Simplifying multi-energy system co-simulations using ENERGYSIM

被引:4
作者
Gusain, Digvijay [1 ]
Cvetkovic, Milos [1 ]
Palensky, Peter [1 ]
机构
[1] Delft Univ Technol, Intelligent Elect Power Grids, Delft, Netherlands
关键词
Multi energy systems; Co-simulation; Technical assessment; Hybrid simulation;
D O I
10.1016/j.softx.2022.101021
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
The traditional methodology for conducting technical assessments of multi-energy systems involved using domain-specific modeling tools to focus on the energy sector of interest, while making simplifying assumptions about any coupled energy sector. This was acceptable since the interactions between energy domains were minimal. However, with the expectation of an increased adoption of energy conversion technologies (such as power to X (P2X) systems: power to heat, power to gas, etc.) in the future, and consequently higher interaction between various energy sectors and stronger dependence on one another, there is a need to update the current method for conducting technical assessments. This means taking into account not only the energy sector of interest, but also any dependent energy sectors, and the associated energy transformers (P2X). In this paper, we propose a co-simulation based approach to conduct simulation-based technical assessments of multi-energy systems, which allows us to couple domain specific modeling tools. We re-introduce the tool ENERGYSIM to conduct the multi-energy system co-simulations. We motivate the importance of the proposed tool and compare it with other available tools. We highlight its main functionalities, and using a study case, we show how a multi-stakeholder, multi-energy system co-simulation can be set up and assessed. (C) 2022 The Author( s ). Published by Elsevier B.V.
引用
收藏
页数:8
相关论文
共 38 条
[1]  
Aguilera M, 2019, P AM MOD C 2018 SOMB, DOI [10.3384/ecp1815493, DOI 10.3384/ECP1815493]
[2]  
[Anonymous], 2011, P 8 INT MODELICA C, DOI [DOI 10.3384/ECP11063105, 10.3384/ecp11063105]
[3]   Deep decarbonization of urban energy systems through renewable energy and sector-coupling flexibility strategies [J].
Arabzadeh, Vahid ;
Mikkola, Jani ;
Jasiunas, Justinas ;
Lund, Peter D. .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2020, 260
[4]   Heat and electric vehicle flexibility in the European power system: A case study of Norwegian energy communities [J].
Backe, Stian ;
Korpas, Magnus ;
Tomasgard, Asgeir .
INTERNATIONAL JOURNAL OF ELECTRICAL POWER & ENERGY SYSTEMS, 2021, 125
[5]   An Advanced HIL Simulation Battery Model for Battery Management System Testing [J].
Barreras, Jorge Varela ;
Fleischer, Christian ;
Christensen, Andreas Elkjaer ;
Swierczynski, Maciej ;
Schaltz, Erik ;
Andreasen, Soren Juhl ;
Sauer, Dirk Uwe .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2016, 52 (06) :5086-5099
[6]  
Bogunovic N, 2020, 2020 43RD INTERNATIONAL CONVENTION ON INFORMATION, COMMUNICATION AND ELECTRONIC TECHNOLOGY (MIPRO 2020), P912, DOI 10.23919/MIPRO48935.2020.9245182
[7]   Decarbonizing China's energy system - Modeling the transformation of the electricity, transportation, heat, and industrial sectors [J].
Burandt, Thorsten ;
Xiong, Bobby ;
Loeffler, Konstantin ;
Oei, Pao-Yu .
APPLIED ENERGY, 2019, 255
[8]   Integration of reversible solid oxide cells with methane synthesis (ReSOC-MS) in grid stabilization: A dynamic investigation [J].
Chen, Bin ;
Hajimolana, Yashar S. ;
Venkataraman, Vikrant ;
Ni, Meng ;
Aravind, P. V. .
APPLIED ENERGY, 2019, 250 :558-567
[9]  
Dall'Anese E, 2017, IEEE POWER ENERGY M, V15, P43, DOI 10.1109/MPE.2016.2625218
[10]   Analysis of Future Loading Scenarios in a Norwegian LV Network [J].
Degefa, Merkebu Z. ;
Saele, Hanne ;
Andresen, Christian .
2019 2ND INTERNATIONAL CONFERENCE ON SMART ENERGY SYSTEMS AND TECHNOLOGIES (SEST 2019), 2019,