Introduction and Literature Review of the Operation of Multi-carrier Energy Networks
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Behnam Mohammadi-Ivatloo | Morteza Nazari-heris | Somayeh Asadi | Milad Sadat-Mohammadi | Mehrdad Ghahramani | M. Nazari-Heris | B. Mohammadi-ivatloo | S. Asadi | Milad Sadat‐Mohammadi | M. Ghahramani
[1] Mohammad Shahidehpour,et al. Optimal Operation Strategy for Integrated Natural Gas Generating Unit and Power-to-Gas Conversion Facilities , 2018, IEEE Transactions on Sustainable Energy.
[2] Pierluigi Siano,et al. Modeling the reliability of multi-carrier energy systems considering dynamic behavior of thermal loads , 2015 .
[3] Farshad Farshchi Tabrizi,et al. Experimental study of an integrated basin solar still with a sandy heat reservoir , 2010 .
[4] Hamdi Abdi,et al. Optimal operation of multicarrier energy systems using Time Varying Acceleration Coefficient Gravitational Search Algorithm , 2016 .
[5] Amir Safdarian,et al. Optimal distribution network reconfiguration considering power quality issues , 2017, 2017 Smart Grid Conference (SGC).
[6] Lin Cheng,et al. An optimal operating strategy for CCHP in multi-energy carrier system , 2016, 2016 IEEE Power and Energy Society General Meeting (PESGM).
[8] Behnam Mohammadi-Ivatloo,et al. Combined heat and power economic dispatch problem solution by implementation of whale optimization method , 2017, Neural Computing and Applications.
[9] Jiangfeng Zhang,et al. Low-carbon economic dispatch for electricity and natural gas systems considering carbon capture systems and power-to-gas , 2018, Applied Energy.
[10] Ali Mohammad Ranjbar,et al. An autonomous demand response program for electricity and natural gas networks in smart energy hubs , 2015 .
[11] Shuai Lu,et al. Coordinated dispatch of multi-energy system with district heating network: Modeling and solution strategy , 2018, Energy.
[12] Nilay Shah,et al. Stochastic real-time operation control of a combined heat and power (CHP) system under uncertainty , 2020 .
[13] Kazem Zare,et al. Multi-Objective Optimization Framework for Electricity and Natural Gas Energy Hubs Under Hydrogen Storage System and Demand Response Program , 2018 .
[14] Mari Sepponen,et al. Business concepts for districts’ Energy hub systems with maximised share of renewable energy , 2016 .
[15] Behnam Mohammadi-Ivatloo,et al. Improved harmony search algorithm for the solution of non-linear non-convex short-term hydrothermal scheduling , 2018 .
[16] Gang Xiao,et al. A review on solar stills for brine desalination , 2013 .
[17] Kazem Zare,et al. Supply Side Management in Renewable Energy Hubs , 2018 .
[18] Abdullah Abusorrah,et al. Electricity-Natural Gas Operation Planning With Hourly Demand Response for Deployment of Flexible Ramp , 2016, IEEE Transactions on Sustainable Energy.
[19] Berna Dengiz,et al. An integrated simulation model for analysing electricity and gas systems , 2014 .
[20] Pierluigi Siano,et al. Optimal Bidding Strategy for a DER Aggregator in the Day-Ahead Market in the Presence of Demand Flexibility , 2019, IEEE Transactions on Industrial Electronics.
[21] Tero Tynjälä,et al. Cost benefits of optimizing hydrogen storage and methanation capacities for Power-to-Gas plants in dynamic operation , 2020 .
[22] Morteza Nazari-Heris,et al. Optimal Energy and Reserve Management of the Electric Vehicles Aggregator in Electrical Energy Networks Considering Distributed Energy Sources and Demand Side Management , 2020 .
[23] Muwaffaq I. Alomoush,et al. Optimal Combined Heat and Power Economic Dispatch Using Stochastic Fractal Search Algorithm , 2020, Journal of Modern Power Systems and Clean Energy.
[24] Abdullah Abusorrah,et al. Coordination of Interdependent Natural Gas and Electricity Infrastructures for Firming the Variability of Wind Energy in Stochastic Day-Ahead Scheduling , 2015, IEEE Transactions on Sustainable Energy.
[25] Mohammad Shahidehpour,et al. Multistage Robust Look-Ahead Unit Commitment with Probabilistic Forecasting in Multi-Carrier Energy Systems , 2021, IEEE Transactions on Sustainable Energy.
[26] Matti Lehtonen,et al. Uncertainty-Based Models for Optimal Management of Energy Hubs Considering Demand Response , 2019, Energies.
[27] Mahdi Azimian,et al. Dynamic Multi-Carrier Microgrid Deployment Under Uncertainty , 2020 .
[28] Hongbin Sun,et al. Interval optimization based operating strategy for gas-electricity integrated energy systems considering demand response and wind uncertainty , 2016 .
[29] Da Xie,et al. Power-to-gas management using robust optimisation in integrated energy systems , 2019, Applied Energy.
[30] A. Conejo,et al. Decision making under uncertainty in electricity markets , 2010, 2006 IEEE Power Engineering Society General Meeting.
[31] Scott Kelly,et al. Optimal operation of an energy hub considering the uncertainty associated with the power consumption of plug-in hybrid electric vehicles using information gap decision theory , 2019, International Journal of Electrical Power & Energy Systems.
[32] Kazem Zare,et al. Optimization Framework Based on Information Gap Decision Theory for Optimal Operation of Multi-energy Systems , 2019 .
[33] Ralph Evins,et al. Multi-level optimization of building design, energy system sizing and operation , 2015 .
[34] Soteris A. Kalogirou,et al. Seawater desalination using renewable energy sources , 2005 .
[35] Behnam Mohammadi-Ivatloo,et al. Optimal economic dispatch of FC-CHP based heat and power micro-grids , 2017 .
[36] Zhe Chen,et al. Steady-state analysis of the integrated natural gas and electric power system with bi-directional energy conversion , 2016 .
[37] Hamdi Abdi,et al. A general model for energy hub economic dispatch , 2017 .
[38] Zhe Chen,et al. A bi-level programming for multistage co-expansion planning of the integrated gas and electricity system , 2017 .
[39] Mohammad Shahidehpour,et al. Robust operation of a multicarrier energy system considering EVs and CHP units , 2020 .
[40] Manijeh Alipour,et al. Stochastic Scheduling of Renewable and CHP-Based Microgrids , 2015, IEEE Transactions on Industrial Informatics.
[41] A. Soroudi,et al. Possibilistic-Scenario Model for DG Impact Assessment on Distribution Networks in an Uncertain Environment , 2012, IEEE Transactions on Power Systems.
[42] Matti Lehtonen,et al. A Linear Model for AC Power Flow Analysis in Distribution Networks , 2019, IEEE Systems Journal.
[43] Kittisak Jermsittiparsert,et al. Probabilistic scheduling of power-to-gas storage system in renewable energy hub integrated with demand response program , 2020 .
[44] Mehdi Ehsan,et al. IGDT Based Robust Decision Making Tool for DNOs in Load Procurement Under Severe Uncertainty , 2013, IEEE Transactions on Smart Grid.
[45] Mohammad Shahidehpour,et al. Robust Two-Stage Regional-District Scheduling of Multi-carrier Energy Systems With a Large Penetration of Wind Power , 2019, IEEE Transactions on Sustainable Energy.
[46] Bo Zeng,et al. An interval-prediction based robust optimization approach for energy-hub operation scheduling considering flexible ramping products , 2020 .
[47] Sayyad Nojavan,et al. Corrigendum to “Performance improvement of a battery/PV/fuel cell/grid hybrid energy system considering load uncertainty modeling using IGDT” [Energy Convers. Manage. 147 (2017) 29–39] , 2020 .
[48] Goran Andersson,et al. Location-dependent valuation of energy hubs with storage in multi-carrier energy systems , 2010, 2010 7th International Conference on the European Energy Market.
[49] Yinghua Han,et al. Robust and opportunistic scheduling of district integrated natural gas and power system with high wind power penetration considering demand flexibility and compressed air energy storage , 2020 .
[50] Alfredo Vaccaro,et al. A robust optimization approach to energy hub management , 2012 .
[51] Ali Reza Seifi,et al. Effects of district heating networks on optimal energy flow of multi-carrier systems , 2016 .
[52] Boreum Lee,et al. Stochastic techno-economic analysis of power-to-gas technology for synthetic natural gas production based on renewable H2 cost and CO2 tax credit , 2019, Journal of Energy Storage.
[53] Mohammad Mohammadi,et al. Fuzzy-based scheduling of wind integrated multi-energy systems under multiple uncertainties , 2020 .
[54] Behnam Mohammadi-Ivatloo,et al. CVaR-constrained scheduling strategy for smart multi carrier energy hub considering demand response and compressed air energy storage , 2019, Energy.
[55] Alireza Soroudi,et al. Binary PSO-based dynamic multi-objective model for distributed generation planning under uncertainty , 2012 .
[56] Yachao Zhang,et al. Cooperative optimization scheduling of the electricity-gas coupled system considering wind power uncertainty via a decomposition-coordination framework , 2020 .
[57] Kazem Zare,et al. Optimal bidding strategy of generation station in power market using information gap decision theory (IGDT) , 2013 .
[58] Giacobbe Braccio,et al. Techno-economic evaluation of a solar powered water desalination plant , 2003 .
[59] Behnam Mohammadi-Ivatloo,et al. Optimal short-term generation scheduling of hydrothermal systems by implementation of real-coded genetic algorithm based on improved Mühlenbein mutation , 2017 .
[60] George E. Apostolakis,et al. Bulk power risk analysis: Ranking infrastructure elements according to their risk significance , 2008 .
[61] Morteza Nazari-Heris,et al. A Robust-Stochastic Approach for Energy Transaction in Energy Hub Under Uncertainty , 2019 .
[62] Hongjie Jia,et al. Hierarchical energy management system for multi-source multi-product microgrids , 2015 .
[63] Matti Lehtonen,et al. Home load management in a residential energy hub , 2015 .
[64] Behnam Mohammadi-Ivatloo,et al. Robust scheduling of thermal, cooling and electrical hub energy system under market price uncertainty , 2019, Applied Thermal Engineering.
[65] Behnam Mohammadi-Ivatloo,et al. Stochastic optimization of energy hub operation with consideration of thermal energy market and demand response , 2017 .
[66] Shahram Jadid,et al. Optimal electrical and thermal energy management of a residential energy hub, integrating demand response and energy storage system , 2015 .
[67] Brian Ó Gallachóir,et al. An integrated gas and electricity model of the EU energy system to examine supply interruptions , 2017 .
[68] Farhad Samadi Gazijahani,et al. Stochastic multi-objective model for optimal energy exchange optimization of networked microgrids with presence of renewable generation under risk-based strategies. , 2017, ISA transactions.
[69] M. Chapman Findlay,et al. Stochastic dominance : an approach to decision-making under risk , 1978 .
[70] Javier Contreras,et al. Medium-term energy hub management subject to electricity price and wind uncertainty , 2016 .
[71] Kenneth Bruninx,et al. Facilitating renewables and power-to-gas via integrated electrical power-gas system scheduling , 2020 .
[72] Ali Reza Seifi,et al. An Integrated Steady-State Operation Assessment of Electrical, Natural Gas, and District Heating Networks , 2016, IEEE Transactions on Power Systems.
[73] Alireza Soroudi,et al. Decision making under uncertainty in energy systems: state of the art , 2013, ArXiv.
[74] Sayyad Nojavan,et al. Optimal stochastic short-term thermal and electrical operation of fuel cell/photovoltaic/battery/grid hybrid energy system in the presence of demand response program , 2017 .
[75] Provas Kumar Roy,et al. Power flow based hydro-thermal-wind scheduling of hybrid power system using sine cosine algorithm , 2020 .
[76] Morteza Nazari-Heris,et al. Optimal Management of Hydrothermal-Based Micro-Grids Employing Robust Optimization Method , 2018 .
[77] Morteza Nazari-Heris,et al. Energy Management of Electric Vehicles Parking in a Power Distribution Network Using Robust Optimization Method , 2018 .
[78] Lingfeng Wang,et al. A robust optimization approach for coordinated operation of multiple energy hubs , 2020 .
[79] Ionel Vechiu,et al. CVaR-based energy management scheme for optimal resilience and operational cost in commercial building microgrids , 2018, International Journal of Electrical Power & Energy Systems.
[80] Behnam Mohammadi-Ivatloo,et al. Energy and reserve management of a smart distribution system by incorporating responsive-loads /battery/wind turbines considering uncertain parameters , 2019, Energy.
[81] Boming Zhang,et al. Transmission-Constrained Unit Commitment Considering Combined Electricity and District Heating Networks , 2016, IEEE Transactions on Sustainable Energy.
[82] Mehdi Ehsan,et al. Probabilistic Optimal Power Dispatch in Multi-Carrier Networked Microgrids under Uncertainties , 2017 .
[83] Goran Andersson,et al. Reliability modeling of multi-carrier energy systems , 2009 .
[84] Audrius Bagdanavicius,et al. Combined analysis of electricity and heat networks , 2014 .
[85] Nima Amjady,et al. Optimal operation strategy for multi-carrier energy systems including various energy converters by multi-objective information gap decision theory and enhanced directed search domain method , 2019, Energy Conversion and Management.
[86] R. Rockafellar,et al. Optimization of conditional value-at risk , 2000 .
[87] Mohammad Shahidehpour,et al. Robust Co-Optimization Scheduling of Electricity and Natural Gas Systems via ADMM , 2017, IEEE Transactions on Sustainable Energy.
[88] Junbo Zhao,et al. Multi-period optimal energy flow for electricity-gas integrated systems considering gas inertia and wind power uncertainties , 2020 .
[89] Mohammad Shahidehpour,et al. Robust Short-Term Scheduling of Integrated Heat and Power Microgrids , 2019, IEEE Systems Journal.
[90] Florian Kienzle,et al. Valuing Investments in Multi-Energy Conversion, Storage, and Demand-Side Management Systems Under Uncertainty , 2011, IEEE Transactions on Sustainable Energy.
[91] Morteza Nazari-Heris,et al. Economic-environmental effect of power to gas technology in coupled electricity and gas systems with price-responsive shiftable loads , 2020, Journal of Cleaner Production.
[92] Samaneh Pazouki,et al. Optimal planning and scheduling of energy hub in presence of wind, storage and demand response under uncertainty , 2016 .
[93] Giorgio Graditi,et al. Comparison between two different operation strategies for a heat-driven residential natural gas-fired CHP system: Heat dumping vs. load partialization , 2016 .
[94] Ali Reza Seifi,et al. Stochastic energy management in multi-carrier residential energy systems , 2020 .
[95] Kevin Sartor,et al. Simulation and optimization of a CHP biomass plant and district heating network , 2014 .
[96] Giuseppe Barone,et al. Designing of cost-effective and low-carbon multi- energy nanogrids for residential applications , 2020 .
[97] Morteza Nazari-Heris,et al. Evaluating the impact of multi-carrier energy storage systems in optimal operation of integrated electricity, gas and district heating networks , 2020, Applied Thermal Engineering.
[98] Kazem Zare,et al. A multi-objective model for optimal operation of a battery/PV/fuel cell/grid hybrid energy system using weighted sum technique and fuzzy satisfying approach considering responsible load management , 2017 .
[99] Tao Jiang,et al. Security-constrained bi-level economic dispatch model for integrated natural gas and electricity systems considering wind power and power-to-gas process , 2017 .
[100] Behnam Mohammadi-Ivatloo,et al. Solving combined heat and power economic dispatch problem using real coded genetic algorithm with improved Mühlenbein mutation , 2016 .
[101] Mohammad Reza Mohammadi,et al. Energy hub: From a model to a concept – A review , 2017 .
[102] Elaheh Mashhour,et al. A comprehensive model for self-scheduling an energy hub to supply cooling, heating and electrical demands of a building , 2016 .
[103] Lionel Amodeo,et al. Optimization of natural gas pipeline transportation using ant colony optimization , 2009, Comput. Oper. Res..
[104] Ming Yang,et al. Optimal operation of integrated energy system considering dynamic heat-gas characteristics and uncertain wind power , 2020 .
[105] Neera Jain,et al. Dynamic modeling and validation of a micro-combined heat and power system with integrated thermal energy storage , 2020 .
[106] Kazem Zare,et al. Incorporation of demand response programs and wind turbines in optimal scheduling of smart distribution networks: A case study , 2017, 2017 Conference on Electrical Power Distribution Networks Conference (EPDC).
[107] Zhe Chen,et al. A market equilibrium model for electricity, gas and district heating operations , 2020, Energy.
[108] Jean-Louis Scartezzini,et al. Electrical hubs: An effective way to integrate non-dispatchable renewable energy sources with minimum impact to the grid , 2017 .
[109] Albert Moser,et al. Uncertainty modeling in optimal operation of energy hub in presence of wind, storage and demand response , 2014 .
[110] Andrew Ball,et al. Combustion and performance characteristics of CI (compression ignition) engine running with biodiesel , 2013 .
[111] A. Calafat,et al. Environmental phenols and pubertal development in girls. , 2015, Environment international.
[112] Behnam Mohammadi-Ivatloo,et al. Large-scale combined heat and power economic dispatch using a novel multi-player harmony search method , 2019, Applied Thermal Engineering.
[113] Alfredo Vaccaro,et al. A goal programming methodology for multiobjective optimization of distributed energy hubs operation , 2014 .
[114] Asgeir Tomasgard,et al. Modeling Optimal Economic Dispatch and System Effects in Natural Gas Networks , 2009 .
[115] Sayyad Nojavan,et al. Performance improvement of a battery/PV/fuel cell/grid hybrid energy system considering load uncertainty modeling using IGDT , 2017 .
[116] Mahmud Fotuhi-Firuzabad,et al. Load management in a residential energy hub with renewable distributed energy resources , 2015 .
[117] Üner Çolak,et al. Combined cooling, heat and power planning under uncertainty , 2016 .
[118] Heresh Seyedi,et al. A multi-follower bilevel stochastic programming approach for energy management of combined heat and power micro-grids , 2018 .
[119] Nicola Bianco,et al. Economic optimization of a residential micro-CHP system considering different operation strategies , 2016 .
[120] Haibo He,et al. Real-time subsidy based robust scheduling of the integrated power and gas system , 2019, Applied Energy.
[121] Morteza Nazari-Heris,et al. Optimal operation of multi-carrier energy networks with gas, power, heating, and water energy sources considering different energy storage technologies , 2020 .
[122] Guillaume Sandou,et al. Particle Swarm Optimization Based NMPC: An Application to District Heating Networks , 2009 .
[123] Kazem Zare,et al. Optimal strategic coordination of distribution networks and interconnected energy hubs: A linear multi-follower bi-level optimization model , 2020 .
[124] Hantao Cui,et al. Day-ahead coordinated operation of utility-scale electricity and natural gas networks considering demand response based virtual power plants , 2016 .
[125] Mohammed H. I. Dore,et al. Forecasting the economic costs of desalination technology , 2005 .
[126] Kazem Zare,et al. Integration of Smart Energy Hubs in Distribution Networks Under Uncertainties and Demand Response Concept , 2019, IEEE Transactions on Power Systems.
[127] Ali Reza Seifi,et al. Stochastic multi-objective optimization of combined heat and power economic/emission dispatch , 2017 .
[128] H. Mehrjerdi. Modeling and integration of water desalination units in thermal unit commitment considering energy and water storage , 2020 .
[129] Morteza Nazari-Heris,et al. Optimal Operation of Multi-Carrier Energy Networks Considering Uncertain Parameters and Thermal Energy Storage , 2020, Sustainability.
[130] Mohammad SHAHIDEHPOUR,et al. Robust coordination of interdependent electricity and natural gas systems in day-ahead scheduling for facilitating volatile renewable generations via power-to-gas technology , 2017 .
[131] Sabrina Abdeddaim,et al. Artificial Neural Network power manager for hybrid PV-wind desalination system , 2020, Math. Comput. Simul..