FIELD OF THE INVENTION
[0001] The present invention relates to personal appliances according to the preamble of
claim 1 and is concerned with a beneficial method for operating such personal appliance
and the required technical features.
BACKGROUND OF THE INVENTION
[0002] In the different fields of personal appliances, efforts are taken to make the appliance
efficient and user-friendly. Commonly different modes of operation can be selected,
for performing different tasks, or for accommodating preferences of different users.
For example, many hair dryers can be operated with different air throughputs and with
different air temperatures.
[0003] Published German patent application
DE 31 12 384 A1 (filed by Müholos-Werk Alfred Müller) discloses a hood dryer. Conventional hood dryers
are described as typically allowing for the selection of a heating temperature and
a speed of the fan. Both values can often be selected continuously. However, according
to this disclosure, it takes a lot of experience, even for a hair dresser, to make
the right selections. Therefore, it can happen that the hair is still wet when the
hood dryer is switched off according to the selection made when starting the drying
process. The disclosed invention attempts to avoid this by providing a wetness sensor.
This wetness sensor is supposed to end the process when the hair is sufficiently dry.
Air circulating within the hood dryer is guided to the wetness sensor and the sensor
is connected to an electrical circuit which can end the drying process by switching
off the ventilation fan and the heater.
[0004] A dryer hood is a relatively spacious personal appliance. Hence, it is relatively
easy to place one or several sensors in a dryer hood. As a dryer hood is a very specific
type of a personal appliance comprising the hood as a closed space, it is relatively
easy to find an appropriate place for a sensor and to make representative measurements.
[0005] US patent 4,602,143 (to Clairol Incorporated) discloses an infrared hair styling device. This device
is provided in the form of a curling iron with an infrared radiation source. The curling
iron comprises a hollow barrel for radiating infrared radiation. The barrrel is substantially
transparent to radiation. The curling iron is also provided with a circuit for energizing
the infrared source in a cyclical manner in order to maintain the temperature of the
barrel within a predetermined range. This device also comprises a temperature sensor
to sense the temperature of the barrel in order to activate the control unit for maintaining
the predetermined temperature range. Hence, within a predetermined temperature range
the infrared source will cycle on and off.
[0006] Operating a curler with infrared light requires, inter alia, the use of a transparent
barrel for the curler. This is a somewhat costly approach, not necessarily required
for all curlers. Curlers with simpler resistive heating, cannot employ the same type
of sensor and setup. Further, the circuit allows only to keep one preselected temperature.
Individual user needs and habits are not comprehensively addressed.
[0007] EP 2 524 617 A2 published after the priority date of the current application discloses a hair styling
apparatus with a heating device and a hair protection function. It discloses a temperature-sensing
unit, a temperature setting by the user and a moisture sensor in order to select suited
temperature for the hair treatment. No possibility is provided for the user to enter
data related to at least one of hair length, hair density and/or hair used as user
related data for the selection of the first or second operating mode.
[0008] In the
WO 2012/174168 A2 published after the priority date of the current application, a hair care tool for
dynamic and optimum hair styling temperature control is described. The hair moisture
is measured by a change in temperature and converted to hair moisture using a look-up
table. The measurement is performed prior and during a styling session. No possibility
is provided for the user to enter data related to at least one of hair length, hair
density and/or hair used as user related data for the selection of the first or second
operating mode.
[0009] US 2010/0286754 discloses an assembly for preventing and treating moisture-based skin dermatitis
with a temperature control having a temperature sensor and a user selectable input
temperature. Further, a moisture sensor is provided to detect the moisture on the
skin. The chosen treatment then depends on the detected moisture.
[0010] From the
GB 2455834 A a hair styling appliance is known having separated heating zones with different heating
plates and a temperature sensor for each heating plate. An individual control of the
different, separated heating zones is provided based on the temperature sensor measurements
for each heating zone.
[0011] In the
WO 2011/004340 A2, a hair treatment device, such as a hair straightener, with a temperature control
is disclosed. The temperature control has two sensors. From the sensor data, a parameter
can be generated, the parameter being based on the condition of the hair. This parameter
might be a difference of the two temperature sensor data. The parameter influences
the temperature control. From
EP 2198736 A2 a hair straightener is known for performing a grooming task on a user. The straightener
being able to perform the grooming task in at least a first mode and a second mode,
which is different from the first mode. It comprises a user interface enabling the
user to manually enter further user related data relevant to the grooming task and
a data processing unit that generates a selection signal for selecting at least either
the first or the second mode depending on the user related data entered, wherein the
hair straightener comprises a data storage unit, and the data processing unit generates
a selection signal also depending on the data stored in the data storage unit and
the data entered via the user interface relates to different types of hair.
[0012] The present invention attempts to improve these concepts found in the prior art.
In particular, the present invention attempts to provide a personal appliance which
provides an optimal mode of usage for different users and for different usage situations.
SUMMARY OF THE INVENTION
[0013] The present invention relates to a hair straightener according to appended independent
claim 1. Preferred embodiments of the invention are disclosed in the depending claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
- Fig. 1
- shows a personal appliance in the form of a hair curler.
- Fig. 2
- shows a hair straightener which is a personal appliance, which implements the present
invention.
- Fig. 3
- shows a scheme illustrating the cooperation of key components of the present invention.
- Fig. 4
- shows another scheme illustrating another embodiment of the present invention.
- Fig. 5
- shows another scheme illustrating another embodiment of the present invention.
- Fig. 6
- shows another scheme illustrating another embodiment of the present invention.
DETAILED DESCRIPTION OF THE INVENTION
[0015] A personal appliance can take a variety of forms. The personal appliance can be can
be a grooming appliance, for example a shaver, a trimmer, a beard trimmer, an epilator,
or a hair care device, e.g. a curler, a straightener, a brush, a hair dryer, and the
like. Depending on the personal appliance the grooming task is different and hence
the first mode and the second mode to perform the grooming task are different and
specific to the personal appliance. For example a shaver could be operated with fast
moving or slow moving cutting knives. The personal appliance can also be an epilator.
In an epilator comprising and epilation roll a first mode could be one of slow motion
of the epilation roll and a second mode could be one of a fast movement of the epilation
roll. Where the personal appliance is a hair care appliance, the grooming task will
typically be the task of drying hair or straightening hair or curling hair. In hair
care grooming tasks the temperature at which the task is performed is critical.
[0016] For example a first mode for such hair care grooming task could be a mode of low
temperature and a second mode for a hair care grooming task could be a mode of high
temperature.
[0017] In accordance with the present invention the personal appliance is a hair straightener
and comprises at least one sensor for measuring user data relevant to the grooming
task. The hair temperature or hair dryness or hair wetness could be measured. Typically
such user data will be representative for an aspect or a feature of the user's body
and the state this body or part of the body is in.
[0018] The personal appliance should further comprise a user interface enabling the use
to enter user related data. Such user related data can for example be skin type, skin
color and tone, skin dryness, frequence of doing the same or a different grooming
task, hair color, hair length, density of body hair, or the like.
[0019] The interface will allow the user to enter such data. For example a key pad allowing
to enter letters and numbers or numbers only or the like can be useful. A switch with
two or more positions or a button can also be useful to enter data. Sometimes the
user interface will comprise a display. A display can be helpful to enter a variety
of user data with relative simple selections, for example selections by using a button.
A touch display can also be a useful user interface.
[0020] Additionally, an external device serves for entering data. Useful devices are computers,
also in the form of laptop or tablet computer, or mobile phones, smart phones, digital
assistants and the like. These devices can be connected to the personal applicance
via a cable or via a wireless connection, using e.g. the W-LAN or Bluetooth connection
elements and protocols.
[0021] The data storage unit in addition also stores individual data which are at least
in part generated during usage by the user. Thus the applicance is then able to improve
its performance (select the most appropriate mode or temperature setting of the heating
plates of a straightener) in shorter time due to the training occurred by earlier
usage. The appliance is then "self-learning". This aspect can be also indepenedently
claimed in the context of the other features described hereinbelow and above.
[0022] The personal appliance will further comprise a data processing unit. This processing
unit is able to perform mathematical and logical operations. The unit will typically
comprise integrated circuits and similar parts often used in computers. The data processing
unit will generate a selection signal for either the first or the second mode. This
signal can then be used to trigger the selection of the respective mode.
[0023] Often, the signal will be low volt signal and suitable electrical or electronic means
will be required to transform the signal into a signal suitable to actually trigger
the selection. It is useful in the context of the present invention, that the selection
signal generated by the data processing unit is performed into a second selection
signal. Such a second selection signal can be more suitable to trigger the desired
selection, for example be of higher voltage.
[0024] Importantly, according to the present invention, the selection signal is generated
in a complex operation and depends at least on the data measured by the at least one
sensor and also on the user related data entered. The combination of such various
data provides a higher quality of the selection signal. That means, that the signal
is more likely to trigger the selection of an ideal grooming mode as compared to signals
generated in a simpler way, for example by a user selection only or by a sensor selection
only.
[0025] It should also be noted that further to a first mode and a second mode, a third mode,
a fourth mode, and so forth can exist. For example the different mode can be different
temperature settings. It can also be that the second mode comprises features of the
first mode and additional features. For example, the first mode can be the operation
of an electric shaver alone and the second mode can be the operation of the electric
shaver and an electric trimmer.
[0026] It is often useful to have a personal appliance with continuous band of modes. For
example it is possible to set a continuous or almost continuous number of temperatures
within a certain range.
[0027] It has been very useful to provide a personal appliance which further comprises a
data storage unit. Such a data storage unit can take a variety of commonly known forms.
The data processing unit can then generate a selection signal also depending on the
data stored in the data storage unit.
[0028] The nature of the data stored in the data storage unit can be quite different. For
example the data can be non-individual. Such non-individual data are to be understood
as data not generated relative to a specific individual user. For example such data
can be usage data generated from a large variety of users representative for an unspecified
variety of users or representative for a certain subset of users (e.g. young women
or the like).
[0029] It has been found useful to use two sensors. The two sensors can measure the same
property, for example temperature. Two sensors can achieve a more accurate temperature
measurement as compared to a single sensor.
[0030] Alternatively or additionally, temperature data received from two sensors can be
processed for achieving a different quality of information rather than temperature.
For example, the temperature difference between the front end and the rear end of
the heating plates of a hair straightener can be representative for the dryness of
the hair. If the hair is wet, it will normally absorb more heat from the heated plates
of a hair straightener, and hence the temperature drop between the front sensor and
the rear sensor (in a given stroke direction) is more pronounced. Therefore, a set
of temperature data can be transferred into a set of dryness data. Dryness data are
referred to as a data set of a different nature as compared to the temperature data
set.
[0031] In the context of the present invention, a personal appliance is considered useful,
wherein the data measured by the at least one sensor form a first data set comprising
a data representing a first physical property and wherein a second data set comprising
a data representing a second physical property is generated using data from the first
data set and the second physical property is different from the first physical property.
With reference to the example given above, the first set of data can be temperature
data and the second set of data can be dryness data.
[0032] In one useful way of practicing the invention, this conversion can be achieved by
relying on data stored in the data storage. For example, the data storage may have
representative data for temperature drop depending on hair dryness. Hence, by relying
on the stored data, it is possible to reliably transform temperature data into dryness
or wetness data (it is understood that wetness data is the same physical property
as dryness data for all embodiments). When the first set of data is created by a single
sensor, the quality of the second set of data can be increased by additionally relying
on data from the data storage.
[0033] It is also possible that the personal appliance comprises a third sensor which measures
data of a different nature than the first and the second sensor. For example, in case
of a hair straightener, the third sensor may measure hair dryness directly. The data
of the third sensor can then be compared with the process data of the first two sensors.
The comparison can then lead to an estimate about the reliability of the sensors and
to an overall more accurate measurement.
[0034] Alternatively, the data of the third different sensor can be used to create a data
set of yet different quality. For example, when the dryness of the hair is known from
data generated by the third sensor, the temperature data generated by the first and
second sensor could be used to have an estimate for the speed with which the device
is moved through the hair. The third sensor or a fourth sensor could also be a sensor
measuring the position of the hair straightener.
[0035] Fig. 1 shows a representative hair care device in the form of a curler, which can
implement all aspects of the present invention. The curler 100 comprises a gripping
unit 110. The gripping unit comprises a display window 112. The gripping unit can
further comprise a switch or interface 120. The device 100 will as a further essential
component comprise the hair treatment unit 130. The hair treatment unit comprises
the central heated barrel 132 and the clip 134. For opening the clip an actuator button
136 is provided. In two regions of the heated barrel 132 sensors can be provided.
A first region 140 is suitable for a first sensor and a second region 142 is suitable
for a second sensor. These regions can be adjacent to either side of the clip 134.
[0036] Fig. 2 shows a hair straightener, which embodies the present invention. The hair
straightener 200 comprises a gripping unit 210. the gripping unit essentially comprises
a first arm 212 and a second arm 214. Both arms are linked at joint 216. A cable 218
is provided at one end of the straightener 200. As an interface the straightener comprises
a dial knob 220. Further, the straightener 200 comprises a hair treatment unit 230.
This hair treatment unit also comprises a first arm 232 and a second arm 234. At one
end of the first arm 232 a gripping unit 236 is provided. Both arms comprise heated
surfaces and for the second arm 214 the first heating surface 250 can be clearly seen.
Adjacent to the first heating surface 250 an area 240 for the first sensor is provided
and an area 242 for the second sensor is provided.
[0037] Fig. 3 provides a schematic illustration of the functioning of the present invention,
without providing actual parts of the invention as embodied in a personal appliance.
The personal appliance might generate first sensor data SD1 and second sensor data
SD2. Additionally, the user can enter data by a suitable interface, such that further
entered data ED are available. All these data are transmitted to a central processing
unit. This unit will then generate an output signal O.
[0038] Fig. 4 shows another embodiment of the present invention. Again sensor data SD1 and
sensor data SD2 are provided to a processing unit along side with entered data ED.
However, in this embodiment the processing unit P also is linked to a knowledge data
base KDB. From this data base, data can be provided for a better processing and analysing
of the data SD1, SD2 and ED. Hence, the output signal O can be of a better quality.
[0039] Fig. 5 discloses a yet further embodiment of the present invention. In this embodiment
the sensor data SD1 and SD2 are processed differently. It can be assumed, that SD1
and SD2 are data of the same type, for example temperature data taken by two temperature
sensors at two different positions of interest. These sensor data can then be processed
in a sensor data processor SDP. As discussed before, the output of the sensor data
processor to the central processor P can be of a different nature than the input data.
For example, the output data can have the quality of dryness data, while the input
data only are temperature data. Optionally, according to the present invention, time
data TD can be provided. Such data can be provided by a simple commercially available
time signal. It is then possible to have a time curve of the sensor data. These time
data TD can be provided directly to the central processor P or can alternatively,
as shown, be provided to the sensor data processor SDP. Hence, the sensor data processor
SDP is enabled to provide time dependent data. For example, a time dependent temperature
curve or a time dependent dryness curve can be provided. As also shown in Fig. 5 it
is possible to provide data from further sensors to the sensor processors, such as
data SD3. These data again can be combined with a time signal in the central processor
P or in another processor, similar to the sensor data processor SDP shown. Where such
data provided these data will lead to a higher quality output signal O, especially
when the central processor P can also compare the measure data with reference data
such as data from a knowledge data base KDB.
[0040] Fig. 6 shows yet another embodiment of the present invention. As compared to Fig.
5 a second data base is provided. Further a user data base UDB is provided. Such user
data base can store data generated over the use by an individual user or a small number
of users (for example within a family). Based on such a data base it is possible to
detect changes in user habits. It is also possible to distinguish between different
users. For example one member of the family may normally use the appliance with dry
hair another memeber of the familiy will normally use the appliance with wet hair.
Hence, by comparing fresh data with stored data from a small number of users, it is
possible to analyse the situation or to at least make an educated guess. Based on
such guess, for example a user using the device on wet hair can be offered a higher
temperature than a user using the device with dry hair. If, based on such data stored
in the user data base UDB, an individual user can be recognized, other settings can
also be selected suitable for the individual user, for example the settings for users
with colored hair can be different than for a user with hair of natural color.
[0041] (The different schematic elements referred to in Figures 3 to 6 can also referred
to by reference numerals. For example, the first sensor data (SD1) can be referred
to as sensor data 10, the second sensor data (SD2) can be referred to as sensor data
12, the time data (TD) can be referred to as 16, the sensor data processor (SDP) can
be referred to as 18, the enter data (ED) can be referred to as 20, the third sensor
data (SD3) can be referred to as 14, the central processor (P) can be referred to
as 30, the output signal (O) can be referred to as 40, the knowledge data base (KDB)
can be referred to as 50 and the user data base (UDB) can be referred to as 60.)
[0042] The dimensions and values disclosed herein are not to be understood as being strictly
limited to the exact numerical values recited. Instead, unless otherwise specified,
each such dimension is intended to mean both the recited value and a functionally
equivalent range surrounding that value. For example, a dimension disclosed as "40
mm" is intended to mean "about 40 mm."
1. A hair straightener for performing a grooming task on a user, the straightener being
able to perform the grooming task in at least a first mode or in a second mode, which
is different to the first mode and comprising at least a first and a second sensor
(140, 142) for measuring user data relevant to the grooming task, a user interface
(112, 220) enabling the user to enter further user related data relevant to the grooming
task and a data processing unit (30), wherein the data processing unit (30) generates
a selection signal for selecting at least either the first or the second mode depending
on the data measured by the at least first and second sensors (140, 142) and depending
on the user related data entered and in that the first and second sensors (140, 142)
are provided to measure temperature and/or hair wetness, wherein
- the hair straightener comprises a data storage unit (50) and in that the data processing
unit (30) generates a selection signal also depending on the data stored in the data
storage unit (50);
- the data entered via the user interface (112, 220) relates to at least one of hair
length, hair density and/or hair color and
- the sensors (140, 142) being provided to measure a different physical property than
that of the data entered via the user interface (112, 220), wherein the data measured
by the at least one sensor (140, 142) form a first data set comprising a data representing
a first physical property, and wherein a second data set comprising a data representing
a second physical property different from said first physical property is generated
using data from the first data set in a process using data provided by the data storage
unit (50).
2. The hair straightener of claim 1, wherein the data storage unit (50) stores non-individual
data.
3. The hair straightener of any one of claims 1 or 2, wherein the data storage unit (50)
stores individual data which are at least in part generated during usage by the user.
4. The hair straightener of any one of preceding claims, wherein the straightener is
designed to perform the grooming task in a multitude of modes, the multitude comprising
at least three modes and wherein the data processing unit (30) is generating a selection
signal for any one mode out of the multitude of modes.
5. The hair straightener of claim 4, wherein the multitude of modes comprises distinct
modes or continuous modes.
6. The hair straightener of any one of the preceding claims, characterized by a heating or cooling device for performing the grooming task at a given temperature
level and wherein the modes are temperature levels.
7. The hair straightener of any one of the preceding claims, wherein the data measured
by the first sensor (140, 142) form a first data set comprising a first number of
data and wherein a second data set comprising a second number of data is generated
using data from the first data set and the second number is smaller than the first
number.
8. The hair straightener of any one of the preceding claims, wherein said first physical
property is temperature, and wherein said second physical property is hair wetness.
9. The hair straightener of any one of the preceding claims, wherein the interface comprises
a display and an input device.
10. The hair straightener of any one of the preceding claims, wherein the first and second
sensors (140, 142) are provided to measure temperature at two lateral locations of
the hair straightening plate or adjacent to that which are remote to each other and
arranged in a direction of the hair movement through the straightener, so that both
sensors (140, 142) are contacted by the users hair during use of the straightener.
11. The hair straightener of any one of the preceding claims, wherein a central processor
automatically selects based on the selection signal the appropriate mode by a comparison
of the data entered via the user interface (112, 220) and sensor measurement data
with pre stored data stored in the data storage unit (50).
12. The hair straightener of any one of the preceding claims, wherein the data stored
in the data storage unit (50) is a knowledge data base that includes non individual
usage data generated from a large variety of users representative for an unspecified
variety of users or representative for a certain subset of users.
1. Haarglätter zum Durchführen einer Pflegeaufgabe bei einem Benutzer, wobei der Haarglätter
in der Lage ist, die Pflegeaufgabe wenigstens in einem ersten Modus oder in einem
zweiten Modus durchzuführen, welcher unterschiedlich bezogen auf den ersten Modus
ist und mindestens einen ersten und einen zweiten Sensor (140, 142) zum Messen von
benutzerrelevanten Daten für die Pflegeaufgabe, eine Benutzerschnittstelle (112, 220),
die es dem Benutzer ermöglicht, weitere benutzerbezogene Daten für die Pflegeaufgabe
einzugeben, und eine Verarbeitungseinheit (30) umfasst, wobei die Verarbeitungseinheit
(30) ein Auswahlsignal zum Auswählen von wenigstens entweder dem ersten oder dem zweiten
Modus in Abhängigkeit von den durch den wenigstens einen ersten und zweiten Sensor
(140, 142) gemessenen Daten und in Abhängigkeit von den eingegebenen benutzerbezogenen
Daten erzeugt und wobei die ersten und zweiten Sensoren (140, 142) vorgesehen sind
zur Messung der Temperatur und/oder der Haarfeuchtigkeit, wobei
- der Haarglätter eine Datenspeichereinheit (50) umfasst und die Datenverarbeitungseinheit
(30) auch in Abhängigkeit von den in der Datenspeichereinheit (50) gespeicherten Daten
ein Auswahlsignal erzeugt;
- die über die Benutzerschnittstelle (112, 220) eingegebenen Daten sich wenigstens
auf die Haarlänge, die Haardichte und/oder die Haarfarbe beziehen und
- die Sensoren (140, 142) vorgesehen sind zum Messen einer anderen physikalischen
Eigenschaft als die der über die Benutzerschnittstelle (112, 220) eingegebenen Daten,
wobei die Messdaten des mindestens einen Sensors (140, 142) einen ersten Datensatz,
der Daten umfasst, die eine erste physikalische Eigenschaft darstellen, bilden und
wobei ein zweiter Datensatz, der Daten umfasst, die eine zweite physikalische Eigenschaft
darstellen, die sich von der ersten physikalischen Eigenschaft unterscheidet, unter
Verwendung von Daten aus dem ersten Datensatz in einem Verfahren unter Verwendung
von Daten von der Speichereinheit (50) erzeugt wird.
2. Haarglätter nach Anspruch 1, wobei die Datenspeichereinheit (50) nicht individuelle
Daten speichert.
3. Haarglätter nach einem der Ansprüche 1 oder 2, wobei die Datenspeichereinheit (50)
individuelle Daten speichert, die wenigstens teilweise während der Benutzung durch
den Benutzer erzeugt werden.
4. Haarglätter nach einem der vorstehenden Ansprüche, wobei der Haarglätter dafür ausgelegt
ist, die Pflegeaufgabe in einer Vielzahl von Modi durchzuführen, wobei die Vielzahl
mindestens drei Modi umfasst und wobei die Datenverarbeitungseinheit (30) ein Auswahlsignal
für einen beliebigen Modus aus der Vielzahl von Modi erzeugt.
5. Haarglätter nach Anspruch 4, wobei die Vielzahl von Modi unterschiedliche Modi oder
kontinuierliche Modi umfasst.
6. Haarglätter nach einem der vorstehenden Ansprüche, gekennzeichnet durch eine Heiz- oder Kühlvorrichtung zum Durchführen der Pflegeaufgabe bei einem gegebenen
Temperaturniveau und wobei die Modi Temperaturniveaus sind.
7. Haarglätter nach einem der vorstehenden Ansprüche, wobei die Daten, die von dem ersten
Sensor (140, 142) gemessen werden, einen ersten Datensatz bilden, der eine erste Anzahl
von Daten umfasst, und wobei ein zweiter Datensatz, der eine zweite Anzahl von Daten
umfasst, mithilfe von Daten aus dem ersten Datensatz erzeugt wird und die zweite Anzahl
kleiner ist als die erste Anzahl.
8. Haarglätter nach einem der vorstehenden Ansprüche, wobei die erste physikalische Eigenschaft
die Temperatur ist und wobei die zweite physikalische Eigenschaft Haarfeuchtigkeit
ist.
9. Haarglätter nach einem der vorstehenden Ansprüche, wobei die Schnittstelle eine Anzeige
und eine Eingabevorrichtung umfasst.
10. Haarglätter nach einem der vorstehenden Ansprüche, wobei der erste und der zweite
Sensor (140, 142) dazu vorgesehen sind, die Temperatur an zwei seitlichen Stellen
der Haarglättungsplatte oder benachbart zu dieser, die voneinander entfernt sind und
in Richtung der Haarbewegung durch den Haarglätter angeordnet sind, zu messen, so
dass beide Sensoren (140, 142) bei Verwendung des Haarglätters von dem Haar des Benutzers
berührt werden.
11. Haarglätter nach einem der vorstehenden Ansprüche, wobei ein zentraler Prozessor anhand
des Auswahlsignals durch Vergleichen der über die Benutzerschnittstelle (112, 220)
eingegebenen Daten und Sensormessdaten mit in der Datenspeichereinheit (50) gespeicherten,
vorgespeicherten Daten automatisch den entsprechenden Modus auswählt.
12. Haarglätter nach einem der vorhergehenden Ansprüche, wobei die in der Datenspeichereinheit
(50) gespeicherten Daten eine Wissensdatenbank sind, die nicht individuelle Nutzungsdaten
enthält, die von einer großen Vielfalt von Benutzern erzeugt werden, die für eine
nicht spezifizierte Vielfalt von Benutzern repräsentativ sind oder für eine bestimmte
Untergruppe von Benutzern repräsentativ sind.
1. Un lisseur capillaire pour l'exécution d'une tâche de coiffage sur un utilisateur,
le lisseur étant capable d'effectuer les tâches de coiffage dans au moins un premier
mode ou un deuxième mode, qui est différent du premier mode et comprenant au moins
un premier et un deuxième capteur (140, 142) pour mesurer les données utilisateur
pertinentes pour la tâche de coiffage, une interface utilisateur (112, 220) permettant
à l'utilisateur d'entrer davantage de données utilisateur applicables à la tâche de
coiffage et une unité de traitement de données (30), dans lequel l'unité de traitement
de données (30) produit un signal de sélection pour choisir au moins le premier ou
le deuxième mode en fonction des données mesurées par au moins les premier et deuxième
capteurs (140, 142) et en fonction des données utilisateur entrées et en ce que les
premier et deuxième capteurs (140, 142) sont fournis pour mesurer la température et/ou
l'humidité des cheveux, dans lequel
- le lisseur capillaire comprend une unité de stockage de données (50) et en ce que
l'unité de traitement de données (30) produit un signal de sélection également en
fonction des données stockées dans l'unité de stockage de données (50) ;
- les données entrées via l'interface utilisateur (112, 220) concernent au moins l'un
des modes longueur des cheveux, densité des cheveux et/ou coloration capillaire et
- les capteurs (140, 142) étant prévus pour mesurer une propriété physique différente
de celle des données entrées via l'interface utilisateur (112, 220), dans laquelle
les données mesurées par au moins l'un des capteurs (140, 142) forment un premier
ensemble de données comprenant des données représentant une première propriété physique,
et dans laquelle un deuxième ensemble de données comprenant des données représentant
une deuxième propriété physique différente de ladite première propriété physique est
produit en utilisant des données du premier ensemble de données dans un procédé utilisant
des données fournies par l'unité de stockage de données (50).
2. Lisseur capillaire selon la revendication 1, dans lequel l'unité de stockage de données
(50) stocke des données non individuelles.
3. Lisseur capillaire selon l'une quelconque des revendications 1 ou 2, dans lequel l'unité
de stockage de données (50) stocke des données individuelles produites au moins en
partie par l'utilisateur lors de l'utilisation.
4. Lisseur capillaire selon l'une quelconque des revendications précédentes, dans lequel
le lisseur est conçu pour exécuter la tâche de coiffage dans une multitude de modes,
la multitude comprenant au moins trois modes et dans lequel l'unité de traitement
de données (30) produit un signal de sélection pour tout mode hors de la multitude
de modes.
5. Lisseur capillaire selon la revendication 4, dans lequel la multitude de modes comprend
des modes distincts ou des modes continus.
6. Lisseur capillaire selon l'une quelconque des revendications précédentes, caractérisé par un dispositif de chauffage ou de refroidissement pour exécuter la tâche de coiffage
à un niveau de température donné et dans lequel les modes sont des niveaux de température.
7. Lisseur capillaire selon l'une quelconque des revendications précédentes, dans lequel
les données mesurées par le premier capteur (140, 142) forment un premier ensemble
de données comprenant un premier nombre de données et dans lequel un deuxième ensemble
de données comprenant un deuxième nombre de données est produit en utilisant les données
du premier ensemble de données et le deuxième nombre est plus petit que le premier
nombre.
8. Lisseur capillaire selon l'une quelconque des revendications précédentes, dans lequel
ladite première propriété physique est la température, et dans lequel ladite deuxième
propriété physique est l'humidité des cheveux.
9. Lisseur capillaire selon l'une quelconque des revendications précédentes, dans lequel
l'interface comprend un dispositif d'affichage et un dispositif d'entrée.
10. Lisseur capillaire selon l'une quelconque des revendications précédentes, dans lequel
les premier et deuxième capteurs (140, 142) sont fournis pour mesurer la température
au niveau de deux emplacements latéraux de la plaque à lisser ou attenants à celle-ci
qui sont éloignés l'un de l'autre et disposés dans une direction du mouvement des
cheveux à travers le lisseur, de sorte que les deux capteurs (140, 142) entrent en
contact avec les cheveux de l'utilisateur lors de l'utilisation du lisseur.
11. Lisseur capillaire selon l'une quelconque des revendications précédentes, dans lequel
un processeur central sélectionne automatiquement sur la base du signal de sélection
le mode approprié par une comparaison des données entrées via l'interface utilisateur
(112, 220) et des données de mesure de capteur avec des données pré-stockées stockées
dans l'unité de stockage de données (50).
12. Lisseur capillaire selon l'une quelconque des revendications précédentes, dans lequel
les données stockées dans l'unité de stockage de données (50) sont une base de données
de connaissances qui comprend des données d'utilisation non individuelles produites
à partir d'une grande variété d'utilisateurs représentatives d'une variété d'utilisateurs
non spécifiée ou représentatives d'un certain sous-ensemble d'utilisateurs.