Vehicle with integrated dc-dc converter
US-2022340026-A1 · Oct 27, 2022 · US
US12316152B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12316152-B2 |
| Application number | US-202217651359-A |
| Country | US |
| Kind code | B2 |
| Filing date | Feb 16, 2022 |
| Priority date | Feb 16, 2022 |
| Publication date | May 27, 2025 |
| Grant date | May 27, 2025 |
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.
An aircraft adaptive battery charging system is provided. The adaptive battery charging system comprises: a battery system; a bidirectional converter, wherein the bidirectional converter is capable of an inverter mode and a rectifier mode; an alternating current (AC) motor; a number of controllable contactors that control electrical current between the battery system, bidirectional converter, AC motor, and a power source wherein the controllable contactors can be switched between a closed position to allow electrical current flow and an open position to prevent electrical current flow; a motor controller; a battery charging system controller configured to send control signals to the battery system, motor controller, and controllable contactors in response to system command signals; and a vehicle system controller that sends system command signals to the motor controller and battery charging system controller.
Opening claim text (preview).
What is claimed is: 1. An aircraft adaptive battery charging system that comprises: a battery system; a bidirectional converter, wherein the bidirectional converter comprises an inverter mode and a rectifier mode; an alternating current (AC) motor; a number of controllable contactors that control electrical current between the battery system, bidirectional converter, AC motor, and a power source, wherein the controllable contactors comprise a closed position that allows electrical current flow and an open position that prevents electrical current flow; a motor controller; a battery charging system controller configured to send control signals to the battery system, motor controller, and controllable contactors in response to system command signals; and a vehicle system controller that sends system command signals to the motor controller and battery charging system controller. 2. The aircraft adaptive battery charging system of claim 1 , wherein the controllable contactors further comprise: a first set of controllable contactors that connect the battery system and bidirectional converter; a second set of controllable contactors that connect the AC motor to the bidirectional converter; a third set of controllable contactors that connect the battery system to an intermediate direct current (DC) bus; a fourth set of controllable contactors that connect the bidirectional converter and the AC motor to the intermediate DC bus; a fifth set of controllable contactors that connect output terminals of the bidirectional converter to a ground AC connection port; a sixth set of controllable contactors that connects the intermediate DC bus to an aircraft DC bus; and a seventh set of controllable contactors that connect the output terminals of the bidirectional converter to an aircraft AC bus. 3. The aircraft adaptive battery charging system of claim 1 , further comprising: a propulsor mounted on a shaft extending from the AC motor; and a governor subsystem that senses shaft speed and propulsor blade pitch angle and controls propulsor blade pitch angle responsive to commands from the motor controller. 4. The aircraft adaptive battery charging system of claim 1 , wherein the AC motor is a three-phase, four-wire AC motor comprising: a set of three-phase stator windings connected to a three-phase AC bus; a neutral wire connected to an intermediate DC bus via a controllable contactor; and a rotor/shaft assembly. 5. The aircraft adaptive battery charging system of claim 1 , wherein the battery system comprises: a battery; and a battery management system comprising positive and negative terminals to deliver electrical power from the battery to a bus or receive electrical power from the bus to charge the battery. 6. The aircraft adaptive battery charging system of claim 1 , wherein the bidirectional converter is a three-phase bidirectional converter comprising a multi-level inverter with a DC filter. 7. The aircraft adaptive battery charging system of claim 1 , wherein the power source comprises: an aircraft power bus; or a ground power source. 8. A method for charging an aircraft battery, the method comprising: receiving, by an adaptive battery charging system, a system command signal, wherein the adaptive battery charging system comprises: a battery system including the aircraft battery; a battery charging system controller; and a vehicle system controller that sends the system command signal to the battery charging system controller; responsive to the system command signal: sending, by the vehicle system controller, a signal to activate the battery charging system controller; sending, by the battery charging system controller, a signal to close a first set of controllable contactors to allow electrical current between the battery system and an intermediate direct current (DC) bus, wherein the intermediate DC bus is connected to a DC power source; and responsive to the aircraft battery reaching full charge, sending, by the battery charging system controller, a signal to open closed controllable contactors. 9. The method of claim 8 , wherein the DC power source is a ground DC power source. 10. The method of claim 8 , wherein the DC power source is an aircraft DC power bus, and wherein the battery charging system controller sends a signal to close a second set of controllable contactors to allow electrical current between the aircraft DC power bus and the intermediate DC bus. 11. A method for charging an aircraft battery, the method comprising: receiving, by an adaptive battery charging system, a system command signal, wherein the adaptive battery charging system comprises: a battery system including the aircraft battery; a bidirectional converter; a motor controller; a battery charging system controller; and a vehicle system controller that sends the system command signal to the motor controller and the battery charging system controller; responsive to the system command signal: sending, by the vehicle system controller, a signal to activate the battery charging system controller and motor controller; sending, by the battery charging system controller, a signal to close a first set of controllable contactors to allow electrical current between the battery system and the bidirectional converter; sending, by the battery charging system controller, a signal to close a second set of controllable contactors to allow electrical current between the bidirectional converter and an intermediate direct current (DC) bus, wherein the intermediate DC bus is connected to a DC power source; and responsive to the aircraft battery reaching full charge, sending, by the battery charging system controller, a signal to open closed controllable contactors. 12. The method of claim 11 , wherein the DC power source is a ground DC power source. 13. The method of claim 11 , wherein the DC power source is an aircraft DC power bus, and wherein the battery charging system controller sends a signal to close a third set of controllable contactors to allow electrical current between the aircraft DC power bus and the intermediate DC bus. 14. The method of claim 11 , wherein, responsive to detection of a specified emergency condition, the bidirectional converter interrupts battery charging. 15. A method for charging an aircraft battery, the method comprising: receiving, by an adaptive battery charging system, a system command signal, wherein the adaptive battery charging system comprises: a battery system including the aircraft battery; a bidirectional converter; an alternating current (AC) motor; a motor controller; a battery charging system controller; and a vehicle system controller that sends the system command signal to the motor controller and the battery charging system controller; responsive to the system command signal: sending, by the vehicle system controller, a signal to activate the battery charging system controller and motor controller; sending, by the battery charging system controller, a signal to close a first set of controllable contactors to allow electrical current between the battery system and the bidirectional converter; sending, by the battery charging system controller, a signal to close a second set of controllable contactors to allow electrical current between the bidirectional converter and the AC motor; sending, by the battery charging system controller, a signal to close a third set of controllable contactors to allow electrical current between an intermediate direct current (DC) bus and both the bidirectional converter and AC motor, wherein the intermediate
for aircrafts · CPC title
the cycle being controlled or terminated in response to electric parameters · CPC title
Detection of fully charged condition · CPC title
including safety or protection arrangements · CPC title
in response to battery voltage · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.