[1] 习近平. 习近平主持召开中央财经委员会第九次会议 [EB/OL]. (2021-03-15) [2024-06-21]. https://news.cctv.com/2021/03/15/ARTIFUhtqyI0GxogiEDWyY28210315.shtml.

XI J P. Xi Jinping presided over the ninth meeting of the Central Financial Leading Group [EB/OL]. (2021-03-15) [2024-06-21]. https://news.cctv.com/2021/03/15/ARTIFUhtqyI0GxogiEDWyY28210315.shtml.
[2] 国家能源局. 国家能源局关于印发《风电场改造升级和退役管理办法》的通知 国能发新能规〔2023〕45号 [EB/OL]. (2023-06-05) [2024-05-28]. https://zfxxgk.nea.gov.cn/2023-06/05/c_1310726993.htm.

National Energy Administration. Notice of the National Energy Administration on issuing the management measures for wind farm transformation, upgrading, and retirement, national energy development new energy regulations 〔2023〕. No. 45 [EB/OL]. (2023-06-05) [2024-05-28]. https://zfxxgk.nea.gov.cn/2023-06/05/c_1310726993.htm.
[3] 佚名. 关于印发《辽宁省风电项目建设方案》《辽宁省光伏发电项目建设方案》的通知 辽发改能源〔2020〕253号 [EB/OL]. (2020-05-15) [2024-05-28]. http://www.21spv.com/news/show.php?itemid=70029.

Anon. Notice on issuing the construction plans for wind power projects and photovoltaic power generation projects in Liaoning Province, Liaoning development and reform commission energy 〔2020〕 No. 253 [EB/OL]. (2020-05-15) [2024-05-28]. http://www.21spv.com/news/show.php?itemid=70029.
[4] 浙江省发展和改革委员会. 《浙江省社会发展“十四五”规划》 浙发改规划〔2021〕87号 [EB/OL]. (2021-04-22) [2024-06-18]. https://www.zj.gov.cn/art/2021/4/22/art_1229203592_2270227.html.

Zhejiang Provincial Development and Reform Commission. The 14th five year plan for social development in Zhejiang Province, Zhejiang development and reform commission plan 〔2021〕 No. 87 [EB/OL]. (2021-04-22) [2024-06-18]. https://www.zj.gov.cn/art/2021/4/22/art_1229203592_2270227.html.
[5] 山西省能源局. 《关于下达2021年风电技改扩容项目建设方案的通知》 晋能源新能源发〔2021〕135号 [EB/OL]. (2021-10-20) [2024-06-18]. https://zwgk.sxxz.gov.cn/szfgzbm/smtgyj/bmwj_3852/202111/t20211101_3696456.shtml.

Shanxi Provincial Energy Administration. Notice on issuing the construction plan for wind power technical renovation and expansion projects in 2021, Jin energy new energy development 〔2021〕 No. 135 [EB/OL]. (2021-10-20) [2024-06-18]. https://zwgk.sxxz.gov.cn/szfgzbm/smtgyj/bmwj_3852/202111/t20211101_3696456.shtml.
[6] 河北省发改委. 关于抓紧开展百万千瓦风电基地规划编制的通知 [EB/OL]. (2021-07-21) [2024-06-20]. https://hbdrc.hebei.gov.cn/nsjg/snyj/xnyc/gzdt_886/202309/t20230906_76088.html.

Hebei Provincial Development and Reform Commission. Notice on urgently carrying out the planning and compilation of million kilowatt wind power bases [EB/OL]. (2021-07-21) [2024-06-20]. https://hbdrc.hebei.gov.cn/nsjg/snyj/xnyc/gzdt_886/202309/t20230906_76088.html.
[7] 宁夏回族自治区发展改革委. 自治区发展改革委关于开展宁夏老旧风电场“以大代小”更新试点的通知 宁发改能源(发展)〔2021〕601号 [EB/OL]. (2021-08-30) [2024-06-20]. https://fzggw.nx.gov.cn/tzgg/202108/t20210830_2996881.html.

Ningxia Hui Autonomous Region Development and Reform Commission. Notice of the development and reform commission of the autonomous region on launching the pilot program of "replacing small with large" renewal of old wind farms in Ningxia, Ningfa Gai energy (development) 〔2021〕 No. 601 [EB/OL]. (2021-08-30) [2024-06-20]. https://fzggw.nx.gov.cn/tzgg/202108/t20210830_2996881.html.
[8] 内蒙古自治区能源局. 内蒙古自治区能源局关于印发《内蒙古自治区“十四五”可再生能源发展规划》的通知 内能新能字〔2022〕103号 [EB/OL]. (2022-03-03) [2024-06-20]. https://nyj.nmg.gov.cn/zwgk/zfxxgkzl/fdzdgknr/tzgg_16482/tz_16483/202203/t20220303_2012218.html.

Inner Mongolia Autonomous Region Energy Bureau. Notice of Inner Mongolia Autonomous Region Energy Bureau on issuing the "14th five year plan for the development of renewable energy in Inner Mongolia Autonomous Region", Neineng Xinneng Zi 〔2022〕 No. 103 [EB/OL]. (2022-03-03) [2024-06-20]. https://nyj.nmg.gov.cn/zwgk/zfxxgkzl/fdzdgknr/tzgg_16482/tz_16483/202203/t20220303_2012218.html.
[9] 江西省政府办公厅. 江西省人民政府办公厅关于印发江西省“十四五”能源发展规划的通知 赣府厅发〔2022〕15号 [EB/OL]. (2022-05-07) [2024-06-20]. https://www.jiangxi.gov.cn/art/2022/5/17/art_4968_3961051.html?eqid=e6190e0e0004227000000002643cb8e2.

Office of Jiangxi Provincial Government. Notice of the General Office of the People's Government of Jiangxi Province on issuing the "14th five year plan" for energy development in Jiangxi Province, Gan Fu Ting Fa 〔2022〕 No. 15 [EB/OL]. (2022-05-07) [2024-06-20]. https://www.jiangxi.gov.cn/art/2022/5/17/art_4968_3961051.html?eqid=e6190e0e0004227000000002643cb8e2.
[10] 湖南省发展和改革委员会. 湖南省发展和改革委员会关于印发《湖南省“十四五”可再生能源发展规划》的通知 湘发改能源规〔2022〕405号 [EB/OL]. (2022-06-23) [2024-06-20]. https://www.hunan.gov.cn/hnszf/xxgk/wjk/szbm/szfzcbm_19689/sfzhggwyh_19690/gfxwj_19691/202206/t20220627_26526958.html.

Hunan Provincial Development and Reform Commission. Notice of the Development and Reform Commission of Hunan Province on issuing the "14th five year plan for the development of renewable energy in Hunan Province", Xiangfa Gai energy regulations 〔2022〕 No. 405 [EB/OL]. (2022-06-23) [2024-06-20]. https://www.hunan.gov.cn/hnszf/xxgk/wjk/szbm/szfzcbm_19689/sfzhggwyh_19690/gfxwj_19691/202206/t20220627_26526958.html.
[11] 重庆市发展改革委. 重庆市发展和改革委员会 重庆市能源局关于印发《“十四五”能源规划任务分解实施方案》的通知 [EB/OL]. (2022-08-08) [2024-06-20]. https://fzggw.cq.gov.cn/zwgk/zfxxgkml/zcwj/qtwj/202208/t20220808_10984592.html.

Chongqing Municipal Development and Reform Commission. Notice of Chongqing Development and Reform Commission and Chongqing Energy Bureau on issuing the implementation plan for task decomposition of energy planning during the 14th five year plan period [EB/OL]. (2022-08-08) [2024-06-20]. https://fzggw.cq.gov.cn/zwgk/zfxxgkml/zcwj/qtwj/202208/t20220808_10984592.html.
[12] 国家能源局. 国家能源局关于2022年度全国可再生能源电力发展监测评价结果的通报 [EB/OL]. (2023-09-07) [2024-06-20]. https://zfxxgk.nea.gov.cn/2023-09/07/c_1310741874.htm.

National Energy Administration. Announcement by the National Energy Administration on the monitoring and evaluation results of national renewable energy power development in 2022 [EB/OL]. (2023-09-07) [2024-06-20]. https://zfxxgk.nea.gov.cn/2023-09/07/c_1310741874.htm.
[13] 光明网. 上半年中国市场化交易电量占全社会用电量六成以上 [EB/OL]. (2023-07-31) [2024-06-20]. https://baijiahao.baidu.com/s?id=1772921631795749419&wfr=spider&for=pc.

Guangming Net. In the first half of the year, market-oriented trading accounted for over 60% of China's total electricity consumption [EB/OL]. (2023-07-31) [2024-06-20]. https://baijiahao.baidu.com/s?id=1772921631795749419&wfr=spider&for=pc.
[14] 国家发展改革委, 国家能源局. 国家发展改革委 国家能源局关于建立煤电容量电价机制的通知 [EB/OL]. (2023-11-08) [2024-06-20]. https://www.gov.cn/zhengce/zhengceku/202311/content_6914744.htm.

National Development and Reform Commission, National Energy Administration. Notice from the National Development and Reform Commission and the National Energy Administration on establishing a coal electricity capacity pricing mechanism [EB/OL]. (2023-11-08) [2024-06-20]. https://www.gov.cn/zhengce/zhengceku/202311/content_6914744.htm.
[15] SERRI L, LEMBO E, AIROLDI D, et al. Wind energy plants repowering potential in Italy: technical-economic assessment [J]. Renewable energy, 2018, 115: 382-390. DOI:  10.1016/j.renene.2017.08.031.
[16] TANG O, REHME J. An investigation of renewable certificates policy in Swedish electricity industry using an integrated system dynamics model [J]. International journal of production economics, 2017, 194: 200-213. DOI:  10.1016/j.ijpe.2017.03.012.
[17] DE BONA J C, FERREIRA J C E, DURAN J F O. Analysis of scenarios for repowering wind farms in Brazil [J]. Renewable and sustainable energy reviews, 2021, 135: 110197. DOI:  10.1016/j.rser.2020.110197.
[18] 钟财富, 韩雪, 时璟丽. 我国风电机组退役改造置换的需求分析和政策建议 [J]. 网络版, 2021(1): 66-70. DOI:  10.3969/j.issn.1674-9219.2021.01.012.

ZHONG C F, HAN X, SHI J L. Demand analysis and policy recommendations for the retirement, renovation, and replacement of wind turbines in China [J]. Wind energy, 2021(1): 66-70. DOI:  10.3969/j.issn.1674-9219.2021.01.012.
[19] GRAU L, JUNG C, SCHINDLER D. Sounding out the repowering potential of wind energy: a scenario-based assessment from Germany [J]. Journal of cleaner production, 2021, 293: 126094. DOI:  10.1016/j.jclepro.2021.126094.
[20] SYED A H, JAVED A, FEROZ R M A, et al. Partial repowering analysis of a wind farm by turbine hub height variation to mitigate neighboring wind farm wake interference using mesoscale simulations [J]. Applied energy, 2020, 268: 115050. DOI:  10.1016/j.apenergy.2020.115050.
[21] HOU P, ENEVOLDSEN P, HU W H, et al. Offshore wind farm repowering optimization [J]. Applied energy, 2017, 208: 834-844. DOI:  10.1016/j.apenergy.2017.09.064.
[22] 汪宏伟. 采用环梁加固风机基础的有限元分析 [J]. 可再生能源, 2016, 34(4): 558-562. DOI:  10.13941/j.cnki.21-1469/tk.2016.04.014.

WANG H W. Finite element analysis of the wind turbine foundation reinforced with ring beam [J]. Renewable energy resources, 2016, 34(4): 558-562. DOI:  10.13941/j.cnki.21-1469/tk.2016.04.014.
[23] 何潇锟, 吕伟荣, 翁红幸, 等. 风机基础加固设计与计算分析 [C]//陆新征. 第26届全国结构工程学术会议论文集(第Ⅲ册). 北京: 《工程力学》出版社, 2017: 7.

HE X K, LV W R, WENG H X, et al. Reinforcement design and calculation analysis of wind turbine foundation [C]//LU X Z. Proceedings of the 26th National Conference on Structural Engineering No. III. Beijing: Engineering Mechanics Press, 2017: 7.
[24] 陈俊岭, 何欣恒, 冯又全. 风力发电塔基础环基础疲劳破坏加固方法研究 [J]. 太阳能学报, 2021, 42(2): 122-128. DOI:  10.19912/j.0254-0096.tynxb.2018-0911.

CHEN J L, HE X H, FENG Y Q. Research on strengthening method for fatigue damage of embedded-ring concrete foundation for wind turbine tower [J]. Acta energiae solaris sinica, 2021, 42(2): 122-128. DOI:  10.19912/j.0254-0096.tynxb.2018-0911.
[25] 胡良明, 刘志鹏, 曾宇, 等. 基于ABAQUS对风机基础加固前后应力与损伤分析 [J]. 水利水电技术(中英文), 2021, 52(5): 223-233. DOI:  10.13928/j.cnki.wrahe.2021.05.024.

HU L M, LIU Z P, ZENG Y, et al. Stress and damage analysis of wind turbine foundation reinforcement based on ABAQUS [J]. Water resources and hydropower engineering, 2021, 52(5): 223-233. DOI:  10.13928/j.cnki.wrahe.2021.05.024.
[26] 张峰, 李清石, 胡辉. 基于基础环的风机基础缺陷加固处理分析 [J]. 科技风, 2020(35): 174-175, 178. DOI:  10.19392/j.cnki.1671-7341.202035082.

ZHANG F, LI Q S, HU H. Analysis on reinforcement for defects of wind turbine foundation using foundation ring [J]. Technology wind, 2020(35): 174-175, 178. DOI:  10.19392/j.cnki.1671-7341.202035082.
[27] 李永亮. 某风力发电场兆瓦级风电机组塔筒加固方案有限元分析 [J]. 智能制造, 2017(11): 42-45. DOI:  10.3969/j.issn.1671-8186.2017.11.012.

LI Y L. Finite element analysis of tower reinforcement scheme for megawatt level wind turbines in a wind power plant [J]. Intelligent manufacturing, 2017(11): 42-45. DOI:  10.3969/j.issn.1671-8186.2017.11.012.
[28] 黄培荣. 受损钢结构塔筒安全检测及加固修复方案优选研究 [D]. 西安: 西安建筑科技大学, 2018.

HUANG P R. Study on safety testing and reinforcing and repairing schemes of damaged steel structure tower structure [D]. Xi'an: Xi'an University of Architecture and Technology, 2018.
[29] 胡辉. 乌江源风电场风机基础安全评价及加固研究 [D]. 宜昌: 三峡大学, 2019. DOI:  10.27270/d.cnki.gsxau.2019.000359.

HU H. Study on safety assessment and reinforcement of fan foundation in Wujiangyuan wind farm [D]. Yichang: China Three Gorges University, 2019. DOI:  10.27270/d.cnki.gsxau.2019.000359.
[30] WHITE S W, KULCINSKI G L. Birth to death analysis of the energy payback ratio and CO2 gas emission rates from coal, fission, wind, and DT-fusion electrical power plants [J]. Fusion engineering and design, 2000, 48(3/4): 473-481. DOI:  10.1016/S0920-3796(00)00158-7.
[31] MARTINEZ E, LATORRE-BIEL J I, JIMÉNEZ E, et al. Life cycle assessment of a wind farm repowering process [J]. Renewable and sustainable energy reviews, 2018, 93: 260-271. DOI:  10.1016/j.rser.2018.05.044.
[32] 高扬. 风电工程对海洋生态环境影响研究——以江苏沿海为例 [D]. 南京: 南京信息工程大学, 2023. DOI:  10.27248/d.cnki.gnjqc.2023.001341.

GAO Y. Research on the impact of wind power engineering on marine ecological environment: a case study of the coastal area of Jiangsu Province [D]. Nanjing: Nanjing University of Information Science & Technology, 2023. DOI:  10.27248/d.cnki.gnjqc.2023.001341.
[33] 周江玲. 我国风电南移过程中海-陆风电开发生态环境影响对比研究 [D]. 重庆: 重庆大学, 2022. DOI:  10.27670/d.cnki.gcqdu.2022.001014.

ZHOU J L. Comparative study on the ecological environment impact of offshore-onshore wind farm development in the process of wind power southward migration in China [D]. Chongqing: Chongqing University, 2022. DOI:  10.27670/d.cnki.gcqdu.2022.001014.
[34] 马文静, 张宇彤, 杨春振, 等. 大宗风电退役风机叶片资源化回收利用技术研究进展 [J]. 洁净煤技术, 2023, 29(10): 17-26. DOI:  10.13226/j.issn.1006-6772.CN23053101.

MA W J, ZHANG Y T, YANG C Z, et al. Research progress on resource recycling technology of retired wind turbine blades in bulk wind power plants [J]. Clean coal technology, 2023, 29(10): 17-26. DOI:  10.13226/j.issn.1006-6772.CN23053101.
[35] 许冬梅, 张兴林, 荆涛. 废旧热固性复合材料绿色回收利用关键技术研究——以风电行业废弃风叶片为例 [J]. 环境保护, 2019, 47(20): 54-56. DOI:  10.14026/j.cnki.0253-9705.2019.20.013.

XU D M, ZHANG X L, JING T. Research on key technologies of recycling and utilization of waste thermosetting composites such as waste wind blades in China's wind power industry [J]. Environmental protection, 2019, 47(20): 54-56. DOI:  10.14026/j.cnki.0253-9705.2019.20.013.
[36] 张星楠, 李颖, 郭穆骞, 等. 废弃风机叶片回收技术的研究进展 [J]. 化工新型材料, 2024, 52(4): 264-267. DOI:  10.19817/j.cnki.issn1006-3536.2024.04.045.

ZHANG X N, LI Y, GUO M Q, et al. Research progress of waste wind turbine blade recycling technology [J]. New chemical materials, 2024, 52(4): 264-267. DOI:  10.19817/j.cnki.issn1006-3536.2024.04.045.
[37] 许淳瑶, 葛立超, 冯红翠, 等. 风力发电现状及叶片组成与回收利用综述 [J]. 热力发电, 2022, 51(9): 29-41. DOI:  10.19666/j.rlfd.202204082.

XU C Y, GE L C, FENG H C, et al. Review on status of wind power generation and composition and recycling of wind turbine blades [J]. Thermal power generation, 2022, 51(9): 29-41. DOI:  10.19666/j.rlfd.202204082.
[38] DELANEY E L, MCKINLEY J M, MEGARRY W, et al. An integrated geospatial approach for repurposing wind turbine blades [J]. Resources, conservation and recycling, 2021, 170: 105601. DOI:  10.1016/j.resconrec.2021.105601.
[39] SPIELMANN V, BREY T, DANNHEIM J, et al. Integration of sustainability, stakeholder and process approaches for sustainable offshore wind farm decommissioning [J]. Renewable and sustainable energy reviews, 2021, 147: 111222. DOI:  10.1016/j.rser.2021.111222.
[40] ZIEGLER L, GONZALEZ E, RUBERT T, et al. Lifetime extension of onshore wind turbines: a review covering Germany, Spain, Denmark, and the UK [J]. Renewable and sustainable energy reviews, 2018, 82: 1261-1271. DOI:  10.1016/j.rser.2017.09.100.
[41] SEDLAR D K, VULIN D, KRAJAČIĆ G, et al. Offshore gas production infrastructure reutilisation for blue energy production [J]. Renewable and sustainable energy reviews, 2019, 108: 159-174. DOI:  10.1016/j.rser.2019.03.052.
[42] RÍO P D, SILVOSA A C, GÓMEZ G I. Policies and design elements for the repowering of wind farms: a qualitative analysis of different options [J]. Energy policy, 2011, 39(4): 1897-1908. DOI:  10.1016/j.enpol.2010.12.035.
[43] COLMENAR-SANTOS A, CAMPÍÑEZ-ROMERO S, PÉREZ-MOLINA C, et al. Repowering: an actual possibility for wind energy in Spain in a new scenario without feed-in-tariffs [J]. Renewable and sustainable energy reviews, 2015, 41: 319-337. DOI:  10.1016/j.rser.2014.08.041.
[44] PAUL A, PRABU T. Technical and economic feasibility study on repowering of wind farms [J]. Indian journal of science and technology, 2016, 9(38): 101960. DOI:  10.17485/ijst/2016/v9i38/101960.
[45] LANTZ E, LEVENTHAL M, BARING-GOULD I. Wind power project repowering: financial feasibility, decision drivers, and supply chain effects [R]. Golden: National Renewable Energy Laboratory, 2013.
[46] RAJARAM H R, KRISHNAN B, GURU B. Leveraging on repowering of wind sites for potential wind-solar hybrid capacities: a case study [J]. International energy journal, 2021, 21(1): 183-192.
[47] BOOPATHI K, RAMASWAMY S, KIRUBAHARAN V, et al. Optimization of the wind farm layout by repowering the old wind farm and integrating solar power plants: a case study [J]. International journal of renewable energy research, 2020, 10(3): 1287-1301. DOI:  10.20508/ijrer.v10i3.11226.g8003.
[48] 王成. 大基地风电场“以大代小”等容量排布方案分析 [J]. 中外能源, 2024, 29(4): 34-39. DOI:  10.3969/j.issn.1673-579X.2024.4.zwny202404006.

WANG C. Study on equal capacity arrangement scheme for large base wind farms during replacing small wind turbines with large ones [J]. Sino-global energy, 2024, 29(4): 34-39. DOI:  10.3969/j.issn.1673-579X.2024.4.zwny202404006.
[49] 吴宪. 基于“以大代小”改造的风电项目经济评价方法研究 [J]. 风能, 2023(5): 98-107. DOI:  10.3969/j.issn.1674-9219.2023.05.020.

WU X. Research on the economic evaluation method of wind power projects based on the "replacing small with large" transformation [J]. Wind energy, 2023(5): 98-107. DOI:  10.3969/j.issn.1674-9219.2023.05.020.
[50] 杜文珍, 吴俊辉. 经济性评估方法在老旧风电场改造中的应用 [J]. 风电场, 2022(12): 60-65. DOI:  10.3969/j.issn.1674-9219.2022.12.016.

DU W Z, WU J H. Application of economic evaluation methods in the renovation of old wind farms [J]. Wind energy, 2022(12): 60-65. DOI:  10.3969/j.issn.1674-9219.2022.12.016.
[51] 谢斯尘, 王泽雷, 于夕朦, 等. 老旧风场“以大代小”的市场分析与政策建议 [R]. 2024.

XIE S C, WANG Z L, YU X M, et al. Market analysis and policy suggestions on "replacing small with large" in old wind farms [R]. 2024.
[52] 杜丽娟, 王建明, 刘昊, 等. 老旧风电场以大代小改造时间节点分析 [C]// Anon. 第十届中国风电后市场交流合作大会论文集. 大连: 中国农业机械工业协会风力机械分会, 2023: 5. DOI:  10.26914/c.cnkihy.2023.033540.

DU L J, WANG J M, LIU H, et al. Analysis of time nodes for large scale to small scale renovation of old wind farms [C]// Anon. Proceedings of the 10th China Wind Power Aftermarket Exchange and Cooperation Conference. Dalian: Wind Machinery Branch of China Agricultural Machinery Industry Association, 2023: 5. DOI:  10.26914/c.cnkihy.2023.033540.
[53] 贾蓉, 曾利华, 张立英, 等. 在役风电场机组“以大代小”评价方法 [J]. 科技创新与应用, 2022, 12(12): 136-140, 145. DOI:  10.19981/j.CN23-1581/G3.2022.12.031.

JIA R, ZENG L H, ZHANG L Y, et al. Evaluation method of "replacing small with large" for wind farm units in service [J]. Technology innovation and application, 2022, 12(12): 136-140, 145. DOI:  10.19981/j.CN23-1581/G3.2022.12.031.