Active balancing of multiple interleaved piezo pumps
A drive circuit for a plurality of piezo-actuated hydraulic pumps for an aircraft, and a hydraulic pump system implementing the same. The drive circuit includes a voltage boost stage that receives a DC input supply voltage and delivers an increased DC output voltage to a high voltage, HV, link point; a plurality of inverter stages coupled in parallel at the HV link point that receive DC voltage from the HV link point and generate an oscillating output voltage for driving a respective piezo-actuated pump; and a control system that controls the output voltage and phase of the inverter stages to drive the plurality of piezo-actuated pumps out of phase. The control system measures the power consumption of each piezo-actuated pump and regulates the output voltage of at least one of the inverter stages to balance the power consumption of each piezo-actuated pump.
1 . A drive circuit for a plurality of piezo-actuated hydraulic pumps for an aircraft, the drive circuit comprising:
a voltage boost stage configured to receive a DC input supply voltage and deliver an increased DC output voltage to a high voltage, HV, link point;
a plurality of inverter stages coupled in parallel at the HV link point, wherein each inverter stage is arranged to receive the increased DC voltage from the HV link point and generate an oscillating output voltage for driving a respective piezo-actuated pump; and
a control system configured to control the output voltage and phase of the inverter stages to drive the plurality of piezo-actuated pumps out of phase,
wherein the control system is further configured to measure the power consumption of each piezo-actuated pump and to regulate the output voltage of at least one of the inverter stages to balance the power consumption of each piezo-actuated pump.
2 . The drive circuit of claim 1 , wherein each inverter stage comprises a pulse width modulation, PWM, controlled half-bridge inverter and wherein the control system is a switch control system for PWM generation.
3 . The drive circuit of claim 2 , wherein each inverter stage further comprises at least one of:
a link filter comprising an LC filter connected between a respective half-bridge inverter and the HV link point; and
an output filter comprising an LC filter connected between the respective half-bridge inverter and a respective piezo pump.
4 . The drive circuit of claim 1 , wherein the boost stage comprises an asynchronous boost converter.
5 . The drive circuit of claim 4 , further comprising an input filter comprising an LC filter coupled at an input of the asynchronous boost converter.
6 . The drive circuit of claim 1 , wherein the control system is configured to control the phase of the inverter stages to separate the plurality of piezo-actuated pumps in phase according to the relationship 360°/N, where N is the number of pumps.
7 . The drive circuit of claim 1 , comprising:
two paralleled inverter stages for driving two piezo-actuated hydraulic pumps 180 degrees out of phase; or
three paralleled inverter stages for driving three piezo-actuated hydraulic pumps 120 degrees out of phase.
8 . The drive circuit of claim 1 , wherein the control system is further configured to detect a failure of one or more piezo-actuated pumps of the plurality of piezo-actuated pumps.
9 . The drive circuit of claim 8 , wherein the control system is further configured to automatically adjust the phase and/or voltage output of one or more the inverter stages in response to detecting a failure of one or more piezo-actuated pumps.
10 . A hydraulic pump system for an aircraft, the hydraulic pump system comprising:
the drive circuit of claim 1 ; and
the plurality of piezo-actuated hydraulic pumps.
11 . An actuator system for an aircraft, the actuator system comprising:
the hydraulic pump system of claim 10 ; and
a hydraulic actuator, wherein the actuator is arranged to receive hydraulic power from the plurality of piezo-actuated hydraulic pumps.