Energy storage and reutilization for a single-rod electro-hydrostatic actuator
A method for storing and reutilizing energy during operation of a hydrostatic actuator (EHA) having a hydraulic cylinder, a first bidirectional pump-motor rotationally coupled to an electric motor, and EHA valving and connections between the first pump-motor and the hydraulic cylinder. During at least one of two motoring quadrants, a hydraulic accumulator is charged using a second pump-motor whose rotation is driven by load-driven motoring of the first bidirectional pump-motor. During at least one of the pumping quadrants, driven rotation is imparted to the second pump-motor using stored energy from the accumulator, and said driven rotation of the second pump-motor is used to augment powered rotation of the first bidirectional pump-motor by the electric motor.
1 . An electro-hydrostatic actuator system comprising:
an electro-hydrostatic actuator (EHA) comprising:
a first bidirectional fixed displacement pump-motor rotationally coupled to an electric motor that is operable to drive a pumping operation of said first bidirectional pump-motor;
a hydraulic cylinder; and
in an EHA circuit in which the first bidirectional pump-motor and the hydraulic cylinder are both installed, EHA valving and connections between the first bidirectional pump-motor and the hydraulic cylinder by which the EHA is operable in four distinct operating quadrants, including a first actuator-extending pumping quadrant, a second actuator-extending motoring quadrant, a third actuator-retracting pumping quadrant and a fourth actuator-retraction motoring quadrant; and
an energy storing and reutilizing (ESR) system comprising:
a second fixed displacement pump-motor rotationally linked to the first bidirectional pump-motor via a rotational interconnection that is continuously maintained therebetween throughout all operational modes of the ESR system;
a hydraulic accumulator; and
in a fluidically separate ESR circuit of fluidically isolated relationship to the EHA circuit, and in which the second pump-motor and the hydraulic accumulator are installed, ESR valving and connections between said second pump-motor and said hydraulic accumulator that, collectively, are configured to (a) during at least one of the motoring quadrants, operate the ESR system in an energy storage mode charging the hydraulic accumulator using driven rotation of the second pump-motor, via the rotational interconnection, from load-driven motoring of the first bidirectional pump-motor; (b) during at least one of the pumping quadrants, operate the ESR system in an energy reutilizing mode driving the second pump-motor from stored energy in the accumulator, and thereby, via said rotational interconnection, supplementing driven rotation of the first bidirectional pump-motor in assistive relation to the electric motor, and (c) switch the ESR system into an idle flow-circulation mode, in which the accumulator is hydraulically decoupled from the second bidirectional fixed displacement pump-motor, based on sensor-detection of accumulator pressure conditions denoting an unsustainability of the energy reutilizing mode.
2 . An energy storage and reutilization (ESR) system for cooperative use with an electro-hydrostatic actuator (EHA) having a hydraulic cylinder, a first bidirectional fixed displacement pump-motor rotationally coupled to an electric motor, and EHA valving and connections between the first bidirectional pump-motor and the hydraulic cylinder by which the EHA is operable in four distinct operating quadrants, including a first actuator-extending pumping quadrant, a second actuator-extending motoring quadrant, a third actuator-retracting pumping quadrant and a fourth actuator-retraction motoring quadrant, said system comprising:
a second bidirectional fixed displacement pump-motor arranged to be rotationally linked to the first pump-motor via a rotational interconnection continuously maintained therebetween throughout all operational modes of the ESR system;
a hydraulic accumulator; and
in an ESR circuit configured to operate in fluidic isolation from a separate hydraulic circuit of the ESR system, ESR valving and connections between said second pump-motor and said hydraulic accumulator that, collectively, are configured to (a) during at least one of the motoring quadrants, operate the ESR system in an energy storage mode charging the hydraulic accumulator using driven rotation of the second pump-motor, via the rotational interconnection, from load-driven motoring of the first bidirectional pump-motor; (b) during at least one of the pumping quadrants, operate the ESR system in an energy reutilizing mode driving the second pump-motor from stored energy in the accumulator, and thereby, via said rotational interconnection, supplementing driven rotation of the first bidirectional pump-motor in assistive relation to the electric motor, and (c) switch the ESR system into an idle flow-circulation mode, in which the accumulator is hydraulically decoupled from the second bidirectional fixed displacement pump-motor, based on sensor-detection of accumulator pressure conditions denoting an unsustainability of the energy reutilizing mode.
3 . The system claim 2 wherein the ESR valving and connections are further configured to switch the ESR system into a discharge mode in which the accumulator is hydraulically communicated with a tank to relieve pressure from the ESR system.
4 . The system of claim 2 wherein the ESR valving includes a directional valve having a default position closing a hydraulic pathway between the second bidirectional fixed displacement pump-motor and the accumulator, and two actuated positions each connecting a different respective side of the second bidirectional fixed displacement pump-motor to the accumulator via said pathway to achieve the energy storage mode in a respective one of the motoring quadrants.
5 . The system of claim 2 wherein the ESR valving includes a reutilization valve having a one-way check position allowing flow into the accumulator, but blocking outward flow therefrom, and a two-way open position allowing flow in both into and from the accumulator.
6 . The system of claim 2 wherein the ESR valving includes an electro-proportional pressure-reducing (EPPR) valve operated in responsive relation to sensor-monitored accumulator pressure and sensor-monitored EPPR-reduced pressure to maintain constant pressure output from the accumulator in the energy reutilizing mode.
7 . The system of claim 2 further comprising an electronic controller operably coupled to the ESR valving, and to one or more sensors installed among at least one of the EHA and the ESR system, and configured to execute one or more control algorithms that are operable to:
identify which of the four distinct operating quadrants the EHA is currently operating in;
after identification that the EHA is operating in one of the motoring quadrants, identify whether operating conditions are conducive to driving of the second bidirectional fixed displacement pump-motor by the first bidirectional fixed displacement pump motor; and
after identification that said operating conditions are conducive to driving of the second bidirectional fixed displacement pump-motor by the first bidirectional fixed displacement pump motor, signal the ESR valving to initiate the energy storage mode of the ESA.
8 . The system of claim 7 wherein the electronic controller is further configured such that said one or more control algorithms are also operable to:
after identification that said operating conditions are not conducive to driving of the second bidirectional fixed displacement pump-motor by the first bidirectional fixed displacement pump-motor, signal the ESR valving to hydraulically decouple the accumulator from the second bidirectional fixed displacement pump motor and initiate recirculating flow within the ESR system.
9 . The system of claim 7 wherein the electronic controller is further configured such that the identification of whether operating conditions are conducive to driving of the second bidirectional fixed displacement pump-motor by the first bidirectional fixed displacement pump-motor is based on controller-executed comparison of a sensor-read accumulator pressure against a sensor-read load pressure.
10 . The system of claim 7 wherein the electronic controller is further configured such that the identification of which quadrant the ESA is currently operating in is based on controller-executed comparison of a sensor-read load pressure against a sensor-read rod velocity of the hydraulic cylinder.
11 . The system of claim 7 wherein the electronic controller is further configured such that the one or more control routines also include, after identification that said operating conditions are conducive to driving of the second bidirectional fixed displacement pump-motor by the first bidirectional fixed displacement pump-motor, and in at least some instances, performing controller-executed adjustment of a torque of the electric motor.
12 . The system of claim 7 wherein the electronic controller is further configured such that said one or more control algorithms also include:
after identification that the EHA is operating in one of the pumping quadrants, identify whether a current state of charge exceeds a reutilization limit; and
after identification that said current state of charge exceeds a reutilization limit, signal the ESR valving to initiate the energy reutilization mode of the ESA.
13 . The system of claim 12 wherein the electronic controller is further configured such that said one or more control algorithms also include:
in at least some instances during the energy reutilization mode, controller-executed adjustment of a torque of the electric motor to augment power derived from the ESR system for the first bidirectional fixed displacement pump-motor.
14 . The system of claim 2 wherein the rotational interconnection between the first and second pump-motors occurs via the electric motor.
15 . The system of claim 2 wherein the rotational interconnection between the first and second bidirectional fixed displacement pump-motors comprises at least one belt transmission.