Voltage converter without electrolytic capacitor
Abstract
A voltage converter includes a high-frequency modulation unit including a first switching tube and a second switching tube, an inductance filtering unit including a filtering inductor, and an inverting paraphase unit. The drain of the first switching tube is connected to a DC voltage, its source connects to the drain of the second switching tube, and the source of the second switching tube is earthed. The grids of the first and second switch tubes are respectively connected to two-path anti-phased PWM pulse signals. The front end of the filtering inductor is connected to the source of the first switching tube. The inverting paraphase unit, with its input terminal connected to the back end of the filtering inductor, is configured for invertedly converting a half-wave pulse voltage output from the back end of the filtering inductor to a sine AC voltage.
Claims
exact text as granted — not AI-modifiedWhat is claimed is:
1 . A voltage converter, comprising:
a MCU controlling unit; a high-frequency modulation unit comprising a first switching tube and a second switching tube, wherein the source of the first switching tube is connected to the drain of the second switching tube, and the grids of the first and second switching tubes are respectively connected to the MCU controlling unit by means of which two-path anti-phased PWM pulse signals are output; an inductance filtering unit comprising a filtering inductor, wherein the front end of the filtering inductor is connected to the source of the first switching tube, and the voltage of the back end of the filtering inductor is reduced to a preset value by adjusting a duty ratio of the two-path PWM pulse signals respectively loaded on the grids of the first and second switching tubes.
2 . The voltage converter as claimed in claim 1 , further comprising an inverting paraphase unit, wherein the inverting paraphase unit comprises a control terminal connected to the MCU controlling unit and an input terminal connected to the back end of the filtering inductor, and wherein the inverting paraphase unit is configured for invertedly converting a half-wave pulse voltage outputted from the back end of the filtering inductor to a sine AC voltage.
3 . The voltage converter as claimed in claim 2 , further comprising an AC input unit for being connected to a mains voltage, wherein the MCU controlling unit controls a conversion frequency of the inverting paraphase unit according to the phase of the mains voltage in such a way that the inverting paraphrase unit outputs the sine AC voltage having the same phase as the mains voltage.
4 . The voltage converter as claimed in claim 3 , further comprising an AC sampling unit, wherein the AC sampling unit comprises an input terminal connected to the AC input unit and an output terminal connected to the MCU controlling unit; the AC sampling unit is configured for collecting a voltage value and a phase of the mains voltage and then transmitting to the MCU controlling unit; and wherein the MCU controlling unit is configured for determining whether the mains voltage exceeding a preset value according to the voltage value collected by the AC sampling unit; if the preset value is exceeded, the two-path anti-phased PWM pulse signals are respectively loaded to the grid of the first switching tube and the grid of the second switching tube; if the preset value isn't exceeded, the first switching tube is maintained to on-switched situation; and controlling the conversion frequency of the inverting paraphase unit according to the phase of the mains voltage collected by the AC sampling unit in such a way that the inverting paraphase unit outputs the sine AC voltage having the same phase as the mains voltage.
5 . The voltage converter as claimed in claim 4 , wherein the AC sampling unit comprises an operational amplifier and a comparator, two input terminals of the operational amplifier respectively connected to the live and zero lines of the AC input unit via their corresponding current-limiting resistors, and the output terminal of the operational amplifier connected to the MCU controlling unit so that the voltage value of the mains voltage is obtained after the MCU controlling unit calculating a voltage signal output from the operational amplifier.
6 . The voltage converter as claimed in claim 5 , wherein the output terminal of the operational amplifier is also connected to an anti-phased terminal of a comparator, the in-phased terminal of the comparator is connected to a reference voltage, the output terminal of the comparator is connected to the MCU controlling unit, and the MCU controlling unit is configured for obtaining the phase of the mains voltage according to the voltage signal output from the comparator.
7 . The voltage converter as claimed in claim 1 , wherein the drain of the first switching tube connected to a DC voltage, and the source of the second switching tube earthed.
8 . The voltage converter as claimed in claim 1 , wherein the back end of the filtering inductor is connected to a voltage sampling unit, with the output terminal of the voltage sampling unit connected to the MCU controlling unit, the voltage sampling unit is configured for collecting the DC voltage outputted from the back end of the filtering inductor and then transmitting to the MCU controlling unit.
9 . The voltage converter as claimed in claim 1 , wherein the long-life intelligent step-down conversion device further comprises a current sampling unit comprising a current transformer, the primary winding of the current transformer is connected between the front end of the filtering inductor and the source of the first switching tube, a current signal of the secondary winding of the current transformer is rectified and then transmitted to the MCU controlling unit, the MCU controlling unit controls the first and second switching tubes cut-off when the current signal of the secondary winding of the current transformer exceeds the preset value.
10 . The voltage converter as claimed in claim 2 , wherein the inverting paraphase unit comprises an inverter bridge consisting of a third switching tube, a fourth switching tube, a fifth switching tube and a sixth switching tube, all the grid of the third switching tube, the grid of the fourth switching tube, the grid of the fifth switching tube and the grid of the sixth switching tube are connected to the MCU controlling unit, the MCU controlling unit is configured for controlling the third switching tube, the fourth switching tube, the fifth switching tube and the sixth switching tube on-switched or off-switched in order to the inverting paraphase unit output the sine AC voltage.
11 . The voltage converter as claimed in claim 3 , further comprising a rectifying and filtering unit, wherein the rectifying and filtering unit comprises an input terminal connected to the output terminal of the AC input unit and an output terminal connected to the drain of the first switching tube, and wherein the rectifying and filtering unit is configured for rectifying and filtering the mains voltage and then forming the DC voltage to load into the drain of the first switching tube.Join the waitlist — get patent alerts
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