Axial field rotary energy device having pcb stator and variable frequency drive
US-2024429765-A1 · Dec 26, 2024 · US
US9742336B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9742336-B2 |
| Application number | US-201414205614-A |
| Country | US |
| Kind code | B2 |
| Filing date | Mar 12, 2014 |
| Priority date | Mar 13, 2013 |
| Publication date | Aug 22, 2017 |
| Grant date | Aug 22, 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.
A power converter and an air conditioner having the same, in which the power converter includes a rectifying unit configured to rectify an input AC current and an interleave converter that has a plurality of converters and that is configured to convert rectified output from the rectifying unit to DC power and output the converted DC power. The power converter also includes a capacitor connected to an output terminal of the interleave converter, and a converter controller configured to control the interleave converter. The converter controller controls the interleave converter by calculating a load level of both terminals of the capacitor and changing a number of operating converters in the plurality of converters of the interleave converter based on the determined load level of both terminals of the capacitor.
Opening claim text (preview).
What is claimed is: 1. A power converter comprising: a rectifying unit configured to rectify an input AC current; an interleave converter (i) that has a plurality of converters that includes a first converter and a second converter and (ii) that is configured to convert rectified output from the rectifying unit to DC power and output the converted DC power; a capacitor connected to an output terminal of the interleave converter; a converter controller configured to control the interleave converter by calculating a load level of both terminals of the capacitor and changing a number of operating converters in the plurality of converters of the interleave converter based on the calculated load level of both terminals of the capacitor; an inverter connected between the capacitor and a motor and configured to convert the converted DC power to AC power and output the AC power to the motor; an output current detector configured to detect an output current flowing through the motor; and an inverter controller configured to control the inverter based on the detected output current, wherein the first converter in the interleave converter includes a first switching element of a first type and the second converter in the interleave converter includes a second switching element of a second type having a rated voltage higher than the first type, wherein the converter controller is configured to: operate only the first converter based on a calculation that the load level of both terminals of the capacitor is lower than a first electric power level to cause the power converter to operate according to a first load vs. operation efficiency curve, operate the first converter and the second converter based on a calculation that the load level of both terminals of the capacitor is higher than the first electric power level to cause the power converter to operate according to a second load vs. operation efficiency curve, and reduce the first electric power level based on a maximum load level of both terminals of the capacitor being less than a predetermined load level, and wherein the inverter controller further comprises: a speed calculator to calculate a speed of the rotor based on the detected output current; a current command generator to generate a current command value based on the speed of the rotor and a target speed; a voltage command generator to calculate a voltage command value based on the current command value; and a switching control signal output unit to output a switching control signal for driving the inverter based on the voltage command value. 2. The power converter of claim 1 , wherein the converter controller is configured to control operation of the first switching element of the first converter based on a calculation that the load level of both terminals of the capacitor is lower than the first electric power level, and control operation of the first switching element of the first converter and a second switching element of the second converter based on a calculation that the load level of both terminals of the capacitor is higher than the first electric power level. 3. The power converter of claim 2 , wherein the converter controller is configured to control the first and second switching elements of the first and second converters to perform interleaved operation based on a calculation that the load level of both terminals of the capacitor is higher than the first electric power level. 4. The power converter of claim 1 : wherein the first converter in the interleave converter includes: a first inductor connected to the rectifying unit, a first diode connected to the output terminal of the interleave converter, and the first switching element connected in parallel between the first inductor and the first diode, and wherein the second converter in the interleave converter includes: a second inductor connected to the rectifying unit, a second diode connected to the output terminal of the interleave converter, and the second switching element connected in parallel between the second inductor and the second diode. 5. The power converter of claim 4 , further comprising a voltage detector configured to detect a voltage at both terminals of the capacitor, and wherein the converter controller is configured to calculate a load connected to the power converter based on at least one of current flowing to the first inductor in the first converter or current flowing to the second inductor in the second converter and the detected voltage at both terminals of the capacitor, and control operation of the interleave converter based on the calculated load. 6. The power converter of claim 1 , further comprising a voltage detector configured to detect a voltage at both terminals of the capacitor, and wherein the converter controller is configured to control operation of the interleave converter based on the detected voltage at both terminals of the capacitor. 7. The power converter of claim 1 , wherein the converter controller includes a first converter controller that is configured to control the first converter, and a second converter controller that is configured to control the second converter, wherein the first converter controller is configured to calculate the load level of both terminals of the capacitor, wherein the first converter controller is configured to control a turn on timing or a turn off timing of the first switching element in the first converter based on the calculated load level being lower than the first electric power level, and wherein the first converter controller is configured to output the calculated load level to the second converter controller based on the calculated load level being higher than the first electric power level, and the second converter controller is configured to control a turn on timing or a turn off timing of the second switching element in the second converter. 8. A power converter comprising: a rectifying unit configured to rectify an input AC current; an interleave converter that has a plurality of converters and that is configured to convert rectified output from the rectifying unit to DC power and output the converted DC power, the plurality of converters including a first converter that includes a first switching element of a first type and a second converter that includes a second switching element of a second type having a rated voltage higher than the first type; a converter controller configured to control the interleave converter; an inverter connected between the capacitor and a motor and configured to convert the converted DC power output from the interleave converter to AC power and output the AC power to the motor; an output current detector configured to detect an output current flowing through the motor; and an inverter controller configured to control the inverter based on the detected output current, wherein the converter controller is configured to: operate only the first converter based on a calculation that a load level of an output terminal of the interleave converter is lower than a first electric power level to cause the power converter to operate according to a first load vs. operation efficiency curve, operate the first converter and the second converter based on a calculation that the load level of the output terminal of the interleave converter is higher than the first electric power level to cause the power converter to operate according to a second load vs. operation efficiency curve, and reduce the first electric power level based on a maximum load level of the output terminal of the interleave convertor being less than a predetermined load level, and wherein the inverter controller further comprises: a speed calculator to calculate a sp
using DC to AC converters or inverters (H02P27/05 takes precedence) · CPC title
using discharge tubes without control electrode or semiconductor devices without control electrode · CPC title
Mechanical Engineering · mapped topic
in a biphase or polyphase arrangement (voltage multipliers H02M7/19) · CPC title
Arrangement or mounting of control or safety devices · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.