TY - GEN
T1 - Coordinated Steam, Power Emission Economic Dispatch of Multi-energy Campus Microgrids
AU - Wilk, Patrick
AU - Li, Jie
N1 - Publisher Copyright:
© 2021 IEEE.
PY - 2021
Y1 - 2021
N2 - This paper presents a coordinated steam, power emission economic dispatch (SPEED) model for achieving an economical operation of a university campus multi-energy microgrid. The coordinated scheduling of combined heat and power (CHP) units, as well as high efficiency steam boilers is implemented to optimize the entire campus energy provision consisting of both steam and electricity, while considering the campus emission reduction objective. Impacts of demand charge, load profiles, and practical operating constraints of the campus multi-energy microgrid system are modeled and formulated into the SPEED problem based on recorded campus energy systems' historical operation data. The effectiveness of the proposed SPEED model is demonstrated on a simplified campus multienergy microgrid system, considering a planned photovoltaic (PV) farm integration and the utility supply. As demonstrated in the simulation results, comparing with the conventional operation solution the university facility is implementing now, the proposed SPEED was capable of coordinating the optimal provision of electricity, steam, as well as emission reduction resulting in overall campus utility monetary savings.
AB - This paper presents a coordinated steam, power emission economic dispatch (SPEED) model for achieving an economical operation of a university campus multi-energy microgrid. The coordinated scheduling of combined heat and power (CHP) units, as well as high efficiency steam boilers is implemented to optimize the entire campus energy provision consisting of both steam and electricity, while considering the campus emission reduction objective. Impacts of demand charge, load profiles, and practical operating constraints of the campus multi-energy microgrid system are modeled and formulated into the SPEED problem based on recorded campus energy systems' historical operation data. The effectiveness of the proposed SPEED model is demonstrated on a simplified campus multienergy microgrid system, considering a planned photovoltaic (PV) farm integration and the utility supply. As demonstrated in the simulation results, comparing with the conventional operation solution the university facility is implementing now, the proposed SPEED was capable of coordinating the optimal provision of electricity, steam, as well as emission reduction resulting in overall campus utility monetary savings.
UR - https://www.scopus.com/pages/publications/85124346722
UR - https://www.scopus.com/pages/publications/85124346722#tab=citedBy
U2 - 10.1109/NAPS52732.2021.9654608
DO - 10.1109/NAPS52732.2021.9654608
M3 - Conference contribution
AN - SCOPUS:85124346722
T3 - 2021 North American Power Symposium, NAPS 2021
BT - 2021 North American Power Symposium, NAPS 2021
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2021 North American Power Symposium, NAPS 2021
Y2 - 14 November 2021 through 16 November 2021
ER -