Increasing efficiency of a switched mode power converter
US-2019058394-A1 · Feb 21, 2019 · US
US10958170B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10958170-B2 |
| Application number | US-201916366554-A |
| Country | US |
| Kind code | B2 |
| Filing date | Mar 27, 2019 |
| Priority date | Mar 27, 2019 |
| Publication date | Mar 23, 2021 |
| Grant date | Mar 23, 2021 |
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A computer program product and DC-to-DC converter comprising, an electronic switching device, an inductor coupled to the electronic switching device, a capacitor coupled to the inductor wherein the inductor and capacitor are chosen such that the resistance of the load line is greater than a gain minus the equivalent series resistance. A transient controller is communicatively coupled to the electronic switching device, wherein the transient controller has adaptive voltage positioning and wherein the transient controller sends a signal configured to initiate discharging the capacitor during a transient event.
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What is claimed is: 1. A DC-to-DC converter comprising; an electronic switching device having a high side switch and a low side switch; an inductor coupled to the electronic switching device; a capacitor coupled to the inductor; a transient controller unit (TCU) communicatively coupled to the electronic switching device; and, an adaptive voltage positioning (AVP) block coupled to the TCU, wherein the AVP block and TCU are configured to discharge the capacitor to a point where ring back in an output voltage across the capacitor is eliminated in response to a transient event before turning on the high side switch and wherein the adaptive voltage positioning block is configured to vary an output voltage with a change in a load current. 2. The DC-to-DC converter of claim 1 wherein the gain is a change in current divided by two times a weighted capacitance wherein the weighted capacitance is the capacitance multiplied by a voltage into the electronic switching device minus a voltage out of the capacitor divided by the inductance of the inductor. 3. The DC-to-DC converter of claim 1 wherein the TCU sends a signal configured to turn on the electronic switching device after the capacitor has been sufficiently discharged. 4. The DC-to-DC converter of claim 1 further comprising a proportion-integral-derivative controller (PID) communicatively coupled to the electronic switching device, wherein the TCU is communicatively coupled to the PID. 5. The DC-to-DC converter of claim 1 wherein the TCU uses a switching surface curve to determine the signal to send. 6. The DC-to-DC converter of claim 1 , wherein the high side and low side switching devices are transistors. 7. The DC-to-DC converter of claim 4 wherein the signal sent by the TCU is configured to modify an error voltage used by the PID. 8. The DC-to-DC converter of claim 4 wherein the TCU is configured to control the operation of the PID. 9. The DC-to-DC converter of claim 4 further comprising a Pulse Width Modulated signal generator (PWM) communicatively coupled to the electronic switching device, wherein the PID is communicatively coupled to the electronic switching device through the PWM and wherein the TCU is coupled to the PWM. 10. The DC-to-DC converter of claim 4 further comprising a supervisor communicatively coupled to the electronic switching device, wherein the PID is communicatively coupled to the electronic switching device through the supervisor and the TCU is coupled to the PID and the supervisor. 11. The DC-to-DC converter of claim 6 , wherein the high side and low side switching devices are metal oxide semiconductor field effect transistors (MOSFETs). 12. The DC-to-DC converter of claim 9 wherein the TCU is configured to control the operation of the PWM. 13. The DC-to-DC converter of claim 10 wherein the signal sent by the transient controller is received by the supervisor and the supervisor uses the signal to determine a control communication used to drive the electronic switching device. 14. The DC-to-DC converter of claim 12 wherein the TCU is configured to modify a gain at the PID. 15. The DC-to-DC converter of claim 13 wherein the supervisor uses information from the PID when a transient is not present. 16. The DC-to-DC converter of claim 15 wherein the information from the PID is delivered to the supervisor from a PWM. 17. A DC-to-DC converter comprising; an electronic switching device having a high side switch and a low side switch; an inductor coupled to the electronic switching element; a capacitor coupled to the inductor; a transient control unit (TCU) communicatively coupled to the electronic switching device; and an adaptive voltage positioning (AVP) block coupled to the TCU, wherein the TCU is configured to signal the AVP block to modify a load line resistance and discharge the capacitor to a point where ring back in an output voltage across the capacitor is eliminated in response to a transient event before turning on the high side switch in response to a transient and wherein the adaptive voltage positioning block is configured to vary an output voltage with a change in a load current.
including plural semiconductor devices as final control devices for a single load · CPC title
with means for compensating against rapid load changes, e.g. with auxiliary current source, with dual mode control or with inductance variation · CPC title
by dynamic converters · CPC title
for the simultaneous control of series or parallel connected semiconductor devices · CPC title
with digital control · CPC title
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