Open Access
Open access
volume 7 issue 8 pages 1076-1086

Optimal Operation of Integrated Heat and Electricity Systems: A Tightening McCormick Approach

Publication typeJournal Article
Publication date2021-08-01
scimago Q4
wos Q1
SJR0.100
CiteScore17.0
Impact factor11.6
ISSN20958099, 19473931, 1947394X, 20791747
General Chemical Engineering
Materials Science (miscellaneous)
General Engineering
Environmental Engineering
Energy Engineering and Power Technology
General Computer Science
Abstract
Combined heat and electricity operation with variable mass flow rates promotes flexibility, economy, and sustainability through synergies between electric power systems (EPSs) and district heating systems (DHSs). Such combined operation presents a highly nonlinear and nonconvex optimization problem, mainly due to the bilinear terms in the heat flow model—that is, the product of the mass flow rate and the nodal temperature. Existing methods, such as nonlinear optimization, generalized Benders decomposition, and convex relaxation, still present challenges in achieving a satisfactory performance in terms of solution quality and computational efficiency. To resolve this problem, we herein first reformulate the district heating network model through an equivalent transformation and variable substitution. The reformulated model has only one set of nonconvex constraints with reduced bilinear terms, and the remaining constraints are linear. Such a reformulation not only ensures optimality, but also accelerates the solving process. To relax the remaining bilinear constraints, we then apply McCormick envelopes and obtain an objective lower bound of the reformulated model. To improve the quality of the McCormick relaxation, we employ a piecewise McCormick technique that partitions the domain of one of the variables of the bilinear terms into several disjoint regions in order to derive strengthened lower and upper bounds of the partitioned variables. We propose a heuristic tightening method to further constrict the strengthened bounds derived from the piecewise McCormick technique and recover a nearby feasible solution. Case studies show that, compared with the interior point method and the method implemented in a global bilinear solver, the proposed tightening McCormick method quickly solves the heat–electricity operation problem with an acceptable feasibility check and optimality.
Found 
Found 

Top-30

Journals

1
2
3
4
5
6
Applied Energy
6 publications, 10.71%
Energy
3 publications, 5.36%
IEEE Transactions on Smart Grid
3 publications, 5.36%
Energies
3 publications, 5.36%
Engineering
3 publications, 5.36%
Frontiers in Energy Research
2 publications, 3.57%
International Journal of Electrical Power and Energy Systems
2 publications, 3.57%
Electric Power Systems Research
2 publications, 3.57%
IEEE Transactions on Sustainable Energy
2 publications, 3.57%
IEEE Internet of Things Journal
2 publications, 3.57%
Journal of Energy Storage
2 publications, 3.57%
Energy Conversion and Management
2 publications, 3.57%
IET Generation, Transmission and Distribution
1 publication, 1.79%
Journal of Building Engineering
1 publication, 1.79%
IET Renewable Power Generation
1 publication, 1.79%
Renewable and Sustainable Energy Reviews
1 publication, 1.79%
Journal of Renewable and Sustainable Energy
1 publication, 1.79%
Journal of Physics: Conference Series
1 publication, 1.79%
Sustainable Energy, Grids and Networks
1 publication, 1.79%
IEEE Transactions on Industry Applications
1 publication, 1.79%
Smart Energy
1 publication, 1.79%
IEEE Transactions on Power Systems
1 publication, 1.79%
IEEE Access
1 publication, 1.79%
Engineering Optimization
1 publication, 1.79%
Solar Energy
1 publication, 1.79%
Nature Communications
1 publication, 1.79%
International Journal of Hydrogen Energy
1 publication, 1.79%
1
2
3
4
5
6

Publishers

5
10
15
20
25
30
Elsevier
26 publications, 46.43%
Institute of Electrical and Electronics Engineers (IEEE)
18 publications, 32.14%
MDPI
3 publications, 5.36%
Institution of Engineering and Technology (IET)
2 publications, 3.57%
Frontiers Media S.A.
2 publications, 3.57%
Wiley
1 publication, 1.79%
AIP Publishing
1 publication, 1.79%
IOP Publishing
1 publication, 1.79%
Taylor & Francis
1 publication, 1.79%
Springer Nature
1 publication, 1.79%
5
10
15
20
25
30
  • We do not take into account publications without a DOI.
  • Statistics recalculated weekly.

Are you a researcher?

Create a profile to get free access to personal recommendations for colleagues and new articles.
Metrics
57
Share
Cite this
GOST |
Cite this
GOST Copy
Deng L. et al. Optimal Operation of Integrated Heat and Electricity Systems: A Tightening McCormick Approach // Engineering. 2021. Vol. 7. No. 8. pp. 1076-1086.
GOST all authors (up to 50) Copy
Deng L., Sun H., Li B., Sun Y., Yang T., Zhang X. Optimal Operation of Integrated Heat and Electricity Systems: A Tightening McCormick Approach // Engineering. 2021. Vol. 7. No. 8. pp. 1076-1086.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1016/j.eng.2021.06.006
UR - https://doi.org/10.1016/j.eng.2021.06.006
TI - Optimal Operation of Integrated Heat and Electricity Systems: A Tightening McCormick Approach
T2 - Engineering
AU - Deng, Lirong
AU - Sun, Hongbin
AU - Li, Baoju
AU - Sun, Yong
AU - Yang, Tianshu
AU - Zhang, Xueyao
PY - 2021
DA - 2021/08/01
PB - Elsevier
SP - 1076-1086
IS - 8
VL - 7
SN - 2095-8099
SN - 1947-3931
SN - 1947-394X
SN - 2079-1747
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2021_Deng,
author = {Lirong Deng and Hongbin Sun and Baoju Li and Yong Sun and Tianshu Yang and Xueyao Zhang},
title = {Optimal Operation of Integrated Heat and Electricity Systems: A Tightening McCormick Approach},
journal = {Engineering},
year = {2021},
volume = {7},
publisher = {Elsevier},
month = {aug},
url = {https://doi.org/10.1016/j.eng.2021.06.006},
number = {8},
pages = {1076--1086},
doi = {10.1016/j.eng.2021.06.006}
}
MLA
Cite this
MLA Copy
Deng, Lirong, et al. “Optimal Operation of Integrated Heat and Electricity Systems: A Tightening McCormick Approach.” Engineering, vol. 7, no. 8, Aug. 2021, pp. 1076-1086. https://doi.org/10.1016/j.eng.2021.06.006.