2014Unpublished venueRequires access

Controller design of flywheel energy storage systems in microgrid

Feng Ji, Wang Gong-bao, Fu Lijun, Yang Yaqiao, Ruitian Wang, Xie Zhen

Open publisher page 3 citations

Abstract

For better design of controllers for flywheel energy storage systems (FES) used in DC microgrid, the control model of induction machines in FES is built firstly in this paper based on the field oriented space vector pulse width modulation (SVPWM). Secondly, according to the dual-mode dual-loop control strategy of FES, which is, the outer loop of speed plus inner loop of current under the speed-regulating mode, and the outer loop of voltage plus inner loop of current under the voltage-regulating mode, the second-order transfer function of the current inner loop is derived using the back EMF decoupling method. Based on this, the current loop PI controller parameters are calculated according to the optimal performance index under the integral of time multiplied by absolute error (ITAE) criterion. Thirdly, by approximating the current inner loop to unit ratio function, the third-order transfer function of the speed outer loop is derived and then simplified to second-order, with the speed loop PI controller parameters calculated. Besides, the nonlinear voltage loop PI controller is designed by experiential estimation and debugging. Finally, a simulation testbed of FES is established in PSCAD. The operation of FES under speed and voltage regulation modes are simulated respectively, and the feasibility of the controller designing method is verified.

About this research paper

What this paper is about

For better design of controllers for flywheel energy storage systems (FES) used in DC microgrid, the control model of induction machines in FES is built firstly in this paper based on the field oriented space vector pulse width modulation (SVPWM). Secondly, according to the dual-mode dual-loop control strategy of FES, which is, the outer loop of speed plus inner loop of current under the speed-regulating mode, and the outer loop of voltage plus inner loop of current under the voltage-regulating mode, the second-order transfer function of the current inner loop is derived using the back EMF decoupling method. Based on this, the current loop PI controller parameters are calculated according to the optimal performance index under the integral of time multiplied by absolute error (ITAE) criterion. Thirdly, by approximating the current inner loop to unit ratio function, the third-order transfer function of the speed outer loop is derived and then simplified to second-order, with the speed loop PI controller parameters calculated. Besides, the nonlinear voltage loop PI controller is designed by experiential estimation and debugging. Finally, a simulation testbed of FES is established in PSCAD. The operation of FES under speed and voltage regulation modes are simulated respectively, and the feasibility of the controller designing method is verified.

Why it matters

OpenAlex reports 3 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

For better design of controllers for flywheel energy storage systems (FES) used in DC microgrid, the control model of induction machines in FES is built firstly in this paper based on the field oriented space vector pulse width modulation (SVPWM). Secondly, according to the dual-mode dual-loop control strategy of FES, which is, the outer loop of speed plus inner loop of current under the speed-regulating mode, and the outer loop of voltage plus inner loop of current under the voltage-regulating mode, the second-order transfer function of the current inner loop is derived using the back EMF decoupling method. Based on this, the current loop PI controller parameters are calculated according to the optimal performance index under the integral of time multiplied by absolute error (ITAE) criterion. Thirdly, by approximating the current inner loop to unit ratio function, the third-order transfer function of the speed outer loop is derived and then simplified to second-order, with the speed loop PI controller parameters calculated. Besides, the nonlinear voltage loop PI controller is designed by experiential estimation and debugging. Finally, a simulation testbed of FES is established in PSCAD. The operation of FES under speed and voltage regulation modes are simulated respectively, and the feasibility of the controller designing method is verified.

Key concepts: Control theory (sociology), Inner loop, Controller (irrigation), Current loop, Microgrid, PID controller, Transfer function, Open-loop controller

Related papers

Back to paper searchBrowse research topicsOriginal source
Controller design of flywheel energy storage systems in microgrid — Research Paper | ScholarLens