WO2023212301A1 - Multi-phase power converter with current matching - Google Patents
Multi-phase power converter with current matching Download PDFInfo
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- WO2023212301A1 WO2023212301A1 PCT/US2023/020376 US2023020376W WO2023212301A1 WO 2023212301 A1 WO2023212301 A1 WO 2023212301A1 US 2023020376 W US2023020376 W US 2023020376W WO 2023212301 A1 WO2023212301 A1 WO 2023212301A1
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Classifications
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M3/00—Conversion of DC power input into DC power output
- H02M3/02—Conversion of DC power input into DC power output without intermediate conversion into AC
- H02M3/04—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters
- H02M3/10—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M3/145—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M3/155—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only
- H02M3/156—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators
- H02M3/158—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators including plural semiconductor devices as final control devices for a single load
- H02M3/1584—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators including plural semiconductor devices as final control devices for a single load with a plurality of power processing stages connected in parallel
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M1/00—Details of apparatus for conversion
- H02M1/0003—Details of control, feedback or regulation circuits
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M1/00—Details of apparatus for conversion
- H02M1/0003—Details of control, feedback or regulation circuits
- H02M1/0009—Devices or circuits for detecting current in a converter
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M1/00—Details of apparatus for conversion
- H02M1/0043—Converters switched with a phase shift, i.e. interleaved
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M1/00—Details of apparatus for conversion
- H02M1/14—Arrangements for reducing ripples from DC input or output
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M3/00—Conversion of DC power input into DC power output
- H02M3/02—Conversion of DC power input into DC power output without intermediate conversion into AC
- H02M3/04—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters
- H02M3/10—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M3/145—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M3/155—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only
- H02M3/156—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators
- H02M3/1563—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators without using an external clock
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M3/00—Conversion of DC power input into DC power output
- H02M3/02—Conversion of DC power input into DC power output without intermediate conversion into AC
- H02M3/04—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters
- H02M3/10—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M3/145—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M3/155—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only
- H02M3/156—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators
- H02M3/158—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators including plural semiconductor devices as final control devices for a single load
- H02M3/1584—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators including plural semiconductor devices as final control devices for a single load with a plurality of power processing stages connected in parallel
- H02M3/1586—Conversion of DC power input into DC power output without intermediate conversion into AC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of output voltage or current, e.g. switching regulators including plural semiconductor devices as final control devices for a single load with a plurality of power processing stages connected in parallel switched with a phase shift, i.e. interleaved
Definitions
- the present disclosure generally relates to multi-phase power converters, and more specifically to current matching in multi-phase power converters using ripple analysis.
- Multi-phase DC-DC converters have become widely used in high power or high current applications. While multi-phase buck converters have been widely used, in recent years multi-phase boost converters have started to become more common. However, multi-phase boost converters that use peak current mode regulation tend to self-mismatch because the detected peak current in the respective switches occurs when the output voltage is at a minimum.
- phase matching solutions are not power efficient, accurate and cheap, and often require measuring the individual phase currents and use a sharing analog bus prone to noise peaking.
- the measurement of the phase current is dissipative most of the time, or otherwise bulky and expensive.
- the voltages involved in matching are very small, are often differential, and superimposed on a high common mode.
- the individual measurements are trimmed similarly, or use expensive low tolerance devices.
- phase matching solution may avoid the above drawbacks, and may not need phase measurement or tuning of individual converters, may be included inside the individual converter, may work without a sharing bus, may use the same path for all the relevant signals, may not rely on component accuracy, and/or may provide redundancy.
- an apparatus may include a control circuit to control a first phase of a power converter having a plurality of phases to output a plurality of respective phase currents, and a phase matching circuit to generate a corrective signal based on an output ripple voltage of the power converter.
- the phase matching circuit may include a DC removal circuit to receive the output ripple voltage, remove a DC component of the output ripple voltage, and output an AC component of the output ripple voltage, a differentiator circuit to determine a differential of the AC component of the output ripple voltage, a summing circuit to sum the differential of the AC component of the output ripple voltage and the AC component of the output ripple voltage and output a summed output voltage, a phase inception detector to detect, based on the summed output voltage, when each phase of the plurality of phases begins generating its respective phase current, and output a phase detector signal, a discriminator circuit to extract, based on the phase detector signal, a signal proportional to a first phase current of the plurality of respective phase currents, the first phase current generated by a first phase of the plurality of phases, and either remaining phase currents of the plurality of respective phase currents, the remaining phase currents generated by the plurality of phases other than the first phase, or the total phase currents of the plurality of respective phase currents, and an averaging filter to
- the discriminator circuit may include a first switch to couple the summed output voltage to the averaging filter based on the extracted signal proportional to the first phase current, and a second switch to couple the summed output voltage to the averaging filter based on the extracted signal proportional to the remaining phase currents.
- the phase matching circuit may also include an error amplifier to output the corrective signal based on a difference between the first voltage and the second voltage.
- the phase inception detector may include a comparator to detect spikes of the summed output voltage and output the phase detector signal based on the detected spikes.
- the phase matching circuit may also include a monostable circuit to output a phase identifier pulse based on the phase detector signal, wherein the discriminator circuit is to extract the signal proportional to the first phase current and the signal proportional to the remaining phase currents based on the phase identifier pulse.
- a phase matching circuit to generate a corrective signal based on an output ripple voltage of a power converter having a plurality of phases to output a plurality of respective phase currents.
- the phase matching circuit may include a DC removal circuit to receive the output ripple voltage, remove a DC component of the output ripple voltage, and output an AC component of the output ripple voltage, a differentiator circuit to determine a differential of the AC component of the output ripple voltage, a summing circuit to sum the differential of the AC component of the output ripple voltage and the AC component of the output ripple voltage and output a summed output voltage, a phase inception detector to detect, based on the summed output voltage, when the respective phases of the plurality of phases begins generating its respective phase current, and output a phase detector signal, a discriminator circuit to extract, based on the phase detector signal, a signal proportional to the first phase current of the plurality of respective phase currents, the first phase current generated by a first phase of the plurality of
- the discriminator circuit may include a first switch to couple the summed output voltage to the averaging filter based on the extracted signal proportional to the first phase current, and a second switch to couple the summed output voltage to the averaging filter based on the extracted signal proportional to the total phase currents.
- the phase matching circuit may also include an error amplifier to output the corrective signal based on a difference between the first voltage and the second voltage.
- a phase matching circuit to generate a corrective signal based on an output ripple voltage of a power converter having a plurality of phases to output a plurality of respective phase currents.
- the phase matching circuit may include a DC removal circuit to receive the output ripple voltage, remove a DC component of the output ripple voltage, and output an AC component of the output ripple voltage, a phase inception detector to detect, based on the AC component of the output ripple voltage, when the respective phases of the plurality of phases begins generating its respective phase current, and output a phase detector signal, a discriminator circuit to extract, based on the phase detector signal, a signal proportional to the first phase current of the plurality of respective phase currents, the first phase current generated by a first phase of the plurality of phases, and a signal proportional to the remaining phase currents of the plurality of respective phase currents, the remaining phase currents generated by the plurality of phases other than the first phase, and an averaging filter to output a first voltage proportional to
- the discriminator circuit may include a first switch to couple the AC component of the output ripple voltage to the averaging filter based on the extracted signal proportional to the first phase current, and a second switch to couple the AC component of the output ripple voltage to the averaging filter based on the extracted signal proportional to the remaining phase currents.
- the phase matching circuit may also include an error amplifier to output the corrective signal based on a difference between the first voltage and the second voltage.
- a phase matching circuit to generate a corrective signal based on an output ripple voltage of a power converter having a plurality of phases to output a plurality of respective phase currents.
- the phase matching circuit may include a DC removal circuit to receive the output ripple voltage, remove a DC component of the output ripple voltage, and output an AC component of the output ripple voltage, a phase inception detector to detect, based on the AC component of the output ripple voltage, when the respective phases of the plurality of phases begins generating its respective phase current, and output a phase detector signal, a discriminator circuit to extract, based on the phase detector signal, a signal proportional to the first phase current of the plurality of respective phase currents, the first phase current generated by a first phase of the plurality of phases, and a signal proportional to the total phase currents of all of the plurality of respective phase currents, including the first phase current, and an averaging filter to output a first voltage proportional to an average of the first phase current and output
- the discriminator circuit may include a first switch to couple the AC component of the output ripple voltage to the averaging filter based on the extracted signal proportional to the first phase current, and a second switch to couple the AC component of the output ripple voltage to the averaging filter based on the extracted signal proportional to the total phase currents.
- the phase matching circuit may also include an error amplifier to output the corrective signal based on a difference between the first voltage and the second voltage.
- a method may include receiving an output ripple voltage of a power converter having a plurality of phases to output a plurality of respective phase currents, removing a DC component of the output ripple voltage, and outputting an AC component of the output ripple voltage, detecting when respective ones of the plurality of phases begins generating its respective phase current, and outputting a phase detector signal at least partially in response to the detection, extracting, based on the phase detector signal, a signal proportional to the first phase current of the plurality of respective phase currents, the first phase current generated by the first phase of the power converter, and a signal proportional to either (i) remaining phase currents of the plurality of respective phase currents, the remaining phase currents generated by the plurality of phases other than the first phase, or (ii) total phase currents of the plurality of respective phase currents, the total phase currents generated by all phases of the plurality of phases, outputting a first voltage proportional to an average of the first phase current and output a
- FIG. 1 is diagram of a multi -phase boost converter having individual phase matching circuits according to various examples.
- FIG. 2 is a diagram of a phase matching circuit and a control circuit of a multiphase boost converter that detects inception of respective phases of the multi-phase boost converter based on one or more signals from the respective phases according to various examples.
- FIG. 3 is a diagram of a phase matching circuit and a control circuit of a multiphase boost converter that detects inception of respective phases of the multi-phase boost converter based on the output ripple voltage according to various examples.
- FIG. 4 is a diagram showing multiple variations of the phase matching circuit and control circuit of FIG. 2 that may use various representations of the output ripple voltage to generate a correction signal for the control circuit.
- FIG. 5 is a diagram showing multiple variations of the phase matching circuit and control circuit of FIG. 3 that may use various representations of the output ripple voltage to detect inception of respective phases of the multi-phase boost converter and to generate a correction signal for the control circuit.
- FIG. 6 is a waveform diagram showing multiple waveforms of signals of a phase matching circuit according to various examples.
- FIG. 7 is a diagram of a multi -phase boost converter according to various examples.
- FIG. 8 is a flow chart showing a method of controlling a multi -phase power converter according to various examples.
- FIG. 9 is a flow chart showing a method of controlling a multi-phase power converter one or more representations of an output ripple voltage of the multi-phase converter.
- a multi-phase boost converter may include a phase synchronization circuit 120, which is coupled to and controls the timing of the output of a series of converters 0 to ‘n’ 100a, 100b, . . . lOOn representing different phases, for example, by setting the duty cycle start moment for each of the converters.
- the individual converters 0 to ‘n’ 100a, 100b, . . . lOOn may respectively include a modulation control circuit, which in this example is shown as a pulse width modulation (PWM) control circuit 125a, 125b, . . . 125n, coupled to a switch (shown in FIG. 1 as a FET), 105a, 105b, . .
- PWM pulse width modulation
- phase currents may be summed in one or more output capacitors C for delivery to a load.
- FIG. 1 shows an example of a multi-phase boost converter, in which respective converters 0 to ‘n’ 100a, 100b, . . . lOOn include a phase matching circuit 101a, 101b, . . . lOln to receive an output ripple voltage, determine a corrective signal based on the output ripple voltage, and use the corrective signal to modify the output phase current to match the other output phase currents of the other converters. While FIG. 1 shows a multi-phase boost converter in which the respective converters include a phase matching circuit, according to various examples, a phase matching circuit may not be included in the respective converters of the multi-phase boost converter.
- the respective converters lOOa-lOOn may output an output phase current to a phase matching circuit that may provide a corrective signal to the respective converters.
- the produced output ripple voltage has two relevant components, an integral one due to the capacitance and a proportional one due to the equivalent series resistance (ESR) of the output capacitor C
- ESR equivalent series resistance
- the respective converters 100a, 100b, . . . lOOn inside the multi-phase converters may analyze the common output ripple voltage and discriminate between the peaks generated by itself and the peaks produced by the other phases. Therefore, by computing the average of its own estimated current and the average of the other estimated currents, the respective phase converter can adjust its output so that all phases will be matched. This approach provides redundancy because, if one phase disappears, the other phases will still compare the current generated by itself with the average of the other currents and adjust itself to obtain a new matching output phase current based on the output phase currents of the remaining phases.
- FIG. 2 shows a phase matching circuit 101a and control circuit 125a of a multiphase converter according to various examples.
- the phase matching circuit 101a may cause the output phase currents of the individual converters to match.
- the phase matching circuit 101a may include a DC removal circuit 200 to remove the DC component of the output ripple voltage on the output capacitor C (see FIG. 1), which is coupled in parallel to a load. After the DC component of the output voltage is removed, the remaining AC component is output to a discriminator circuit 210, described further below.
- the phase matching circuit 101a may also include a phase inception detector 205 that detects when the respective phases begin generating current in the output capacitor C, and outputs a phase detector signal at least partially in response to the detection.
- the phase inception detector 205 may receive phase inception signals from the respective converters lOOa-lOOn indicating when the respective converters began generating current in the output capacitor C.
- the discriminator circuit 210 may extract, based on the phase detector signal received from the phase inception detector 205 and the output of the DC removal circuit 200, a first phase current of the plurality of respective phase currents generated by a first phase of the power converter (i.e., from converter phase switch 105a), and output the first phase current to averaging filter 215.
- the discriminator circuit 210 may also extract the remaining phase currents of the plurality of respective phase currents (not including the first phase current) or the total phase currents (including the first phase current) and output the extracted remaining phase currents to averaging fd ter 215.
- the phase matching circuit 101a may also include an averaging filter 215 to receive the extracted first phase current from discriminator circuit 210, and either the remaining phase currents (not including the first phase current) from discriminator circuit 210 or the total phase currents (including the first phase current).
- the averaging filter 215 may output a first voltage proportional to the average of the first phase current, and output a second voltage proportional to the average of the remaining phase currents or the total phase currents.
- the phase matching circuit 101a may also include a phase error amplifier 220 to receive the first and second voltages output by the averaging filter 215.
- the phase error amplifier 220 may output a corrective signal VCORR based on the difference between the first and second voltages output by the averaging filter 215.
- the control circuit 125a may receive the corrective signal VCORR output by the phase error amplifier 220, and output a control signal VCTRL based at least partially on the corrective signal VCORR to control the first phase of the multi-phase converter.
- the control signal VCTRL may be used to control the switch 105a of the first converter
- FIG. 3 shows a phase matching circuit 301a and control circuit 125a of a multiphase converter according to various examples.
- the phase matching circuit 301a is similar to the phase matching circuit 101a of FIG. 2, except that the phase inception detector 305 shown in FIG. 3 receives the AC component of the output ripple voltage, which is output by the DC removal circuit 200.
- the phase inception detector 305 shown in FIG. 3 may detect when the respective phases begin generating current in the output capacitor C based on the output ripple voltage, and output a phase detector signal at least partially in response to the detection.
- the phase inception detector 305 may detect when the respective phases begin generating current in the output capacitor C based on the AC component of the output ripple voltage that is output by the DC removal circuit 200.
- FIG. 4 shows multiple variations of the phase matching circuit 101a of FIG. 2 that may use various representations of the output ripple voltage to generate a correction signal for the control circuit.
- the phase matching circuit 101a may include a differentiator circuit 400 that may differentiate the AC component of the output ripple voltage that is output by the DC removal circuit 200.
- the differentiator circuit 400 may output the differential of the AC component of the output ripple voltage to the discriminator circuit 210.
- the phase matching circuit 101a may include a summing circuit 401 that sums the differential of the AC component of the output ripple voltage and the AC component of the output ripple voltage, to output an approximation of the summed output current as a summed output voltage VO_SUM signal to the discriminator circuit 210.
- a summing circuit 401 that sums the differential of the AC component of the output ripple voltage and the AC component of the output ripple voltage, to output an approximation of the summed output current as a summed output voltage VO_SUM signal to the discriminator circuit 210.
- summing circuit 401 may be omitted.
- the approximation of the summed output voltage (VO_SUM) signal may be filtered in different ways.
- the phase inception detector 205 may receive one or more phase inception signals from the respective individual phases, which are narrow, non-overlapping pulse signals indicating when the respective phase begins outputting its output phase current to charge the output capacitor C.
- the phase inception detector 205 may receive gate drive pulse signals driving gate terminals of the respective switches 105a-105n, respective internal control logic pulse signals from the individual phases, voltage pulse signals from the drain terminals of the respective switches 105a-l 05n (though conversion from high voltage to low voltage may be used for this example), or any other pulse signals indicating when the respective phases begin outputting phase current to charge the output capacitor C.
- any of these signals may be represented as “phase inception signals” from channels or phases 1 to N.
- the phase inception detector 205 outputs a phase detector signal based on the non-overlapping pulse signals received from the respective individual phases indicating when the respective phase begins outputting its output phase current.
- the phase inception detector 205 may include an OR gate 205A to receive the phase inception signals, detect when individual phases begin outputting phase current based on the received phase inception signals, and output a phase detector signal.
- the phase detector signal may be received by the discriminator circuit 210, as described below.
- the phase matching circuit 101a may include a monostable (“one shot”) circuit 402 may be used in some examples to ensure a uniform length of the phase identifier signals.
- the monostable circuit 402 may receive the phase detector signal from the phase inception detector 205 and output a phase identifier pulse based on the received phase detector signal.
- the discriminator circuit 210 may receive the phase detector signal from the phase inception detector 205, or the phase identifier pulse from the monostable circuit 402, if applicable, and extract the pulse generated by a respective one of the individual converters lOOa-lOOn with which phase matching circuit 101a is associated, in this example, the pulse of converter 0 100a, VP0.
- the discriminator circuit 210 may include an AND gate 405 that receives the phase detector signal from the phase inception detector 205 (or the phase identifier pulse from the monostable circuit 402, if present), and the voltage at the drain of the switch (e.g., FET) 105a of the individual converter (in this example, converter 0 100a), or a pulse signal indicating when the output phase current of the respective individual converter with which phase matching circuit 101a is associated begins charging the output capacitor C, which may be in the form of various pulse signals, some examples of which are described above.
- the converter phase switch of FIG. 4 may include a conditioner circuit 705 (see FIG.
- the discriminator circuit 210 may extract the pulses VPn generated by all of the other phases 100b- lOOn, not including phase 0 100a.
- the discriminator circuit 210 may include a second AND gate 410 that receives the phase detector signal from the phase inception detector 205 (or the phase identifier pulse from the monostable circuit 402, if present), and the inverse of the output phase current of the individual converter with which phase matching circuit 101a is associated (in this example, converter phase switch 105a of converter 0 (100a)) output by an inverter 415, or the signal indicating when the output phase current of the individual converter begins charging the output capacitor.
- a second AND gate 410 that receives the phase detector signal from the phase inception detector 205 (or the phase identifier pulse from the monostable circuit 402, if present), and the inverse of the output phase current of the individual converter with which phase matching circuit 101a is associated (in this example, converter phase switch 105a of converter 0 (100a)) output by an inverter 415, or the signal indicating when the output phase current of the individual converter begins charging the output capacitor.
- the discriminator circuit 210 may include a first switch 403 that connects the summed output voltage Vo SUM signal to an averaging filter 215 when VPO is active (i.e., when the phase current is initially applied to the output capacitor C), thus obtaining a voltage proportional to the average output phase current of phase 0 when VPO is active (VavgO).
- VavgO a voltage proportional to the average output phase current of phase 0 when VPO is active
- the discriminator circuit 210 may include a second switch 404 that connects the summed output voltage Vo SUM signal, to the same or to a similar averaging filter 215 when VPn is active, thus obtaining a voltage (Vavgn) proportional to the average output phase currents of the remaining phases (100b . . lOOn) (not including phase 0), or of all phases (100a, 100b, . . . lOOn) (including phase 0), when VPn is active.
- a voltage (Vavgn) proportional to the average output phase currents of the remaining phases (100b . . lOOn) (not including phase 0), or of all phases (100a, 100b, . . . lOOn) (including phase 0), when VPn is active.
- the phase error amplifier 220 may have suitable loop compensating gain, that compares VavgO to Vavgn and outputs a corrective signal, VCORR, based on the comparison.
- the output of the phase error amplifier 220, the corrective signal named VCORR may be used to correct the output phase current of phase 0 in a suitable manner.
- the corrective signal VCORR may modify the peak current value in a peak current mode converter, the loop voltage reference, the feedback voltage, any of the loop error amplifiers or any other circuit point that can change the output voltage or current of the individual converter 0 (100a).
- the corrective signal VCORR in a control point may act in one or both directions, for example only reducing the output current/voltage but not increasing it, or both reducing or increasing the current/voltage as required.
- FIG. 5 shows multiple variations of the phase matching circuit 301a of FIG. 3 that may use various representations of the output ripple voltage to generate a correction signal for the control circuit.
- the phase matching circuit 301a may include the differentiator circuit 400 that may differentiate the AC component of the output ripple voltage that is output by the DC removal circuit 200.
- the differentiator circuit 400 may output the differential of the AC component of the output voltage to the phase inception detector 205 to (not shown in FIG. 5) detect when the respective phases begin generating current in the output capacitor C.
- the phase matching circuit 101a may include a summing circuit 401 that sums the differential of the AC component of the output ripple voltage and the AC component of the output voltage, to output an approximation of the summed output current as a summed output voltage Vo SUM signal.
- a summing circuit 401 that sums the differential of the AC component of the output ripple voltage and the AC component of the output voltage, to output an approximation of the summed output current as a summed output voltage Vo SUM signal.
- the approximation of the summed output voltage Vo SUM signal may be filtered in different ways.
- the phase inception detector 205 may include a comparator 501 that receives the summed output voltage Vo SUM signal, detects spikes of the summed output voltage Vo SUM signal that exceed a particular threshold, and outputs the phase detector signal.
- a comparator 501 may receive the summed output voltage Vo SUM signal, and the other terminal of the comparator 501 may receive a threshold voltage, such as zero volts, shown in FIG. 5.
- the comparator 501 may detect a spike of the summed output voltage VOJSUM signal, which indicates when one of the respective phases begins generating current in the output capacitor
- the comparator 501 may receive the AC component of the output ripple voltage, or the differential of the AC component of the output ripple voltage, and detect the spikes thereof in the same manner.
- the comparator 501 outputs the phase detector signal to the discriminator circuit 210, or to the monostable circuit 402, if present.
- the remainder of the phase matching circuit 301a may include components similar to those described above in connection with FIG. 4 to generate the corrective signal named VCORR to correct the output phase current of phase 0.
- FIG. 6 illustrates approximations of the example wave shapes in representative points in a four-phase circuit using a phase matching circuit according to various examples.
- the first waveform 601 in FIG. 6 shows four output phase currents (yellow, green, red, and blue) of four respective converters in a multi-phase boost converter.
- the second waveform 602 represents the ESR voltage, which is the sum of the output phase currents multiplied by the ESR.
- the third waveform 603 represents the ideal capacitor voltage, which is the integral of the current of the output capacitor C multiplied by its capacitance.
- the fourth waveform 604 represents the output ripple voltage at the output capacitor C.
- the fifth waveform 605 represents the output ripple voltage after the DC component has been removed by the DC removal circuit (200).
- the DC removal circuit 200 may remove the DC component of the output voltage and pass all frequencies of the AC component of the output voltage
- the DC removal circuit 200 may instead by a high pass filter that may remove the DC component of the output voltage and some lower frequencies of the AC component of the output voltage.
- the bottom waveforms 606 of FIG. 6 show the voltages respectively corresponding to the average first output phase current (indicated as blue) and average second output phase current (indicated as red) , and the voltage corresponding to the average of all of the output phase currents.
- the difference between the voltage corresponding to the average blue (or red) output phase current of an individual converter and the voltage corresponding to the average of all of the output phase currents of all of the converters in the multi-phase converter represents the corrective signal VCORR output by the phase error amplifier 220.
- FIG. 7 is a diagram of a multi-phase boost converter according to various examples.
- the multi -phase boost converter may include a phase matching circuit (101a) similar to the phase matching circuit shown in FIG. 4, wherein matching reference numerals are used to refer to the same components in FIGs. 4 and 7.
- the example shown in FIG. 7 corresponds to the example shown in FIG. 1, in which respective phases of the multi-phase converter includes a phase matching circuit 101 a, 101b, . . . lOln. Referring to FIG.
- the phase error amplifier 220 outputs a corrective signal VCORR, which may be summed by a summing circuit 70 with a shunt voltage from the source terminal of the FET of the converter phase acting as a switch (105a).
- the output of the summing circuit 70 is input to one input terminal of a current comparator 71.
- the shunt voltage from the source terminal of the switch 105a may be input directly to the input terminal of the current comparator 71.
- the other input of the current comparator 71 receives the output of an error amplifier 72.
- Error amplifier 72 receives at one input terminal the output voltage VOUT of the multi-phase boost converter.
- the other input terminal of the error amplifier 72 may receive a reference voltage Ref.
- the other input terminal of the error amplifier 72 may receive the output of a summing circuit 73, which may sum the reference voltage Ref and the corrective signal VCORR output from phase error amplifier 220.
- the output of the current comparator 71 is input to a logic circuit 710 that controls the switching of the switch 105 a of the converter phase 100a in order to control the output phase current of the phase at least partially based on the corrective signal VCORR.
- FIG. 8 is a flow chart showing a method of controlling a multi-phase power converter according to various examples.
- the method shown in FIG. 8 may be performed by the examples of multi-phase boost converters and phase matching circuits described above.
- the output ripple voltage of a power converter having a plurality of phases that output a plurality of respective phase currents may be received.
- the DC component of the output ripple voltage may be removed.
- it may be detected when respective ones of the plurality of phases begin generating its respective phase current, and a phase detector signal may be output.
- a signal proportional to the first phase current generated by the first phase of the multi-phase converter may be extracted.
- a signal proportional to the remaining phase currents (i.e. not including the first phase current) or the total phase current (i.e., including the first phase) may also be extracted.
- a first voltage proportional to the first phase current may be output, and a second voltage proportional to remaining phase current or total phase current may be output.
- a corrective signal based on the difference between the first and second voltages may be output.
- the first phase of the multi-phase converter may be controlled based on the corrective signal.
- FIG. 9 is a flow chart showing a method of controlling a multi-phase power converter one or more representations of an output ripple voltage of the multi-phase converter.
- the method shown in FIG. 9 may be performed by the examples of multi-phase boost converters and phase matching circuits described above.
- the output ripple voltage of a power converter having a plurality of phases that output a plurality of respective phase currents may be received.
- the DC component of the output ripple voltage may be removed.
- the AC component of the output ripple voltage may be differentiated, and the differential may be summed with the AC component of the output ripple voltage.
- a phase detector signal may be output.
- the inception of respective ones of the respective phases may detected based on phase sync pulses from the respective phases, or based on the AC component of the output ripple voltage, the differential of the AC component of the output ripple voltage, or the sum of the AC component of the output ripple voltage and the differential of the AC component of the output ripple voltage.
- the first phase current generated by the first phase of the multi-phase converter may be extracted.
- one or more of the remaining phase currents (i.e. not including the first phase current) and the total phase current i.e., including the first phase
- a first voltage proportional to the first phase current may be output, and a second voltage proportional to remaining phase current or total phase current may be output.
- a corrective signal based on the difference between the first and second voltages may be output.
- the first phase of the multi -phase converter may be controlled based on the corrective signal.
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Abstract
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Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE112023002077.9T DE112023002077T5 (en) | 2022-04-28 | 2023-04-28 | MULTI-PHASE CURRENT TRANSFORMER WITH CURRENT ADAPTATION |
| CN202380035294.9A CN119054188A (en) | 2022-04-28 | 2023-04-28 | Multiphase power converter with current matching |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202263335876P | 2022-04-28 | 2022-04-28 | |
| US63/335,876 | 2022-04-28 | ||
| US18/140,896 | 2023-04-28 | ||
| US18/140,896 US12136881B2 (en) | 2022-04-28 | 2023-04-28 | Multi-phase power converter with current matching |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2023212301A1 true WO2023212301A1 (en) | 2023-11-02 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2023/020376 Ceased WO2023212301A1 (en) | 2022-04-28 | 2023-04-28 | Multi-phase power converter with current matching |
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| WO (1) | WO2023212301A1 (en) |
Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP1313195A2 (en) * | 2001-11-20 | 2003-05-21 | Matsushita Electric Industrial Co., Ltd. | Switching power supply with parallel connected DC-DC converters |
| US20090152949A1 (en) * | 2006-06-21 | 2009-06-18 | Stmicroelectronics S.R.L. | Control device of a plurality of switching converters |
| US20110148372A1 (en) * | 2009-12-17 | 2011-06-23 | Stmicroelectronics S.R.L. | Switching voltage regulator and related feed-forward control method |
| US20170368944A1 (en) * | 2016-06-24 | 2017-12-28 | Qualcomm Incorporated | Base side vehicle identification using vehicle controller switching frequency |
| US20180048232A1 (en) * | 2016-08-09 | 2018-02-15 | California Institute Of Technology | Digital multiphase hysteretic point-of-load dc/dc converter |
| US20190058395A1 (en) * | 2017-08-21 | 2019-02-21 | University Of Central Florida Research Foundation, Inc. | Synchronous sampling dc link voltage control for microinverters |
-
2023
- 2023-04-28 WO PCT/US2023/020376 patent/WO2023212301A1/en not_active Ceased
Patent Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP1313195A2 (en) * | 2001-11-20 | 2003-05-21 | Matsushita Electric Industrial Co., Ltd. | Switching power supply with parallel connected DC-DC converters |
| US20090152949A1 (en) * | 2006-06-21 | 2009-06-18 | Stmicroelectronics S.R.L. | Control device of a plurality of switching converters |
| US20110148372A1 (en) * | 2009-12-17 | 2011-06-23 | Stmicroelectronics S.R.L. | Switching voltage regulator and related feed-forward control method |
| US20170368944A1 (en) * | 2016-06-24 | 2017-12-28 | Qualcomm Incorporated | Base side vehicle identification using vehicle controller switching frequency |
| US20180048232A1 (en) * | 2016-08-09 | 2018-02-15 | California Institute Of Technology | Digital multiphase hysteretic point-of-load dc/dc converter |
| US20190058395A1 (en) * | 2017-08-21 | 2019-02-21 | University Of Central Florida Research Foundation, Inc. | Synchronous sampling dc link voltage control for microinverters |
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