TY - JOUR
T1 - A Hybrid Algorithm for Parameter Estimation (HAPE) for Dynamic Constant Power Loads
AU - Overlin, Matthew R.
AU - Smith, Christopher L.
AU - Kirtley, James L.
N1 - Funding Information:
Manuscript received April 1, 2020; revised July 11, 2020 and September 2, 2020; accepted September 21, 2020. Date of publication October 13, 2020; date of current version July 19, 2021. This work was supported by the Department of the Navy under Air Force Contract FA8702-15-D-0001. (Corresponding author: Matthew R. Overlin.) Matthew R. Overlin and James L. Kirtley, Jr. are with the Massachusetts Institute of Technology, Cambridge, MA 02139 USA (e-mail: [email protected]; [email protected]).
Publisher Copyright:
© 1982-2012 IEEE.
PY - 2021/11
Y1 - 2021/11
N2 - Low-inertia microgrids may easily have a single load that can make up most of the total load, thereby greatly affecting stability and power quality. Instead of a static load model, a dynamic constant power load (DCPL) model is considered here. Next, a hybrid algorithm for parameter estimation (HAPE) is introduced. In order to verify the load model and the HAPE, two experiments are conducted with different DCPLs using a power-hardware-in-the-loop (PHiL) testbed. The PHiL testbed consists of a real-time computer working with a programmable power amplifier in order to perturb the input voltage's amplitude and frequency. Each connected DCPL in two separate experiments serves as the device under test. Using the captured experimental data as a reference, the HAPE is then invoked. The resulting parameter estimates are used to define simulation models. Both resulting DCPL models are simulated to produce waveforms that closely resemble experimental waveforms. Finally, the HAPE's resulting parameter estimates are presented, and the performance of the HAPE is discussed.
AB - Low-inertia microgrids may easily have a single load that can make up most of the total load, thereby greatly affecting stability and power quality. Instead of a static load model, a dynamic constant power load (DCPL) model is considered here. Next, a hybrid algorithm for parameter estimation (HAPE) is introduced. In order to verify the load model and the HAPE, two experiments are conducted with different DCPLs using a power-hardware-in-the-loop (PHiL) testbed. The PHiL testbed consists of a real-time computer working with a programmable power amplifier in order to perturb the input voltage's amplitude and frequency. Each connected DCPL in two separate experiments serves as the device under test. Using the captured experimental data as a reference, the HAPE is then invoked. The resulting parameter estimates are used to define simulation models. Both resulting DCPL models are simulated to produce waveforms that closely resemble experimental waveforms. Finally, the HAPE's resulting parameter estimates are presented, and the performance of the HAPE is discussed.
KW - Constant power load
KW - power-hardware-in-the-loop (PHiL)
KW - system identification
UR - https://www.scopus.com/pages/publications/85111819671
UR - https://www.mendeley.com/catalogue/10f98954-733f-338d-8a5f-94d472df1b2a/
U2 - 10.1109/TIE.2020.3029470
DO - 10.1109/TIE.2020.3029470
M3 - Article
AN - SCOPUS:85111819671
SN - 0278-0046
VL - 68
SP - 10326
EP - 10335
JO - IEEE Transactions on Industrial Electronics
JF - IEEE Transactions on Industrial Electronics
IS - 11
M1 - 9222572
ER -