Electronic converter
10651737 ยท 2020-05-12
Assignee
Inventors
Cpc classification
H02M3/158
ELECTRICITY
H02M1/0006
ELECTRICITY
H02M3/33553
ELECTRICITY
H02M3/156
ELECTRICITY
H02M1/14
ELECTRICITY
International classification
H02M3/156
ELECTRICITY
H02M1/14
ELECTRICITY
Abstract
An electronic converter (1) comprises a pair of input terminals (IN+, IN) particularly suitable to be connected to a power supply unit (10) with a constant electric current output, and a pair of output terminals (OUT+, OUT) particularly suitable to be connected to an electrical load (5). The electronic converter (1) further comprises an electric current conversion stage (2) connected to said input terminals (IN+, IN) and to said output terminals (OUT+, OUT), and a controller (3) connected to the electric current conversion stage (2) and particularly suitable to control the electrical energy output from the electronic converter (1).
Claims
1. An electronic converter comprising: a pair of input terminals particularly suitable to be connected to a power supply unit with a constant electric current output, and a pair of output terminals particularly suitable to be connected to an electrical load (5), an electric current conversion stage connected to said input terminals and to said output terminals, the electric current conversion stage comprising a switching converter circuit, and a controller connected to the electric current conversion stage and particularly suitable to control the electrical energy output from the converter, wherein the switching converter circuit comprises a measurement resistor connected to an output terminal, and wherein the controller comprises: a pair of input terminals connected to a differential amplifier block for measuring a voltage at the ends of the measurement resistor proportional to an electric current output from the switching converter circuit, a pair of control terminals, a control voltage generator block connected to the switching converter circuit through the pair of control terminals, and arranged for providing thereto a control voltage, based on said measured voltage, controlling the electric current output, and a receiving block comprising a communication interface for receiving a control signal via at least one between radiofrequency and a cable, and arranged for providing a signal to the control voltage generator block for managing the operation thereof in order to remotely controlling the electric current output from the electronic converter.
2. The electronic converter according to claim 1, wherein the electric current conversion stage comprises a power supply stage of the controller connected to the switching converter circuit.
3. The electronic converter according to claim 2, wherein the power supply stage comprises a constant electric current to constant voltage converter circuit connected to the switching converter circuit in series.
4. The electronic converter according to claim 3, wherein the constant electric current to constant voltage converter circuit of the power supply stage comprises a pair of input terminals, a pair of output terminals, a diode, a field-effect transistor connected to the diode and one of the input terminals, an inductor connected to the diode and to one of the output terminals, and a capacitor connected between the inductor and one of the input terminals.
5. The electronic converter according to claim 4, wherein the power supply stage comprises an isolation transformer connected between the field-effect transistor and the diode.
6. The electronic converter according to claim 1, wherein the electric current conversion stage further comprises an input filter connected to the input terminals of the electronic converter, to the switching converter circuit and to the power supply stage of the controller.
7. The electronic converter according to claim 1, wherein the switching converter circuit of the electric current conversion stage comprises a pair of input terminals and a pair of output terminals, a diode connected to one of the input terminals and a field-effect transistor, an inductance, a capacitor connected between the inductance and the field-effect transistor, and wherein the measurement resistor is connected between one of the output terminals and a node common to the capacitor and the field-effect transistor.
8. The electronic converter according to claim 7, wherein the switching converter circuit comprises an isolation transformer connected between the field-effect transistor and the diode.
9. The electronic converter according to claim 1, wherein the controller further comprises the differential amplifier block for the differential amplification of the measured voltage and outputting a differential voltage, and a voltage comparator block for comparing the differential voltage with a reference voltage and generating an error voltage, the control voltage generator block forming a rectangular wave with a duty cycle proportional to the value of the error voltage.
10. Electronic converter according to claim 1, wherein the switching converter circuit of the electric current conversion stage comprises a pair of input terminals and a pair of output terminals, a first field-effect transistor connected to one of the input terminals a second field-effect transistor, an inductance, a capacitor connected between the inductance and the second field-effect transistor, and wherein the measurement resistor is connected between one of the output terminals and a node common to the capacitor and to the second field-effect transistor.
11. An LED light source comprising at least a LED a body and the electronic converter according to claim 1, wherein said electronic converter is housed in said body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further characteristics and advantages of the present invention will be more apparent from the following description, solely provided by way of example, with reference to the attached figures, wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
BEST EMBODIMENT OF THE INVENTION
(13) The idea on which the present invention is based is to provide an electronic converter comprising a stage of converting electric current from constant electric current to constant electric current, or from constant electric current to a constant voltage, said electronic converter being dimmable.
(14) A similar electronic converter, capable of providing a constant electric current output, particularly applies to use in the power supplying of a light source, and even more particularly, a LED light source. Such electronic converter is dual to the more common buck converter, where the expression buck converter is used to indicate a converter for switching from constant voltage to constant voltage or from constant voltage to constant electric current.
(15)
(16) In use, the electric current conversion stage 2 providesin outputa constant electric current to the electrical load 5, and the controller 3, controls the operation of the electric current conversion stage 2 and, thus, adjust the electric current fed to the electrical load 5.
(17) According to another embodiment of the present invention, illustrated in
(18) In use, the electric current output from the power supply unit 10 passes through the port constituted by the input terminals IN1 and IN2 of the switching converter 20 and enters into the input port constituted by the terminals IN2 and IN3 of the power supply stage 4. Such electric current enables the operation of the power supply stage 4 which, in turn, will be capable of generating the power supply for the controller 3.
(19) According to a further embodiment of the present invention, the electric current conversion stage 2 of the electronic converter 1 may comprise an input filter 22 connected to the switching converter circuit 20 and to the power supply stage 4 of the controller 3.
(20) The input filter 22 is particularly suitable, in use, to be connected in series to the output of a power supply unit 10 with a constant electric current output, for example, but not limitedly, a control gear, or a power supply unit for LED light sources.
(21) In use, the input filter 22 enables eliminating the high frequency absorptions present at the input port of the electronic converter 1 comprising the terminals IN+ and IN.
(22) The switching converter circuit 20 of the electric current conversion stage 2, in the embodiment illustrated in
(23) The switching converter circuit 20 further comprises a pair of control terminals V.sub.G, V.sub.S particularly suitable to receive a control signal coming from the controller 3.
(24) The switching converter circuit 20 comprises a diode 28 connected both to one of the input terminals IN1 and to the field-effect transistor 30, preferably a MOSFET, even more preferably an n-channel MOSFET.
(25) The switching converter 20 further comprises an inductance 32, and another capacitor 34 connected between the inductance 32 and one of the input terminals IN2 to which the MOSFET 30 is also connected. Lastly, the switching converter comprises a measurement resistor 36 connected between one of the output terminals OUT of the switching converter and the node common to the capacitor 34 and the MOSFET 30, particularly suitablein usefor measuring an electric current I.sub.LED, or an electric current output from the switching converter circuit 20 of the power stage 2.
(26) The input filter 22, in the embodiment illustrated in
(27) With particular reference to
(28) The controller 3 further comprises a differential amplifier block 40 particularly suitable, in use, for the differential amplification of the voltage that falls on the ends of the terminals OUT and IN2, and a voltage comparator block 50 for a voltage Vdiff, output from the differential amplifier block 40, with a reference voltage and generating an error voltage Ve.
(29) The controller 3 further comprises a control voltage generator block 60 at the ends of the control terminals V.sub.G and V.sub.S; such control voltage will have formed a rectangular wave with a duty cycle proportional to the value of an error voltage Ve.
(30) The controller 3 further comprises a receiving block 70 for receiving a control signal comprising a communication interface via radio and/or by cable, by way of non-limiting example, an antenna 72, and particularly suitable, in use, to manage the operation of the control voltage generator block 60 through a DIM signal.
(31) According to a particularly advantageous characteristic of the present invention, the controller 3 is capable of managing the electric current conversion, or adjusting the duration of the MOSFET 30 switching ON time, so as to obtain a splitting of the electric current I.sub.LED output from the block 20.
(32) The power supply stage 4 of the controller 3 includes a constant electric current to constant voltage converter circuit, particularly suitable to be connected, in use, in series to the output of the control gear 10.
(33) With reference to the embodiment illustrated in
(34) The power supply stage 4 further comprises an inductor 46 connected to the diode 44 and to one of the output terminals (VDC+), and a capacitor 48 connected between the inductor 46 and one of the input terminals (IN3).
(35) Thanks to this configuration, in use, varying the duration of the MOSFET 42 switching ON time and controlling such duration enables obtaining a direct voltage V.sub.DC between the output terminals VDC+ and VDC useful for feeding the controller 3.
(36) According to another among the embodiments of the present invention illustrated in
(37) According to another among the embodiments of the present invention illustrated in
(38) According to another among the preferred embodiments of the present invention, the switching converter circuit 20 subject of the present invention may provide for a synchronous configuration. In this configuration, illustrated in
(39) This configuration, in use, enables disconnecting the electrical load, or the light source, and inducing the control gear 10 to operate in off-load mode. Alternatively, a short circuit condition can also be generated on the output of the control gear 10. Both of these operating conditions of the control gear 10 may be used for switching the LED light source OFF.
(40) In use, the present invention enables obtaining a dimmable electronic converter 1 to be interposed between a direct electric current power supply unit and an electrical load, preferably between a LED control gear and a LED light source altering the efficiency of the entire system the least possible.
(41) With particular reference to
(42) The efficiency of the system is imperceptibly altered, in particular if the constant electric current to constant electric current switching converter is configured in a synchronous manner, or if a MOSFET 90 is used instead of the diode 28 as described previously, and in particular if it is used with D=0, or in the condition of I.sub.LED=I.sub.IN. In this case, the efficiency in the electric current conversion of the dimmable electronic converter 1 of the present invention will be close to one unit.
(43) As regards dimming, adjusting the duration of the switching ON phase of the mosfet 30 of the switching converter circuit 20, enables varying the electric current output from the electronic converter 1 of the invention according to the relation I.sub.LED=(1D)I.sub.IN.
(44) As regards the techniques for controlling the electric current I.sub.LED, or the electric current output from the switching converter circuit 20 of the electric current converter stage 2, there can be used the most common techniques already used in the switching of the type with a constant electric current output, or a reading of the electric current I.sub.LED, may be carried out by reading the voltage at the ends of the resistor 36 suitably amplified (Vdiff), which can be used as controlled quantity in a system where the control quantity is the duration of the switching ON phase of the Mosfet 30 of the switching converter circuit 20, or Ton, and the error voltage Ve is the result of the comparison of the voltage Vdiff with a reference voltage.
(45) As previously indicated, the electronic converter 1 may be used as a direct electric current to direct voltage non-isolated converter using the circuits described up to now but varying the control method, or using the output voltage between the terminals OUT+ and OUT (V.sub.LED) of the switching conversion circuit 20 as the controlled quantity, instead of the output electric current I.sub.LED.
(46) All combinations and duals of the commonly known switching topologies fall within the scope of the present invention, in particular all topologies, isolated and non-isolated, that enable obtaining a constant electric current to constant electric current or constant electric current to electric current voltage conversion.
(47) All details can be replaced by other technically equivalent elements. Likewise, the materials used as well as the shapes and contingent dimensions, may vary according to the needs without departing from the scope of protection of the claims that follow.