Electric powertrain and a method of operating the same
US-2019165713-A1 · May 30, 2019 · US
US10749445B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10749445-B2 |
| Application number | US-201716463708-A |
| Country | US |
| Kind code | B2 |
| Filing date | Oct 18, 2017 |
| Priority date | Nov 24, 2016 |
| Publication date | Aug 18, 2020 |
| Grant date | Aug 18, 2020 |
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A method for regulating an AC output current of a converter having a DC voltage intermediate circuit and a semiconductor switch in a bridge circuit for converting a DC voltage of the DC voltage intermediate circuit into an AC output current. The AC output current is regulated by way of a direct hysteresis current regulation, in which an actual value of the AC output current is maintained within a hysteresis window around a set point value. Furthermore, a hysteresis width of the hysteresis window is modulated in order to adjust a frequency spectrum of the AC output current.
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The invention claimed is: 1. A method for closed-loop control of an AC output current of a power converter which converts a DC voltage of a DC voltage intermediate circuit into the AC output current, comprising: controlling the AC output current by way of a direct hysteresis closed-loop current control, with an actual value of the AC output current being kept within a hysteresis window about a set point; setting a frequency spectrum of the AC output current by modulating a hysteresis width of the hysteresis window; calculating the modulation of the hysteresis width in advance for different operating points of the power converter; and setting the modulation during operation of the power converter commensurate with the calculation in dependence upon an operating point of the power converter. 2. The method of claim 1 , wherein the modulation of the hysteresis width is calculated during operation of the power converter in dependence upon a current one of the operating points of the power converter. 3. The method of claim 1 , further comprising controlling the hysteresis width during operation of the power converter. 4. The method of claim 1 , wherein the hysteresis closed-loop current control is an SDHC (Switched Diamond Hysteresis Control) closed-loop current control. 5. The method of claim 1 , wherein the DC voltage is converted into the AC output current by a bridge circuit having semiconductor switches. 6. A method for closed-loop control of an AC output current of a power converter which converts a DC voltage of a DC voltage intermediate circuit into the AC output current, comprising: controlling the AC output current by way of a direct hysteresis closed-loop current control, with an actual value of the AC output current being kept within a hysteresis window about a set point; setting a frequency spectrum of the AC output current by modulating a hysteresis width of the hysteresis window; supplying the AC output current of the power converter to a power line filter, and modulating the hysteresis width in dependence upon an amplitude response of the power line filter, wherein the hysteresis width is modulated such that a harmonic component of the AC output current is shifted from a first frequency range into a second frequency range, with the power line filter providing greater attenuation in the second frequency range than in the first frequency range. 7. The method of claim 6 , wherein the hysteresis closed-loop current control is an SDHC (Switched Diamond Hysteresis Control) closed-loop current control. 8. The method of claim 6 , wherein the DC voltage is converted into the AC output current by a bridge circuit having semiconductor switches. 9. A power converter, comprising: a DC voltage Intermediate circuit having a high potential bus and a low potential bus and a DC voltage applied between the high potential bus the low potential bus, a plurality of semiconductor switches connected between the high potential bus and the low potential bus in a bridge circuit and converting the DC voltage into an AC output current, a hysteresis controller configured for direct hysteresis closed-loop current control of the AC output current and for keeping during said current control an actual value of the AC output current within a hysteresis window about a set point, and a modulation unit configured for modulating a hysteresis width of the hysteresis window, said modulating unit comprising a control unit storing modulation patterns that have been calculated in advance and are dependent upon an operating point of the power converter, with the control unit modulating the hysteresis width and controlling the hysteresis width during operation of the power converter commensurate with one of the modulation patterns. 10. The power converter of claim 9 , wherein the bridge circuit comprises a two level topology or a multi-level topology. 11. The power converter of claim 9 , wherein the power converter is constructed as a single phase or multi-phase power inverter or as a DC-DC converter. 12. A power converter, comprising: a DC voltage intermediate circuit having a high potential bus and a low potential bus and a DC voltage applied between the high potential bus the low potential bus, a plurality of semiconductor switches connected between the high potential bus and the low potential bus in a bridge circuit and converting the DC voltage into an AC output current, a hysteresis controller configured for direct hysteresis closed-loop current control of the AC output current and for keeping during said current control an actual value of the AC output current within a hysteresis window about a set point, and a modulation unit configured for modulating a hysteresis width of the hysteresis window, said modulation unit comprising a control unit configured to calculate the modulation of the hysteresis width commensurate with an actual operating point of the power converter during operation and to control the hysteresis width commensurate with the calculated modulation. 13. The power converter of claim 12 , wherein the bridge circuit comprises a two level topology or a multi-level topology. 14. The power converter of claim 12 , wherein the power converter is constructed as a single phase or multi-phase power Inverter or as a DC-DC converter.
Converters with outputs that each can have more than two voltages levels · CPC title
in a bridge configuration · CPC title
Arrangements for reducing harmonics from AC input or output · CPC title
using semiconductor devices only, e.g. single switched pulse inverters · CPC title
wherein the variable actually regulated by the final control device is AC (G05F1/625 takes precedence) · CPC title
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