[1]BATRA G. Renewable energy economics: achieving harmony between environmental protection and economic goals [J]. Social Science Chronicle, 2023, 2(2): 1-32.
[2]Statistical review of world energy [EB/OL]. Bp glob n.d.
[2022-9-12]. https://www.bp.com/en/global/corporate/energy-economics/statistical-review-of-world-energy.html.
[3]RITCHIE H, ROSER M. Sector by sector: where do global greenhouse gas emissions come from? [J]. Our World in data, 2023.
[4]BALINT P J. Wicked environmental problems: managing uncertainty and conflict [M]. Island Press, 2011.
[5]LEGGETT J A, LOGAN J, MACKEY A. China's greenhouse gas emissions and mitigation policies [M]. Congressional Research Service, 2019.
[6]FATRAS N, MA Z, DUAN H, et al. A systematic review of electricity market liberalisation and its alignment with industrial consumer participation: A comparison between the Nordics and China [J]. Renewable and Sustainable Energy Reviews, 2022, 167: 112793.
[7]LEI X, YU H, SHAO Z, et al. Optimal bidding and coordinating strategy for maximal marginal revenue due to V2G operation: Distribution system operator as a key player in China's uncertain electricity markets [J]. Energy, 2023, 283: 128354.
[8]ZHU H, ZHANG D, GOH H H, et al. Future Data Center Energy-Conservation and Emission-Reduction Technologies in the Context of Smart and Low-Carbon City Construction [J]. Sustainable Cities and Society, 2022: 104322.
[9]CABIGIOSU A. Sustainable development and incumbents' open innovation strategies for a greener competence‐destroying technology: The case of electric vehicles [J]. Business Strategy and the Environment, 2022, 31(5): 2315-36.
[10]DIK A, OMER S, BOUKHANOUF R. Electric Vehicles: V2G for Rapid, Safe, and Green EV Penetration [J]. Energies, 2022, 15(3): 803.
[11]MATEEN S, AMIR M, HAQUE A, et al. Ultra-fast charging of electric vehicles: A review of power electronics converter, grid stability and optimal battery consideration in multi-energy systems [J]. Sustainable Energy, Grids and Networks, 2023: 101112.
[12]RAJAEIFAR M A, GHADIMI P, RAUGEI M, et al. Challenges and recent developments in supply and value chains of electric vehicle batteries: A sustainability perspective [J]. Elsevier. 2022: 106144
[13]TRINKO D, HORESH N, PORTER E, et al. Transportation and electricity systems integration via electric vehicle charging-as-a-service: A review of techno-economic and societal benefits [J]. Renewable and Sustainable Energy Reviews, 2023, 175: 113180.
[14]SARKER M R, DVORKIN Y, ORTEGA-VAZQUEZ M A. Optimal participation of an electric vehicle aggregator in day-ahead energy and reserve markets [J]. IEEE transactions on power systems, 2015, 31(5): 3506-15.
[15]WU W, LIN B. Benefits of electric vehicles integrating into power grid [J]. Energy, 2021, 224: 120108.
[16]Implementation opinions on further improving the service guarantee capabilities of charging and replacement infrastructure [N/OL].2022-01-21
[2022-01-21]. http://www.gov.cn/zhengce/zhengceku/2022-01/21/content_5669780.htm.
[17]VENEGAS F G, PETIT M, PEREZ Y. Active integration of electric vehicles into distribution grids: Barriers and frameworks for flexibility services [J]. Renewable and Sustainable Energy Reviews, 2021, 145: 111060.
[18]SOLANKE T U, KHATUA P K, RAMACHANDARAMURTHY V K, et al. Control and management of a multilevel electric vehicles infrastructure integrated with distributed resources: A comprehensive review [J]. Renewable and Sustainable Energy Reviews, 2021, 144: 111020.
[19]Guangdong Provincial Development and Reform Commission Related to the transaction scale and market access of the electricity market in 2020 [N/OL]. (
[2019-10-20]. http://drc.gd.gov.cn/.
[20]LOPES J A P, SOARES F J, ALMEIDA P M R. Integration of Electric Vehicles in the Electric Power System [J]. Proceedings of the IEEE, 2011, 99(1): 168-83.
[21]CUI Y, HU Z, LUO H. Optimal day-ahead charging and frequency reserve scheduling of electric vehicles considering the regulation signal uncertainty [J]. IEEE Transactions on Industry Applications, 2020, 56(5): 5824-35.
[22]ZHENG Y, YU H, SHAO Z, et al. Day-ahead bidding strategy for electric vehicle aggregator enabling multiple agent modes in uncertain electricity markets [J]. Applied Energy, 2020, 280.
[23]YANG H, ZHANG S, QIU J, et al. CVaR-Constrained Optimal Bidding of Electric Vehicle Aggregators in Day-Ahead and Real-Time Markets [J]. IEEE Transactions on Industrial Informatics, 2017, 13(5): 2555-65.
[24]HABIBIFAR R, LEKVAN A A, EHSAN M. A risk-constrained decision support tool for EV aggregators participating in energy and frequency regulation markets [J]. Electric Power Systems Research, 2020, 185: 106367.
[25]CAO Y, HUANG L, LI Y, et al. Optimal scheduling of electric vehicles aggregator under market price uncertainty using robust optimization technique [J]. International Journal of Electrical Power & Energy Systems, 2020, 117: 105628.
[26]ZHENG Y, WANG Y, YANG Q. Two-phase operation for coordinated charging of electric vehicles in a market environment: From electric vehicle aggregators’ perspective [J]. Renewable and Sustainable Energy Reviews, 2023, 171: 113006.
[27]TOQUICA D, DE OLIVEIRA-DE JESUS P M, CADENA A I. Power market equilibrium considering an ev storage aggregator exposed to marginal prices-a bilevel optimization approach [J]. Journal of Energy Storage, 2020, 28: 101267.
[28]RAWAT T, NIAZI K, GUPTA N, et al. A linearized multi-objective Bi-level approach for operation of smart distribution systems encompassing demand response [J]. Energy, 2022, 238: 121991.
[29]FRANCISCO E, FERREIRA L, SILVA C, et al. DSO and flexible power contracts as enablers of EV smart charging in residential collective buildings; proceedings of the CIRED 2020 Berlin Workshop (CIRED 2020), F, 2020 [C]. IET.
[30]CANEPONI G, CAZZATO F, COCHI S, et al. EV charging stations and RES-based DG: A centralized approach for smart integration in active distribution grids [J]. International Journal of Renewable Energy Research (IJRER), 2019, 9(2): 605-12.
[31]OLIVELLA-ROSELL P, LLORET-GALLEGO P, BARJA-MARTINEZ S, et al. INVADE Flexibility Centralized Algorithm to Manage Electric Vehicles under DSO Requests in Buildings with Limited Information; proceedings of the 2019 IEEE PES Innovative Smart Grid Technologies Europe (ISGT-Europe), F, 2019 [C]. IEEE.
[32]PATNAM B S K, PINDORIYA N M. DLMP calculation and congestion minimization with EV aggregator loading in a distribution network using bilevel program [J]. IEEE Systems Journal, 2020, 15(2): 1835-46.
[33]LI R, WU Q, OREN S S. Distribution locational marginal pricing for optimal electric vehicle charging management [J]. IEEE Transactions on Power Systems, 2013, 29(1): 203-11.
[34]ZIRAS C, KAZEMPOUR J, KARA E C, et al. A mid-term DSO market for capacity limits: How to estimate opportunity costs of aggregators? [J]. IEEE Transactions on Smart Grid, 2019, 11(1): 334-45.
[35]MOUSAVI M, WU M. A DSO Framework for Market Participation of DER Aggregators in Unbalanced Distribution Networks [J]. IEEE Transactions on Power Systems, 2021: 37(3): 2247-2258
[36]REN H, ZHANG A, WANG F, et al. Optimal scheduling of an EV aggregator for demand response considering triple level benefits of three-parties [J]. International Journal of Electrical Power & Energy Systems, 2021, 125: 106447.
[37]LU X, XIA S, GU W, et al. Two-stage robust distribution system operation by coordinating electric vehicle aggregator charging and load curtailments [J]. Energy, 2021, 226: 120345.
[38]LEI X, SHANG Y, SHAO Z, et al. Grid integration of electric vehicles for optimal marginal revenue of distribution system operator in spot market [J]. Energy Reports, 2022, 8: 1061-8.
[39]GOLMOHAMADI H, LARSEN K G, JENSEN P G, et al. Integration of flexibility potentials of district heating systems into electricity markets: A review [J]. Renewable and Sustainable Energy Reviews, 2022, 159: 112200.
[40]RAVI A, BAI L, CECCHI V, et al. Stochastic Strategic Participation of Active Distribution Networks with High-Penetration DERs in Wholesale Electricity Markets [J]. IEEE Transactions on Smart Grid, 2022, 14(2): 1515-1527.
[41]BAGHERI A, JADID S. Integrating wholesale and retail electricity markets considering financial risks using stochastic programming [J]. International Journal of Electrical Power & Energy Systems, 2022, 142: 108213.
[42]HASANKHANI A, HAKIMI S M. Stochastic energy management of smart microgrid with intermittent renewable energy resources in electricity market [J]. Energy, 2021, 219: 119668.
[43]HAKIMI S M, HASANKHANI A, SHAFIE-KHAH M, et al. Stochastic planning of a multi-microgrid considering integration of renewable energy resources and real-time electricity market [J]. Applied Energy, 2021, 298: 117215.
[44]DONG W, SUN H, MEI C, et al. Forecast-driven stochastic optimization scheduling of an energy management system for an isolated hydrogen microgrid [J]. Energy Conversion and Management, 2023, 277: 116640.
[45]ABAPOUR S, MOHAMMADI-IVATLOO B, HAGH M T. Robust bidding strategy for demand response aggregators in electricity market based on game theory [J]. Journal of Cleaner Production, 2020, 243: 118393.
[46]CHEN L, TANG H, WU J, et al. A robust optimization framework for energy management of CCHP users with integrated demand response in electricity market [J]. International Journal of Electrical Power & Energy Systems, 2022, 141: 108181.
[47]LIU X. Research on bidding strategy of virtual power plant considering carbon-electricity integrated market mechanism [J]. International Journal of Electrical Power & Energy Systems, 2022, 137: 107891.
[48]WANG J, ZHOU Y, ZHANG X, et al. Robust multi-objective optimization with life cycle assessment of hybrid solar combined cooling, heating and power system [J]. Energy Conversion and Management, 2021, 232: 113868.
[49]RAHIMIAN H, MEHROTRA S. Frameworks and results in distributionally robust optimization [J]. Open Journal of Mathematical Optimization, 2022, 3: 1-85.
[50]STAIB M, JEGELKA S. Distributionally robust optimization and generalization in kernel methods [J]. Advances in Neural Information Processing Systems, 2019, 32.
[51]BERTSIMAS D, SIM M, ZHANG M. Adaptive distributionally robust optimization [J]. Management Science, 2019, 65(2): 604-18.
[52]YANG H, ZHANG S, QIU D, et al. Distributionally robust optimal bidding of controllable load aggregators in the electricity market [J]. IEEE Transactions on Power Systems, 2017, 33(1): 1089-91.
[53]XU X, HU W, CAO D, et al. Scheduling of wind-battery hybrid system in the electricity market using distributionally robust optimization [J]. Renewable Energy, 2020, 156: 47-56.
[54]HAJEBRAHIMI A, KAMWA I, ABDELAZIZ M M A, et al. Scenario-wise distributionally robust optimization for collaborative intermittent resources and electric vehicle aggregator bidding strategy [J]. IEEE transactions on power systems, 2020, 35(5): 3706-18.
[55]LI Y, HAN M, SHAHIDEHPOUR M, et al. Data-driven distributionally robust scheduling of community integrated energy systems with uncertain renewable generations considering integrated demand response [J]. Applied Energy, 2023, 335: 120749.
[56]MEMARZADEH G, KEYNIA F. Short-term electricity load and price forecasting by a new optimal LSTM-NN based prediction algorithm [J]. Electric Power Systems Research, 2021, 192: 106995.
[57]CHEN Y, KANG Y, CHEN Y, et al. Probabilistic forecasting with temporal convolutional neural network [J]. Neurocomputing, 2020, 399: 491-501.
[58]GOUGHERI S S, JAHANGIR H, GOLKAR M A, et al. Optimal participation of a virtual power plant in electricity market considering renewable energy: A deep learning-based approach [J]. Sustainable Energy, Grids and Networks, 2021, 26: 100448.
[59]JAHANGIR H, GOUGHERI S S, VATANDOUST B, et al. Plug-in electric vehicle behavior modeling in energy market: A novel deep learning-based approach with clustering technique [J]. IEEE Transactions on Smart Grid, 2020, 11(6): 4738-48.
[60]MANNA C, SANJAB A. A decentralized stochastic bidding strategy for aggregators of prosumers in electricity reserve markets [J]. Journal of Cleaner Production, 2023, 389: 135962.
[61]VATANDOUST B, AHMADIAN A, GOLKAR M A, et al. Risk-averse optimal bidding of electric vehicles and energy storage aggregator in day-ahead frequency regulation market [J]. IEEE Transactions on Power systems, 2018, 34(3): 2036-47.
[62]SADEGHI S, JAHANGIR H, VATANDOUST B, et al. Optimal bidding strategy of a virtual power plant in day-ahead energy and frequency regulation markets: A deep learning-based approach [J]. International Journal of Electrical Power & Energy Systems, 2021, 127: 106646.
[63]ZHANG Q, WU X, DENG X, et al. Bidding strategy for wind power and Large-scale electric vehicles participating in Day-ahead energy and frequency regulation market [J]. Applied Energy, 2023, 341: 121063.
[64]WU Z, HU J, AI X, et al. Data-driven approaches for optimizing EV aggregator power profile in energy and reserve market [J]. International Journal of Electrical Power & Energy Systems, 2021, 129: 106808.
[65]DUAN X, HU Z, SONG Y. Bidding strategies in energy and reserve markets for an aggregator of multiple EV fast charging stations with battery storage [J]. IEEE Transactions on Intelligent Transportation Systems, 2020, 22(1): 471-82.
[66]TIAN M-W, YAN S-R, TIAN X-X, et al. Risk-involved stochastic scheduling of plug-in electric vehicles aggregator in day-ahead and reserve markets using downside risk constraints method [J]. Sustainable Cities and Society, 2020, 55: 102051.
[67]GAO S, LI H, JURASZ J, et al. Optimal charging of electric vehicle aggregations participating in energy and ancillary service markets [J]. IEEE Journal of Emerging and Selected Topics in Industrial Electronics, 2021, 3(2): 270-8.
[68]KHOSHJAHAN M, SOLEIMANI M, KEZUNOVIC M. Optimal participation of PEV charging stations integrated with smart buildings in the wholesale energy and reserve markets; proceedings of the 2020 IEEE Power & Energy Society Innovative Smart Grid Technologies Conference (ISGT), F, 2020 [C]. IEEE.
[69]RASHIDIZADEH-KERMANI H, VAHEDIPOUR-DAHRAIE M, SHAFIE-KHAH M, et al. A stochastic short-term scheduling of virtual power plants with electric vehicles under competitive markets [J]. International Journal of Electrical Power & Energy Systems, 2021, 124: 106343.
[70]COURAUD B, ANDONI M, ROBU V, et al. Responsive FLEXibility: A smart local energy system [J]. Renewable and Sustainable Energy Reviews, 2023, 182: 113343.
[71]HASHEMIPOUR N, DEL GRANADO P C, AGHAEI J. Dynamic allocation of peer-to-peer clusters in virtual local electricity markets: A marketplace for EV flexibility [J]. Energy, 2021, 236: 121428.
[72]LI Z, LEI X, SHANG Y, et al. A genuine V2V market mechanism aiming for maximum revenue of each EV owner based on non-cooperative game model [J]. Journal of Cleaner Production, 2023: 137586.
[73]ZEYNALI S, NASIRI N, RAVADANEGH S N, et al. A three-level framework for strategic participation of aggregated electric vehicle-owning households in local electricity and thermal energy markets [J]. Applied Energy, 2022, 324: 119749.
[74]AMINLOU A, MOHAMMADI-IVATLOO B, ZARE K, et al. Activating Demand Side Flexibility Market in a Fully Decentralized P2P Transactive Energy Trading Framework Using ADMM Algorithm [J]. Sustainable Cities and Society, 2023: 105021.
[75]CHO Y, LEE E, BAEK K, et al. Stochastic Optimization-Based hosting capacity estimation with volatile net load deviation in distribution grids [J]. Applied Energy, 2023, 341: 121075.
[76]WANG H, ZHENG T, SUN W, et al. Research on the pricing strategy of park electric vehicle agent considering carbon trading [J]. Applied Energy, 2023, 340: 121017.
[77]QAHTAN S, ALSATTAR H A, ZAIDAN A, et al. A novel fuel supply system modelling approach for electric vehicles under Pythagorean probabilistic hesitant fuzzy sets [J]. Information Sciences, 2023, 622: 1014-32.
[78]TIWARI S, DARYANTO Y, WEE H M. Sustainable inventory management with deteriorating and imperfect quality items considering carbon emission [J]. Journal of Cleaner Production, 2018, 192: 281-92.
[79]GHOSH A. Possibilities and challenges for the inclusion of the electric vehicle (EV) to reduce the carbon footprint in the transport sector: A review [J]. Energies, 2020, 13(10): 2602.
[80]Notice of Shenzhen Bureau of Ecological Environment on printing and distributing "Shenzhen Carbon Inclusive Management Measures [EB/OL].
[2022-08-03]. http://meeb.sz.gov.cn/szssthjjwzgkml/szssthjjwzgkml/zcfgjzcjd/zcfg/qt/content/post_9997540.html .
[81]LEARD B, MCCONNELL V. Progress and Potential for Electric Vehicles to Reduce Carbon Emissions [J]. Resources for the Future (RFF), Report, 2020: 20-4.
[82]LIU Z, ZHENG W, QI F, et al. Optimal Dispatch of a Virtual Power Plant Considering Demand Response and Carbon Trading [J]. Energies, 2018, 11(6).
[83]WANG J, WU Z, DU E, et al. Constructing a V2G-enabled regional energy internet for cost-efficient carbon trading [J]. CSEE Journal of Power and Energy Systems, 2020, 6(1): 31-40.
[84]LIU X. Research on bidding strategy of virtual power plant considering carbon-electricity integrated market mechanism [J]. International Journal of Electrical Power & Energy Systems, 2022, 137.
[85]WEN Y, CHEN Y, WANG P, et al. Photovoltaic–electric vehicles participating in bidding model of power grid that considers carbon emissions [J]. Energy Reports, 2022, 8: 3847-55.
[86]SINGH K N, DAS N, MAURYA M, et al. An Intelligent Bidding Strategy based on Social Welfare of Virtual Power Plant considering Carbon Trading; proceedings of the 2022 IEEE International Conference on Power Electronics, Smart Grid, and Renewable Energy (PESGRE), F, 2022 [C]. IEEE.
[87]YAN Y, LIN Z, WEN F, et al. Bidding Strategy of a Microgrid Considering Risk Interdependence between Electricity and Carbon Markets; proceedings of the 2019 IEEE Power & Energy Society General Meeting (PESGM), F, 2019 [C]. IEEE.
[88]YANG S-X, WANG X-F, NING W-Q, et al. An optimization model for charging and discharging battery-exchange buses: Consider carbon emission quota and peak-shaving auxiliary service market [J]. Sustainable Cities and Society, 2021, 68: 102780.
[89]YAP K Y, CHIN H H, KLEMEŠ J J. Blockchain technology for distributed generation: A review of current development, challenges and future prospect [J]. Renewable and Sustainable Energy Reviews, 2023, 175: 113170.
[90]WASEEM M, AMIR M, LAKSHMI G S, et al. Fuel cell-based hybrid electric vehicles: An integrated review of current status, key challenges, recommended policies, and future prospects [J]. Green Energy and Intelligent Transportation, 2023: 100121.
[91]KAPASSA E, THEMISTOCLEOUS M, CHRISTODOULOU K, et al. Blockchain application in internet of vehicles: Challenges, contributions and current limitations [J]. Future Internet, 2021, 13(12): 313.
[92]HU J, MORAIS H, SOUSA T, et al. Electric vehicle fleet management in smart grids: A review of services, optimization and control aspects [J]. Renewable and Sustainable Energy Reviews, 2016, 56: 1207-26.
[93]GUO L, CHEN J, LI S, et al. A blockchain and IoT-based lightweight framework for enabling information transparency in supply chain finance [J]. Digital Communications and Networks, 2022, 8(4): 576-87.
[94]ZHANG Q, SU Y, WU X, et al. Electricity trade strategy of regional electric vehicle coalitions based on blockchain [J]. Electric Power Systems Research, 2022, 204: 107667.
[95]LAROIYA C, SAXENA D, KOMALAVALLI C. Applications of blockchain technology [M]. Handbook of research on blockchain technology. Elsevier. 2020: 213-43.
[96]ANTOUN J, KABIR M E, MOUSSA B, et al. A detailed security assessment of the EV charging ecosystem [J]. IEEE Network, 2020, 34(3): 200-7.
[97]WU Y, WU Y, GUERRERO J M, et al. Decentralized transactive energy community in edge grid with positive buildings and interactive electric vehicles [J]. International Journal of Electrical Power & Energy Systems, 2022, 135: 107510.
[98]LASLA N, AL-SAHAN L, ABDALLAH M, et al. Green-PoW: An energy-efficient blockchain Proof-of-Work consensus algorithm [J]. Computer Networks, 2022, 214: 109118.
[99]REBELLO G A F, CAMILO G F, GUIMARAES L C, et al. A security and performance analysis of proof-based consensus protocols [J]. Annals of Telecommunications, 2022: 1-21.
[100]LI Y, HU B. An iterative two-layer optimization charging and discharging trading scheme for electric vehicle using consortium blockchain [J]. IEEE Transactions on Smart Grid, 2019, 11(3): 2627-37.
[101]LIU H, ZHANG Y, ZHENG S, et al. Electric vehicle power trading mechanism based on blockchain and smart contract in V2G network [J]. IEEE Access, 2019, 7: 160546-58.
[102]XIA S, LIN F, CHEN Z, et al. A Bayesian game based vehicle-to-vehicle electricity trading scheme for blockchain-enabled internet of vehicles [J]. IEEE Transactions on Vehicular Technology, 2020, 69(7): 6856-68.
[103]PING J, YAN Z, CHEN S, et al. Coordinating EV charging via blockchain [J]. Journal of Modern Power Systems and Clean Energy, 2020, 8(3): 573-81.
[104]NOEL L, DE RUBENS G Z, KESTER J, et al. Beyond emissions and economics: Rethinking the co-benefits of electric vehicles (EVs) and vehicle-to-grid (V2G) [J]. Transport Policy, 2018, 71: 130-7.
[105]RIZVI S A A, XIN A, MASOOD A, et al. Electric vehicles and their impacts on integration into power grid: A review; proceedings of the 2018 2nd IEEE Conference on Energy Internet and Energy System Integration (EI2), F, 2018 [C]. IEEE.
[106]AYYADI S, BILIL H, MAAROUFI M. Optimal charging of Electric Vehicles in residential area [J]. Sustainable Energy, Grids and Networks, 2019, 19: 100240.
[107]CASELLA V, FERNANDEZ VALDERRAMA D, FERRO G, et al. Towards the integration of sustainable transportation and smart grids: A review on electric vehicles’ management [J]. Energies, 2022, 15(11): 4020.
[108]MARISCOTTI A. Harmonic and supraharmonic emissions of plug-in electric vehicle chargers [J]. Smart Cities, 2022, 5(2): 496-521.
[109]SAYED M A, GHAFOURI M, ATALLAH R, et al. Protecting the future grid: An electric vehicle robust mitigation scheme against load altering attacks on power grids [J]. Applied Energy, 2023, 350: 121769.
[110]CHANDRIKA V, SIVAKUMAR A, KRISHNAN T S, et al. Theoretical Study on Power Distribution Systems for Electric Vehicles [M]. Intelligent Engineering Applications and Applied Sciences for Sustainability. IGI Global. 2023: 1-19.
[111]MAHMUD I, MEDHA M B, HASANUZZAMAN M. Global challenges of electric vehicle charging systems and its future prospects: A review [J]. Research in Transportation Business & Management, 2023, 49: 101011.
[112]İNCI M, BAYıNDıR K Ç. Single-stage vehicular fuel cell system with harmonic elimination capability to suppress distortion effects of electric vehicle parking lots [J]. Journal of Power Sources, 2024, 597: 234175.
[113]WANG C, ZHENG P, BAUMAN J. A review of electric vehicle auxiliary power modules: Challenges, topologies, and future trends [J]. IEEE Transactions on Power Electronics, 2023, 38(9): 11233 - 11244.
[114]RAGAVENDRAN S, KUMAR P. Exploring Barriers and Challenges of Electric Vehicles in India and Vehicle-to-Grid Optimization: A Comprehensive Review [J]. International Journal Of Novel Research In Engineering Sciences (IJNRES), 2023: 16-9.
[115]AURANGZEB M, XIN A, IQBAL S, et al. A Novel Hybrid Approach for Power Quality Improvement in a Vehicle-to-Grid Setup Using Droop-ANN Model [J]. International Journal of Energy Research, 2023, 2023.
[116]TROJANI A G, MOGHADDAM M S, BAIGI J M. Stochastic security-constrained unit commitment considering electric vehicles, energy storage systems and flexible loads with renewable energy resources [J]. Journal of Modern Power Systems and Clean Energy, 2023.
[117]LEI X, YU H, YU B, et al. Bridging electricity market and carbon emission market through electric vehicles: Optimal bidding strategy for distribution system operators to explore economic feasibility in China's low-carbon transitions [J]. Sustainable Cities and Society, 2023, 94: 104557.
[118]MARTYUSHEV N V, MALOZYOMOV B V, KHALIKOV I H, et al. Review of Methods for Improving the Energy Efficiency of Electrified Ground Transport by Optimizing Battery Consumption [J]. Energies, 2023, 16(2): 729.
[119]SHAKER M H, FARZIN H, MASHHOUR E. Joint planning of electric vehicle battery swapping stations and distribution grid with centralized charging [J]. Journal of Energy Storage, 2023, 58: 106455.
[120]KAPOOR A, PATEL V S, SHARMA A, et al. Centralized and decentralized pricing strategies for optimal scheduling of electric vehicles [J]. IEEE Transactions on Smart Grid, 2022, 13(3): 2234-44.
[121]GüMRüKCü E, KLEMETS J R A, SUUL J A, et al. Decentralized energy management concept for urban charging hubs with multiple V2G aggregators [J]. IEEE Transactions on Transportation Electrification, 2023, 9(2): 2367 - 2381
[122]DAS H S, RAHMAN M M, LI S, et al. Electric vehicles standards, charging infrastructure, and impact on grid integration: A technological review [J]. Renewable and Sustainable Energy Reviews, 2020, 120: 109618.
[123]KABEYI M J B, OLANREWAJU O A. The use of smart grids in the energy transition; proceedings of the 2022 30th Southern African Universities Power Engineering Conference (SAUPEC), F, 2022 [C]. IEEE.
[124]GONG C, YAO Z, CHEN H, et al. An optimal coordinated planning strategy for distributed energy station based on characteristics of electric vehicle charging behavior under carbon trading mechanism [J]. International journal of electrical power & energy systems, 2023, 147: 108884.
[125]SUN X, BAO M, GUO C, et al. An equilibrium capacity expansion model for power systems considering Gencos' coupled decisions between carbon and electricity markets [J]. Applied Energy, 2024, 359: 122386.
[126]TSAOUSOGLOU G, JUNKER R, BANAEI M, et al. Integrating distributed flexibility into TSO-DSO coordinated electricity markets [J]. IEEE Transactions on Energy Markets, Policy and Regulation, 2023 (Early Access).
[127]NASIRI N, ZEYNALI S, NAJAFI RAVADANEGH S, et al. A tactical scheduling framework for wind farm‐integrated multi‐energy systems to take part in natural gas and wholesale electricity markets as a price setter [J]. IET Generation, Transmission & Distribution, 2022, 16(9): 1849-64.
[128]FAIA R, PINTO T, VALE Z, et al. A local electricity market model for DSO flexibility trading; proceedings of the 2019 16th international conference on the european energy market (EEM), F, 2019 [C]. IEEE.
[129]JIANG W, WU C. Optimal Electricity Procurement Enabled by Privacy-Preserving Samples [J]. IEEE Transactions on Energy Markets, Policy and Regulation, 2024 (Early Access).
[130]BAO Z, HU Z, MUJEEB A. A Novel Electric Vehicle Aggregator Bidding Method in Electricity Markets Considering the Coupling of Cross-day Charging Flexibility [J]. IEEE Transactions on Transportation Electrification, 2024 (Early Access).
[131]HUTTY T D, PENA-BELLO A, DONG S, et al. Peer-to-peer electricity trading as an enabler of increased PV and EV ownership [J]. Energy conversion and management, 2021, 245: 114634.
[132]BASNET A, ZHONG J. Integrating gas energy storage system in a peer-to-peer community energy market for enhanced operation [J]. International Journal of Electrical Power & Energy Systems, 2020, 118: 105789.
[133]CAPPER T, GORBATCHEVA A, MUSTAFA M A, et al. Peer-to-peer, community self-consumption, and transactive energy: A systematic literature review of local energy market models [J]. Renewable and Sustainable Energy Reviews, 2022, 162: 112403.
[134]PINSON P. What may future electricity markets look like? [J]. Journal of Modern Power Systems and Clean Energy, 2023 11(3):705- 713.
[135]TSCHORA L, PIERRE E, PLANTEVIT M, et al. Electricity price forecasting on the day-ahead market using machine learning [J]. Applied Energy, 2022, 313: 118752.
[136]KOCH C, HIRTH L. Short-term electricity trading for system balancing: An empirical analysis of the role of intraday trading in balancing Germany's electricity system [J]. Renewable and Sustainable Energy Reviews, 2019, 113: 109275.
[137]HUI H, SIANO P, DING Y, et al. A transactive energy framework for inverter-based HVAC loads in a real-time local electricity market considering distributed energy resources [J]. IEEE Transactions on Industrial Informatics, 2022, 18(12): 8409-21.
[138]OUREILIDIS K, MALAMAKI K-N, GALLOS K, et al. Ancillary services market design in distribution networks: Review and identification of barriers [J]. Energies, 2020, 13(4): 917.
[139]LOPEZ A, OGAYAR B, HERNáNDEZ J, et al. Survey and assessment of technical and economic features for the provision of frequency control services by household-prosumers [J]. Energy Policy, 2020, 146: 111739.
[140]SOUSOUNIS M-C, FLOROS E, PATERAKIS F-K, et al. Voltage Control Market Integration: Technical and Regulatory Challenges for the Greek Electricity Market [J]. Energies, 2023, 16(5): 2306.
[141]ZHAO Y, ZHANG T, SUN L, et al. Energy storage for black start services: A review [J]. International Journal of Minerals, Metallurgy and Materials, 2022, 29(4): 691-704.
[142]ZHU Z, HU Z, CHAN K W, et al. Reinforcement learning in deregulated energy market: A comprehensive review [J]. Applied Energy, 2023, 329: 120212.
[143]BIBAK B, TEKINER-MOĞULKOç H. A comprehensive analysis of Vehicle to Grid (V2G) systems and scholarly literature on the application of such systems [J]. Renewable Energy Focus, 2021, 36: 1-20.
[144]SCHNEIDER L, LA HOZ THEUER S. Environmental integrity of international carbon market mechanisms under the Paris Agreement [J]. Climate Policy, 2019, 19(3): 386-400.
[145]ZHANG Y-H, FENG T-T. How does the design of personal carbon trading system affect willingness to participate under carbon neutrality goal?—Evidence from a choice experiment [J]. Environmental Science and Pollution Research, 2022, 29(54): 81970-92.
[146]ZHA D-S, FENG T-T, KONG J-J. Effects of enterprise carbon trading mechanism design on willingness to participate——Evidence from China [J]. Frontiers in Environmental Science, 2022, 10: 986862.
[147]VERMA S, DWIVEDI G, VERMA P. Life cycle assessment of electric vehicles in comparison to combustion engine vehicles: A review [J]. Materials Today: Proceedings, 2022, 49: 217-22.
[148]TEMPORELLI A, CARVALHO M L, GIRARDI P. Life cycle assessment of electric vehicle batteries: an overview of recent literature [J]. Energies, 2020, 13(11): 2864.
[149]Guangdong power exchange center [DB/OL]. https://pm.gd.csg.cn/views/index.html.
[150]KEMPTON W, TOMIC J, LETENDRE S, et al. Battery, Hybrid and Fuel Cell Vehicles as Resources for Distributed Electric Power in California [J]. Davis, CA: Institute of Transportation Studies Report# IUCD-ITS-RR, 2001: 01-3.
[151]GUILLE C, GROSS G. A conceptual framework for the vehicle-to-grid (V2G) implementation [J]. Energy policy, 2009, 37(11): 4379-90.
[152]XIE H, JIANG M, ZHANG D, et al. IntelliSense technology in the new power systems [J]. Renewable and Sustainable Energy Reviews, 2023, 177: 113229.
[153]CHOI S C. Price competition in a channel structure with a common retailer [J]. Marketing science, 1991, 10(4): 271-96.
[154]ZHU Z, KONG L, AISAITI G, et al. Pricing contract design of a multi-supplier-multi-retailer supply chain in hybrid electricity market [J]. Industrial Management & Data Systems, 2021, 121(7): 1522-51.
[155]Rathor S K, Saxena D. Energy management system for smart grid: An overview and key issues[J]. International Journal of Energy Research, 2020, 44(6): 4067-4109.
[156]STOTT B, JARDIM J, ALSAç O. DC power flow revisited [J]. IEEE Transactions on Power Systems, 2009, 24(3): 1290-300.
[157]ZHOU M, WU Z, WANG J, et al. Forming dispatchable region of electric vehicle aggregation in microgrid bidding [J]. IEEE Transactions on Industrial Informatics, 2020, 17(7): 4755-65.
[158]YU H, SHANG Y, NIU S, et al. Towards energy-efficient and cost-effective DC nanaogrid: A novel pseudo hierarchical architecture incorporating V2G technology for both autonomous coordination and regulated power dispatching [J]. Applied Energy, 2022, 313: 118838.
[159]XIANG Y, ZHOU L, HUANG Y, et al. Reactive coordinated optimal operation of distributed wind generation [J]. Energy, 2021, 218: 119417.
[160]GAN L, LI N, TOPCU U, et al. Exact convex relaxation of optimal power flow in radial networks [J]. IEEE Transactions on Automatic Control, 2014, 60(1): 72-87.
[161]REZAEIMOZAFAR M, ESKANDARI M, SAVKIN A V. A self-optimizing scheduling model for large-scale EV fleets in microgrids [J]. IEEE Transactions on Industrial Informatics, 2021, 17(12): 8177-88.
[162]DANG Q, WU D, BOULET B. EV charging management with ANN-based electricity price forecasting; proceedings of the 2020 IEEE Transportation Electrification Conference & Expo (ITEC), F, 2020 [C]. IEEE.
[163]SEKIZAKI S, NISHIZAKI I, HAYASHIDA T. Electricity retail market model with flexible price settings and elastic price-based demand responses by consumers in distribution network [J]. International Journal of Electrical Power & Energy Systems, 2016, 81: 371-86.
[164]SHANG Y, LIU M, SHAO Z, et al. Internet of smart charging points with photovoltaic Integration: A high-efficiency scheme enabling optimal dispatching between electric vehicles and power grids [J]. Applied Energy, 2020, 278: 115640.
[165]JIAO F, ZOU Y, ZHANG X, et al. Online optimal dispatch based on combined robust and stochastic model predictive control for a microgrid including EV charging station [J]. Energy, 2022, 247: 123220.
[166][ZHANG J, KUN H. The risk of power sales revenue in power retail market based on VAR model; proceedings of the 2022 International Conference on Artificial Intelligence in Everything (AIE), F, 2022 [C]. IEEE.
[167]CHANG W, DONG W, YANG Q. Day-ahead bidding strategy of cloud energy storage serving multiple heterogeneous microgrids in the electricity market [J]. Applied Energy, 2023, 336: 120827.
[168]ZHANG D, ZHU H, ZHANG H, et al. Multi-objective optimization for smart integrated energy system considering demand responses and dynamic prices [J]. IEEE Transactions on Smart Grid, 2021, 13(2): 1100-12.
[169]WEI W, YE Z, WANG Y, et al. An Economic Optimization Method for Demand-side Energy-storage Accident Backup Assisted Deep Peaking of Thermal Power Units [J]. Chinese Journal of Electrical Engineering, 2022, 8(2): 62-74.
[170]SOYSAL M, BLOEMHOF-RUWAARD J M, HAIJEMA R, et al. Modeling an Inventory Routing Problem for perishable products with environmental considerations and demand uncertainty [J]. International Journal of Production Economics, 2015, 164: 118-33.
[171]YANG Z, TRIVEDI A, LIU H, et al. Two-stage robust optimization strategy for spatially-temporally correlated data centers with data-driven uncertainty sets [J]. Electric Power Systems Research, 2023, 221: 109443.
[172]EWEES A A, AL-QANESS M A, ABUALIGAH L, et al. HBO-LSTM: Optimized long short term memory with heap-based optimizer for wind power forecasting [J]. Energy Conversion and Management, 2022, 268: 116022.
[173]ZHENG Y, YOU S, LI X, et al. Data-driven robust optimization for optimal scheduling of power to methanol [J]. Energy Conversion and Management, 2022, 256: 115338.
[174]ZHENG Y, SHAO Z, LEI X, et al. The economic analysis of electric vehicle aggregators participating in energy and regulation markets considering battery degradation [J]. Journal of Energy Storage, 2022, 45: 103770.
[175]ROUHOLAMINI M, WANG C, NEHRIR H, et al. A Review of Modeling, Management, and Applications of Grid Connected Li ion Battery Storage Systems [J]. IEEE Transactions on Smart Grid, 2022, 13(6): 4505-4524.
[176]FENG K, LIU C. Adaptive DMPC-based Frequency and Voltage Control for Microgrid Deploying a Novel EV-based Virtual Energy Router [J]. IEEE Transactions on Transportation Electrification, 2023 (Early Access).
[177]HUANG S, YANG J, LI S. Black-Scholes option pricing strategy and risk-averse coordination for designing vehicle-to-grid reserve contracts [J]. Energy, 2017, 137: 325-35.
[178]MA Z, ZOU S, LIU X. A distributed charging coordination for large-scale plug-in electric vehicles considering battery degradation cost [J]. IEEE Transactions on Control Systems Technology, 2015, 23(5): 2044-52.
[179]LIU W, CHEN S, HOU Y, et al. Optimal reserve management of electric vehicle aggregator: Discrete bilevel optimization model and exact algorithm [J]. IEEE Transactions on Smart Grid, 2021, 12(5): 4003-15.
[180]ANAND K, MITTAL A P, KUMAR B. Cost-inclusive heuristic power management of hybrid power generation plant with ANN-regulated biogas plant [J]. Sustainable Cities and Society, 2023, 97: 104770.
[181]LI K, YANG F, WANG L, et al. A scenario-based two-stage stochastic optimization approach for multi-energy microgrids [J]. Applied Energy, 2022, 322: 119388.
[182]YU H, NIU S, SHANG Y, et al. Electric vehicles integration and vehicle-to-grid operation in active distribution grids: A comprehensive review on power architectures, grid connection standards and typical applications [J]. Renewable and Sustainable Energy Reviews, 2022, 168: 112812.
[183]SUN X, FANG W, GAO X, et al. Complex causalities between the carbon market and the stock markets for energy intensive industries in China [J]. International Review of Economics & Finance, 2022, 78: 404-17.
[184]The national carbon market officially launched today and 2,000 power generation companies began trading [EB/OL]. https://finance.sina.com.cn/roll/2021-07-16/doc-ikqciyzk5758433.shtml?cref=cj.
[185]HUANG W, WANG Q, LI H, et al. Review of recent progress of emission trading policy in China [J]. Journal of Cleaner Production, 2022, 349: 131480.
[186]JAVANMARD M E, GHADERI S. A hybrid model with applying machine learning algorithms and optimization model to forecast greenhouse gas emissions with energy market data [J]. Sustainable Cities and Society, 2022, 82: 103886.
[187]Electricity and Carbon Market Annual Report 2021 [EB/OL]. https://news.bjx.com.cn/html/20220418/1218397.shtml.
[188]TüRK S, DEVECI M, ÖZCAN E, et al. Interval type-2 fuzzy sets improved by Simulated Annealing for locating the electric charging stations [J]. Information Sciences, 2021, 547: 641-66.
[189]ERDOGAN N, PAMUCAR D, KUCUKSARI S, et al. A Hybrid Power Heronian Function-Based Multi-criteria Decision-making Model for Workplace Charging Scheduling Algorithms [J]. IEEE Transactions on Transportation Electrification, 2022, 9(1): 1564-1578.
[190]LIN J, KAHRL F, YUAN J, et al. Economic and carbon emission impacts of electricity market transition in China: A case study of Guangdong Province [J]. Applied Energy, 2019, 238: 1093-107.
[191]LIU Y, TIAN L, SUN H, et al. Option pricing of carbon asset and its application in digital decision-making of carbon asset [J]. Applied Energy, 2022, 310: 118375.
[192]JAVANMARD M E, GHADERI S, SANGARI M S. Integrating energy and water optimization in buildings using multi-objective mixed-integer linear programming [J]. Sustainable Cities and Society, 2020, 62: 102409.
[193]KIM M K, KIM Y-S, SREBRIC J. Predictions of electricity consumption in a campus building using occupant rates and weather elements with sensitivity analysis: Artificial neural network vs. linear regression [J]. Sustainable Cities and Society, 2020, 62: 102385.
[194]KOUSHIK C, PRANAV M, ARJUN R, et al. Hybrid Exponential Smoothing-LSTM-Based Univariate Stock Market Prediction for Financial Sectors in NIFTY50 [M]. Advanced Computing and Intelligent Technologies. Springer. 2022: 357-68.
[195]MAO F, LI Z, ZHANG K. Carbon dioxide emissions estimation of conventional diesel buses electrification: A well-to-well analysis in Shenzhen, China [J]. Journal of Cleaner Production, 2020, 277: 123048.
[196]TRANBERG B, CORRADI O, LAJOIE B, et al. Real-time carbon accounting method for the European electricity markets [J]. Energy Strategy Reviews, 2019, 26: 100367.
[197]China bond yield on April 20, 2021[EB/OL].
[2021-4-20]. http://www.qqjjsj.com/show123a203086.
[198]PJM [DB/OL].
[2022]. https://pjm.com/.
[199]ENTSO-E Transparency Platform [EB/OL].
[2022]. https://transparency.entsoe.eu/dashboard/show .
[200]Carbon Market [DB/OL]
[2022]. https://carbonmarket.cn .
[201]BODKHE U, TANWAR S, PAREKH K, et al. Blockchain for industry 4.0: A comprehensive review [J]. IEEE Access, 2020, 8: 79764-800.
[202]DJAMALI A, DOSSOW P, HINTERSTOCKER M, et al. Asset logging in the energy sector: a scalable blockchain-based data platform [J]. Energy Informatics, 2021, 4: 1-20.
[203]QIU T, CHI J, ZHOU X, et al. Edge computing in industrial internet of things: Architecture, advances and challenges [J]. IEEE Communications Surveys & Tutorials, 2020, 22(4): 2462-88.
[204]SHANG Y, YU H, NIU S, et al. Cyber-physical co-modeling and optimal energy dispatching within internet of smart charging points for vehicle-to-grid operation [J]. Applied Energy, 2021, 303: 117595.
[205]SUN G, DAI M, ZHANG F, et al. Blockchain-enhanced high-confidence energy sharing in internet of electric vehicles [J]. IEEE Internet of Things Journal, 2020, 7(9): 7868-82.
[206]LEIDING B, VOROBEV W V. Enabling the V2X economy revolution using a blockchain-based value transaction layer for vehicular ad-hoc networks [J]. 2018, MCIS 2018 Proceedings. 33.
[207]GOONATILAKE R, BACHNAK R A. Modeling latency in a network distribution [J]. Network and Communication Technologies, 2012, 1(2): 1.
[208]CASTRO M, LISKOV B. Practical byzantine fault tolerance [C].OsDI. 1999, 99(1999): 173-186
[209]SALTINI R. BigFooT: A robust optimal-latency BFT blockchain consensus protocol with dynamic validator membership [J]. Computer Networks, 2022, 204: 108632.
[210]WOOD G. A secure decentralised generalised transaction ledger [J]. Ethereum project yellow paper, 2014, 151: 1-32.
[211]BOYD S P, VANDENBERGHE L. Convex optimization [M]. Cambridge university press, 2004.
[212]SCUTARI G, PALOMAR D P, PANG J-S, et al. Flexible design of cognitive radio wireless systems [J]. IEEE Signal Processing Magazine, 2009, 26(5): 107-23.
[213]WANG T, GUO J, AI S, et al. RBT: A distributed reputation system for blockchain-based peer-to-peer energy trading with fairness consideration [J]. Applied Energy, 2021, 295: 117056.
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