[0001] The present invention relates to a method for controlling a light-emitting component,
such as a LED, having a minimum active voltage on the one hand and a maximum operating
voltage and current on the other.
[0002] A control signal for switch means is usually generated or deduced on the basis of
a measured current signal. The supply or control voltage over a diode or a series
of diodes is not taken into account at all here. This voltage must at all times lie
preferably within a precisely determined range of minimum voltages in order to enable
activation of the component, and a maximum voltage, also known as the forward voltage,
and the corresponding current, which may not be exceeded so as not cause damage to
the component. The components further also have a combination of a maximum current
and a maximum voltage at which the heat generation can still be tolerated.
[0003] The publications
US-2004/066.143 and "Electrical Design Considerations for SuperFlux LEDs" (2002-09, Lumileds Lighting,
San Jose, CA, USA, XP002453166) describe possibilities of LEDsand are acknowledged
her as prior art.
[0004] Particularly in applications in which a number of light-emitting components are connected
in series with each other, the minimum and maximum voltages to be applied thereover
must be increased a number of times equal to the number of components in the series
connection. In addition, light-emitting components often display a fluctuation, depending
on temperature etc., in the minimum and maximum forward voltage enabling it to come
into or remain in operation without damage as a result of heat generation. The voltage
over a component may for instance have to become higher to be able to make it operative
as the temperature of this diode rises, particularly during operation thereof.
[0005] Particularly when a number of light-emitting components are connected in series,
the overall voltage over such a series connection of components may display large
fluctuations, partly depending on the temperature. In order to compensate for this,
it is usual in the art for amplifiers to be used to adjust the supply or control voltage
over the (series of) light-emitting components to the operating conditions thereof,
and use is normally made for this purpose of linear amplifiers, booster amplifiers,
buck amplifiers or combinations thereof. A voltage of 150 V may particularly be necessary
in for instance a series connection of 35 LEDs. The fluctuations may vary up to as
much as 20 V in the voltage to be applied over the series connection. This voltage
must be modified to the conditions, in particular the temperature of the light-emitting
components, and other properties thereof.
[0006] The present invention has for its object to obviate or at least to alleviate the
above stated problems of the known art. Provided for this purpose are a method and
a control which are distinguished from the known controls by the combinations of properties
and measures defined in the independent claims.
[0007] The switch means are thus controlled on the basis of a power which is momentary and
subject to conditions, without having to apply complex amplifications in combination
with the power supply. This prevents the voltage having to be controlled separately,
in particular the forward voltage, if switching takes place on the basis of current.
This provides a high degree of freedom of design, and a voltage can here be applied
over the (series of) light-emitting components which can be markedly higher than the
usual forward voltage, without having to take into account variations in voltage induced
by temperature difference. The choice of the supply voltage over the (series of) components
can thus be high and constant, without difficult and complex amplifiers being required
to adjust the voltages to be applied over the individual light-emitting components.
The invention is thus based on the insight that the switching behaviour of the switch
means entails the possibility of making the supply voltage so high that no adjustment
is necessary with any fluctuations, dependent on temperature or other influences,
in the minimum or maximum operating modes of the component.
[0008] By moreover switching on the basis of the power and not only on the basis of the
current through the light-emitting components, predetermined light settings can be
generated and held stable in simple manner.
[0009] A usual example of switching of the switch can for instance be based on pulse-width
modulation as control signal for the switch.
[0010] It is noted that for control purposes in such a case use is not only made of the
voltage over the LED but also of the current through the LED. The voltage over the
LED displays variations in temperature which can have been or are caused by changes
in RMS power consumption of the LED or by a change in the ambient temperature or other
influences.
[0011] It is assumed here by way of example that the LED is supplied with its maximum allowed
current, which is assumed in this example to equal 1A, and with a maximum allowed
voltage Vf over the LED of for instance 3V. This means a power consumption of 3W.
Because the LED becomes warm(er), its Vf rises. Since the current is held constant
in most of the drivers, the power consumption will rise if Vf increases to 3.5V under
the influence of a temperature increase. This results in a power consumption of 3.5W.
The same applies vice versa. If the Vf is held constant the current will increase,
and thereby also the power consumption.
[0012] The LED thus drifts gradually to a point where the power consumption of the LED is
equal to the cooling capacity which corresponds to a temperature difference between
the LED and its surroundings. This is possible because the Vf rises more slowly than
the increase in the temperature difference.
[0013] It is the case here that:

(LED/surroundings)
[0014] in which m is the mass of the LED and MTC is the mass temperature coefficient, and
ΔT is the temperature difference between the LED and its surroundings. It is the case
herein that:

[0015] By now switching the LED in such a manner according to the invention, for instance
with a pulse-width modulated control signal depending on Vf*Iled (= Prms), the LED
can be held at a constant temperature.
[0016] The LED is initially switched on with a starting value. The values Vf = 3V and Iled
= 1A are kept to here. At these values it is the case the power is equal to Prms =
3W. The LED heats up during operation and Vf rises to 3.5V. Irms must now maintain
a value of Irms = 1A by means of pulse-width modulation of the switch means (for instance
FET 17 in the exemplary embodiment to be described hereinbelow). At Vf = 3.5V this
results in a duty cycle of 3V/3.5V = 0.857%. Irms thus then becomes 0.857A, resulting
in a Prms of 3.5V * 0.857A = 3.0 W. Use is made here of a supply voltage which is
the same as the Vf of the LED. In reality this is not the case and Vf will always
follow the Irms. Irms changes due to temperature or supply voltage. Since Vf does
not progress proportionally with the temperature, a voltage control for a LED is unusual.
[0017] It is hereby possible in the present invention to supply the LED with a voltage of
about 3 times the maximum permissible Vf. This is the case because the dynamics of
the control become so great due to the control on the basis of power rather than only
on the basis of current or voltage.
[0018] If the supply voltage changes, in particular rises, the current through the LED will
increase.
[0019] Known from
US 2004 / 066.143 is a circuit in which the Vrms over the LEDs is held constant. It is thus not the
Prms which is kept constant (paragraph 0059: However, since the duty ratio of the
supplied current is reduced as described above, the power consumed (Prms) by the light
source unit 30 can be kept approximately constant), but the Vrms. By controlling only
on the basis of voltages between 13 and 18V - as disclosed in
US-2004 / 066.143 - control is thus only possible in a small portion relative to the control range
provided by the invention. Control thus does not take place here on the basis of power
but of voltage. The power is controlled on the basis of the changing voltage, while
Irms does not remain the same due to the properties of a LED. It is thus found, for
instance in the case of the temperature differences which can occur during use in
for instance a car, that according to
US 2004 / 066.143 control is carried out only very close to the Vf of the LEDs, and this value is certainly
not exceeded. Irms will thus drift when a factor of 2 or 3 above the 13V is supplied.
[0020] The basis or input for this control is thus voltage and not power. Even if the control
behaviour of the control described in
US 2004/066.143 is adapted to the properties of the LED, the control has a completely different configuration
and operation.
[0021] All other LED drivers operate with a coil and control the voltage over the LEDs subject
to the current through a measuring resistance. In
US-2006/261752 a resistor Rs is arranged and in
US-2003/076051 an R3 is applied, while a current-dependent control (current value control terminal)
is clearly also provided according to Fig. 2 in
US-2006/0082538, with a resistor R1 in Fig. 3 thereof. In
WO-2005/009086 nothing is controlled at all, and the circuit moreover comprises a coil for increasing
the voltage (boost converter).
[0022] There are also many other preferred embodiments within the scope of the present invention
as defined in the main claim, which preferred embodiments are stated in the dependent
claims.
[0023] A control according to the invention can thus have the feature that the control comprises
a power supply to be connected to the light-emitting component and having a higher
voltage value than a nominal voltage required for activating the light-emitting component.
In this respect nominal voltage is understood to mean the forward voltage necessary
to activate a light-emitting component. By selecting a supply voltage which is much
higher than this nominal or forward voltage, or addition sum thereof in the case of
a series of components, and switching the switch on the basis of the power consumed,
an accurate control of the voltage over the individual light-emitting components,
or in the combined case the series thereof, can be dispensed with. A much simpler
power supply can thus be provided with a negligible increase in the complexity of
the control. The power supply can otherwise form part of the control.
[0024] In another preferred embodiment the power source is connected during use to at least
two light-emitting components and has a higher voltage value which is as many times
the nominal voltage of each of the light-emitting components as the number thereof.
This is specific to the situation in which a series of light-emitting components is
applied, each with its own temperature dependence which, as a result of the chosen
control according to the present invention, does not result in a need for accurate
setting and adjustment during the use of the forward or nominal voltage, but in which
a considerably higher supply voltage suffices.
[0025] In yet another preferred embodiment of the invention at least one of the control
circuit, the measuring circuits, the multiplier and the conversion circuit is connected
or can be connected to a power source for the purpose of providing an active power
to the light-emitting components and to the control itself. The power supply for the
light-emitting components thus also forms a power source for the control itself, whereby
the configuration of the control according to the present invention can remain simple
and wherein a separate power supply solely for the control can be dispensed with.
[0026] In yet another preferred embodiment use can be made of a conversion circuit with
a separate input for entry of a synchronization signal. Changes through time in the
light from the single or series of at least one light-emitting component can thus
be brought about on the basis of the synchronization signal. To the extent that the
synchronization signal can be taken into account in the control signal on the basis
of the requirement as measured by the measuring circuit and calculated in the conversion
circuit, lighting patterns which are very varied over time are possible with a synchronization
signal to be separately provided and for which a specific input is thus provided in
this embodiment.
[0027] In yet another preferred embodiment it is possible for the control to be manufactured
in a chip without external components such as a coil. A coil is normally used in the
prior art controls, which is and has been found to be unnecessary according to the
present invention.
[0028] In yet another preferred embodiment it is possible for the control according to the
invention to comprise a circuit for pulse-width modulation (PWM) in the conversion
circuit. The use of a PWM circuit is per se known, although not in combination with
the control of a pulse-width modulation circuit on the basis of measured powers and
power indications, as is proposed according to the present invention.
[0029] In yet another preferred embodiment according to the present invention, control signals
to be generated by the conversion circuit are pulsed with an arbitrary pulse shape.
Use can be made for this purpose of diverse variants of usual PWM circuits, which
are deemed to lie within the scope of the normal technical knowledge of the skilled
person in the field, and of which no further description is therefore deemed necessary
here and hereinbelow for the purpose of a full disclosure.
[0030] Various rise characteristics can be applied and the downward flank of the pulse shapes
can also be adjusted as desired or required using per se known and usual PWM circuits,
which can each have their own advantages or properties in combination with the present
invention.
[0031] In another, final preferred embodiment according to the present invention the control
has the feature that determining means are provided in order to determine the ratio
between the active voltage over the at least one light-emitting diode and the voltage
over a shunt resistance, and wherein this ratio can be entered into the conversion
circuit. In this way an optimization of the operation of the control can be brought
about in order to realize the best possible control of the light-emitting component
or a series with diverse light-emitting components.
[0032] It is noted that, particularly due to the use of a supply voltage over the light-emitting
component or components which is higher than the forward or nominal voltage necessary
to activate the light-emitting component or components, light-emitting components
can be controlled at greater distances with lower losses, particularly when the control
is situated at the location of the light-emitting component or components and the
power source for applying an operating voltage over the component or components is
located at a distance. At a higher supply voltage relatively lower losses in any case
occur along the length of the conductors to the light-emitting component or components.
[0033] The invention will be further elucidated hereinbelow on the basis of a single example
of a possible embodiment as shown in the accompanying figures, in which similar or
the same components and elements are designated with the same reference numerals,
and in which:
Fig. 1 shows a schematic view of a part of a possible embodiment of a control according
to the present invention; and
Fig. 2 shows a schematic view of an additional part of a control in a possible embodiment
according to the present invention.
[0034] Fig. 1 shows a part 1 of control in a possible embodiment of the present invention.
Part 1 of the control in fig. 1 comprises two inputs 2, 3 for respectively the LED
voltage and the LED current. Inputs 2, 3 are connected to respective amplifiers 5,
6, the outputs of which lead to a multiplier 4. The output of multiplier 4 leads to
an adder circuit 8, where the output signal from multiplier 4 can be combined with
a feedback signal relating to shifting of the frequency setting for the switch which
acts on the light-emitting components, as will be further described hereinbelow with
reference to fig. 2.
[0035] The output of the adder circuit is connected to one of the inputs of a differential
circuit 10, wherein the other input of differential circuit 10 is connected to the
output of differential circuit 10 in order to form a feedback loop. The output of
differential circuit 10 forms part of a conversion circuit, together with the components
shown in fig. 2, as part of the control according to the present invention. A signal
is generated at the output of differential circuit 10, which signal can be carried
to a PWM control 11 via a processing circuit 12, the output of which leads to an oscillator
13 in order to make the signal obtained from differential circuit 10 suitable for
controlling oscillator 13 therewith on the basis of an operation performed thereon
by processing circuit 12. It is otherwise possible, though not required, for oscillator
13 to comprise a further input 14 for a synchronization signal. Such a synchronization
signal can be used to switch LEDs or other light-emitting components on or off in
a desired manner in a desired rhythm or otherwise. Fig. 2 shows a series connection
of such light-emitting components 15, only two of which are explicitly shown in fig.
2.
[0036] Arranged in line with the series of LEDs 15 is a switch 16 which comprises a transistor
17, wherein the output signal of the PWM control acts on switch 16 in order to open
or keep closed a current path as required.
[0037] A shunt resistance 18 is further arranged over the source and the drain of transistor
17. This shunt resistance 18 can be used to provide the various measurements which
can be presented at input 2 or, additionally or alternatively, can otherwise also
be inputted into part 1 of the control in fig. 1 at input 3. The shunt resistance
can serve to measure the current and, in a possibly modified configuration, use can
also be made hereof to measure the voltage. Connection 19 can be connected to a power
source with a higher voltage value than the addition sum of the maximum voltage value
for each of the LEDs 15.
[0038] It will be apparent that many alternative and additional embodiments will occur to
the skilled person after examination of the foregoing. An arbitrary embodiment can
thus be realized with a possible transistor other than the transistor shown in fig.
2. A shunt resistance is further arranged, although other constructions can also be
used to measure various quantities. It is in any case important to note that a coil
is no longer required in the control. The voltage on connection 19 can be made arbitrarily
high, but not arbitrarily low. It is for instance undesirable to make the supply voltage
at connection 19 lower than the sum of the forward or nominal voltages over each of
the LEDs. Amplifiers 5 and 6 can provide a weighed product at the output of multiplication
circuit 4. It is for instance possible to emphasize one of the current or the voltage
more than the other. If desired, a current signal can thus be multiplied by a value
other than the voltage signal supplied at input 3. Use can be made for this purpose
of amplifiers 5 and 6. With a sufficiently stable operation of the control according
to the present invention a feedback signal over line 7 can be omitted. Depending on
the requirement, it is possible to dispense with an input 14 for entering any synchronization
signal. It is however possible to realize desired patterns of switching LEDs on and
off using such a synchronization signal. It is also possible here to switch on the
basis of only measured currents and/or only measured voltages.
1. Method for controlling at least one light-emitting component (15), such as a light-emitting
diode (LED), having a maximum operating voltage (Vf(max)) and current (If (max)) at
which the component can be safely activated, which method comprises of:
- applying a supply voltage over the component (15) which is at least equal to a minimum
voltage for activating the component (15);
- selectively switching the component (15) on and off;
- at least one of
* measuring the current through the component (15) and generating a current signal,
and
* measuring the voltage over the component (15) and generating a voltage signal; and
- generating a control signal on the basis of at least one of the current signal and
the voltage signal for the purpose of switching the component (15) on and off in accordance
therewith, characterized by:
- applying over the component (15) a voltage higher than the maximum operating voltage
Vf(max);
- generating a power indication using both the current signal and the voltage signal;
and
- providing the control signal in a form of the power indication, and
- switching the component on the basis of the power indication.
2. Method as claimed in claim 1, wherein switching on and off of the component (15) comprises
of: generating the control signal such that the sum of power supplied intermittently
to the component (15) in switched-on mode is at most equal to the product of Vf (max)
* If (max) .
3. Method as claimed in claim 1 or 2, wherein switching on and off of the component (15)
comprises of: generating the control signal such that a temperature of the component
(15) resulting from generation of heat is at most equal to a threshold value above
which there is danger of damage to the component (15) .
4. Control for at least one light-emitting component (15), such as a light-emitting diode
(LED), having a maximum operating voltage (Vf(max)) and current (If(max)) at which
the component (15) can be safely activated, comprising:
- a power source for the component (15);
- switching means (16) for activating the light-emitting component (15) at a frequency;
- at least one of
* a measuring circuit for measuring at least the current through the component (15)
and providing a current signal to the control circuit, and
* a measuring circuit for measuring at least the voltage over the component (15) for
the purpose of providing a voltage signal to the control circuit,
- a conversion circuit (11, 12, 13) connected to the switching means (16) for providing
to the switching means a switching frequency control signal corresponding to at least
one of the current signal and the voltage signal,
characterized in that
the power source supplies a voltage higher than the maximum operating voltage Vf(max)
over the component (15), wherein the conversion circuit comprises a generator (4)
for generating a power indication using both the current signal and the voltage signal
in order to provide the power indication to the conversion circuit (11, 12, 13) for
providing the control signal to the switching means on the basis of the power indication.
5. Control as claimed in claim 4, wherein a power supplied to the component (15) is at
most equal to the product of Vf (max) * If (max) .
6. Control as claimed in claim 4 or 5, comprising a power source to be connected to the
light-emitting component (15) and having a voltage value higher than a nominal voltage
required for activating the light-emitting component (15).
7. Control as claimed in claim 6, wherein the power source is connected during use to
at least two light-emitting components (15) and has a voltage value which is as many
times the nominal voltage of each of the light-emitting components (15) as the number
thereof.
8. Control as claimed in at least one of the foregoing claims 4-7, wherein at least one
of the control circuit, the measuring circuits, the multiplier (4) and the conversion
circuit (11, 12, 13) is connected or can be connected to a power source for the purpose
of providing an active power to the light-emitting components (15) and to the control.
9. Control as claimed in at least one of the foregoing claims 4-8, wherein the conversion
circuit comprises an input (14) for entry of a synchronization signal.
10. Control as claimed in at least one of the foregoing claims 4-9, which is manufactured
in a chip without external components such as a coil.
11. Control as claimed in at least one of the foregoing claims 4-10, wherein the conversion
circuit comprises a circuit (11) for pulse-width modulation (PWM).
12. Control as claimed in at least one of the foregoing claims 4-11, wherein control signals
to be generated by the conversion circuit (11, 12, 13) are pulsed with an arbitrary
pulse shape.
13. Control as claimed in at least one of the foregoing claims 4-12, wherein determining
means are provided in order to determine the ratio between the active voltage over
the at least one light-emitting diode and the voltage over a shunt resistance (18),
and to enter this ratio into the conversion circuit (11, 12, 13).
1. Verfahren zum Steuern wenigstens einer lichtemittierenden Komponente (15), wie etwa
einer lichtemittierenden Diode (LED), die eine maximale Betriebsspannung (Vf(max))
und einen maximalen Betriebsstrom (If(max)) hat, bei denen die Komponente sicher in
Betrieb genommen werden kann, wobei das Verfahren Folgendes umfasst:
- Anwenden einer Versorgungsspannung auf die Komponente (15), die wenigstens gleich
einer minimalen Spannung ist, um die Komponente (15) in Betrieb zu nehmen;
- selektives Ein- und Ausschalten der Komponente (15);
- wenigstens einen der folgenden Vorgänge:
* Messen des Stroms durch die Komponente (15) und Erzeugen eines Stromsignals, und
* Messen des Spannungsabfalls über die Komponente (15) und Erzeugen eines Spannungssignals;
und
- Erzeugen eines Steuersignals auf Basis des Stromsignals und/oder des Spannungssignals,
um die Komponente (15) in Übereinstimmung mit diesen Ein- und Auszuschalten,
und durch Folgendes gekennzeichnet ist:
- Anwenden einer Spannung auf die Komponente (15), die höher ist als die maximale
Betriebsspannung Vf(max);
- Erzeugen einer Leistungsangabe unter Verwendung sowohl des Stromsignals als auch
des Spannungssignals; und
- Bereitstellen des Steuersignals in einer Form der Leistungsangabe, und
- Schalten der Komponente basierend auf der Leistungsangabe.
2. Verfahren nach Anspruch 1, wobei das Ein- und Ausschalten der Komponente (15) Folgendes
umfasst: Erzeugen des Steuersignals derart, dass die Summe der Leistung, die im eingeschalteten
Modus intermittierend der Komponente (15) zugeführt wird, höchstens gleich dem Produkt
Vf(max) * If(max) ist.
3. Verfahren nach Anspruch 1 oder 2, wobei das Ein- und Ausschalten der Komponente (15)
Folgendes umfasst: Erzeugen des Steuersignals derart, dass eine Temperatur der Komponente
(15), die aus der Wärmeerzeugung resultiert, höchstens gleich einem Schwellwert ist,
oberhalb dessen die Gefahr der Beschädigung der Komponente (15) besteht.
4. Steuerung für wenigstens eine lichtemittierende Komponente (15), wie etwa eine lichtemittierenden
Diode (LED), die eine maximale Betriebsspannung (Vf(max)) und einen maximalen Betriebsstrom
(If(max)) hat, bei denen die Komponente (15) sicher in Betrieb genommen werden kann,
Folgendes umfassend:
- eine Elektrizitätsquelle für die Komponente (15);
- ein Schaltmittel (16), um die lichtemittierende Komponente (15) mit einer Frequenz
in Betrieb zu nehmen;
- wenigstens eines der folgenden Mittel:
* eine Messschaltung zum Messen wenigstens des Stroms durch die Komponente (15) und
zum Bereitstellen eines Stromsignals an die Steuerschaltung, und
* eine Messschaltung zum Messen wenigstens des Spannungsabfalls über die Komponente
(15), um für die Steuerschaltung ein Spannungssignal bereitzustellen,
- eine Wandlerschaltung (11, 12, 13), die mit dem Schaltmittel (16) verbunden ist,
um für das Schaltmittel ein Schaltfrequenz-Steuersignal bereitzustellen, das dem Stromsignal
und/oder dem Spannungssignal entspricht,
dadurch gekennzeichnet, dass
die Elektrizitätsquelle eine Spannung liefert, die höher ist als die maximale Betriebsspannung
Vf(max) der Komponente (15), wobei die Wandlerschaltung einen Geber (4) zum Erzeugen
einer Leistungsangabe umfasst, und dies unter Verwendung sowohl des Stromsignals als
auch des Spannungssignals, um die Leistungsangabe für die Wandlerschaltung (11, 12,
13) bereitzustellen, um auf Basis der Leistungsangabe das Steuersignal für das Schaltmittel
bereitzustellen.
5. Steuerung nach Anspruch 4, wobei eine der Komponente (15) zugeführte Leistung höchstens
gleich dem Produkt Vf(max) * If(max) ist.
6. Steuerung nach Anspruch 4 oder 5, die eine Elektrizitätsquelle umfasst, die mit der
lichtemittierenden Komponente (15) verbunden wird und die einen Spannungswert hat,
der höher ist als eine Nennspannung, die erforderlich ist, um die lichtemittierende
Komponente (15) in Betrieb zu nehmen.
7. Steuerung nach Anspruch 6, wobei die Elektrizitätsquelle während des Einsatzes mit
wenigstens zwei lichtemittierenden Komponenten (15) verbunden ist und einen Spannungswert
hat, der ein solches Vielfaches der Nennspannung jeder der lichtemittierenden Komponenten
(15) beträgt, wie deren Anzahl ist.
8. Steuerung nach einem der vorhergehenden Ansprüche 4 bis 7, wobei von der Steuerschaltung,
den Messschaltungen, dem Multiplizierer (4) und der Wandlerschaltung (11, 12, 13)
wenigstens eine mit einer Elektrizitätsquelle verbunden ist oder verbunden werden
kann, um für die lichtemittierenden Komponenten (15) und die Steuerung eine wirksame
Leistung bereitzustellen.
9. Steuerung nach einem der vorhergehenden Ansprüche 4 bis 8, wobei die Wandlerschaltung
einen Eingang (14) zur Eingabe eines Synchronisationssignals umfasst.
10. Steuerung nach einem der vorhergehenden Ansprüche 4 bis 9, die auf einem Chip und
ohne externe Komponenten, wie eine Spule, hergestellt ist.
11. Steuerung nach einem der vorhergehenden Ansprüche 4 bis 10, wobei die Wandlerschaltung
eine Schaltung (11) zur Pulsweitenmodulation (PWM) umfasst.
12. Steuerung nach einem der vorhergehenden Ansprüche 4 bis 11, wobei von der Wandlerschaltung
(11, 12, 13) zu erzeugende Steuersignale mit einer beliebigen Impulsform gepulst sind.
13. Steuerung nach einem der vorhergehenden Ansprüche 4 bis 12, wobei ein Bestimmungsmittel
bereitgestellt wird, um das Verhältnis zwischen dem wirksamen Spannungsabfall über
die wenigstens eine lichtemittierende Diode und dem Spannungsabfall über einen Nebenschlusswiderstand
(18) zu bestimmen und um dieses Verhältnis in die Wandlerschaltung (11, 12, 13) einzugeben.
1. Procédé destiné à commander au moins un composant électroluminescent (15), tel qu'une
diode électroluminescente (LED), qui présente une tension (Vf(max)) et un courant
(If(max)) de fonctionnement maximum sous lesquels le composant peut être activé sans
risque, le procédé comprenant :
- l'application sur le composant (15) d'une tension d'alimentation qui est au moins
égale à une tension minimum pour activer le composant (15) ;
- la commutation sélective du composant (15) en service et hors service ;
- l'une au moins de :
- la mesure du courant circulant dans le composant (15) et la génération d'un signal
de courant ; et
- la mesure de la tension sur le composant (15) et la génération d'un signal de tension
; et
- la génération d'un signal de commande sur la base de l'un au moins du signal de
courant et du signal de tension afin de commuter le composant (15) en service et hors
service selon celui-ci, caractérisé par :
- l'application sur le composant (15) d'une tension supérieure à la tension de fonctionnement
maximum Vf(max) ;
- la génération d'une indication de puissance en utilisant à la fois le signal de
courant et le signal de tension ; et
- la fourniture du signal de commande sous la forme d'une indication de puissance
; et
- la commutation du composant sur la base de l'indication de puissance.
2. Procédé selon la revendication 1, dans lequel la commutation en service et hors service
du composant (15) comprend :
la génération du signal de commande de sorte que la somme de la puissance fournie
de manière intermittente au composant (15) dans le mode en service soit au plus égale
au produit Vf(max) * If(max).
3. Procédé selon la revendication 1 ou 2, dans lequel la commutation en service et hors
service du composant (15) comprend :
la génération du signal de commande de sorte qu'une température du composant (15)
résultant d'un dégagement de chaleur soit au plus égale à une valeur de seuil au-dessus
de laquelle il y a un risque d'endommager le composant (15).
4. Commande pour un composant électroluminescent (15) au moins, tel qu'une diode électroluminescente
(LED), qui présente une tension (Vf(max)) et un courant (If(max)) de fonctionnement
maximum sous lesquels le composant (15) peut être activé sans risque, comprenant :
- une source d'alimentation pour le composant (15) ;
- des moyens de commutation (16) destinés à activer le composant électroluminescent
(15) à une fréquence ;
- l'un au moins :
- d'un circuit de mesure destiné à mesurer au moins le courant circulant dans le composant
(15) et à fournir un signal de courant au circuit de commande ; et
- d'un circuit de mesure destiné à mesurer au moins la tension sur le composant (15)
afin de fournir un signal de tension au circuit de commande ;
- un circuit de conversion (11, 12, 13) connecté aux moyens de commutation (16) destiné
à fournir aux moyens de commutation un signal de commande de fréquence de commutation
correspondant à l'un au moins du signal de courant et du signal de tension ;
caractérisé en ce que :
la source d'alimentation fournit une tension supérieure à la tension de fonctionnement
maximum Vf(max) sur le composant (15), dans laquelle le circuit de conversion comprend
un générateur (4) destiné à générer une indication de puissance en utilisant à la
fois le signal de courant et le signal de tension afin de fournir l'indication de
puissance au circuit de conversion (11, 12, 13) pour fournir le signal de commande
aux moyens de commutation sur la base de l'indication de puissance.
5. Commande selon la revendication 4, dans laquelle une puissance fournie au composant
(15) est au plus égale au produit Vf(max) * If(max).
6. Commande selon la revendication 4 ou 5, comprenant une source d'alimentation à connecter
au composant électroluminescent (15) et présentant une valeur de tension supérieure
à la tension nominale requise pour activer le composant électroluminescent (15).
7. Commande selon la revendication 6, dans laquelle la source d'alimentation est connectée
au cours de l'utilisation à deux composants électroluminescents (15) au moins et présente
une valeur de tension qui est égale à autant de fois la tension nominale de chacun
des composants électroluminescents (15) qu'il y a de composants électroluminescents.
8. Commande selon au moins l'une des revendications précédentes 4 à 7, dans laquelle
l'un au moins du circuit de commande, des circuits de mesure, du multiplicateur (4)
et du circuit de conversion (11, 12, 13), est connecté ou peut être connecté à une
source d'alimentation afin de fournir une puissance active aux composants électroluminescents
(15) et à la commande.
9. Commande selon au moins l'une des revendications précédentes 4 à 8, dans laquelle
le circuit de conversion comprend une entrée (14) destinée à l'entrée d'un signal
de synchronisation.
10. Commande selon au moins l'une des revendications précédentes 4 à 9, fabriquée sous
la forme d'une puce sans composants extérieurs tels qu'une bobine.
11. Commande selon au moins l'une des revendications précédentes 4 à 10, dans laquelle
le circuit de conversion comprend un circuit (11) de modulation de largeur d'impulsions
(MLI).
12. Commande selon au moins l'une des revendications précédentes 4 à 11, dans laquelle
les signaux de commande devant être générés par le circuit de conversion (11, 12,
13) sont pulsés avec une forme d'impulsion arbitraire.
13. Commande selon au moins l'une des revendications précédentes 4 à 12, dans laquelle
des moyens de détermination sont prévus pour déterminer le rapport entre la tension
active sur la au moins une diode électroluminescente et la tension sur une résistance
de shunt (18), et pour entrer ce rapport dans le circuit de conversion (11, 12, 13).