Active bootstrapped-supply generator
US-2024429816-A1 · Dec 26, 2024 · US
US2016006351A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016006351-A1 |
| Application number | US-201314376919-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jan 15, 2013 |
| Priority date | Feb 6, 2012 |
| Publication date | Jan 7, 2016 |
| Grant date | — |
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.
A power supply device for redundantly supplying power to a load comprises a first supply unit, a second supply unit, a first DC-DC converter, a second DC-DC converter, a first output switching controller, and a second output switching controller. The first and second supply units are interconnected. The first output switching controller is connected on the load side of the first DC-DC converter, and the second output switching controller is connected on the load side of the second DC-DC converter. The outputs of the output switching controllers are interconnected.
Opening claim text (preview).
1 - 21 . (canceled) 22 . A power supply device for redundantly supplying power to a load, comprising: a first supply unit and a second supply unit, wherein the first and second supply units are interconnected; a first DC-DC converter and a second DC-DC converter; and a first output switching controller and a second output switching controller, wherein the first output switching controller is connected on the load side of the first DC-DC converter and the second output switching controller is connected on the load side of the second DC-DC converter, and wherein the outputs of the output switching controllers are interconnected. 23 . The power supply device of claim 22 , further comprising a supervisory control unit for predetermining the power distribution of the output switching controllers. 24 . The power supply device of claim 23 , wherein the supervisory control unit is configured to provide symmetry of power at the output switching controllers. 25 . The power supply device of claim 23 , wherein at least one operating parameter is supplied to the supervisory control unit, and wherein the supervisory control unit is configured to influence the operation of the first and second DC-DC converters and of the first and second output switching controllers as a function of the at least one operating parameter. 26 . The power supply device of claim 22 , wherein at least two output switching controllers are connected on the load side of each of the first and second DC-DC converters. 27 . The power supply device of claim 22 , wherein each of the first and second DC-DC converters is adapted as a resonance converter. 28 . The power supply device of claim 22 , further comprising a dedicated protection unit that is connected on the line side of each of the first and second DC-DC converters and wherein the dedicated protection unit is configured to separate the respective DC-DC converter from the rest of the device circuit in the event of a predetermined overload. 29 . The power supply device of claim 22 , further comprising a dedicated DC link that is connected on the line side of each of the first and second DC-DC converters and to a supply network via a rectifier unit. 30 . The power supply device of claim 29 , wherein a connection interface of at least one DC link is configured to switch between a supply network and a supply unit using a switch. 31 . The power supply device of claim 22 , wherein the first and second DC-DC converters are connected to a shared DC link, which can be connected to a supply network via a rectifier unit. 32 . The power supply device of claim 29 , wherein the rectifier unit is connected to a supply network via a passive filter. 33 . The power supply device of claim 22 , wherein the outputs of the first and second output switching controllers are interconnected in series. 34 . The power supply device of claim 26 , wherein the outputs of the first and second output switching controllers are interconnected in parallel and wherein an additional first output switching controller is connected on the load side of the first DC-DC converter and wherein an additional second output switching controller is connected on the load side of the second DC-DC converter. 35 . The power supply device of claim 34 , further comprising a first switch unit and a second switch unit, wherein the output of the first DC-DC converter, the input of the first output switching controller and the output of the additional first output switching controller are routed to the first switch unit of the device, wherein the input of the first output switching controller is configured to switch between the output of the first DC-DC converter and the output of the additional first output switching controller using the first switch unit, wherein the output of the second DC-DC converter, the input of the second output switching controller and the output of the additional second output switching controller are routed to the second switch unit of the device, wherein the input of the second output switching controller is configured to switch between the output of the second DC-DC converter and the output of the additional second output switching controller using the second switch unit. 36 . The power supply device of claim 22 , wherein each of the first and second output switching controller is adapted as a step-down switching controller. 37 . A method for operating a power supply device of claim 35 , comprising: signaling to a control unit a connection of the input of one output switching controller to the output of an additional output switching controller by a switch unit; and activating the output switching controller connected on the load side as a decoupling diode. 38 . The method of claim 37 , further comprising predetermining a current limit for each of the first and second output switching controllers activated as a decoupling diode, wherein the current limit is set higher by at least a setting tolerance and an expected age drift than a current limit of the output switching controller connected on the line side. 39 . The method of claim 37 , further comprising setting a voltage regulating unit for each of the first and second output switching controllers activated as a decoupling diode to a value which is higher by at least a setting tolerance and an expected age drift than a maximum output voltage that is set for the output switching controller connected on the line side. 40 . The method of claim 37 , further comprising monitoring the current flow direction in the decoupling mode, and interrupting the current flow if the current flows from the output to the input of the respective output switching controller. 41 . The method of claim 37 , further comprising predetermining a maximum permitted output voltage for a voltage regulating unit of one of the first and second output switching controllers which is activated as a decoupling diode. 42 . The method of claim 37 , further comprising generating a warning signal in the decoupling mode if a current flow direction from an output to an input of a respective output switching controller is detected and/or a set maximum current value is reached, and/or if a maximum permitted output voltage is reached in an overvoltage protection mode.
Parallel operation of DC sources · CPC title
including plural semiconductor devices as final control devices for a single load · CPC title
Plural converter units in cascade (push-pull DC/DC converters with pre-regulator H02M3/3374; DC-AC converters following a DC-DC stage including a high frequency transformer H02M7/4807; DC-AC converters following a DC-DC conversion stage generating periodically varying voltages H02M7/4826) · CPC title
Efficient use of energy, e.g. using compressed air or pressurized fluid as energy carrier · CPC title
with galvanic isolation between input and output of both the power stage and the feedback loop · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.