invention also relates to a method of determining, in an ironing system as described above, an amount of water and energy to be supplied from the base unit to the steam iron.
  • FIG. 1 shows a schematic graph of temperature variation against water consumed during ironing
  • FIGs. 2a and 2b show an ironing system according to the invention in first and second positions, respectively;
  • FIG. 3 shows a schematic graph of temperature against time during ironing
  • FIG. 4 is a flow chart of operation of an ironing system according to the invention
  • FIG. 5 shows a flow chart of a method according to the invention.
  • FIGs. 2a and 2b show an ironing system 20 according to the invention.
  • the ironing system 20 comprises a steam iron 200 and a base unit 250.
  • FIG.2a represents the steam iron 200 in a first position PI being undocked from the base unit 250
  • FIG.2b represents the steam iron 200 in a second position P2 being docked on the base unit 250.
  • the steam iron 200 and the base unit 250 are adapted to cooperate with each other such that the steam iron 200 can take a first position PI in which the steam iron 200 is docked on the base unit 250, and a second position P2 in which the steam iron 200 is undocked from the base unit 250.
  • the steam iron 200 is cordlessly detached from the base unit 250 in the second position. In other words, no cords to carry electricity, water, signals, etc ...are linking the steam iron 200 and the base unit 250.
  • the steam iron 200 includes a water reservoir 201 arranged to store water.
  • the steam iron 200 also comprises a soleplate 202 for generating steam from the water in the water reservoir 201 when the steam iron 200 is in the second position P2.
  • the base unit 250 comprises a water delivery mechanism 251 for supplying water to the water reservoir 201 when the steam iron 200 is in the first position PI .
  • the base unit 250 also comprises a power supply unit 252 for supplying energy to the soleplate 202 when the steam iron 200 is in the first position PI, for heating the soleplate 202.
  • the ironing system 20 further comprises a temperature sensor 203 for sensing temperature of the soleplate 202.
  • the ironing system 20 also comprises a controller 253 for determining, based on a variation of temperature of the soleplate, an amount of water to be supplied to the water reservoir 201 by the water delivery mechanism 251.
  • the controller 253 may correspond to a microcontroller unit (MCU), or more generally a processing unit or a calculator executing instructions of a computer program stored in a local memory (not shown).
  • MCU microcontroller unit
  • the controller 253 may correspond to a microcontroller unit (MCU), or more generally a processing unit or a calculator executing instructions of a computer program stored in a local memory (not shown).
  • FIGs. 2a and 2b show the system schematically, and that various electrical and water flow interconnections (e.g. between the water reservoir 201 and the soleplate 202) are not shown for convenience.
  • Table 1 is an example of the relation between the amount of water evaporated by the soleplate, and the corresponding temperature of the soleplate. This example is given for a soleplate having a thermal mass of 500g. The corresponding curve CI is illustrated in FIG. 1.
  • the above Table 1 can be stored in a memory in the steam iron or in the base unit, as a thermal characteristic of the soleplate implemented in the steam iron.
  • the curve CI can be approximated by a linear relation:
  • the controller 253 determines the amount of water to be supplied to the water reservoir 201 by the water delivery mechanism by dividing the variation of temperature by this slope coefficient.
  • the slope coefficient depends on the design parameters of the iron such as thermal mass, material used, etc...
  • the variation of temperature corresponds to the difference between the temperature of the soleplate 202 when the steam iron 200 is in a current first position PI, and the temperature of the soleplate 202 when the steam iron 200 was in a previous first position PI .
  • the steam iron 200 comprises a heating element 204, a water interface 205, and an electrical interface 206.
  • the soleplate 202 comprises an ironing plate 202a and a steam generator 202b.
  • the base unit 250 includes a power supply 252, a water interface 255, an electrical interface 256, an external water inlet 257, an external power inlet 258, and a user interfacing means 259.
  • the water delivery mechanism 251 comprises a water tank 25 la and a pump 25 lb.
  • the water tank 251 a of the water delivery mechanism 251 may also be provided separately to the apparatus comprising the pump, for example by being arranged fluidly connected to the base unit.
  • the base unit 250 When the steam iron 200 is in the first position PI, the base unit 250 provides water to fill the water reservoir 201. Water is pumped from the water tank 251 a to the steam iron 200 by the pump 25 lb via a connection between the water interfaces 205 and 255 when the steam iron is in the first position PI .
  • This connection can take many forms, and embodiments of the invention are not limited by any particular water interface type.
  • the pump 25 lb and the water tank 25 la provide the water delivery mechanism 251 in this embodiment. However, other embodiments can have other water delivery mechanisms.
  • the base unit 250 When the steam iron 200 is in the first position PI, the base unit 250 provides power to heat the soleplate 202. In this embodiment, the base unit 250 provides electrical power to the heating element 204 which heats the soleplate 202. The electrical power is provided from the base unit 250 to the steam iron 200 via an electrical connection between the electrical interfaces 206 and 256 when in the first position PI . This connection can take many forms, and embodiments of the invention are not limited by any particular electrical interface type.
  • the steam iron is in the second position P2 and the ironing plate 202a contacts the garment.
  • the steam generator 202b in this embodiment, is a separate component to the ironing plate 202a.
  • Water from the water reservoir 201 is provided to the steam generator 202b, where it is heated using stored thermal energy of the steam generator 202b.
  • the steam can then pass through holes in the ironing plate 202a in order to provide steam to the garment.
  • the heating element 204 heats the ironing plate 202a and the steam generator 202b when in the first position. While embodiments are not limited to a particular arrangement of the ironing plate 202a and steam generator 202b, it will be appreciated that the ironing system may be arranged so that the heating element 204 heats the steam generator 202b to a higher temperature than the ironing plate 202a. This can maximise stored thermal energy.
  • the soleplate 202 may be provided by a combined ironing plate and steam generator, e.g. a single plate for contacting garments and generating steam.
  • the water tank 25 la is connected to the external water inlet 257 (e.g. mains water or a suitable inlet to enable the user to refill the water tank 25 la), and the power supply 252 is connected to the external power inlet 258 (e.g. mains electrical supply).
  • the external water inlet 257 e.g. mains water or a suitable inlet to enable the user to refill the water tank 25 la
  • the power supply 252 is connected to the external power inlet 258 (e.g. mains electrical supply).
  • the controller 253 is further adapted to determine the amount of water, based on a time duration between two successive docking of the steam iron 200 on the base unit 250. More explanation on this will be given with reference to FIG. 3.
  • FIG. 3 shows a graph of temperature along axis 1 (e.g. in °C) against time along axis 3 (e.g. in s). Dotted curve 5 a corresponds to temperature loss when dry ironing and plain curve 5b corresponds to temperature loss when steam ironing.
  • the controller 253 measures the temperature of the soleplate to be TO, at time tO.
  • TO is the temperature of the soleplate 202 measured just prior to undocking at time tO.
  • a measured temperature of Tl at time tl would indicate 100% steam ironing, and from that a certain amount of water consumption during ironing can be determined (e.g. from a look-up table) .
  • a measured temperature of T3 at time tl would indicate 0% steam ironing (i.e. 100% dry ironing), which would imply no water consumption during ironing.
  • the controller 253 can use the two reference curves 5 a and 5b to calculate the amount of water used to generate steam. In particular, as an example, the controller 253 can calculate two extreme cases where the user could have gone to T2 by using least and most amount of steaming (see curves 6a and 6b). These two numbers can be used by the controller 253 in order to decide how much water will be put in the water reservoir 201.
  • the controller 253 is further adapted to determine, based on the sensed soleplate temperature, a thermal energy amount to be stored in the soleplate 202 by the power supply unit 252, and to determine, based on the thermal energy amount, the amount of water to be supplied to the water reservoir 201, such that the amount of water can be fully transformed into steam by the thermal energy amount.
  • the temperature sensor 203 is arranged in a location taken from the set of locations defined by the base unit 250 and the steam iron 200.
  • the temperature sensor may correspond to a passive component (for example a so-called "NTC"). If the temperature sensor 203 is arranged in the steam iron, as illustrated in FIGs. 2a and 2b, the temperature sensor 203 is electrically connected to the base unit 250 when the steam iron in the first position PI .
  • the steam iron must be adapted such that the soleplate gets into contact with or proximate to the temperature sensor 203 when the steam iron in the first position PI
  • the controller 253 is arranged in a location taken from the set of locations defined by the base unit 250 and the steam iron 200. If the controller 253 is arranged in the base unit 250, as illustrated in FIGs. 2a and 2b, the controller 253 is electrically connected to the base unit 250.
  • the controller 253 is arranged in the steam iron 200, and the controller 253 is electrically connected to a battery (not shown) arranged in the steam iron, which is for example charged when the steam iron is in the first position PI ..
  • the steam iron 200 comprises a heating element 204 for receiving energy supplied by the power supply unit 252.
  • the heating element 204 and the power supply unit 252 are adapted to be electrically connected when the steam iron 200 is in the first position PI .
  • the base unit 250 comprises an induction system powered by the power supply unit 252 for generating electromagnetic energy towards the steam iron 200 when it is in the first position PI, which is converted into thermal energy in the steam iron 200 by metal or coil (not shown).
  • the controller 253 is further adapted to generate a first alert signal when the steam iron 200 is in the second position P2, if the time duration elapsed since the steam iron 200 was undocked from the first position PI exceeds a given time duration threshold.
  • This signal is used to indicate the user to return the steam iron 200 to the first position PI, for example after about 20 seconds when the steam iron is in the second position P2.
  • the controller 253 is further adapted to generate a second alert signal when the steam iron 200 is in the first position PI, after the sufficient thermal energy amount is stored in the soleplate 202 and the matched amount of water supplied to the water reservoir 201.
  • the first alert signal and the second alert signal may correspond to an alert via visual, audible, mechanical or other means.
  • the alerts are generated to user via the user interfacing means 259 that may correspond to a display, a speaker, or a vibrating system.
  • the power supply 252 supplies power to the controller 253, the pump 25 lb, and the user interfacing means 259, as well as to other components of the base unit 250 controlled by the controller 253.
  • the power supply 252 powers various elements of the base unit 250.
  • the power supply 252 when in the first position PI, supplies power to the heating element 204 and temperature sensor 203 in the steam iron 200.
  • step SI 1 of FIG. 4 a user is performing cordless ironing using the steam iron 200 in the second position P2.
  • no power is provided to the heating element 204 when the in the second position P2.
  • the steam iron 200 includes a mechanism (not shown) for ensuring that steam is generated only in the second position P2. In this embodiment, this mechanism (not shown) ensures that steam is not generated when the steam iron 200 is in the first position PI . It will be appreciated that there are a variety of forms such a mechanism could take (e.g. a gravity controlled switch or mechanical valve), and embodiments of the invention are not limited in this way.
  • the user may continue cordless ironing until an indication on the user interfacing means 259 informs the user to dock the iron 200 on the base unit, otherwise directly dock the iron 200 on the base unit before an indication on the user interfacing means 259 is generated.
  • the user docks the steam iron 200 with the base unit 250.
  • the user puts the steam iron 200 into the first position PI .
  • the user may have ironed a portion of a garment and may need to rearrange the garment.
  • the user may dock the steam iron with the base unit.
  • the controller 253 determines the temperature variation of the soleplate 202 by reading status of the temperature sensor 203.
  • the controller 253 in the first position PI, can get temperature reading from the temperature sensor 203 via the electrical connection between the electrical interfaces 206 and 256 when in the first position PI .
  • the temperature sensor 203 comprises a thermistor in contact with the soleplate 202.
  • embodiments of the invention can use other forms of temperature sensor.
  • step S14 based on the sensed variation of temperature, the controller 253 calculates the amount of water consumed during ironing and how much water is left in the water reservoir 201.
  • the controller 253 controls the power supply 252 to supply power to heat the soleplate 202 to a desired ironing temperature.
  • the power supply 252 can supply electrical power to the heating element 204 via the electrical connection between the electrical interfaces 206 and 256.
  • the controller 253 controls the power supply 252 to supply energy to heat the soleplate 202 to a desired temperature set point.
  • the soleplate 202 is heated to a desired ironing temperature (e.g. 200°C), based on information from the temperature sensor 203.
  • the temperature set point is a temperature (e.g. 200 °C) of the steam generator 202b.
  • the power of heating element 204 is fixed, and the ON-OFF time of the heating element 204 is controlled by the controller 253.
  • the controller 253 varies the heating of the heating element 204 by controlling the supply of electrical power from the power supply 252.
  • the heating element 204 may be controlled by the controller 253 to have varying heating power.
  • the main cause of temperature drop of the soleplate 202 is the conversion of water to steam.
  • the drop in temperature of the soleplate 202 can be related to the drop in water in the water reservoir 201.
  • the controller 253 can use the drop in temperature of the soleplate 202 to determine the amount of water left in the water reservoir 201, without the need for a dedicated water sensor to detect the level of water in the reservoir 201.
  • the controller 253 calculates an amount of water to supply to the water reservoir 201 via the connection between the water interfaces 205 and 255, as well as a flow rate of the pump 25 lb based on the calculated amount of water left in the water reservoir 201 from step S14.
  • the capacity of the water reservoir 201 is fixed (i.e. it is a design feature) and the controller 253 may know that the water reservoir 201 was filled the last time the steam iron 200 was docked to a certain level (e.g. full). Using this information, the controller 253 can determine the amount of water left in the water reservoir 201 together with the soleplate temperature information.
  • the controller 253 can determine that a certain drop in temperature of the soleplate 202 equates to a temperature drop associated with converting half the water in the water reservoir 201 to steam, and thus the controller 253 can control the water reservoir 251 to supply an amount of water equal to half the volume of the water reservoir 201 to the water reservoir 201.
  • the amount of water supplied to the water reservoir 201 can be supplied without needing a water sensor in the steam iron 200.
  • the controller 253 controls the pump 251b to supply water to the water reservoir 201 via the connection between the water interfaces 205 and 225.
  • steps S16 and S17 occur in parallel.
  • the pumping rate and time pattern of the pump 25 lb are variable. Using the above embodiment, achieving smooth and soft charging patterns that minimize shocks and stress applied onto water delivery system can be achieved.
  • the pumping rate transition may also be gradual. For example, by knowing the amount of water needed to supply to the water reservoir 201, a gradual pumping rate transition can be achieved, further minimising stress on the system 20. For example, by gradual it is meant that the flow rate of water pumped to the water reservoir 201 in the steam iron decreases over time according to a given value known by the controller.
  • the controller 253 can determine that not all the water is used, and rather than simply pumping the water to partially full water reservoir 201 with high pumping rate and/or pressure with full pumping time, the controller 253 can moderate pumping rate or shorten pumping time according to calculated water condition in reservoir. This minimize over pumping to reduce stress on the system 20. It is preferred that heating of the heating element 204 and the supply of the water to the water reservoir 201 are done simultaneously. Furthermore, the controller 253 can control the heating and water pumping in a balanced way. Hence, the appropriate balance between thermal energy and water supply can be achieved. This balance can be obtained by not pumping more water to the water reservoir 201 than thermal energy enough to convert the stored water in the water reservoir 201 into steam. In other words, the amount of water and amount of thermal energy can be matched.
  • the controller 253 can be arranged to control a water delivery rate of the pump 25 lb so that a time taken to provide the required amount of water to the water reservoir 201 is the same as a time taken to supply the required thermal energy amount to the soleplate 202.
  • the controller 253 has supplied sufficient water and power to the steam iron 200 is in the first position PI, the steam iron 200 is charged in water and thermal energy and is thus ready for more ironing.
  • the readiness of the steam iron 200 is displayed, for example on the user interfacing means 259.
  • the user interfacing means 259 can alert the user when the steam iron 200 is ready for ironing.
  • the alert mechanism may alert the user that the soleplate 202 is at the desired temperature and that the water reservoir 201 is full.
  • step SI 1 The user can then undock the steam iron 200 and can begin cordless ironing again (step SI 1), until the user interfacing means 259 indicates that is time to re-dock the steam iron 200, if the un-docking duration exceeds a given duration threshold.
  • the user has the freedom to choose when to dock and undock, and that is not fixed by the appliance.
  • the system can record energy and water charged and lost condition by knowing charged and used temperature as well as a time span to decide what to do for next cycles.
  • the water reservoir 201 has for example a volume of 10 cm 3 .
  • the steam iron 200 may generate a continuous amount of steam rate of 30g/min in average for around 20 seconds when in the second position P2 (for 100% steam ironing). It might typically take four minutes to iron one whole garment.
  • user should dock the steam iron 200 multiple times (e.g. around four to five times) to top up the water in the water reservoir 201 and to re-heat the soleplate 202 during the ironing process.
  • water and energy are charged in a balanced way, done by power and flow regulation.
  • a heating element 204 of 3200 Watts power may be used, with a water reservoir 201 able to store 10 cm 3 of water after previous charge-user cycle, with the soleplate 202 generating steam at an average 30 g/minute steam rate for 20 seconds, and a 500g active mass of the soleplate 202.
  • the pump 251b may be capable to supply 120 g/minute, but it is preferably regulated to reduce pumping rate to about 50 g/minute, to match with energy flow. As a result, it might typically take about 11 seconds for the base unit 250 to provide a balanced amount of heat and water to the steam iron 200. If energy is fully consumed by last ironing cycles, known from temperature sensing, it may take around 15 seconds (i.e.
  • the pumping rate of the pump 25 lb may be adjusted to equivalent 40g/minute to make total energy balance. Whilst energy and water are being provided to the steam iron 20, the controller 253 performs temperature reading, energy balance calculations, heating element 204 ON/OFF power control and pump 251b ON/OFF rate control.
  • the ironing system may use a "safety factor" for the amount of water determined by controller 253 and supplied to the water reservoir.
  • the controller 253 may assume a certain error margin for determining the water amount (based on temperature and time, and in some embodiments usage patterns of the device) that has been consumed in ironing.
  • the controller may then control the supply of water to the steam iron so that an amount of water is provided that is less than the calculated water amount, while taking into account this error margin.
  • the accuracy of such a system may be very high, as the majority of the energy is taken by steam generation.
  • the controller 253 can correlation the energy loss to water consumption - the amount of water used to generate steam, i.e. to cause temperature drop.
  • fully relying on such a water release path would increase stress in water delivery system during releasing.
  • a system with only a water release path would have increased stress compared to embodiments of the invention.
  • the controller 253 is further arranged to predict the usage pattern of the steam iron 200 by using multiple temperature changes and time span information, for example, based on repeated measurements, the controller 253 may estimate that the next movement of the user (e.g. with a certain mix of steam and dry ironing). The controller 253 may store information on such a usage pattern and use it to estimate when call back is required.
  • the controller 253 can use stored data on temperature/time to determine the time when the water reservoir 201 is going to be emptied and activate a call-back alert before then.
  • the predetermined threshold can be set to be one or two seconds before it is estimated by the controller 253 (e.g. based on a starting water amount, e.g. 10 g for a full water reservoir 201) that the water reservoir 201 is going to be emptied.
  • the user can re-dock the steam iron 201 before steam producing performance is reduced due to a lack of water and/or energy. This can help ensure optimum ironing performance.
  • the invention also relates to a method of determining, in an ironing system 20 as described previously and comprising a steam iron 200 and a base unit 250, an amount of water to be supplied from the base unit 250 to the steam iron 200, the base unit 250 and the steam iron 200 being adapted to cooperate with each other such that the steam iron 200 can take a first position PI in which the steam iron 200 is docked on the base unit 250, and a second position P2 in which the steam iron 200 is undocked from the base unit 250, the steam iron 200 being cordlessly detached from the base unit 250 in the second position P2, the steam iron 200 comprising a water reservoir 201 arranged to store water and a soleplate 202 for generating steam from water in the water reservoir 201 when the steam iron 200 is in the second position P2, the base unit 250 comprising water delivery mechanism 251 for supplying water to the water reservoir 201 when the steam iron 200 is in the first position PI and a power supply unit 252 for supplying energy to the soleplate 202 when
  • the method comprises the steps of:
  • determining SS2 based on a variation of temperature of the soleplate, an amount of water to be supplied to the water reservoir 201 by the water delivery mechanism 251.
  • the step of determining SS2 comprises a step SS3 of calculating the variation of temperature between the temperature of the soleplate 202 when the steam iron 200 is in a current first position PI, and the temperature of the soleplate 202 when the steam iron 200 was in a previous first position PI .

Landscapes

  • Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Irons (AREA)
EP17724358.1A 2016-05-26 2017-05-19 Ironing system with water delivery mechanism Withdrawn EP3464706A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP16171468 2016-05-26
PCT/EP2017/062064 WO2017202706A1 (en) 2016-05-26 2017-05-19 Ironing system with water delivery mechanism

Publications (1)

Publication Number Publication Date
EP3464706A1 true EP3464706A1 (en) 2019-04-10

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Application Number Title Priority Date Filing Date
EP17724358.1A Withdrawn EP3464706A1 (en) 2016-05-26 2017-05-19 Ironing system with water delivery mechanism

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US (1) US20190136445A1 (ru)
EP (1) EP3464706A1 (ru)
CN (1) CN109154127A (ru)
RU (1) RU2018146052A (ru)
WO (1) WO2017202706A1 (ru)

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GB2581505B (en) * 2019-02-20 2021-05-12 Delonghi Braun Household Gmbh Steam Station with water tank
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CN112779748B (zh) * 2019-11-08 2022-06-28 漳州灿坤实业有限公司 即开式蒸汽熨烫装置
KR102184331B1 (ko) * 2020-02-04 2020-11-30 (주)티케이케이 자동 급수 스팀 다리미

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RU2018146052A (ru) 2020-06-26
CN109154127A (zh) 2019-01-04
WO2017202706A1 (en) 2017-11-30
US20190136445A1 (en) 2019-05-09

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