POWER DELIVERY CONTROL AND OVER CURRENT PROTECTION
A power supply as discussed herein includes a controller. The controller receives an output voltage feedback signal outputted from a resonant power converter. The output voltage feedback signal tracks a magnitude of an output voltage outputted from the resonant power converter to power a load. An error voltage generator generates an error voltage signal based on a comparison of the output voltage feedback signal to a setpoint reference voltage. The output voltage feedback signal derives a control period setting from an error voltage. The controller controls switching of switches in the resonant power converter in accordance with the derived control period setting.
1 . An apparatus comprising:
a controller operative to:
receive an output voltage feedback signal outputted from a resonant power converter, the output voltage feedback signal tracking a magnitude of an output voltage outputted from the resonant power converter to power a load;
derive a control period setting from an error voltage, the error voltage generated based on a comparison of the output voltage feedback signal to a setpoint reference voltage; and
control switching of switches in the resonant power converter in accordance with the derived control period setting.
2 . The apparatus as in claim 1 , wherein the controlled switching of the switches in the resonant power converter in accordance with the derived control period setting is operative to provide non-linear frequency gain of regulating a magnitude of the output voltage with respect to changes in the error voltage.
3 . The apparatus as in claim 2 , wherein the non-linear frequency gain of regulating the magnitude of the output voltage based on the error voltage is operative to provide lower control loop gain for below-resonance operation of the resonant power converter and higher control loop gain for above-resonance operation of the resonant power converter.
4 . The apparatus as in claim 1 , wherein a conversion of the error voltage into the derived control period setting is operative to provide a non-linear frequency response of controlling the switches in the resonant power converter.
5 . The apparatus as in claim 1 , wherein the controller is operative to implement a feedback control loop in which a magnitude of the error voltage is used to produce the control period setting of controlling the switches; and
wherein the feedback control loop includes an inverse function.
6 . The apparatus as in claim 5 , wherein the inverse function is operative to receive a processed rendition of the error voltage from a PID function as signal X and output a signal Y, the output signal Y=K/X, where K is a selected gain value.
7 . The apparatus as in claim 6 , wherein the feedback control loop further includes a voltage controlled oscillator function operative to derive the control period setting of controlling the switches based at least in part on the signal Y and a nominal switching frequency setting.
8 . The apparatus as in claim 1 further comprising:
a feedback loop including a linear PID (Proportional-Integral-Derivative) controller operative to produce a processed rendition of the error voltage to derive the control period setting.
9 . The apparatus as in claim 1 , wherein the controller is further operative to:
receive a nominal switching frequency value; and
adjust a magnitude of the nominal switching frequency value to produce the derived control period setting based on a received adjustment signal Y derived at least in part from the error voltage.
10 . The apparatus as in claim 9 , wherein the error voltage is processed by a first control loop function to produce signal X.
11 . The apparatus as in claim 10 , wherein the controller is operative to apply a second control loop function to convert signal X into the signal Y, the second control loop function including an inverse function.
12 . The apparatus as in claim 11 , wherein the controller is further operative to:
produce signal Z based on a combination of the nominal switching frequency setting value and the adjustment signal Y.
13 . The apparatus as in claim 12 , wherein the controller is further operative to apply a third control loop function including a voltage controlled oscillator function to convert signal Z into the derived control period setting.
14 . The apparatus as in claim 1 , wherein the controller is operative to implement: i) a first function to convert the error voltage into a filtered error voltage, and ii) a second function to convert the filtered error voltage into the control period setting.
15 . The apparatus as in claim 14 , wherein the first function is a PID function and the second function is a linear conversion function mapping different settings of the filtered error voltage to different magnitudes of the control period setting.
16 . A method comprising:
receiving an output voltage feedback signal from a resonant power converter, the output voltage feedback signal indicating a magnitude of an output voltage powering a load;
deriving a control period from an error voltage, the error voltage based on a comparison of the output voltage feedback signal to a setpoint reference voltage; and
controlling switching of switches in the resonant power converter in accordance with the control period.
17 . The method as in claim 16 , wherein the controlled switching of the switches in the resonant power converter in accordance with the derived control period setting is operative to provide non-linear frequency gain of regulating a magnitude of the output voltage with respect to changes in the error voltage.
18 . The method as in claim 17 , wherein the non-linear frequency gain of regulating the magnitude of the output voltage based on the error voltage is operative to provide lower control loop gain for below-resonance operation of the resonant power converter and higher control loop gain for above-resonance operation of the resonant power converter.
19 . The method as in claim 16 further comprising:
implementing a feedback control loop in which a magnitude of the error voltage is used to produce the control period setting of controlling the switches, the feedback control loop based on an inverse function.
20 . Computer-readable storage hardware having instructions stored thereon, the instructions, when carried out by computer processor hardware, cause the computer processor hardware to:
receive an output voltage feedback signal outputted from a resonant power converter, the output voltage feedback signal tracking a magnitude of an output voltage outputted from the resonant power converter to power a load;
derive a control period setting from an error voltage, the error voltage generated based on a comparison of the output voltage feedback signal to a setpoint reference voltage; and
control switching of switches in the resonant power converter in accordance with the derived control period setting.