[0001] The present invention relates to an LED circuit capable of producing different luminescence
and colors, and a driving method for the circuit.
[0002] In recent years, more and more attention has been paid to the concepts of environmental
conservation. As the light-emitting diode (Light Emitting Diode, LED) lighting technology
continues to progress, LED's luminous efficiency has gone beyond the conventional
lighting device, and therefore LED lighting is widely used in various applications
such as LED headlamp, LED searchlight, LED projecting lamp, LED decorative lighting,
etc.
[0003] For conventional LED lamps, to control the variation of the luminescence and color
of an LED at specific position, it usually needs additional signal transmission lines
and a control circuit, which are costly and complicated. In addition, since the conventional
LED lights are disposed in series, if anyone of the LED lights or the integrated circuit
does not work, unless the failure can be found and fixed, the entire LED lighting
device can not be functioning.
[0005] Please refer to Fig. 1, which is a schematic diagram showing an LED lighting series
module 10 according to the prior art. The traditional LED lighting series module 10
includes a power converter 101 and a plurality of LED units 102 connected in series.
The power converter 101 includes a micro controller 1010, and converts a commercial
power AC1 into a first voltage V
DC1 between terminals V+ and V- so as to support the plurality of LED units 102. The
power converter 102 also converts the commercial power AC1 into a second voltage V
DC2 so as to support the micro controller 1010, which is electrically connected to a
first LED unit 1021 via a first signal line 103. The first LED unit 1021 is electrically
connected to a second LED unit 1022 via a second signal line 104. Likewise, a required
number of LED units to be connected in series can be achieved. The micro controller
1010 provides a control signal SC1 to control the first LED unit 1021, while the first
LED unit transmits a control signal SC2 to the second LED unit 1022 in response to
the first control signal SC1. Likewise, control signals can be transmitted to each
of the LED unit in series.
[0006] The aforementioned method for driving the LED units may respectively control the
lighting status, such as illuminating, dim or flickering, of each of the LED units
SC1, SC2,...,SCn by conveying the control signals to each of LED units, respectively.
However, the method needs additional data lines provided for the control, and there
exist delays of the control signals SC2,...,SCn, which therefore derives the delay
issues in addition to the complexity thereof.
[0007] In the application documents of Taiwan Model Patent No. M343822, which provides a
two-wired AC LED light serial circuit, LED control signals are transmitted via AC
power to control the dim/light of specific LED light of the same color. However, the
control signal must be transmitted within a particular period of time which is the
zero crossing of AC voltage. That is, both the power supply signal and the control
signal coexist with the use of time division. Transmitting control signals in this
manner result in low efficiency, because the transfer control signal is subject to
the frequency of the commercial power, e.g., usually 60Hz, and the transmission time
period of the AC voltage is also restricted by the specific time period of zero-crossing
zone.
[0008] In summary, the prior art includes the following drawbacks:
- 1. The whole series of LED units cannot be used if one of the LED units in the LED
series is burnt out.
- 2. There exist delays of the control signals, and the control signals cannot be received
at the same time.
- 3. The transmission time period of the AC voltage is restricted by the specific time
period of zero-crossing zone.
- 4. The control signal according to the prior art can only control the dim/light of
the LED of the same color.
[0009] In order to overcome the drawbacks in the prior art, an LED circuit and a driving
method for the LED circuit, and more particularly an LED circuit capable of generating
different luminescence as well as color variations and a driving method for the LED
circuit is provided. The novel design in the present invention not only solves the
problems described above, but also is easy to be implemented. Thus, the present invention
has utility for the industry.
[0010] In accordance with one aspect of the present invention, an LED circuit is provided.
The LED circuit comprises a series of LED devices, a power supply circuit and a signal
control circuit. Each of the LED devices includes an LED unit and an integrated circuit
unit having a specific serial number and receiving an electrical parameter. The power
supply circuit is coupled to the series of LED devices. The signal control circuit
is coupled to the power supply circuit and the series of LED devices, and has a loaded
status. The signal control circuit changes the loaded status in response to a control
signal so as to cause the electrical parameter to have a variation, the variation
of the electrical parameter generates a signal code carrying an information, all the
integrated circuit units receive the signal code, and a specific LED unit will be
driven by a corresponding integrated circuit unit when the signal code corresponds
to the specific serial number of the corresponding integrated circuit unit.
[0011] In accordance with a further aspect of the present invention, a method for driving
an LED circuit is provided. The LED circuit comprises a plurality of integrated circuit
units, a plurality of LED units and a signal control circuit, wherein each of the
integrated circuit units has a specific serial number. The method comprising steps
of: (a) providing a control signal; (b) changing a loaded status of the signal control
circuit in response to the control signal so as to generate a signal code; (c) causing
all the integrated circuit units to receive the signal code having an information;
and (d) driving a specific LED unit based on the information of the signal code by
a corresponding integrated circuit unit when the signal code corresponds to the specific
serial number of the corresponding one in the plurality of integrated circuit units.
[0012] In accordance with a further aspect of the present invention, a method for driving
an LED circuit is provided. The LED circuit comprises a signal control circuit and
a plurality of LED devices, wherein each of the LED devices includes an LED unit and
an integrated circuit unit having a specific serial number. The method includes steps
of: (a) electrically connecting at least one load to the plurality of LED devices
in parallel; and (b) compensating each of the integrated circuits for a shift of an
electrical characteristic thereof.
[0013] In accordance with a further aspect of the present invention, an LED circuit is provided.
The LED circuit comprises a plurality of LED devices, each of which includes an LED
unit and an integrated circuit unit having a specific serial number, a processing
unit and a signal control circuit. The processing unit has an output terminal. The
signal control circuit is coupled to the output terminal and the plurality of LED
devices, and transmits an electrical parameter carrying a specific signal code to
each of the integrated circuit units. A specific integrated circuit unit drives a
corresponding LED unit when the specific integrated circuit unit identifies the specific
signal code.
[0014] In accordance with a further aspect of the present invention, an LED circuit is provided.
The LED circuit comprises a constant current source, a route-switching circuit and
an LED open-circuit detecting circuit. The constant current source drives an LED unit
in a first LED device. The route-switching circuit selectively connects the LED unit
and a second LED device. The LED open-circuit detecting circuit causes the route-switching
circuit to conduct the constant current source and the LED unit when the LED unit
is in a closed status, and causes the route-switching circuit to conduct the constant
current source and the second LED device when the LED unit is in an open status.
[0015] The above objects and advantages of the present invention will become more readily
apparent to those ordinarily skilled in the art after reviewing the following detailed
descriptions and accompanying drawings, in which:
Fig. 1 is a schematic diagram showing an LED lighting series module 10 according to
the prior art;
Fig. 2 is a schematic diagram showing an LED circuit according to a preferred embodiment
of the present invention;
Fig. 3 is a schematic diagram showing the variation of voltage in each of the integrated
circuit (IC) unit U0I, U1I,...,UNI in the LED circuit according to one embodiment
of the present invention;
Fig 4 is a schematic diagram showing the internal circuit of the IC unit according
to one embodiment of the present invention;
Fig. 5 is a schematic diagram showing the internal circuit structure of the LED driving
circuit according to one embodiment of the present invention;
Fig. 6 is a schematic diagram showing the driving method for the LED unit according
to one embodiment of the present invention;
Fig. 7 is a schematic diagram showing the driving method for the LED driving circuit
according to one embodiment of the present invention;
Fig. 8 is a schematic diagram showing the LED circuit according to another embodiment
of the present invention; and
Fig. 9 is a schematic diagram showing the compensating method used by the LED driving
circuit according to one embodiment of the present invention.
[0016] Referring to Figs. 2 and 3, which are respectively a schematic diagram of the LED
circuit 2 according to a preferred embodiment of the present invention and a schematic
diagram showing the variation of voltage in each of the integrated circuit (IC) units
U0I, U1I... and UNI in the LED circuit 2. The LED circuit 2 includes a power supply
circuit 21, a series of LED devices 22 and a signal control circuit 23. The series
of LED devices 22 includes a plurality of LED units U0L, U1L... and UNL, each of which
has an IC circuit unit U0I, U1I... and UNI. Each of the IC units U0I, U1I... and UNI
has a specific serial number 0, 1... and N, respectively. The signal control circuit
23 is coupled to the power supply circuit 21 and the series of LED devices 22, and
has a loaded status, such as fully loaded, half loaded, etc. The signal control circuit
23 changes the loaded status in response to a control signal SCON so as to cause the
electrical parameter received by the IC units U0I, U1I... and UNI to have a variation,
which generates a signal code ENC1 bearing at least an information. Each of the IC
units U0I, U1I... and UNI in the series of LED devices 22 receives the signal code
ENC1 simultaneously. When the signal code ENC1 corresponds to the specific serial
number of one of the IC units U0I, U1I... and UNI (UOI, for example), the LED unit
(U0L in this example) will be driven by the corresponding integrated circuit unit
(U0I for example) based on an instruction IA1 existing in the information of the signal
code ENC1.
[0017] In Fig. 2, the electrical parameter can be voltage, such as the total voltage, denoted
as the first voltage V1, endured by the series of LED devices 22. In Fig. 3, the distribution
voltage V1_div denotes the voltage distributed at each of the IC units U0I, U1I...
and UNI. On condition that the manufacturing process is well controlled, the impedance
of each of the IC units U0I, U1I... and UNI can be deemed equal, and therefore the
distribution voltage at each of the IC units U0I, U1I... and UNI can be virtually
the same, with merely minute deviation within an acceptable range.
[0018] Also in Fig. 2, the power supply circuit 21 comprises a first terminal T1, a second
terminal T2, an AC-DC rectification circuit 211 including a bridge-type rectification
circuit 213 and a capacitor C1, and a DC-DC transforming circuit 212. The AC voltage
AC1 from the commercial electricity device 210 is rectified by the bridge-type rectification
circuit 213 of the AC-DC rectification circuit 211 and transformed into a first voltage
V1 to support the series of LED devices 22. The DC-DC transforming circuit 212 comprises
a resistor R3, a Zener diode Z1 and a capacitor C2 disposed with the Zener diode Z1
in parallel. The resistor R3 and the Zener diode Z1 are disposed in series. The voltage
level of the first voltage VI drops across the resistor R3, and approaches that of
the second voltage V2, which is clamped by the Zener diode Z1 for stabilizing the
voltage.
[0019] The signal control circuit 23 comprises a third terminal T3, a fourth terminal T4,
a processing unit 231 and a signal transmission circuit 232, including a switch unit
Q1 and a load R1, such as a resistor. The processing unit 231 receives the second
voltage V2, and is equipped with a control output terminal TCON for providing the
control signal SCON, which controls the open or close of the switch unit Q1 via a
resistor R2. The load R1 is electrically coupled to the third terminal T3 and fourth
terminal T4. The switch unit Q1 is electrically coupled to the control output terminal
TCON, and is also connected to the load R1 in parallel. The series of LED devices
22 has a fifth terminal T5 coupled to the first terminal T1 and a sixth terminal T6
coupled to the third terminal T3.
[0020] When the switch unit Q1 is switched on, the current I1 passing the series of LED
devices 22 flows from the fifth terminal T5 to the third terminal T3, and flows to
the ground of the fourth terminal T4 via the switch unit Q1 whose impedance is virtually
zero. Thus, the voltage difference across the fifth terminal T5 to the sixth terminal
T6 equals the first voltage VI. When the switch unit Q1 is open, the current I1 passing
the series of LED devices 22 flows from the fifth terminal T5 to the third terminal
T3, and flows to the ground of the fourth terminal T4 via the load R1, which results
in a voltage drop ΔV1. Thus, the voltage difference across the fifth terminal T5 to
the sixth terminal T6 equals to the first voltage VI minus the voltage drop ΔV1. On
condition that the manufacturing process is well controlled, the impedance of each
of the IC units U0I, U1I... and UNI can be approximately identical, and consequently
the reduction in the distribution voltage V1_div across each of the IC units U0I,
U1I... and UNI can be virtually the same, which may equal the voltage drop ΔV1 divided
by the total number of LED devices in the series of LED devices 22. The differences
of voltage reduction across each of the IC units U0I, U1I... and UNI individually
may be negligible.
[0021] Each of the LED units U0L, U1L... and UNL includes a red light LED (R-LED), a green
light LED (G-LED) and a blue light LED (B-LED). Referring to Fig. 2, the LED unit
U0L and the IC unit UOI are packaged together to form an LED device U0. Likewise,
each of the LED units U0L, U1L... and UNL and the corresponding IC units U0I, U1I...
and UNI can be packaged together to form the LED devices U0, U1... and UN, respectively.
Each of the IC units U0I, U1I... and UNI includes a power receiving terminal VIN,
an IC ground terminal VSS, a first driving output terminal RL coupled to the R-LED,
a second driving output terminal GL coupled to the G-LED and a third driving output
terminal BL coupled to the B-LED. The negative electrodes of the R-LED, the G-LED
and the B-LED are coupled to the IC ground terminal VSS.
[0022] Each of the IC units U0I, U1I... and UNI has a specific circuit structure, which
can simultaneously detect the signal code ENC1 including an IC-circuit-unit-specific
serial number and an instruction regarding how the specific IC unit should drive the
corresponding LED unit. In Fig. 3, the two signal codes ENC1, ENC2 are separated by
a time period Δt1 to allow the IC unit to identify signal codes in different time
periods. The frequencies of signal codes ENC1, ENC2 are higher than 60 Hz, and can
be higher than 100 Hz or even higher than one million (1 M) Hz. In other words, the
periods of signal codes ENC1, ENC2 shall be less than 1/60 second, and preferably
be less than a few microseconds. Since the frequency of the commercial A/C current
is 60 Hz, having a period of 1/60 second, the LED circuit 2 and the method for driving
the LED circuit 2 for transmitting signal codes ENC1, ENC2 should be fairly sufficient.
[0023] Refer to Fig. 4, which is a schematic diagram showing the internal circuit of the
IC unit U0I. Notably, the internal circuitry of the other IC units U1I... UNI are
the same. The IC unit UOI includes an oscillator circuit 220 providing a reference
frequency fr1, three LED driving circuits 221 for driving the R-LED, the G-LED and
the B-LED, respectively, a power voltage detecting circuit 222 detecting the variation
of an electrical parameter, a frequency range detecting circuit 223, a serial number
comparing circuit 224 and a signal storage circuit 226. The variation of the electrical
parameter, for example, a variation of the first voltage V1 within a range of the
voltage drop ΔV1, may include a change in a power voltage having a working frequency
f1. According to Fig. 3, the oscillation circuit 210 provides a reference frequency
fr1. The frequency range detecting circuit 223 receives the reference frequency frl
and determines whether the working frequency f1 is within an acceptable range. For
example, the difference between the working frequency f1 and the reference frequency
frl is within a specific range.
[0024] Each of the IC units U0I, U1I... and UNI has a specific serial number 0, 1... and
N respectively. The serial number may be formed by utilizing a fuse circuit being
able to identify zero or one based on open circuit status or closed circuit status.
Another method of formulating the serial number in an IC unit is to embed the code
of the serial number at the stage of making photomasks. Another method is to dispose
an embedded serial unit 225, such as an EEPROM and program the serial number thereinto
for identification. The serial number comparing circuit 224 determines whether the
specific serial number of the IC unit, say the serial number 0 of the IC unit U0I,
corresponds to the received signal code ENC1 when the working frequency f1 is within
an acceptable range. Note that the signal code ENC1 includes the identification code
ID1 and information such as the instruction IA1 separated by a time period Δti1. The
identification code ID1 is to be compared with the serial number, while the instruction
IA1 indicates data regarding dim/light of the R-LED, the G-LED and the B-LED. According
to one embodiment of the invention, the IC unit UOI starts to implement the instruction
IA1 after the identification code ID1 and the serial number 0 have been determined
to be the same. The other IC units U1I...and UNI in the series of LED devices 22 also
receive the signal code ENC1 simultaneously. However, the instruction IA1 is not implemented
when the identification code ID1 and the serial number 0 are not the same. In some
embodiments of the present invention, different IC units have different serial numbers.
In other embodiments, some different IC units may have the same serial number, which
renders those IC units be a group. Such a method may work without repetitive transmission
of the signals and increase the transmission efficiency of delivering signal coding.
The signal storage circuit 226 receives the signal code ENC1 and stores the information
when the specific serial number 0 and the identification code ID1 are the same.
[0025] The instruction IA1 is transmitted to the three LED driving circuits 221. For example,
the instruction IA1 is a code "100", where the first number corresponds to the G-LED,
the second number corresponds to the R-LED, and the third number corresponds to the
B-LED ". The LED driving circuit 221 for the G-LED receives the instruction "1" and
illuminates the G-LED. The LED driving circuits 221 for the R-LED and the B-LED receive
the instruction "0", and do not drive the R-LED and the B-LED, so the R-LED and the
B-LED are at a dim status. Each of the LED driving circuits 221 receives the instruction
IA1 and controls the dim/light status of the corresponding G-LED, R-LED or B-LED based
on the instruction IA1, so as to implement light mixing to generate a variety of light
colors.
[0026] Refer to Fig. 5, which is a schematic diagram showing the internal circuit structure
of the LED driving circuit 221. According to one embodiment of the present invention,
the LED driving circuit 221 may include a constant current source 227, a route-switching
circuit 228 coupled to the constant current source 227, and an LED open-circuit detecting
circuit 229 detecting an open-circuit status of the R-LED, the G-LED and the B-LED
and providing a feedback signal FBI to the route-switching circuit 228. The LED driving
circuit 221 may further include a switch unit Q2 and a resistor R4. The constant current
source 227 provides a constant current I2 to the route-switching circuit 228, which
switches the route of the constant current I2 based on the instruction IA1. According
to one embodiment, the route-switching circuit 228 receives the information comprising
the instruction IA1 and the feedback signal FB1 to determine the direction of the
constant current I2. Referring to Figs. 3 and 5, the instruction IA1 relates to the
On/Off status control of the R-LED, the G-LED and the B-LED. For example, in case
the LED open-circuit detecting circuit 229 detects a malfunction of the R-LED, the
G-LED or the B-LED, the feedback signal FBI conveying this information is generated
and transmitted to the route-switching circuit 228. The route-switching circuit 228
determines that the switch unit Q2 should be in a conducting (closed circuit) status
so as to allow the current I2 to flow through the resistor R4 and all the way to the
IC terminal VSS, based on the instruction IA1 from the ONOFF terminal and the feedback
signal FBI.
[0027] The aforementioned method of current path switching overcomes the limitations of
traditional methods, stabilizes the currents, and by virtue of its parallel LED connectivity,
eliminates a significant limitation of systems connected in series taught by the prior
art: namely, that the failure of a single component in series will cause the entire
series of components to fail. Referring to Fig. 2, the negative electrodes of the
R-LED, the G-LED and the B-LED are connected to the IC terminal VSS. If the R-LED,
the G-LED and the B-LED are illuminated, the path of the current I2 passes along the
terminal OUT of the IC unit UNI, one of the R-LED, the G-LED and the B-LED, the terminal
VSS of IC unit U1I and the terminal VIN of the next IC unit U0I. Different from the
prior art LED circuits, the concept of the present invention allows the current I2
to be diverted into the terminal VIN of the next IC unit when the R-LED, the G-LED
or the B-LED fails, so the other LED units may be illuminated, which benefits to the
stabilization of the current I2 flowing through the IC units U0I, U1I,... UNI. Besides,
the series of LED devices 22 can still function although one or more of the LED units
fail. It will be much easier for one to identify the failed unit in this case. For
example, one may try to illuminate all the LED units to verify if there exists any
failed LED component among the LED units, so the failed component can be replaced.
[0028] Please refer to Fig. 6, which is a schematic diagram showing the driving method for
the LED circuit 2 according to one embodiment of the present invention. Please also
refer to Fig. 2, wherein the LED circuit 2 includes a series of LED devices 22 and
a signal control circuit 23. The series of LED devices 22 includes a plurality of
LED units U0L, U1L... and UNL, each of which has an IC unit U0I, U1I... and UNI. Each
of the IC units U0I, U1I... and UNI has a specific serial number 0, 1... and N, respectively.
The method of driving the LED circuit 2 including the following steps: step S101,
providing a control signal; step S102, changing a loaded status of the signal control
circuit in response to the control signal so as to generate a signal code, wherein
the signal code is borne by an electrical parameter received by the plurality of LED
devices U0, U1... and UN, and the signal code is due to a variation of the electrical
parameter; step S103, causing all the integrated circuit units to receive the signal
code having an information simultaneously; and step S104, driving a specific LED unit
based on the information of the signal code by a corresponding integrated circuit
unit when the signal code corresponds to the specific serial number of the corresponding
one in the plurality of integrated circuit units. Notably, the information of the
signal code may include an instruction for driving the LED units.
[0029] Again referring to Figs. 2 and 6, the electrical parameter received by each of the
IC units is voltage. In terms of AC/DC power interconversion and changing of load
control, the method for driving the LED circuit 2 may further include the following
steps: providing a first voltage VI to support the plurality of IC units U0I, U1I...
and UNI, and transforming the first voltage VI into the second voltage V2 so as to
support to the processing unit 231; and controlling the on/off status of the switch
unit Q1 of the signal coding circuit to generate a change of the loading status. In
terms of detecting signal coding, the method for driving the LED circuit 2 may further
include the following steps: detecting a change of the electrical parameter such as
a change of the power voltage, wherein the variation of the electrical parameter includes
a variation of a power voltage having a working frequency; receiving a reference frequency
and determining whether the working frequency is within an acceptable range; determining
whether the specific serial number of each of the integrated circuit units corresponds
to the signal code when the working frequency is within the acceptable range, wherein
the signal code includes an identification code and an information including an instruction;
and receiving the signal code, and storing the information when the specific serial
number and the identification code are the same.
[0030] Please refer to Fig. 7, which is a schematic diagram showing the driving method for
the LED driving circuit 221. The method includes the following steps: step S401, driving
an LED unit in a first LED device; step S402, selectively connecting the LED unit
and a second LED device; and step S403, causing the route-switching circuit 228 to
conduct the constant current source 227 and the LED unit when the LED unit is in a
closed status, and causing the route-switching circuit 228 to conduct the constant
current source 227 and the second LED device when the LED unit is in an open status.
[0031] In general, there are two factors that determine the current I1 flow into each of
the IC units: the circuit character and the element character. Since the plurality
of IC units U0I, U1I... and UNI are coupled in series, the current I2 flowing through
each of the IC units should be the same on condition that the manufacturing process
for making the IC units is welled controlled. However, in the case of process drifting,
the produced elements may vary according current consumption and self-impedance of
the IC unit, resulting in inconsistency of element character and causing code errors
received by different elements. For example, if, in Fig. 2, there exists a large difference
in impedance between the two IC units U1I, UOI connected in series, the difference
in the reduction of the divisional voltage V1_div by each of the two IC units U1I
, UOI should be large, which may cause coding errors of the received signals. To resolve
such an issue, a simple method is to measure the element character of each of the
IC units, categorize the IC units based on similar element character, and dispose
the IC units of the same category so as to avoid the effect due to process drift.
[0032] Another method is to dispose the IC units U0I, U1I... and UNI with resistors RU0,
RU1... and RUN in parallel, respectively. These resistors may be directly manufactured
in each of the IC units, or by respectively coupled with the IC units after the packaging
process for the IC units has been completed. Please refer to Fig. 8, which is a schematic
diagram showing the LED circuit 3 according to another embodiment of the present invention.
The LED circuit 3 is similar to the LED circuit 2 illustrated in Fig. 2 except that
the resistors are individually disposed with the IC circuits in parallel. The LED
circuit 3 comprises a series of LED devices 32, a processing unit 231 and a signal
control circuit 33. The series of LED devices 32 includes a plurality of LED units
U0L, U1L... and UNL, each of which has an IC circuit unit U0I, U1I... and UNI respectively.
Each of the IC units U0I, U1I... and UNI has a specific serial number 0, 1... and
N, respectively. The processing unit 231 includes an input terminal VCC receiving
a DC input V2 and an output terminal TCON. The signal control circuit 33 is electrically
coupled to the output terminal TCON and the plurality of LED units U0L, U1L... and
UNL therebetween and transmits an electrical parameter bearing specific signal codes
ENC1, ENC2 (referring to Fig. 3) to each of the IC units U0I, U1I... and UNI. According
to a preferred embodiment, each of the IC units U0I, U1I... and UNI receives the signal
codes ENC1, ENC2 simultaneously. When the signal code ENC1 corresponds to the specific
serial number of one of the IC units U0I, U1I... and UNI (UOI, for example), the LED
unit (U0L in this example) will be driven by the corresponding integrated circuit
unit (U0I in this example) based on an instruction IA1 existing in the information
of the signal code ENC1.
[0033] In Fig. 8, the resistors RU0, RU1... and RUN may reduce the differences among the
plurality of IC units U0I, U1I... and UNI, so as to render the divisional voltage
at each IC unit virtually the same. The resistors RU0, RU1... and RUN may also be
used for compensating bias of the equivalent impedance among the plurality of IC units
U0I, U1I... and UNI, if there exists a large bias. Thus, the divisional voltage at
each IC unit can be virtually the same, which may avoid errors due to differences
in impedance when receiving signal codes. From the aspect of current consumption,
the difference among the IC units due to processing issues can be compensated by the
plurality of loads, so the voltage received by each of the IC units is virtually the
same.
[0034] Each of the IC units U0I, U1I... and UNI in Fig. 8 comprises three LED driving circuits,
as shown in Fig. 4. Also referring to Figs. 4 and 5, the LED driving circuit 221 may
include a constant current source 227, a route-switching circuit 228 coupled to the
constant current source 227, and an LED open-circuit detecting circuit 229 detecting
an open-circuit status of the R-LED, the G-LED and the B-LED. The route-switching
circuit 228 can be selectively coupled to either the LED unit U1L or the second LED
unit U0L. The route-switching circuit 228 conducts the constant current source 227
and the LED unit U1L when the LED open-circuit detecting circuit 229 determines that
the LED unit U1L is in a closed status, and conducts the constant current source 227
and the second LED device U0 when the LED unit U1L is in an open status.
[0035] Please refer to Fig. 9, which is a schematic diagram showing the compensating method
used by the LED driving circuit 3 according to one embodiment of the present invention.
The LED circuit 3 comprises at least one series of LED devices U0, U1... and UN and
a signal control circuit 33. Each of the plurality of LED devices U0, U1... and UN
has an IC circuit unit U0I, U1I... and UNI and an LED unit U0L, U1L... and UNL, respectively.
Each of the IC units U0I, U1I... and UNI has a specific serial number 0, 1... and
N, respectively. The compensating method includes the following steps: step S501,
electrically connecting at least one load to each of the plurality of LED devices
U0, U1... and UN in parallel; step S502, compensating each of the IC units U0I, U1I...
and UNI for a shift of an electric characteristic thereof; step S503, causing variation
of an electrical parameter received by each of the IC units U0I, U1I... and UNI in
response to a control signal SCON so as to make the electrical characteristic carry
a signal code ENC1; and step S504, detecting the signal code SCON and driving a corresponding
LED unit based on an information IA1 of the signal code SCON.
1. An LED circuit (2, 3), comprising:
a plurality of (22, 32) LED devices (U0, U1, ..., UN) coupled to form a series of
LED devices, each of which includes an LED unit (UOL, U1L,..., UNL) and an integrated
circuit unit (UOI, U1I,..., UNI) having a specific serial number (0, 1,..., N) and
adapted to receive an electrical parameter; a power supply circuit (21); and a signal
control circuit (23, 33) coupled between the power supply circuit (21) and the plurality
of LED devices (22, 32), and adapted to transmit a variation of the electric parameter
carrying a
signal code (ENC1) to each of the integrated circuit units (UOI, U1I,..., UNI), wherein
a specific LED unit (UOL, U1L,..., UNL) is driven by a corresponding integrated circuit
unit (UOI, U1I,..., UNI) when the signal code (ENC1) corresponds to the specific serial
number (0, 1,..., N) of the corresponding integrated circuit unit (UOI, U1I,..., UNI),
characterized in that each of the integrated circuit units (UOI, U1I,..., UNI) includes:
a power voltage detecting circuit (222) adapted to detect the variation of the electrical
parameter, wherein the variation includes a change of a power voltage having a working
frequency (f1);
an oscillator circuit (220) adapted to provide a reference frequency (fr1);
a frequency range detecting circuit (223) adapted to receive the reference frequency
(fr1) and determine whether the working frequency (f1) is within an acceptable range;
a serial number comparing circuit (224) adapted to determine whether the specific
serial number (0, 1,..., N) of the integrated circuit unit (UOI, U1I,..., UNI) corresponds
to the signal code (ENC1) when the working frequency is within the acceptable range,
wherein the signal code (ENC1) includes an identification code (ID1) and an information;
and
a signal storage circuit (226) adapted to receive the signal code (ENC1) and store
the information when the specific serial number (0, 1,..., N) and the identification
code (ID1) are the same.
2. The LED circuit (2, 3) as claimed in Claim 1, characterized in that the electrical parameter is a voltage, the signal control circuit (23, 33) is adapted
to change a loaded status as the variation of the electrical parameter so as to cause
a change of total voltage difference of the integrated circuit units (UOI, U1I,...,
UNI) in the series of LED devices (22, 32), and the change of total voltage difference
is uniformly distributed to changes of individual voltage differences of the integrated
circuit units (UOI, U1I,..., UNI).
3. The LED circuit (2, 3) as claimed in the claim 2, characterized in that each of the LED units (UOL, U1L,..., UNL) includes a red light LED (R-LED), a green
light LED (G-LED) and a blue light LED (B-LED), each of the integrated circuit units
(UOI, U1I,..., UNI) includes a power receiving terminal (VIN) adapted to receive the
electrical parameter, an IC ground terminal (VSS), a first driving output terminal
(RL) coupled to the R-LED, a second driving output terminal (GL) coupled to the G-LED
and a third driving output terminal (BL) coupled to the B-LED, and the negative electrodes
of the R-LED, the G-LED and the B-LED are commonly coupled to the IC ground terminal
(VSS).
4. The LED circuit (2, 3) as claimed in any of claims 2 or 3, characterized in that the power supply circuit (21) has a first terminal T1 and a second terminal T2.
5. The LED circuit as claimed in Claim 4, characterized in that the power supply circuit (21) further includes a rectifier circuit (213) coupled
to the first terminal (T1) and adapted to provide a first voltage (V1) as the electrical
parameter to the integrated circuit units (UOI, U1I,..., UNI).
6. The LED circuit (2, 3) as claimed in Claim 5, characterized in that the power supply circuit (21) further includes a converting circuit (212) coupled
between the first terminal (T1) and the second terminal (T2) and adapted to convert
the first voltage (V1) to a second voltage (V2).
7. The LED circuit (2, 3) as claimed in Claim 6, characterized in that the signal control circuit (23, 33) has a third terminal (T3) and a fourth terminal
(T4), the series of LED devices (22, 32) has a fifth terminal (T5) coupled to the
first terminal (T1) and a sixth terminal (T6) coupled to the third terminal (T3).
8. The LED circuit (2, 3) as claimed in Claim 7,
characterized in that the LED circuit (2, 3) further includes:
a processing unit (231) adapted to receive the second voltage (V2), and having an
output control terminal (TCON) to provide a control signal (SCON);
a load (R1) coupled between the third (T3) and the fourth (T4) terminals; and
a switch unit (Q1) coupled to the output control terminal (TCON), and coupled to the
load (R1) in parallel, wherein the second terminal (T2) is coupled to the fourth terminal
(T4), and the switch unit (Q1) is adapted to receive the control signal (SCON) controlling
an open or closed status of the switch unit (Q1) to change the loaded status.
9. The LED circuit as claimed in Claim 3,
characterized in that each of the integrated circuit unit (UOI, U1I,..., UNI) further includes:
an LED driving circuit (221) including:
a constant current source (227) adapted to provide a constant current (12);
a route-switching circuit (228) coupled to the constant current source (227) and adapted
to switch a route of the constant current (12); and
an LED open-circuit detecting circuit (229) adapted to detect an open-circuit status
of the LED unit (UOL, U1L,..., UNL) to provide a feedback signal (FB1), wherein the
route-switching circuit (228) is adapted to receive the information and the feedback
signal (FB1) to determine whether to provide the LED unit (UOL, U1L,..., UNL) with
the constant current (12) to drive the R-LED, the G-LED and the B-LED in case that
the LED unit (UOL, U1L, ..., UNL) does not have an open circuit, or to allow the constant
current (12) to flow to the IC ground terminal (VSS) in case that the LED unit (UOL,
U1L, ..., UNL) has an open circuit.
10. A method for driving an LED circuit (2, 3) comprising a plurality of LED devices (U0,
U1, ..., UN) coupled to form a series of LED devices (22, 23), each of which including
an LED unit (U0L, U1L,..., UNL) and an integrated circuit unit (U0I, U1I, ..., UNI)
having a specific serial number (0, 1,..., N) the LED circuit (2, 3) further comprising
a signal control circuit (23, 33), the LED circuit (2, 3) receiving an electrical
parameter, the method comprising the steps of:
providing a control signal (SCON);
changing a loaded status of the signal control circuit (23, 33) as a variation of
the electrical parameter in response to the control signal (SCON) so as to generate
a signal code (ENC1);
causing all the integration circuit units (UOI, U1I,..., UNI) to receive the signal
code (ENC1); driving a specific LED unit (UOL, U1L,..., UNL) based on the information
of the signal code (ENC1) by a corresponding integrated circuit unit (UOI, U1I,...,
UNI) when the signal code (ENC1) corresponds to the specific serial number (0, 1,...,
N) of the corresponding one in the plurality of integrated circuit units (UOI, U1I,...,
UNI);
providing the plurality of integrated circuit units (UOI, U1I,..., UNI) with a first
voltage (V1) as the electrical parameter and converting the first voltage (V1) to
a second voltage (V2) to be supplied to a processing unit (231) of the signal control
circuit (23, 33); and
controlling one of an open status and a closed status of a switch unit (Q1) of the
signal control circuit (23, 33) to change the loaded status as the variation of the
electrical parameter, wherein the method is characterized by further comprising the following steps of:
detecting the variation of the electrical parameter, wherein the variation of the
electrical parameter includes a variation of a power voltage having a working frequency
(f1);
determining whether the working frequency (f1) is within an acceptable range;
determining whether the specific serial number (0, 1,..., N) of each of the integrated
circuit units (UOI, U1I,..., UNI) corresponds to the signal code (ENC1) when the working
frequency (f1) is within the acceptable range, wherein the signal code (ENC1) includes
an identification code (ID1) and an information; and
receiving the signal code (ENC1), and storing the information when the specific serial
number (0, 1,..., N) and the identification code (ID1) are the same.
11. The method as claimed in Claim 10, characterized in that the signal code (ENC1) represents a variation pattern of the electrical parameter,
and the electrical parameter is a voltage.
12. The method as claimed in Claims 10 or 11,
characterized by further comprising the following steps of:
providing a constant current (12);
providing an LED open-circuit detecting circuit (229) to detect an open-circuit status
of each of the LED units (UOL, U1L,..., UNL) to provide a feedback signal (FB1); and
receiving the information and the feedback signal (FB1) to determine whether to provide
the detected LED unit (UOL, U1L,..., UNL) with the constant current (I2) in case that
the detected LED unit (UOL, U1L, ..., UNL) does not have an open circuit, or to allow
the constant current (12) to flow to a ground terminal (VSS) of the integrated circuit
unit (UOI, U1I, ..., UNI) associated to the detected LED unit (UOL, U1L, ..., UNL)
in case that the detected LED unit (UOL, U1L, ..., UNL) has an open circuit.
1. LED-Schaltung (2, 3), umfassend:
eine Vielzahl (22, 32) von LED-Vorrichtungen (U0, U1,..., UN), die gekoppelt sind,
um eine Reihe von LED-Vorrichtungen zu bilden, von denen jede eine LED-Einheit (UOL,
U1L,..., UNL) und eine integrierte Schaltungseinheit (UOI, U1I,..., UNI) mit einer
spezifischen Seriennummer (0, 1,..., N) einschließt und zum Empfangen eines elektrischen
Parameters angepasst ist;
eine Leistungsversorgungsschaltung (21); und
eine Signalsteuerungsschaltung (23, 33), die zwischen der Leistungsversorgungsschaltung
(21) und der Vielzahl von LED-Vorrichtungen (22, 32) gekoppelt und angepasst ist,
um eine Variation des elektrischen Parameters zu übertragen, der einen Signalcode
(ENC1) zu jeder der integrierten Schaltungseinheiten (UOI, U1I,..., UNI) trägt, wobei
eine spezifische LED-Einheit (UOL, U1L,..., UNL) von einer entsprechenden integrierten
Schaltungseinheit (UOI, U1I,..., UNI) angesteuert wird, wenn der Signalcode (ENC1)
der spezifischen Seriennummer (0, 1,..., N) der entsprechenden integrierten Schaltungseinheit
(UOI, U1I,..., UNI) entspricht, dadurch gekennzeichnet, dass jede der integrierten Schaltungseinheiten (UOI, U1I,..., UNI) einschließt:
eine Leistungsspannungserfassungsschaltung (222), die angepasst ist, um die Variation
des elektrischen Parameters zu erfassen, wobei die Variation eine Änderung einer Leistungsspannung
mit einer Arbeitsfrequenz (f1) einschließt;
eine Oszillatorschaltung (220), die angepasst ist, um eine Referenzfrequenz (fr1)
bereitzustellen;
eine Frequenzbereichserfassungsschaltung (223), die angepasst ist, um die Referenzfrequenz
(fr1) zu empfangen und zu bestimmen, ob die Arbeitsfrequenz (f1) innerhalb eines zulässigen
Bereichs liegt;
eine Seriennummernvergleichsschaltung (224), die angepasst ist, um zu bestimmen, ob
die spezifische Seriennummer (0, 1,..., N) der integrierten Schaltungseinheit (UOI,
U1I,..., UNI) dem Signalcode (ENC1) entspricht, wenn die Arbeitsfrequenz innerhalb
des zulässigen Bereichs liegt, wobei der Signalcode (ENC1) einen Identifikationscode
(ID1) und eine Information einschließt; und
eine Signalspeicherschaltung (226), die angepasst ist, um den Signalcode (ENC1) zu
empfangen und die Information zu speichern, wenn die spezifische Seriennummer (0,
1,..., N) und der Identifikationscode (ID1) gleich sind.
2. LED-Schaltung (2, 3) nach Anspruch 1, dadurch gekennzeichnet, dass der elektrische Parameter eine Spannung ist, die Signalsteuerungsschaltung (23, 33)
angepasst ist, um einen geladenen Zustand als die Variation des elektrischen Parameters
zu ändern, um so eine Änderung der Gesamtspannungsdifferenz der integrierten Schaltungseinheiten
(UOI, U1I,..., UNI) in der Reihe von LED-Vorrichtungen (22, 32) zu bewirken, und die
Änderung der Gesamtspannungsdifferenz gleichmäßig auf Änderungen der einzelnen Spannungsdifferenzen
der integrierten Schaltungseinheiten (UOI, U1I,..., UNI) verteilt wird.
3. LED-Schaltung (2, 3) nach Anspruch 2, dadurch gekennzeichnet, dass jede der LED-Einheiten (UOL, U1L,..., UNL) eine Rotlicht-LED (R-LED), eine Grünlicht-LED
(G-LED) und eine Blaulicht-LED (B-LED) einschließt, wobei jede der integrierten Schaltungseinheiten
(UOI, U1I,..., UNI) einen Leistungsempfangsanschluss (VIN), der angepasst ist, um
den elektrischen Parameter zu empfangen, einen IC-Masseanschluss (VSS), einen mit
der R-LED gekoppelten ersten ansteuernden Ausgangsanschluss (RL), einen mit der G-LED
gekoppelten zweiten ansteuernden Ausgangsanschluss (GL) und einen mit der B-LED gekoppelten
dritten ansteuernden Ausgangsanschluss (BL) einschließt, und die negativen Elektroden
der R-LED, der G-LED und der B-LED gemeinsam an den IC-Masseanschluss (VSS) gekoppelt
sind.
4. LED-Schaltung (2, 3) nach einem der Ansprüche 2 oder 3, dadurch gekennzeichnet, dass die Leistungsversorgungsschaltung (21) einen ersten Anschluss (T1) und einen zweiten
Anschluss (T2) aufweist.
5. LED-Schaltung nach Anspruch 4, dadurch gekennzeichnet, dass die Leistungsversorgungsschaltung (21) ferner eine Gleichrichterschaltung (213) einschließt,
die mit dem ersten Anschluss (T1) gekoppelt und angepasst ist, um eine erste Spannung
(V1) als den elektrischen Parameter an die integrierten Schaltungseinheiten (UOI,
U1I,..., UNI) bereitzustellen.
6. LED-Schaltung (2, 3) nach Anspruch 5, dadurch gekennzeichnet, dass die Leistungsversorgungsschaltung (21) ferner eine Wandlerschaltung (212) einschließt,
die zwischen dem ersten Anschluss (T1) und dem zweiten Anschluss (T2) gekoppelt und
angepasst ist, um die erste Spannung (V1) in eine zweite Spannung (V2) umzuwandeln.
7. LED-Schaltung (2, 3) nach Anspruch 6, dadurch gekennzeichnet, dass die Signalsteuerungsschaltung (23, 33) einen dritten Anschluss (T3) und einen vierten
Anschluss (T4) aufweist, wobei die Reihe von LED-Vorrichtungen (22, 32) einen fünften
Anschluss (T5), der mit dem ersten Anschluss (T1) gekoppelt ist, und einen sechsten
Anschluss (T6) aufweist, der mit dem dritten Anschluss (T3) gekoppelt ist.
8. LED-Schaltung (2, 3) nach Anspruch 7,
dadurch gekennzeichnet, dass die LED-Schaltung (2, 3) ferner einschließt:
eine Verarbeitungseinheit (231), die angepasst ist, um die zweite Spannung (V2) zu
empfangen, und einen Ausgangssteueranschluss (TCON) aufweist, um ein Steuersignal
(SCON) bereitzustellen;
eine Last (R1), die zwischen dem dritten (T3) und dem vierten (T4) Anschluss gekoppelt
ist; und
eine Schaltereinheit (Q1), die mit dem Ausgangssteueranschluss (TCON) gekoppelt ist
und parallel mit der Last (R1) gekoppelt ist, wobei der zweite Anschluss (T2) mit
dem vierten Anschluss (T4) gekoppelt ist und die Schalteinheit (Q1) angepasst ist,
um das Steuersignal (SCON) zu empfangen, das einen offenen oder geschlossenen Zustand
der Schaltereinheit (Q1) steuert, um den geladenen Zustand zu ändern.
9. LED-Schaltung nach Anspruch 3,
dadurch gekennzeichnet, dass jede der integrierten Schaltungseinheiten (UOI, U1I,..., UNI) ferner einschließt:
eine LED-Ansteuerungsschaltung (221), einschließlich:
einer Konstantstromquelle (227), die angepasst ist, um einen Konstantstrom (I2) bereitzustellen;
eine Wegumschaltschaltung (228), die mit der Konstantstromquelle (227) gekoppelt und
angepasst ist, um einen Weg des Konstantstroms (I2) umzuschalten; und
eine LED-Offenkreislauf-Erfassungsschaltung (229), die einen Offenkreiszustand der
LED-Einheit (UOL, U1L,..., UNL) erfassen kann, um ein Rückkopplungssignal (FB1) bereitzustellen,
wobei die Wegumschaltschaltung (228) angepasst ist, um die Information und das Rückkopplungssignal
(FB1) zu empfangen, um zu bestimmen, ob für die LED-Einheit (UOL, U1L,..., UNL) der
Konstantstrom (I2) zum Ansteuern der R-LED, der G-LED und der B-LED für den Fall bereitgestellt
werden soll, dass die LED-Einheit (UOL, U1L,..., UNL) keinen offenen Kreislauf aufweist,
oder um dem Konstantstrom (I2) zu ermöglichen, zu dem IC-Masseanschluss (VSS) zu fließen,
falls die LED-Einheit (UOL, U1L,..., UNL) einen offenen Kreislauf aufweist.
10. Verfahren zum Ansteuern einer LED-Schaltung (2, 3), die mehrere LED-Vorrichtungen
(U0, U1,..., UN) umfasst, die zur Bildung einer Reihe von LED-Vorrichtungen (22, 23)
gekoppelt sind, von denen jede eine LED-Einheit (UOL, U1L,..., UNL) und eine integrierte
Schaltungseinheit (UOI, U1I,..., UNI) mit einer spezifischen Seriennummer (0, 1,...,
N) einschließt, wobei die LED-Schaltung (2, 3) ferner eine Signalsteuerungsschaltung
(23, 33) umfasst, wobei die LED-Schaltung (2, 3) einen elektrischen Parameter empfängt,
das Verfahren die folgenden Schritte umfassend:
Bereitstellen eines Steuersignals (SCON);
Ändern eines geladenen Zustands der Signalsteuerungsschaltung (23, 33) als eine Variation
des elektrischen Parameters in Reaktion auf das Steuersignal (SCON), um so einen Signalcode
(ENC1) zu erzeugen;
Bewirken, dass alle integrierten Schaltungseinheiten (UOI, U1I,..., UNI) den Signalcode
(ENC1) empfangen;
Ansteuern einer bestimmten LED-Einheit (UOL, U1L,..., UNL) basierend auf der Information
des Signalcodes (ENC1) durch eine entsprechende integrierte Schaltungseinheit (UOI,
U1I,..., UNI), wenn der Signalcode (ENC1) der spezifischen Seriennummer (0, 1,...,
N) der entsprechenden der Vielzahl von integrierten Schaltungseinheiten (UOI, U1I,...,
UNI) entspricht;
Bereitstellen der Vielzahl von integrierten Schaltungseinheiten (UOI, U1I,..., UNI)
mit einer ersten Spannung (V1) als den elektrischen Parameter und Umwandeln der ersten
Spannung (V1) in eine zweite Spannung (V2), die einer Verarbeitungseinheit (231) der
Signalsteuerungsschaltung (23, 33) zugeführt werden soll; und
Steuern entweder eines offenen Zustands oder eines geschlossenen Zustands einer Schaltereinheit
(Q1) der Signalsteuerungsschaltung (23, 33), um den geladenen Zustand als die Variation
des elektrischen Parameters zu ändern, wobei das Verfahren dadurch gekennzeichnet ist, dass es ferner die folgenden Schritte umfasst:
Erfassen der Variation des elektrischen Parameters, wobei die Variation des elektrischen
Parameters eine Variation einer Leistungsspannung mit einer Arbeitsfrequenz (f1) einschließt;
Bestimmen, ob die Arbeitsfrequenz (f1) innerhalb eines zulässigen Bereichs liegt;
Bestimmen, ob die spezifische Seriennummer (1, 0,..., N) jeder der integrierten Schaltungseinheiten
(U1I, U1I,..., UNI) dem Signalcode (ENC1) entspricht, wenn die Arbeitsfrequenz (f1)
innerhalb des zulässigen Bereichs liegt, wobei der Signalcode (ENC1) einen Identifikationscode
(ID1) und eine Information einschließt; und
Empfangen des Signalcodes (ENC1) und Speichern der Information, wenn die spezifische
Seriennummer (0, 1,..., N) und der Identifikationscode (ID1) gleich sind.
11. Verfahren nach Anspruch 10, dadurch gekennzeichnet, dass der Signalcode (ENC1) ein Variationsmuster des elektrischen Parameters darstellt
und der elektrische Parameter eine Spannung ist.
12. Verfahren nach den Ansprüchen 10 oder 11,
dadurch gekennzeichnet, dass es ferner die folgenden Schritte umfasst:
Bereitstellen eines Konstantstroms (I2);
Bereitstellen einer LED-Offenkreislauf-Erfassungsschaltung (229) zum Erfassen eines
Offenkreislaufzustands jeder der LED-Einheiten (UOL, U1L, ..., UNL), um ein Rückkopplungssignal
(FB1) bereitzustellen; und
Empfangen der Information und des Rückkopplungssignals (FB1), um zu bestimmen, ob
für die erfasste LED-Einheit (UOL, U1L,..., UNL) Konstantstrom (I2) bereitgestellt
werden soll, falls die erfasste LED-Einheit (UOL, U1L,..., UNL) keinen offenen Kreislauf
aufweist, oder um dem Konstantstrom (I2) zu gestatten, zu einem Masseanschluss (VSS)
der integrierten Schaltungseinheit (UOI, U1I,..., UNI) zu fließen, die der erfassten
LED-Einheit (UOL, U1L,..., UNL) zugeordnet ist, falls die erfasste LED-Einheit (UOL,
U1L,..., UNL) einen offenen Kreislauf aufweist.
1. Circuit à DEL (2, 3), comprenant :
une pluralité (22, 32) de dispositifs à DEL (U0, U1, ..., UN) reliés pour former une
série de dispositifs à DEL dont chacun comporte une unité de DEL (UOL, U1L, ..., UNL)
et une unité de circuit intégré (UOI, U1I, ..., UNI) possédant un numéro de série
particulier (0, 1, ..., N) et adaptée à recevoir un paramètre électrique ;
un circuit d'alimentation électrique (21) ; et
un circuit de commande de signal (23, 33) relié entre le circuit d'alimentation électrique
(21) et la pluralité (22, 32) de dispositifs à DEL, et adapté à transmettre une variation
du paramètre électrique véhiculant un code de signal (ENC1) à chacune des unités de
circuit intégré (UOI, U1I, ..., UNI), une unité de DEL particulière (UOL, U1L, ...,
UNL) étant pilotée par une unité de circuit intégré correspondante (UOI, U1I, ...,
UNI) lorsque le code de signal (ENC1) correspond au numéro de série particulier (0,
1, ..., N) de l'unité de circuit intégré correspondante (UOI, U1I, ..., UNI), caractérisé en ce que chacune des unités de circuit intégré (UOI, U1I, ..., UNI) comporte :
un circuit de détection de tension d'alimentation (222) adapté à détecter la variation
du paramètre électrique, la variation comportant une modification d'une tension d'alimentation
possédant une fréquence de travail (f1) ;
un circuit oscillateur (220) adapté à délivrer une fréquence de référence (fr1) ;
un circuit de détection de plage de fréquences (223) adapté à recevoir la fréquence
de référence (fr1) et à déterminer si la fréquence de travail (f1) s'inscrit dans
une plage acceptable ;
un circuit de comparaison de numéro de série (224) adapté à déterminer si le numéro
de série particulier (0, 1, ..., N) de l'unité de circuit intégré (UOI, U1I, ...,
UNI) correspond au code de signal (ENC1) lorsque la fréquence de travail s'inscrit
dans la plage acceptable, le code de signal (ENC1) comportant un code d'identification
(ID1) et une information ; et
un circuit de stockage de signal (226) adapté à recevoir le code de signal (ENC1)
et à stocker l'information lorsque le numéro de série particulier (0, 1, ..., N) et
le code d'identification (ID1) sont identiques.
2. Circuit à DEL (2, 3) selon la revendication 1, caractérisé en ce que le paramètre électrique est une tension, le circuit de commande de signal (23, 33)
est adapté à modifier un état chargé sous forme de la variation du paramètre électrique
de manière à provoquer une modification d'une différence de tension totale des unités
de circuit intégré (UOI, U1I, ..., UNI) dans la série (22, 32) de dispositifs à DEL,
et la modification de la différence de tension totale est répartie uniformément en
modifications de différences de tension individuelles des unités de circuit intégré
(UOI, U1I, ..., UNI) .
3. Circuit à DEL (2, 3) selon la revendication 2, caractérisé en ce que chacune des unités de DEL (UOL, U1L, ..., UNL) comporte une DEL de lumière rouge
(R-LED), une DEL de lumière verte (G-LED) et une DEL de lumière bleue (B-LED), chacune
des unités de circuit intégré (UOI, U1I, ..., UNI) comporte une borne de réception
d'alimentation (VIN) adaptée à recevoir le paramètre électrique, une borne de masse
IC (VSS), une première borne de sortie de pilotage (RL) reliée à la R-LED, une deuxième
borne de sortie de pilotage (GL) reliée à la G-LED et une troisième borne de sortie
de pilotage (BL) reliée à la B-LED, les électrodes négatives de la R-LED, de la G-LED
et de la B-LED étant reliées en commun à la borne de masse IC (VSS).
4. Circuit à DEL (2, 3) selon l'une quelconque des revendications 2 ou 3, caractérisé en ce que le circuit d'alimentation électrique (21) possède une première borne T1 et une deuxième
borne T2.
5. Circuit à DEL selon la revendication 4, caractérisé en ce que le circuit d'alimentation électrique (21) comporte en outre un circuit redresseur
(213) relié à la première borne (T1) et adapté à délivrer une première tension (V1)
sous forme du paramètre électrique aux unités de circuit intégré (UOI, U1I, ..., UNI)
.
6. Circuit à DEL (2, 3) selon la revendication 5, caractérisé en ce que le circuit d'alimentation électrique (21) comporte en outre un circuit convertisseur
(212) relié entre la première borne (T1) et la deuxième borne (T2) et adapté à convertir
la première tension (V1) en une deuxième tension (V2).
7. Circuit à DEL (2, 3) selon la revendication 6, caractérisé en ce que le circuit de commande de signal (23, 33) possède une troisième borne (T3) et une
quatrième borne (T4), la série (22, 32) de dispositifs à DEL possède une cinquième
borne (T5) reliée à la première borne (T1) et une sixième borne (T6) reliée à la troisième
borne (T3).
8. Circuit à DEL (2, 3) selon la revendication 7, le circuit à DEL (2, 3) étant
caractérisé en ce qu'il comporte en outre :
une unité de traitement (231) adaptée à recevoir la deuxième tension (V2) et possédant
une borne de commande de sortie (TCON) pour délivrer un signal de commande (SCON)
;
une charge (R1) reliée entre les troisième (T3) et quatrième (T4) bornes ; et
une unité de commutation (Q1) reliée à la borne de commande de sortie (TCON) et reliée
à la charge (R1) en parallèle, la deuxième borne (T2) étant reliée à la quatrième
borne (T4) et l'unité de commutation (Q1) étant adaptée à recevoir le signal de commande
(SCON) commandant un état ouvert ou fermé de l'unité de commutation (Q1) pour modifier
l'état chargé.
9. Circuit à DEL selon la revendication 3,
caractérisé en ce que chacune des unités de circuit intégré (UOI, U1I, ..., UNI) comporte en outre :
un circuit de pilotage de DEL (221) comportant :
une source de courant constant (227) adaptée à délivrer un courant constant (I2) ;
un circuit de commutation de trajet (228) relié à la source de courant constant (227)
et adapté à commuter un trajet du courant constant (I2) ; et
un circuit de détection de circuit ouvert de DEL (229) adapté à détecter un état de
circuit ouvert de l'unité de DEL (UOL, U1L, ..., UNL) pour délivrer un signal de rétroaction
(FB1), le circuit de commutation de trajet (228) étant adapté à recevoir l'information
et le signal de rétroaction (FB1) pour déterminer s'il convient de délivrer le courant
constant (I2) à l'unité de DEL (UOL, U1L, ..., UNL) pour piloter la R-LED, la G-LED
et la B-LED dans le cas où l'unité de DEL (UOL, U1L, ..., UNL) ne comprend pas un
circuit ouvert, ou de laisser le courant constant (I2) circuler jusqu'à la borne de
masse IC (VSS) dans le cas où l'unité de DEL (UOL, U1L, ..., UNL) comprend un circuit
ouvert.
10. Procédé pour piloter un circuit à DEL (2, 3) comprenant une pluralité de dispositifs
à DEL (U0, U1, ..., UN) reliés pour former une série (22, 23) de dispositifs à DEL
dont chacun comporte une unité de DEL (UOL, U1L, ..., UNL) et une unité de circuit
intégré (UOI, U1I, ..., UNI) possédant un numéro de série particulier (0, 1, ...,
N), le circuit à DEL (2, 3) comprenant en outre un circuit de commande de signal (23,
33), le circuit à DEL (2, 3) recevant un paramètre électrique, le procédé comprenant
les étapes consistant à :
délivrer un signal de commande (SCON) ;
modifier un état chargé du circuit de commande de signal (23, 33) sous forme d'une
variation du paramètre électrique en réponse au signal de commande (SCON) de manière
à générer un code de signal (ENC1) ;
amener toutes les unités de circuit intégré (UOI, U1I, ..., UNI) à recevoir le code
de signal (ENC1) ;
piloter une unité de DEL particulière (UOL, U1L, ..., UNL) en fonction de l'information
du code de signal (ENC1) par une unité de circuit intégré correspondante (UOI, U1I,
..., UNI) lorsque le code de signal (ENC1) correspond au numéro de série particulier
(0, 1, ..., N) de l'unité de circuit intégré correspondante parmi la pluralité d'unités
de circuit intégré (UOI, U1I, ..., UNI) ;
délivrer à la pluralité d'unités de circuit intégré (UOI, U1I, ..., UNI) une première
tension (V1) sous forme du paramètre électrique et convertir la première tension (V1)
en une deuxième tension (V2) destinée à être fournie à une unité de traitement (231)
du circuit de commande de signal (23, 33) ; et
commander un état parmi un état ouvert et un état fermé d'une unité de commutation
(Q1) du circuit de commande de signal (23, 33) pour modifier l'état chargé sous forme
de la variation du paramètre électrique, le procédé étant caractérisé en ce qu'il comprend en outre les étapes suivantes consistant à :
détecter la variation du paramètre électrique, la variation du paramètre électrique
comportant une modification d'une tension d'alimentation possédant une fréquence de
travail (f1) ;
déterminer si la fréquence de travail (f1) s'inscrit dans une plage acceptable ;
déterminer si le numéro de série particulier (0, 1, ..., N) de chacune des unités
de circuit intégré (UOI, U1I, ..., UNI) correspond au code de signal (ENC1) lorsque
la fréquence de travail (f1) s'inscrit dans la plage acceptable, le code de signal
(ENC1) comportant un code d'identification (ID1) et une information ; et
recevoir le code de signal (ENC1) et stocker l'information lorsque le numéro de série
particulier (0, 1, ..., N) et le code d'identification (ID1) sont identiques.
11. Procédé selon la revendication 10, caractérisé en ce que le code de signal (ENC1) représente un modèle de variation du paramètre électrique,
et le paramètre électrique est une tension.
12. Procédé selon les revendications 10 ou 11,
caractérisé en ce qu'il comprend en outre les étapes suivantes consistant à :
délivrer un courant constant (I2) ;
utiliser un circuit de détection de circuit ouvert de DEL (229) pour détecter un état
de circuit ouvert de chacune des unités de DEL (UOL, U1L, ..., UNL) pour délivrer
un signal de rétroaction (FB1) ; et
recevoir l'information et le signal de rétroaction (FB1) pour déterminer s'il convient
de délivrer le courant constant (I2) à l'unité de DEL détectée (UOL, U1L, ..., UNL)
dans le cas où l'unité de DEL détectée (UOL, U1L, ..., UNL) ne comprend pas un circuit
ouvert, ou de laisser le courant constant (I2) circuler jusqu'à une borne de masse
(VSS) de l'unité de circuit intégré (UOI, U1I, ..., UNI) associée à l'unité de DEL
détectée (UOL, U1L, ..., UNL) dans le cas où l'unité de DEL détectée (UOL, U1L, ...,
UNL) comprend un circuit ouvert.