Open Access
Issue
Wuhan Univ. J. Nat. Sci.
Volume 31, Number 3, June 2026
Page(s) 225 - 240
DOI https://doi.org/10.1051/wujns/2026313225
Published online 24 June 2026
  1. Shan S, Genç S Y, Kamran H W, et al. Role of green technology innovation and renewable energy in carbon neutrality: A sustainable investigation from Turkey[J]. Journal of Environmental Management, 2021, 294: 113004. [Google Scholar]
  2. Xu T T, Kang C Y, Zhang H. China's efforts towards carbon neutrality: Does energy-saving and emission-reduction policy mitigate carbon emissions?[J]. Journal of Environmental Management, 2022, 316: 115286. [Google Scholar]
  3. Lin C, Shao S, Sun W, et al. Can the electricity price subsidy policy curb NOX emissions from China's coal-fired power industry? A difference-in-differences approach[J]. Journal of Environmental Management, 2021, 290: 112367. [Google Scholar]
  4. Ai Y. Research on the Reform of Feed-in Tariff Mechanism in China[D]. Beijing: North China Electric Power University, 2020(Ch). [Google Scholar]
  5. Zeng X. Reflection and perfection of market-oriented electricity price system of coal-fired power under the background of "double carbon"[J]. Guangdong Economy, 2023(5): 86-89(Ch). [Google Scholar]
  6. Fan B. Research of Electricity Price Regulation Method and Application[D]. Beijing: North China Electric Power University, 2010(Ch). [Google Scholar]
  7. Liu L Q. Where is the on-grid electricity price of power generation side going?[J]. China Power Enterprise Management, 2024(13): 83-85(Ch). [Google Scholar]
  8. Zhang X, Zhu Q Y, Li X C, et al. The impact of government subsidy on photovoltaic enterprises independent innovation based on the evolutionary game theory[J]. Energy, 2023, 285: 129385. [Google Scholar]
  9. Khan M N, Das S. Advancing traffic safety through the safe system approach: A systematic review[J]. Accident Analysis & Prevention, 2024, 199: 107518. [Google Scholar]
  10. He S Q, Hou Y R, Dong Z F, et al. The evolution of China's electricity market-oriented reform: Pathways to achieving marketization and decarbonization in response to climate policy[J]. Journal of Environmental Management, 2025, 389: 126103. [Google Scholar]
  11. Zhou Y, Shi Z Y, Wu L B. Green policy under the competitive electricity market: An agent-based model simulation in Shanghai[J]. Journal of Environmental Management, 2021, 299: 113501. [Google Scholar]
  12. Yuan J H, Zhang W R, Shen Q X, et al. The impact of electricity-carbon market coupling on system marginal clearing price and power supply cost[J]. Environmental Science and Pollution Research, 2023, 30(35): 84725-84741. [Google Scholar]
  13. Zheng X M, Wu C K, He S J. Impacts of market segmentation on the over-capacity of the thermal electricity generation industry in China[J]. Journal of Environmental Management, 2021, 279: 111761. [Google Scholar]
  14. Biró B, Aszódi A. Investigating the role of nuclear power and battery storage in Hungary's energy transition using hourly resolution electricity market simulations[J]. Heliyon, 2024, 10(9): e29841. [Google Scholar]
  15. Ye H F, Peng H W, Li C H, et al. A demonstration concentrating solar power plant in China: Carbon neutrality, energy renewability and policy perspectives[J]. Journal of Environmental Management, 2023, 328: 117003. [Google Scholar]
  16. Chen J L, Qing J, Cai Q R. Impact of bi-directional electric vehicle and demand response on residential distributed PV capacity planning based on TOU pricing[J]. Journal of Environmental Management, 2024, 356: 120689. [Google Scholar]
  17. Chen W, Luo W, Liang K R, et al. Research on new energy investment strategies based on noncooperative-cooperative biform game[J]. Journal of Systems Science and Mathematical Sciences, 2024, 44(12): 3557-3572(Ch). [Google Scholar]
  18. Wang X, Wang S C, Zhang S H. Game analysis of coupled electricity-carbon-green certificate markets with strategic bidding of renewable generators[J]. Power System Technology, 2024, 48(10): 4125-4138(Ch). [Google Scholar]
  19. Yang K, Liu T, Bai L, et al. Optimal configuration strategy of shared energy storage capacity for micro-grid cluster based on multi-party bargaining game[J]. Electrical Measurement & Instrumentation, 2024, 61(3): 33-41(Ch). [Google Scholar]
  20. Liu C X. Development opportunities and challenges brought by the market-oriented reform of new energy on-grid tariffs[J]. Wind Energy, 2025(3): 70-76(Ch). [Google Scholar]
  21. Mi F L. Reflections on the market-oriented reform of new energy on-grid electricity price[J]. China Power Enterprise Management, 2025(9): 12-15(Ch). [Google Scholar]
  22. Wang M, Hao Y, Qiu C, et al. Development direction and countermeasures of new energy under the background of market-oriented reform[J]. Water Power, 2025, 51(7): 1-6(Ch). [Google Scholar]
  23. Zhao B B, Chen Q Y. What impact will the market-oriented reform of new energy grid-connected electricity prices have[EB/OL]. [2025-05-17]. https://doi.org/10.28719/n.cnki.nshzj.2025.002485(Ch). [Google Scholar]
  24. Su Y B. Multi-agent evolutionary game in the recycling utilization of construction waste[J]. Science of the Total Environment, 2020, 738: 139826. [Google Scholar]
  25. Zhang W, Liu H. Evolutionary game analysis of multi-agent cooperation strategy analysis in agricultural water conservancy PPP project under digitization background[J]. Scientific Reports, 2024, 14: 22915. [Google Scholar]
  26. Xu Z, Zheng S D. An evolutionary game-theoretic analysis of the "multi-agent co-governance" system of unfair competition on Internet platforms[J]. PLoS One, 2024, 19(6): e0304445. [Google Scholar]
  27. Shi Q N, Yang S M, Wang N, et al. An evolutionary game-based simulation study of a multi-agent governance system for smart senior care services in China[J]. BMC Geriatrics, 2023, 23(1): 871. [Google Scholar]
  28. Hao Y Z, Xie D Y. A multi-LLM-agent-based framework for economic and public policy analysis[EB/OL]. [2025-02-24]. https://doi.org/10.48550/arXiv.2502.16879. [Google Scholar]
  29. Ma J. Can machines think like humans: A behavioral evaluation of LLM-agents in dictator games[EB/OL]. [2025-11-17]. https://doi.org/10.48550/arXiv.2410.21359. [Google Scholar]
  30. Mei Q Z, Xie Y T, Yuan W, et al. A Turing test of whether AI chatbots are behaviorally similar to humans[J]. Proceedings of the National Academy of Sciences of the United States of America, 2024, 121(9): e2313925121. [Google Scholar]
  31. Xie Y T, Liu Y Y, Ma Z, et al. How different AI chatbots behave benchmarking large language models in behavioral economics games[EB/OL]. [2024-12-16]. https://doi.org/10.48550/arXiv.2412.12362. [Google Scholar]
  32. Szabo L, Moner- Girona M, Jäger-Waldau A, et al. Impacts of large-scale deployment of vertical bifacial photovoltaics on European electricity market dynamics[J]. Nature Communications, 2024, 15: 6681. [Google Scholar]
  33. Zhu Z X, Jiang T L, Ali M, et al. Rechargeable batteries for grid scale energy storage[J]. Chemical Reviews, 2022, 122(22): 16610-16751. [Google Scholar]
  34. Paiano A, Lagioia G, Ingrao C. A combined assessment of the energy, economic and environmental performance of a photovoltaic system in the Italian context[J]. Science of the Total Environment, 2023, 866: 161329. [Google Scholar]
  35. Castillo-Díaz F J, Belmonte-Ureña L J, Abad-Segura E, et al. Perception of photovoltaic energy consumption in the Spanish primary sector. An environmentally profitable alternative[J]. Journal of Environmental Management, 2024, 357: 120840. [Google Scholar]
  36. Liu Q N. Study on Improvement of Cost Control for Power Grid Renovation Incity A[D]. Changsha: Hunan University, 2022(Ch). [Google Scholar]
  37. Gu B, Li X R. Innovative practice of power grid cost control with standard cost as the core: Taking G power grid company as an example[J]. Friends of Accounting, 2022(2): 114-119(Ch). [Google Scholar]
  38. Li X Z. Analysis of measures to improve the quality of distribution network operation and maintenance[J]. Integrated Circuit Applications, 2024, 41(8): 374-375(Ch). [Google Scholar]
  39. Wang Y L, Wang S, Zheng Y, et al. Calculation and allocation of operation and maintenance cost of power grid project based on elastic net[J]. Automation of Electric Power Systems, 2020, 44(20): 165-172(Ch). [Google Scholar]
  40. Yan X F, Mathematical model-based analysis of distribution metwork operation and maintenance costs[J]. Modern Industrial Economy and Informationization, 2024, 14(11): 41-43Ch). [Google Scholar]
  41. Pang X. Empowering social science research with artificial intelligence: Generative agents, complex causal analysis, and human-machine collaboration[J]. World Economics and Politics, 2024(7): 3-30(Ch). [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.