WO2004070925A2 - Multi-phase buck converter with programmable phase selection - Google Patents
Multi-phase buck converter with programmable phase selection Download PDFInfo
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- WO2004070925A2 WO2004070925A2 PCT/US2004/001804 US2004001804W WO2004070925A2 WO 2004070925 A2 WO2004070925 A2 WO 2004070925A2 US 2004001804 W US2004001804 W US 2004001804W WO 2004070925 A2 WO2004070925 A2 WO 2004070925A2
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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
-
- 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
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H3/00—Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal electric working condition with or without subsequent reconnection ; integrated protection
- H02H3/08—Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal electric working condition with or without subsequent reconnection ; integrated protection responsive to excess current
Definitions
- the present invention relates to buck converters, such as multi -phase buck converters for use in low voltage/high- current applications.
- a single phase buck converter 1900 includes a high-side switch 1905, a low-side switch 1910 connected to the high- side switch at a switch node 1915, an output inductor 1920 connected to the switch node 1915, and an output capacitor 1925 connected to the output inductor 1920.
- the high-side and low-side switches 1905, 1910 are controlled by a control circuit 1930 to produce a desired output voltage across a load 1935.
- the high-side switch 1905 is initially switched on, while the low-side switch 1910 remains off. This causes a voltage drop across the output inductor 1920 of approximately (V IN - V ou ⁇ ) , which causes a current to build inside the output inductor 1920.
- the high-side switch 1905 is switched off, and the low-side switch 1910 is switched on. Since the current within the inductor 1920 cannot change instantly, sourced through switch 1910, the current continues to flow through the output inductor 1920, thereby charging the output capacitor 1925 and causing the voltage (V ou ⁇ ) across the output capacitor 1925 to rise.
- the high-side and the low-side switches 1905, 1910 may be suitably switched at appropriate times, until the voltage (V 0 ⁇ T ) across the output capacitor 1925 equals a desired output voltage, which is typically lower than the input voltage.
- the high-side and the low-side switches 1905, 1910 may be periodically controlled so that the output inductor 1920 provides an amount of current equal to the current demand of a load 1935 connected across the output capacitor 1925.
- the voltage (V ou ⁇ ) across the output capacitor 1925 remains at least approximately constant at the desired output voltage.
- a multi-phase DC-to-DC buck converter 2000 including a plurality of interleaving output phases 2005a, 2005b, 2005c, . . ., 2005n, as shown in Figure 20.
- each of the output phases 2005a, 2005b, 2005c, . . ., 2005n is assigned a respective switching arrangement, including a high-side switch, a low-side switch, and an output inductor.
- the control circuit 2010 periodically operates the output phases 2005a, 2005b, 2005c, . . ., 2005n in a time-delayed sequence.
- the conventional multiphase buck converter 2000 distributes current production across the multiple output phases 2005a, 2005b, 2005c, . . . , 2005n, thereby distributing heat generation and reducing the requirements for the output capacitor 1925, such that a smaller output capacitor 125 may be utilized.
- conventional multi-phase buck converters require a fixed number of point-to-point connections between the control circuit 2010 and the output phases 2005a, 2005b, 2005c, . . ., 2005n, conventional multi-phase buck converters do not provide a robust architecture capable of easy expandability to include any number of desired phases.
- conventional multi-phase buck converters do not optimally control the output voltage in response to a request for a lower desired output voltage or a decrease in current demand of the load 1935.
- conventional multi-phase buck converters may produce unwanted voltage spikes, which may damage circuitry connected to the output of the buck converter.
- the present invention provides a multi-phase buck converter for producing an output voltage to a load, the output voltage being produced from an input voltage in accordance with a desired voltage, the converter including an output capacitor, the output voltage being provided by the output capacitor; a plurality of output switch arrangements having respective output inductors coupled to the output capacitor, the switch arrangements being controllable to provide respective phase output currents to the output capacitor through the respective output inductors; a plurality of phase output arrangements respectively coupled to the output switch arrangements, the phase output arrangements being controllable to set the respective phase output currents supplied by the output switch arrangements; a phase control bus communicatively coupled to each of the phase output arrangements; and a phase control arrangement communicatively coupled to the phase control bus, the phase control arrangement being configured to control the phase output arrangements to set the respective phase output currents supplied by the output switch arrangements so that the output voltage approximates or is regulated to the
- an exemplary multi-phase buck converter contains no unused or redundant silicon, since the buck converter may include only those number of phase output arrangements required for a particular application.
- the engineer may design the multi-phase buck converter to include only three phase output arrangements, each of which is assigned to a respective one of the three phase outputs.
- the phase control bus e.g., a 5-wire analog bus
- the multi-phase buck converter is provided with a phase error detect arrangement configured to produce a phase error signal if a phase output arrangement is incapable of providing a phase output current to match the average inductor current of the phase output arrangements.
- the phase control arrangement is provided with a signal for detecting a defective phase and, if appropriate, may deactivate the defective phase and/or enable a back-up phase output arrangement .
- each of the -output phase arrangements operates to switch off both the high-side and low-side switches in response to a request for a lower desired output voltage (V DES ) or a decrease in current demand of the load. In this manner, the slew rate of the inductor is increased, which enhances the response time of the multiphase buck converter of the present invention and prevents disadvantageous negative currents from flowing through the output inductor and possibly damaging the power supply.
- each of the output phase arrangements includes a current sense amplifier, a resistor R cs electrically connected between the positive input of the current sense amplifier and an output inductor node, and a capacitor C cs electrically connected between the positive and negative inputs of the current sense amplifier, with the output inductor also being connected to the negative input of the current sense amplifier.
- the current flowing through the output inductor 220 may be sensed by selecting resistor R cs and capacitor C cs such that the time constant of resistor R cs and capacitor C cs equals the time constant of the output inductor 220 and its DC resistance (i.e., inductance L / inductor DCR, where DCR is the inductor DC resistance) , the voltage across capacitor.
- this embodiment of the present invention permits each of the output phase arrangements to sense the current provided to the load in a lossless manner (i.e., without interfering with the current provided to the load) .
- the phase control arrangement includes droop circuitry configured to reduce the output voltage in proportion to the current demand of the load. In this manner, this exemplary embodiment permits an efficient and simple method to adaptively modify the output voltage via adaptive voltage positioning.
- each of the phase output arrangements of the multi-phase buck converter is programable to shutdown the high-side and low-side switches of its respectively assigned output switch arrangement as a function of the output current of the multi-phase buck converter.
- the number of phase output arrangements chosen for a particular design may depend upon the need to meet thermal requirements and/or to minimize the number of input and output capacitors at maximum output current. However, at times when the output current of the buck converter is less than the maximum output current, efficiency will increase if less phase output arrangements are employed.
- phase output arrangements as the output current decreases, increases efficiency by eliminating the gate charging loses, MOSFET switching losses, and circulating currents in high-side and low-side switches, and the output inductors of each phase output arrangement .
- Each unique circuit design should turn off phase output arrangements in sequence at particular output current levels to achieve the maximum efficiency over the entire output current range.
- Figure 1 is a block diagram of an exemplary buck converter according to the present invention.
- Figure 2 is a block diagram of an output switch arrangement according to the present invention.
- Figure 3 is a block diagram showing the phase control arrangement of Figure 1 in greater detail.
- Figure 4 is a graph showing the response of an exemplary buck converter according to the present invention in response to a load-step decrease.
- Figure 5 is a block diagram showing the phase timing arrangement of Figure 3 in greater detail .
- Figure 6 is a block diagram showing the PWM arrangement of Figure 3 in greater detail .
- Figure 7 is a block diagram showing a variant of the exemplary PWM arrangement of Figure 6 configured to reduce the output voltage proportionally to an increase in load current.
- Figure 8 is a block diagram showing another exemplary phase control arrangement according to the present invention.
- Figure 9a is a graph showing an exemplary periodic charge cycle duration for an output switch arrangement.
- Figure 9b is a graph showing an output switch arrangement control in response to a request for a lower desired output voltage.
- Figure 10 is a block diagram of an exemplary phase output arrangement according to the present invention.
- Figure 11 is a block diagram of an exemplary start-time arrangement according to the present invention.
- Figure 12a is a graph showing an exemplary phase timing signal according to the present invention.
- Figure 12b is a graph showing the phase timing signal of Figure 12 offset by a set-point voltage value.
- Figure 12c is a graph showing the output of a phase time comparator .
- Figure 12d is a graph showing phase timing for eight phases with respect to a triangular phase timing signal.
- Figure 12e is a block diagram showing another exemplary start-time arrangement according to the present invention.
- Figure 13 is a block diagram showing an exemplary charge-on duration arrangement according to the present invention.
- Figure 14 is a block diagram showing an exemplary ramp generator according to the present invention.
- Figure 15 is a block diagram showing an exemplary current sense arrangement according to the present invention.
- Figure 16 is a block diagram showing an exemplary phase output arrangement according to the present invention implemented as a separate integrated circuit.
- Figure 17 is a block diagram showing the connectivity between a phase control arrangement and a plurality of phase output arrangements according to the present invention.
- Figure 18 is a block diagram showing an exemplary over- temperature detect circuit according to the present invention.
- Figure 19 is a block diagram showing a single phase buck converter according to the prior art .
- Figure 20 is a block diagram showing a multi-phase buck converter according to the prior art .
- FIG. 21 is a block diagram of a phase output arrangement employing phase shutdown circuitry according to the present invention.
- Figure 22 is a block diagram of an exemplary converter output current detect arrangement according to the present invention.
- Buck converter 100 includes phase control arrangement 105 electrically and communicatively coupled to input bus 130, phase output arrangements 110a, 110b, 110c, . . . , llOn electrically and communicatively coupled to the phase control arrangement 105 via a phase control bus 115 (e.g., a 5-wire analog bus), output switch arrangements 120a, 120b, 120c, . . ., 120n electrically and communicatively coupled to an input voltage (V IN ) and phase output arrangements 110a, 110b, 110c, . . .
- phase control bus 115 e.g., a 5-wire analog bus
- output switch arrangements 120a, 120b, 120c, . . ., 120n electrically and communicatively coupled to an input voltage (V IN ) and phase output arrangements 110a, 110b, 110c, . . .
- an output capacitor 125 electrically coupled to the output switch arrangements 120a, 120b, 120c, . . ., 120n for producing an output voltage (V oo ⁇ ) , and a load 135 electrically connected between the output voltage (V ou ⁇ ) and ground .
- the exemplary multi-phase buck converter 100 of Figure 1 may be used, for example, in applications requiring small sizes, design flexibility, various low voltage outputs, high currents and fast transient responses, and the buck converter 100 may include one or more output phases, for example, three phases, each of which may be implemented by a respective one of the phase output arrangements 110a, 110b, 110c, . . ., llOn.
- the control arrangement 105 includes circuitry configured to control the phase output arrangements 110a, 110b, 110c, . . . , llOn by communicating phase control signals via the phase control bus 115, so that the phase output arrangements 110a, 110b, 110c, . . ., llOn produce the output voltage (V ou ⁇ ) in accordance with a desired output voltage variable (V DES ) , which may be provided to the control arrangement 105 via input bus 130.
- Each of the phase output arrangements 110a, 110b, 110c, . . . , llOn includes circuitry configured to control respective output switch arrangements 120a, 120b, 120c, . . ., 120n in response to the phase control signals communicated by the control arrangement 105 via the phase control bus 115.
- the phase output arrangements 110a, 110b, 110c, . . ., llOn operate to control the respective switch arrangements 120a, 120b, 120c, . . ., 120n to produce the output voltage (V 0TJT ) in accordance with the desired output voltage variable (V DES ) .
- Output switch arrangement 12On includes a high- side switch 205 and a low-side switch 210 (e.g., transistor switches, FET switches, FET rectifier, etc) electrically connected to one another via an inductor node 215.
- the input voltage (V IN ) is electrically connected to the high- side switch 205 and a ground voltage is electrically connected to the low-side switch 210.
- the output voltage (V ou ⁇ ) is produced at an output-node side 220a of an output inductor 220, which is also electrically connected to the switch node 215.
- the high-side and low-side switches 205, 210 of switch arrangement 12On are controlled by the phase output arrangement llOn to produce the desired output voltage (V ou ⁇ ) at the output-node side 220a of the output inductor 220.
- the high-side switch 205 is initially switched on, while the low-side switch 210 remains off. This causes a voltage drop across the output inductor 220 of approximately (V IN - V ou ⁇ ) , which causes a current to build inside the output inductor 220.
- the high-side switch 205 is switched off, and the low-side switch 210 is switched on.
- the high-side and the low-side switches 205, 210 may be suitably switched controlled at appropriate times, until the voltage drop across the output capacitor 125 equals the desired output voltage (V DES ) .
- the high-side and the low-side switches 205, 210 may be periodically controlled so that the output inductor 220 provides an amount of current equal to the current demand of the load 135 connected across the output capacitor 125. By providing no more and no less than the current demand of the load 135, the voltage drop (V ou ⁇ ) across the output capacitor 125 remains approximately constant at the desired output voltage (V DES ) .
- the output phase arrangement llOn controls the high-side and low-side switches 205, 210 during a periodic charge cycle duration, which may be characterized by an assigned phase delay, a periodic start time, and a charge-on duration.
- a periodic charge cycle duration 900 for the output switch arrangement 12On including an assigned phase delay 905, a periodic start time 910, and a charge-on duration 915.
- the high-side switch 205 is switched on at the periodic start time 910, remains on during the charge-on duration 915, and is switched off at the end of the charge-on duration 915.
- the high-side switch remains off for the remainder of the periodic charge cycle duration 900.
- the low-side switch 210 is controlled such that the low-side switch 210 is switched on when the high-side switch is switched off, and vice versa. In this manner, the output inductor 220 builds up current during the charge-on duration 915 and releases at least a portion of the current after the charge-on duration 915 during the remainder of the periodic charge cycle duration 900.
- the amount of current built up in the output inductor 220 may be controlled by changing the charge-on duration 915 relative to the periodic charge cycle duration 900. For example, if the charge-on duration 915 is equal to half the periodic charge cycle duration 900 (i.e., 50% duty cycle), the switch arrangement 120n will provide the output capacitor 125 with half the maximum current of the buck converter 100. Or, for example, if the charge-on duration 915 is equal to the periodic charge cycle duration 900 (i.e., 100% duty cycle), the switch arrangement 12On will provide the output capacitor 125 with the maximum current of the buck converter 100.
- the low-side switch 210 is controlled in dichotomy with the high-side switch 205. That is, when the high-side switch 205 is switch on, the low-side switch 210 is switched off, and vice versa. In this manner, one of the high-side and low-side switches 205, 210 is on at all times. However, in response to certain operating conditions, it may be desirous to switch off both switches 205, 210.
- the output phase arrangement llOn operates to switch off both the high-side and low-side switches 205, 210 in response to the occurrence of either of two unique operating conditions: a request for a lower desired output voltage (V DES ) or a decrease in current demand of the load 135 drop (i.e., a load-step decrease).
- a request for a lower desired output voltage may cause negative inductor currents to flow through the output inductor 220.
- Negative currents transform the buck converter 100 into a boost converter by transferring energy from the output capacitor 125 to the input voltage (V IN ) . This energy may damage the power supply (not shown) and/or other components, may cause the voltage control loop to become unstable, and may result in wasted energy.
- both the high-side and low-side switches 205, 210 are turned off in response to a request for a lower desired output voltage (V DES ) . In this manner, the current built up in the output inductor 220 is discharged through the load 135, rather than through the power supply.
- the output voltage (V ou ⁇ ) across the output capacitor 125 drops. Once the output voltage (V ou ⁇ ) drops to approximately the lower desired output voltage (V DES ) , negative currents are no longer a concern, and the high-side and low-side switches 205, 210 may be operated in normal fashion.
- the high-side and low-side switches 205, 210 should be controlled to reduce the current supplied to the output capacitor 125 by the output inductor 220.
- the minimum time required to reduce the current (i.e., a current transient) in the output inductor 220 in response to a load-step decrease is governed by the following equation:
- high-side and low-side switches 205, 210 are implemented as FET rectifiers.
- the current transient i.e., the current built up inside the output inductor at the time of a load-step decrease
- the output capacitor 125 voltage will rise.
- the short- time duration voltage-spike on the output voltage V ou ⁇ ) may damage sensitive circuitry connected to the buck converter 100.
- the output phase arrangement llOn operates to switch off both the high-side and low-side switches 205, 210 (i.e., body-brake) in response to a decrease in current demand of the load 135 drop (i.e., a load-step decrease) .
- the slew rate i.e., the rate at which current may be reduced
- the switch node voltage is forced to decrease until the body diode of the FET rectifier conducts.
- the current transient built up inside the output inductor 220 during a load-step decrease condition may be drained off more rapidly, thereby causing a much less pronounced voltage spike, when compared to the prior art, as shown in Figure 4.
- the inductor current slew rate may be increased by two times or more.
- Phase output arrangement llOn includes a start-time arrangement 1005, a charge-on duration arrangement 1010, a current sense arrangement 1015 electrically coupled to the charge-on duration arrangement 1010, an S-R latch 1020 electrically coupled to the start- time arrangement 1005 and the charge-on duration arrangement 1010, and an and-gate 1025 electrically coupled to the S-R latch 1020 and the charge-on duration arrangement 1010.
- the start-time arrangement 1005 includes circuitry configured to determine the periodic start time 910 and the phase delay 905 shown in Figure 9a.
- the start-time arrangement 1005 receives a phase timing signal 1030 from the phase control arrangement 105.
- the phase timing signal 1030 may include, for example, a periodic analog signal having a period equal to the periodic charge cycle duration 900 (e.g., a periodic saw-tooth waveform, a periodic sinusoidal waveform, a periodic triangular waveform, etc).
- the start-time arrangement 1005 may determine the periodic start time 910 and the phase delay 905, and generate a periodic clock pulse 1035 at the periodic start time 910.
- the clock pulse 1035 sets the S-R latch 1020, causing the high-side switch 205 to switch on and the low-side switch 210 to switch off at the beginning of the charge-on duration 915.
- the charge-on duration arrangement 1010 includes circuitry configured to determine the charge-on duration 915, to reset the S-R latch 1020 at the end of the charge-on duration 915, and to switch of both the high-side and low- side switches 205, 210 in response to a request for a lower desired output voltage (V DES ) or a decrease in current demand of the load 135 drop (i.e., a load-step decrease) .
- the charge-on duration arrangement 1010 receives a Pulse-Width-Modulation (PWM) control signal 1040 from the phase control arrangement 105.
- PWM Pulse-Width-Modulation
- the PWM control signal 1040 may include, for example, an analog signal having a value proportional to the difference between the desired output voltage (V DES ) and the actual output voltage (V ou ⁇ ) .
- V DES desired output voltage
- V ou ⁇ actual output voltage
- the charge-on duration arrangement 1010 appropriately determines the charge-on duration 915 for the high-side and low-side switches 205, 210.
- the charge-on duration arrangement 1010 is configured to modify the charge-on duration 915 in accordance with the amount of current supplied to the output capacitor 125 by the output inductor 220.
- the charge-on duration arrangement 1010 receives a current difference signal 1050 from the current-sense arrangement 1015 characterizing the amount of current supplied by the output inductor 220 relative to the average current 1045 provided by all the output switch arrangements 120a, 120b, 120c, . . ., 120n, so that the charge-on duration arrangement 1010 may increase the charge-on duration 915 if the amount of current supplied by the output inductor 220 is less than the average current 1045 provided by all the output switch arrangements 120a, 120b, 120c, . . ., 120n. By increasing the charge-on duration 915, the output inductor 220 supplies more current to the output capacitor 125.
- the charge-on duration arrangement 1010 resets the S-R latch 1020, which causes the high-side switch 205 to switch off and the low-side switch 210 to switch on for the remainder of the periodic charge cycle duration 900.
- the charge-on duration arrangement 1010 In response to a request for a lower desired output voltage (V DES ) or a decrease in current demand of the load 135 drop (i.e., a load-step decrease), which may be determined from the PWM control signal 1040 communicated by the phase control arrangement 105, the charge-on duration arrangement 1010 operates to turn off both the high-side and low-side switches 205, 210. For this purpose, the charge-on duration arrangement 1010 resets the S-R latch 1020 and transmits a logical "0" to the and-gate 1025, thereby causing both the high-side and low-side switches 205, 210 to switch off.
- V DES desired output voltage
- a load-step decrease a decrease in current demand of the load 135 drop
- the S-R latch 1020 is reset dominant allowing all phase output arrangements 110a, 110b, 110c, . . ., llOn to go to zero duty cycle within a few tens of nanoseconds . Phases may overlap and go to 100% duty cycle in response to a load step increase with the turn-on gated by clock pulses. In this manner, this method of controlling the phase output arrangements 110a, 110b, 110c . . . , llOn provides a "single cycle transient response, " in which the output inductor 220 current changes in response to load transients within a single switching cycle, thereby maximizing the effectiveness of the power train and minimizing the requirements of the output capacitor 125.
- the current sense arrangement 1015 includes circuitry configured to generate the current difference signal 1050 for modifying the charge-on duration 915 in accordance with the current flowing through the output inductor 220 relative to the average current 1045 provided by all the output switch arrangements 120a, 120b, 120c, . . ., 120n.
- Start-time arrangement 1005 for generating the clock pulse 1035 in accordance with the periodic start time 910 and the phase delay 905.
- Start-time arrangement 1005 includes a phase timing comparator 1105 and a one-shot pulse generator 1110 electrically connected to the output of the phase timing comparator 1105.
- the phase timing signal 1030 is a periodic triangular waveform 1030 having a period equal to the periodic charge cycle duration 900 and an amplitude varying between 0 volts and 5 volts, as shown in Figure 12a.
- FIG. 12b there is seen a timing diagram showing the outputs of the phase timing comparator 1105 and the one-shot pulse generator 1110.
- the output of the phase timing comparator 1105 is equal to the phase timing signal 1030 offset by a constant set-point voltage 1115.
- the output of the phase timing comparator 1105 crosses the zero-voltage axis once in the positive direction during the periodic charge cycle duration 900 at a time equal to the phase delay 905, thereby causing the one-shot pulse generator 1110 to generate the clock pulse 1035.
- the one-shot pulse generator 1110 may be controlled to generate the clock pulse 1035 at any time during the first half 900a of the periodic phase cycle duration 900.
- the inputs to the phase timing comparator 1105 may be switched, such that the phase timing signal is provided to' the negative input of the phase timing comparator 1105 and the set-point voltage 1115 is provided to the positive input of the phase timing comparator 1105. In this manner, the outputs of the phase timing comparator 1105 and the one-shot pulse generator 1110 resemble those shown in the timing diagram of Figure 12c.
- each of the phase output arrangements 110a, 110b, 110c, . . ., llOn may be assigned a unique phase delay 905 and periodic start time 910 during the periodic phase cycle duration 900, without requiring separate point-to-point electrical connections between the phase control arrangement 105 and the phase output arrangements 110a, 110b, 110c, . . ., llOn.
- the phase output arrangements 110a, 110b, 110c, . . ., llOn are to be implemented using separate phase integrated circuits, an especially efficient and simple assignment of the phase delay 905 and periodic start time 910 for each of the phase output arrangements 110a, 110b, 110c, . . ., llOn may be effected if both inputs of the phase timing comparator 1105 are electrically connected to input pins of a respective phase integrated circuit .
- FIG. 12d there is seen a time diagram showing the outputs of respective one-shot pulse generators for an exemplary buck converter 100 according to the present invention having eight phase output arrangements 110a, 110b, 110c, . . ., HOh.
- the phase IC includes electrical contact pins 1255a and 1255b electrically connected to the inputs of the phase timing comparator 1105, respectively.
- a voltage divider is provided between a reference voltage 1270 and ground, the voltage divider comprising resistors 1265a and 1265b connected to one another at node 1260.
- resistors 1265a and 1265b By suitably selecting resistors 1265a and 1265b, a predetermined set-point voltage 1115 may be provided to the phase timing comparator 1105 via electrical contact pin 1255b.
- Charge-on duration arrangement 1010 includes charge-on duration amplifier 1305, body-brake detect amplifier 1315, a fractional multiplier 1320 electrically connected to the negative input of the body- brake detect amplifier 1315, and a ramp generator 1310 electrically coupled to the negative input of the charge-on duration amplifier 1305 and to the fractional multiplier 1320.
- the inverted output 1020a of the S-R latch 1020 asserts a logical high level "1" on the reset line of the ramp generator 1310 of the charge-on duration arrangement 1010. This causes the ramp generator 1310 to generate a constant default output voltage on ramp output line 1325 (the constant default voltage is also permanently provided on default voltage output line 1330) .
- the start-time arrangement 1005 sets the S-R latch 1020
- the high-side switch 205 is switched on and the inverted output 1020a of the S-R latch 1020 asserts a logical low level "0" on the reset line of the ramp generator 1310, causing the voltage on the ramp output line 1325 to ramp up from the default output voltage.
- the charge-on duration amplifier 1305 compares the ramp output line 1325 to the PWM control signal 1040, which, in this exemplary embodiment of the present invention, is an analog voltage signal proportional to the difference between the desired output voltage (V DES ) and the actual output voltage (V ou ⁇ ) (V DES - V ou ⁇ ) .
- the charge-on duration amplifier 1305 causes the S-R latch 1020 to reset, which causes the high- side switch 205 to switch off and causes the inverted output 1020a of the S-R latch 1020 to assert a logical high level "l" on the reset line of the ramp generator 1310 to reset the ramp output line 1325 to the default voltage.
- the charge-on duration 915 represents the time between when the start-time arrangement 1005 produces the clock pulse 1035 and when the ramp output line 1325 of the ramp generator 1310 equals the PWM control signal 1040 voltage level.
- V ou ⁇ actual output voltage
- V DES desired output voltage
- the charge-on duration arrangement 1010 may modify the charge-on duration 915 in accordance with the amount of current supplied to the output capacitor 125 by the output inductor 220.
- the ramp generator 1310 receives a current difference signal 1050 from the current-sense arrangement 1015 that characterizes the amount of current supplied by the output inductor 220 relative to the average current 1045 provided by all the output switch arrangements 120a, 120b, 120c, . . ., 12On.
- the current difference signal 1050 may provide a voltage value in proportion to the difference between the current supplied by the output inductor and the average current supplied by all the output switch arrangements 120a, 120b, 120c, . . ., 120n.
- the ramp generator 1310 may vary the rate at which the voltage at the output line 1325 ramps up, so that the rate at which the voltage at the ramp output line 1325 ramps up decreases as the difference between the current supplied by the output inductor and the average current supplied by all the output switch arrangements 120a, 120b, 120c, . . ., 120n increases.
- the amount of current supplied by the output inductor 220 is less than the average current 1045 provided by all the output switch arrangements 120a, 120b, 120c, . . . , 120n
- the reduced ramp-up rate of the voltage at the ramp output line 1325 will cause the charge-on duration 915 to increase, thereby causing the output inductor 220 to supply more current to the output capacitor 125.
- the charge-on duration arrangement 1010 is also configured to switch off both the high-side and low-side switches 205, 210 in response to a request for a lower desired output voltage (V DES ) or a decrease in current demand of the load 135 drop (i.e., a load-step decrease) .
- the fractional multiplier 1320 produces a fractional multiple (e.g., 90 %) of the default voltage of the ramp generator 1310, and provides the fractional multiple to the body-brake detect amplifier 1315.
- the body-brake detect amplifier 1315 compares the fractional multiple of the default voltage with the PWM control signal 1040 voltage level ( i . e .
- a voltage level in proportion to V DES - V ou ⁇ and generates a signal to switch off the high-side and low- side switches 205, 210 if the PWM control signal 1040 voltage level drops below the fractional multiple of the default voltage .
- the body-brake detect amplifier 1315 may switch off the high-side and low-side switches 205, 210.
- a sudden decrease in current demand of the load 135, which would cause V ou ⁇ to rise in relation to V DES may cause the PWM control signal 1040 voltage level to drop below the fractional multiple of the default voltage.
- the phase control arrangement 105 may force the PWM control signal 1040 below the fractional multiple of the default voltage in response to a request for a decrease in the desired output voltage (V DES ) , as more fully described below.
- Ramp generator 1310 includes a clamp circuit 1405 and a programmable current source 1410 electrically connected to the ramp output line 1325.
- the clamp circuit 1405 includes an operational amplifier 1415 and a clamp diode 1420, both of which operate together to force the ramp output line 1325 to the default voltage when the enable input 1415a of the operational amplifier 1415 is asserted.
- Ramp generator 1310 also includes an phase error detect amplifier 1450, a fractional multiplier 1455 electrically connected to the phase error detect amplifier 1450 and the default voltage, and a switch 1460 electrically connected to the output of the phase error detect amplifier 1450, all of which work together to generate a phase error signal 1465 if the phase output arrangement 120n is not capable of providing enough current to match the average current 1045 provided by the output switch arrangements 120a, 120b, 120c, . . ., 120n.
- the buck converter 100 may deactivate the damaged phase output arrangement 12On and/or activate a backup phase output arrangement 12On.
- the inverted output 1020a of the S-R latch 1020 asserts a logical high level "1" on the reset line of the ramp generator 1310, which enables the clamp circuit 1405, thereby clamping the voltage at the ramp output line 1325 to the default voltage.
- the high-side switch 205 is switched on and the inverted output 1020a of the S-R latch 1020 asserts a logical low level "0" on the reset line of the ramp generator 1310, which disables the clamp circuit 1405.
- the ramp capacitor 1425 receives current from V IN through the ramp resistor 1430, thereby causing the voltage at the ramp output line 1325 of the ramp generator 1310 to ramp up.
- the charge-on duration amplifier 1305 causes the S-R latch 1020 to reset, which causes the high-side switch 205 to switch off and the inverted output 1020a of the S-R latch 1020 to assert a logical high level "1" on the reset line of the ramp generator 1310, thereby causing the clamp circuit 1405 to clamp the output line 1325 to the default voltage.
- the ramp-up time of the voltage on the ramp output line 1325 of the ramp generator 1310 may be modified in accordance with the amount of current the output inductor 220 supplies to the output capacitor 125 by controlling the programmable current source 1410 with the current difference signal 1050 generated by the current sense arrangement 1015.
- the current source 1410 may be controlled to sink an amount of current from the ramp output line 1325 proportional to the difference between the current supplied by the output inductor 220 and the average current supplied by all the output switch arrangements 120a, 120b, 120c, . . ., 120n.
- sinking By removing (i.e., sinking) current from the ramp output line 1325, the ramp capacitor 1425 charges more slowly, thereby causing the voltage at the ramp output line 1325 to ramp up at a slower rate.
- the ramp-up rate of the voltage at the ramp output line 1325 will automatically compensate for changes in the input voltage V IN , which may occur, for example, due to variations in the output voltage of the power supply (not shown) or due to voltage drops in the printed circuit board (PCB) related to changes in load current .
- PCB printed circuit board
- the desired output voltage (V DES ) is used as the default voltage of the ramp generator 1310. Since the desired output voltage (V DES ) is a relatively stable voltage level produced from a D/A converter inside the phase control arrangement 105, the desired output voltage (V DES ) does not fluctuate between different phase output arrangements 110a, 110b, 110c, . . ., llOn. In this manner, differences in ground or input voltages at the phase output arrangements 110a, 110b, 110c, . . ., llOn have little or no effect on the ramp voltage output of the ramp generator 1310, since the voltage of the output line 1325 is referenced to the desired output voltage (V DES ) .
- the current supplied by the output inductor 220 may drop to a level at which the current source 1410 sinks current at a faster rate than the ramp capacitor 1425 charges.
- the ramp output signal 1325 may begin to ramp downwards in voltage, causing the phase error detect amplifier 1450 to trigger the switch 1460 and produce a phase error signal, which may be used to deactivate the damaged phase output arrangement 12On and/or activate a backup phase output arrangement 12On.
- the current sense arrangement 1015 includes circuitry configured to generate a current difference signal 1050 characterizing the difference between the current supplied by the output inductor 220 and the average current supplied by all the output switch arrangements 120a, 120b, 120c, . . ., 120n.
- he current sense arrangement 1015 includes an inductor current detection arrangement 1505 configured to produce an inductor current signal 1510 in proportion to the amount of current flowing through the output inductor 220.
- the inductor current detection arrangement 1505 includes a current sense amplifier 1515, a resistor R cs electrically connected between the positive input of the current sense amplifier 1515 and output inductor node 215, and a capacitor C cs electrically connected between the positive and negative inputs of the current sense amplifier 1515, with inductor node 220a also being connected to the negative input of the current sense amplifier 1515.
- the time constant of resistor R cs and capacitor C cs equals the time constant of the output inductor 220 (i.e., inductance L / inductor DCR)
- the voltage across capacitor C cs is proportional to the current through the output inductor 220, and the inductor current detection arrangement 1505 may be treated as if only a sense resistor with a value of RL was used.
- a mismatch of time constants does not affect the measurement of the inductor DC current, but does affect the AC component of the current flowing through the output inductor 220.
- Sensing the current flowing through the output inductor 220 may be advantageous with respect to high-side and/or low- side sensing, since the actual output current delivered to the load 135 may be obtained rather than a peak or sampled value of switch currents.
- the output voltage (V ou ⁇ ) may be positioned to meet a load line based on real time information.
- a current sense circuit according to the present invention may advantageously support a single cycle transient response.
- the current sense amplifier 1515 may be designed with a variable gain that decreases with decreasing temperature, and a nominal gain, for example, of 35 at 25 degrees Celsius and 31 at 125 degrees Celsius. This correlation of gain with temperature may compensate for a ppm/Degrees Celsius increase in the DCR of the output inductor 220.
- the current sense amplifier 1515 communicates the current difference signal 1510 to a current comparator 1520, which compares the current signal 1510 to the average inductor current 1045 of all phases to produce the current difference signal 1050 for communication to the charge-on duration arrangement 1010.
- Current average resistor 1525 is provided between the current signal 1510 and the average inductor current signal 1045. Since each of the phase output arrangements 110a,
- 110b, 110c, . . . , llOn provides a similar current average resistor between their respective current signals and the average inductor current signal 1045, the average inductor current signal 1045 exhibits a voltage in proportion to the average of the respective current signals of the phase output arrangements 110a, 110b, 110c, . . ., llOn.
- FIG 16 like components are labeled with the same reference characters as used in Figures 10 to 15. Additionally, the exemplary phase output arrangement llOn of Figure 16 provides a summation arrangement 1605 for adding the desired output voltage (VDES) level to the sensed current signal, so that the default ramp voltage may be set to the desired output voltage (V DES ) level.
- VDES desired output voltage
- phase control arrangement 105 includes a phase timing arrangement 305 and a Pulse Width Modulation (PWM) arrangement 310 for generating the phase timing signal 1030 and the PWM dontrol signal 1040, respectively, via phase control bus 115 (e.g., a 5-wire analog bus).
- phase control arrangement 105 also includes additional circuitry arrangement 325 for generating additional control signals 330, which are not necessary for an understanding of the present invention.
- Phase timing signal 1030 contains information to permit each of the phase output arrangements 110a, 110b, 110c, . . . , llOn to determine its respective periodic start time 910, at which it may operate its respective one of the switch arrangements 120a, 120b, 120c, . . ., 120n to provide current to the load 135.
- the phase timing signal 1030 consists of a periodic voltage waveform, which is then decoded by the phase output arrangements 110a, 110b, 110c, . . ., llOn, in a manner more fully described above.
- Phase timing arrangement 305 includes a programmable oscillator arrangement 505 electrically coupled to a periodic waveform generator 510, for example, a periodic triangular waveform generator 510.
- the periodic triangular waveform generator 510 is configured to generate the phase timing signal 1030 in accordance with the frequency of the programmable oscillator arrangement 505, which may be varied by a frequency select input 515 of the input bus 130 or, alternatively, may be programmed by an external frequency select resistor (not shown) .
- the frequency of the programmable oscillator arrangement 505 and, thus, the frequency of the periodic phase timing signal 1030 may be set to any desired frequency, for example, a frequency in the range of lOOKHz to 1MHz .
- the PWM arrangement 310 of the phase control arrangement 105 is configured to generate the PWM control signal 1040 containing information and/or data to permit the phase output arrangements 110a, 110b, 110c, . . . , llOn to determine a switch-on duration 915 for the high-side switch 205 of a respective one of the switch arrangements 120a, 120b, 120c, . . ., 120n.
- the longer the switch-on duration 915 for the high- side switch 205 the more current flows through the output inductor 220 of the respective switch arrangement.
- the switch on duration 915 may be dynamically controlled to compensate for changes in load current, transient load conditions, and/or a change in the desired output voltage variable (V DES ) .
- PWM arrangement 310 includes a digital-to-analog converter (DAC) 605 configured to produce the desired output voltage variable (V DES ) 610 from digital inputs 615 of the input bus 130.
- DAC digital-to-analog converter
- High-gain error amplifier 620 compares the desired output voltage variable (V DES ) 610 with the actual output voltage (V ou ⁇ ) , and generates an error signal 625 proportional to the difference between the desired output voltage variable (V DES ) 610 and the actual output voltage (V ou ⁇ ) .
- the error signal 625 may be communicated to the phase control bus 115 as the PWM control signal 1040.
- the PWM control signal 320 may be used by the phase output arrangements 110a, 110b, 110c, . . . , llOn to keep the actual output voltage (V ou ⁇ ) at the desired output voltage (V DES ) .
- the PWM arrangement 310 and the phase output arrangements 110a, 110b, 110c, . . ., llOn form a closed loop for controlling the actual output voltage (V 0 ⁇ T ) irrespective of changes in load current .
- the switch-on duration 915 of the high- side switch 205 of a respective switch arrangement may be increased proportionally to the PWM control signal 1040, thereby causing the output inductor 220 of the respective switch arrangement to supply more current to the output capacitor 125, which, in turn, causes the output voltage
- the switch-on duration of the high-side switch 205 of a respective switch arrangement may be decreased proportionally to the PWM control signal 320, thereby causing the output inductor 220 of the respective switch arrangement to supply less current to the output capacitor 125, which, in turn, causes the output voltage (V ou ⁇ ) to drop.
- the digital inputs 615 of the DAC 605 may include, for example, a plurality of Voltage-Identification (VID) digital signals generated by an external circuit, for example, a mobile Intel Pentium IV microprocessor. Voltage-Identification (VID) signals may be generated by the microprocessor to communicate the voltage at which the processor core should operate. In this manner, the digital-to-analog converter (DAC) 605 of the PWM arrangement 310 may generate the desired output voltage variable (V DES ) in accordance with the proper processor core voltage .
- V DES desired output voltage variable
- a request for a new desired output voltage may cause the digital inputs 615 (e.g., the VID inputs) to change during normal operation of the buck converter 100.
- the phase control arrangement 105 may, for example, blank the signals for a time duration, for example, 400ns, to ensure that the detected change is not due to skew or noise.
- the high-gain error amplifier 620 In response to a request for a higher desired output voltage (V DES ) , the high-gain error amplifier 620 (via the PWM control signal 1040) causes the charge-on duration of the phase output arrangements 110a, 110b, 110c, . . ., llOn to increase. Alternatively, in response to a request for a lower desired output voltage (V DES ) , the high-gain error amplifier 620 causes the charge-on duration of the phase output arrangements 110a, 110b, 110c, . . ., llOn to decrease. However, as described above, a request for a lower desired output voltage (V DES ) may cause disadvantageous negative currents to flow through the output inductor 220.
- the phase control arrangement 105 is configured to switch off the high-side and low-side switches 205, 210 of each of the output switch arrangements 120a, 120b, 120c, . . ., 120n in response to a request for a lower desired output voltage (V DES ) .
- the PWM arrangement 310 may be provided with a step-down detect arrangement 850, as shown in Figure 8.
- the step-down detect arrangement 850 detects a VID step- down condition to prevent the negative inductor currents described above (i.e., the negative inductor currents associated with a request for a lower desired voltage) .
- PWM arrangement 310 includes a clamping circuit arrangement 855 configured to clamp the output of the high-gain error amplifier 820 to a voltage level lower than the default voltage of the ramp generator 1310 of each of the phase output arrangements 110a, 110b, 110c, . . ., llOn.
- the PWM control signal 1040 generated by the PWM arrangement 310 causes the charge-on duration arrangement 1010 of each of the phase output arrangements 110a, 110b, 110c, . .
- the PWM arrangement 310 may include droop circuitry configured to reduce the actual output voltage (V ou ⁇ ) proportionally to an increase in load current .
- the exemplary PWM arrangement 310 further includes droop circuitry 700, which includes a current signal buffer electrically connected to the average inductor current signal 1045.
- the average inductor current signal 1045 is referenced to the desired output voltage variable (V DES ) , so that the output of the current signal buffer 705 is equal to (V DES + I AVG ) , where I AVG is proportional to the average current provided by the output inductors 220 of the output switch arrangements 120a, 120b, 120c, . . .
- a droop resistor R VDRP is provided between the output of the current signal buffer 705 and the negative input of the high-gain error amplifier 620, and an offset resistor R PB is provided between the actual output voltage (V 0DT ) and the negative input of the high-gain error amplifier 620.
- the high-gain error amplifier 620 controls the voltage loop to keep its positive and negative inputs equal, the high-gain error amplifier 620 operates to keep the voltage at its negative input equal to the desired output voltage (V DES ) .
- V DES desired output voltage
- the exemplary PWM arrangement 310 of Figure 6 operates to reduce the actual output voltage (V ou ⁇ ) proportionally to the average current provided by the output inductors 220 of the output switch arrangements
- the positioning voltage (v) may be programmed by selecting an appropriate droop resistor R VDRP/ SO that the droop impendence produces the desired converter output impendence.
- the exemplary buck converter 100 implemented using discrete control and phase ICs.
- the exemplary buck converter 100 of Figure 17 includes a control IC 1705 containing all the functions of the phase control arrangement 105 and two phase ICs 1250a, 1250b (see Figure 16) containing all functions of the phase output arrangements 110a, 110b, respectively.
- Each of the control and phase ICs 1705, 1250a, 1250b may include an over-temperature detect circuit 1805, as shown in Figure 18.
- Over-temperature detect circuit 1805 includes a VRHOT comparator 1810, a switch 1815 electrically connected to the output of the VRHOT comparator 1810, and a temperature sensing arrangement 1820 configured to produce a voltage proportional to the die temperature.
- the temperature threshold may be set using, for example, a voltage divider connected to V IN . If the temperature of the die rises above the temperature threshold, the VRHOT comparator 1810 switches on the switch 1815, thereby causing a VRHOT signal 1830 to be generated.
- the VRHOT signal may be used, for example, to deactivate the phase or enable additional phases to share in the current production burden.
- phase output arrangements 110a, 110b, 110c, . . . , llOn chosen for a particular design may depend upon the need to meet thermal requirements and/or to minimize the number of input and output capacitors at maximum output current. However, at times when the output current of the buck converter 100 is less than the maximum output current, efficiency will increase if less phase output arrangements 110a, 110b, 110c, . . . , llOn are employed. Turning off phase output arrangements 110a, 110b, 110c, . . .
- each unique circuit design should turn off phase output arrangements 110a, 110b, 110c, . . ., llOn in sequence at particular output current levels to achieve the maximum efficiency over the entire output current range.
- phase output arrangement 11On includes a converter output current detect arrangement 2105 operable to generate a current signal 2135 representing the current of the multi-phase buck converter 100 in accordance with average inductor current signal 1045, and a phase shutdown comparator 2130 electrically coupled to current signal 2135 and to a threshold signal 2115.
- Phase output arrangement llOn may be "programmed" by providing a particular threshold signal value 2115 in accordance with the needs of a particular application.
- threshold signal 2115 is provided by a pair of resistors 2120, 2125 coupled to one another in series between reference voltage 1270 and ground.
- threshold signal 2115 may be provided by employing a simply selecting the appropriate resistor values of a voltage divider.
- the threshold signal 2115 may be provided in another manners, for example, by a digital-to-analog converter operable to convert a digital representation of the desired threshold signal 2115 into an analog threshold signal 2115, which may be provided to phase shutdown comparator 2130.
- phase shutdown comparator 2130 compares the current signal 2135 to threshold signal 2115 and generates a phase shutdown signal 2130 if current signal 2135 drops below threshold signal 2115.
- Shutdown signal 2130 causes phase output arrangement llOn to turn off both the hide- side and low-side switches 205, 210 (e.g., MOSFETs) of the respectively assigned output switch arrangement 120n, which causes the output current of the multi-phase buck converter to decay.
- This causes the output voltage of the multi-phase buck converter to sag, thereby causing phase control arrangement 105 to compensate by increasing the duty cycle of the remaining phase output arrangements 110a, 110b, 110c, . . ., llOn-l in a manner more fully described above.
- This compensation does not cause the average inductor current signal 1045 to vary, as this signal 1045 represents the output current of . the buck converter 100 itself, not the output currents of the individual phase output arrangements 110a, 110b, 110c, . . ., llOn.
- converter output detect arrangement 2105 includes an adder unit 2205 which is electrically coupled to average inductor current signal 1045 and to desired output voltage signal V DES .
- adder unit 2205 subtracts desired output voltage signal V DES from average inductor current signal 1045 to produce current signal 2135.
- phase shutdown circuitry is described above with respect to an exemplary multi-phase buck converter having modular phase output arrangements 110a, 110b, 110c, . . ., llOn, the phase shutdown circuitry may be employed in multi-phase buck converters having a fixed number of phase output arrangements or phases (e.g., two phases, three phases, four phases, eight phases) .
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- Engineering & Computer Science (AREA)
- Power Engineering (AREA)
- Dc-Dc Converters (AREA)
Abstract
Description
Claims
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CNA2004800028374A CN1742421A (en) | 2003-01-28 | 2004-01-23 | Multi-phase buck converter with programmable phase selection |
| KR1020057013976A KR100651185B1 (en) | 2003-01-28 | 2004-01-23 | Multi-phase buck converter with programmable phase selection |
| DE112004000209T DE112004000209T5 (en) | 2003-01-28 | 2004-01-23 | Multi-phase buck converter with programmable phase selection |
| JP2005518839A JP4255474B2 (en) | 2003-01-28 | 2004-01-23 | Multiphase buck converter with programmable phase selection |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US44321003P | 2003-01-28 | 2003-01-28 | |
| US60/443,210 | 2003-01-28 | ||
| US10/761,526 | 2004-01-20 | ||
| US10/761,526 US6826028B2 (en) | 2003-01-28 | 2004-01-20 | Multi-phase buck converter with programmable phase selection |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| WO2004070925A2 true WO2004070925A2 (en) | 2004-08-19 |
| WO2004070925A3 WO2004070925A3 (en) | 2004-12-09 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2004/001804 Ceased WO2004070925A2 (en) | 2003-01-28 | 2004-01-23 | Multi-phase buck converter with programmable phase selection |
Country Status (7)
| Country | Link |
|---|---|
| US (1) | US6826028B2 (en) |
| JP (1) | JP4255474B2 (en) |
| KR (1) | KR100651185B1 (en) |
| CN (1) | CN1742421A (en) |
| DE (1) | DE112004000209T5 (en) |
| TW (1) | TWI242921B (en) |
| WO (1) | WO2004070925A2 (en) |
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|---|---|---|---|---|
| US10404174B2 (en) | 2018-02-08 | 2019-09-03 | Toyota Jidosha Kabushiki Kaisha | Booster converter apparatus |
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| US6806689B2 (en) * | 2002-03-22 | 2004-10-19 | International Rectifier Corporation | Multi-phase buck converter |
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| JP4387172B2 (en) * | 2003-12-02 | 2009-12-16 | 株式会社リコー | Power supply circuit and method for changing output voltage of power supply circuit |
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| US7339361B2 (en) * | 2006-06-26 | 2008-03-04 | Intersil Americas Inc. | Multi-phase DC-DC converter using auxiliary resistor network to feed back multiple single-ended sensed currents to supervisory controller for balanced current-sharing among plural channels |
| US8618788B2 (en) * | 2007-03-30 | 2013-12-31 | Malay Trivedi | Dynamically adjusted multi-phase regulator |
| US7812581B2 (en) * | 2007-05-04 | 2010-10-12 | Intersil Americas Inc. | Pulse adding scheme for smooth phase dropping at light load conditions for multiphase voltage regulators |
| US20090322301A1 (en) * | 2008-06-26 | 2009-12-31 | Enermax Technology Corporation | Control circuit for improving efficiency of lower load of power supply device and method thereof |
| TWI395394B (en) * | 2009-12-31 | 2013-05-01 | Delta Electronics Inc | Multi-output buck converting apparatus with shutdown protection |
| US8410635B2 (en) * | 2010-03-16 | 2013-04-02 | GM Global Technology Operations LLC | Systems and methods for deactivating a matrix converter |
| DE102010019711B4 (en) * | 2010-05-07 | 2012-03-01 | Fujitsu Technology Solutions Intellectual Property Gmbh | Power supply circuit, computer system, method of automatically configuring a multi-phase voltage converter and computer program product |
| US8710810B1 (en) | 2010-06-23 | 2014-04-29 | Volterra Semiconductor Corporation | Systems and methods for DC-to-DC converter control |
| CN102130899B (en) * | 2010-12-28 | 2015-04-29 | 华为技术有限公司 | Power protocol management method, device and applied power system |
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| US10651734B2 (en) * | 2017-04-11 | 2020-05-12 | Dell Products, L.P. | System and method for robust body braking control to suppress transient voltage overshoot |
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| CN110445381B (en) * | 2019-07-26 | 2021-07-16 | 成都芯源系统有限公司 | Multiphase switch converter containing daisy chain structure and phase switching control method thereof |
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-
2004
- 2004-01-20 US US10/761,526 patent/US6826028B2/en not_active Expired - Lifetime
- 2004-01-23 JP JP2005518839A patent/JP4255474B2/en not_active Expired - Lifetime
- 2004-01-23 KR KR1020057013976A patent/KR100651185B1/en not_active Expired - Lifetime
- 2004-01-23 WO PCT/US2004/001804 patent/WO2004070925A2/en not_active Ceased
- 2004-01-23 CN CNA2004800028374A patent/CN1742421A/en active Pending
- 2004-01-23 DE DE112004000209T patent/DE112004000209T5/en not_active Withdrawn
- 2004-01-27 TW TW093101719A patent/TWI242921B/en not_active IP Right Cessation
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10404174B2 (en) | 2018-02-08 | 2019-09-03 | Toyota Jidosha Kabushiki Kaisha | Booster converter apparatus |
Also Published As
| Publication number | Publication date |
|---|---|
| JP2006515146A (en) | 2006-05-18 |
| CN1742421A (en) | 2006-03-01 |
| US20040145845A1 (en) | 2004-07-29 |
| US6826028B2 (en) | 2004-11-30 |
| TW200425607A (en) | 2004-11-16 |
| JP4255474B2 (en) | 2009-04-15 |
| KR100651185B1 (en) | 2006-11-30 |
| WO2004070925A3 (en) | 2004-12-09 |
| TWI242921B (en) | 2005-11-01 |
| DE112004000209T5 (en) | 2005-12-29 |
| KR20050105989A (en) | 2005-11-08 |
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