Multi-function pin for light emitting diode (led) driver
US-2015048678-A1 · Feb 19, 2015 · US
US9806609B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9806609-B2 |
| Application number | US-201514822132-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 10, 2015 |
| Priority date | Oct 16, 2014 |
| Publication date | Oct 31, 2017 |
| Grant date | Oct 31, 2017 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
Disclosed herein is a converter including a switching unit, an energy storage unit for storing energy from a direct current (DC) input voltage and then generating an output voltage according to a switching operation of the switching unit, and a switching controller for controlling the switching unit to selectively execute a first operation mode for turning on the switching unit at a fixed frequency or a second operation mode for turning on the switching unit when a voltage between one end and the other end of the switching unit reaches a zero point of a resonance waveform, wherein the switching controller includes an operation mode selection unit for selectively executing the first operation mode or the second operation mode according to whether the voltage between one end and the other end of the switching unit resonates.
Opening claim text (preview).
What is claimed is: 1. A converter, comprising: a switching unit; an energy storage unit configured to store energy from a direct current (DC) input voltage and to generate an output voltage according to a switching operation of the switching unit; and a switching controller configured to control the switching unit to selectively execute a first operation mode to turn on the switching unit at a fixed frequency or a second operation mode to turn on the switching unit, in response to a voltage between an end and another end of the switching unit reaching a zero point of a resonance waveform, wherein the switching controller comprises an operation mode selection unit comprising a selection unit configured to execute the first operation mode or the second operation mode, and an operation selection signal output unit configured to output an operation selection signal to the selection unit and to control an operation of the selection unit according to whether the voltage between the end and the another end of the switching unit resonates. 2. The converter according to claim 1 , wherein the operation mode selection unit is further configured to execute the first operation mode in a period in which a voltage between the end and the another end of the switching unit does not resonate and to execute the second operation mode in a period in which the voltage between the end and the another end of the switching unit resonates. 3. The converter according to claim 1 , wherein a voltage level of the DC input voltage is less than or equal to 50% of a voltage level of the output voltage. 4. The converter according to claim 1 , further comprising an output diode positioned between an output terminal of the converter and the energy storage unit. 5. The converter according to claim 4 , wherein the operation mode selection unit is further configured to execute the first operation mode, in response to an amplitude of the output voltage being less than a sum of the DC input voltage and a turn-on voltage of the output diode, and to execute the second operation mode, in response to the amplitude of the output voltage being greater than or equal to the sum of the DC input voltage and the turn-on voltage of the output diode. 6. The converter according to claim 1 , wherein the switching controller further comprises: a fixed frequency signal output unit configured to output a first signal of the fixed frequency; a voltage detector configured to detect the voltage between the end and the another end of the switching unit at the resonance waveform; a third signal output unit configured to compare the voltage detected by the voltage detector and a first reference voltage corresponding to the zero point of the resonance waveform, and to output a third signal according to a comparison result; and a switching driver configured to turn on the switching unit in response to the first signal when the operation mode selection unit selects the first operation mode, and to turn on the switching unit in response to the third signal when the operation mode selection unit selects the second operation mode. 7. The converter according to claim 6 , further comprising a detection resistor connected between a ground and the another end of the switching unit. 8. The converter according to claim 7 , wherein the fixed frequency signal output unit is further configured to output a second signal of the fixed frequency, and wherein the switching controller further comprises a fourth signal output unit configured to output a fourth signal using a feedback voltage corresponding to the output voltage and a detection voltage generated by the detection resistor, and a fifth signal output unit configured to output a fifth signal, in response to the second signal being input from the fixed frequency signal output unit or the fourth signal being input from the fourth signal output unit. 9. The converter according to claim 8 , wherein the switching driver is further configured to turn off the switching unit in response to the fifth signal when the operation mode selection unit selects the first operation mode, and to turn off the switching unit in response to the fourth signal when the operation mode selection unit selects the second operation mode. 10. The converter according to claim 9 , wherein the switching driver comprises: a switching control signal output unit configured to output a first switching control signal according to the first and fifth signals, in response the operation mode selection unit selecting the first operation mode, and to output a second switching control signal according to the third and fourth signals, in response to the operation mode selection unit selecting the second operation mode; and a switching driving signal output unit configured to output a switching driving signal according to the first switching control signal to turn on and off the switching unit, in response to the operation mode selection unit selecting the first operation mode, and to output a switching driving signal according to the second switching control signal to turn on and off the switching unit, in response to the operation mode selection unit selecting the second operation mode. 11. The converter according to claim 8 , wherein the fourth signal output unit comprises: a first comparator configured to compare the feedback voltage and a second reference voltage to output a comparison voltage according to a comparison result, and a second comparator configured to compare the detection voltage and the comparison voltage to output the fourth signal according to a comparison result. 12. The converter according to claim 6 , wherein the voltage detector is formed with voltage dividing resistors connected between a ground and the end of the switching unit. 13. The converter according to claim 6 , wherein the voltage detector is formed with capacitors connected between a ground and the end of the switching unit. 14. The converter according to claim 1 , wherein the switching unit comprises snubber capacitors connected in parallel. 15. A converter comprising: a switching unit; an energy storage unit configured to store energy from a direct current (DC) input voltage and to generate an output voltage according to a switching operation of the switching unit; and a switching controller configured to control the switching unit to selectively execute a first operation mode to turn on the switching unit at a fixed frequency or a second operation mode to turn on the switching unit, in response to a voltage between an end and another end of the switching unit reaching a lowest point of a resonance waveform, wherein the switching controller comprises an operation mode selection unit comprising a selection unit configured to selectively execute the first operation mode or the second operation mode, and an operation selection signal output unit configured to output an operation selection signal to the selection unit and to control an operation of the selection unit according to whether the voltage between the end and the another end of the switching unit resonates. 16. The converter according to claim 15 , wherein the operation mode selection unit is further configured to execute the first operation mode in a period in which the voltage between the end and the another end of the switching unit does not resonate and to execute the second operation mode in a period in which the voltage between the end and the another end of the switching unit resonates. 17. The converter according to claim 15 , wherein a voltage level of the DC input v
with automatic control of output voltage or current, e.g. switching regulators · CPC title
Cross-Sectional Technologies · mapped topic
in field-effect transistor switches · CPC title
Technologies improving the efficiency by using switched-mode power supplies [SMPS], i.e. efficient power electronics conversion e.g. power factor correction or reduction of losses in power supplies or efficient standby modes · CPC title
with digital control · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.