Power Generation Technology ›› 2026, Vol. 47 ›› Issue (2): 237-247.DOI: 10.12096/j.2096-4528.pgt.260201
• Power Generation and Environmental Protection •
Fahua ZHU1,2, Jingxin XU1,2, Fanhui SHEN1, Xi ZHANG1, Hui LI1, Wenxin TIAN1, Xiuyong ZHAO1, Yuan BAI1
Received:2025-08-12
Revised:2025-10-22
Published:2026-04-30
Online:2026-04-21
Supported by:CLC Number:
Fahua ZHU, Jingxin XU, Fanhui SHEN, Xi ZHANG, Hui LI, Wenxin TIAN, Xiuyong ZHAO, Yuan BAI. Current Situation and Prospects of the Low-Carbon Development of Thermal Power in China[J]. Power Generation Technology, 2026, 47(2): 237-247.
| 机组种类 | 蒸汽初参数 | 设计热效率/% | 设计发电煤耗/[g/(kW⋅h)] | 设计厂用电率/% | 设计供电煤耗/[g/(kW⋅h)] | |
|---|---|---|---|---|---|---|
| 温度/℃ | 压力/MPa | |||||
| 亚临界30万kW | 538 | 16.67 | 41.3 | 298 | 6.7 | 319.9 |
| 亚临界60万kW | 538 | 16.67 | 41.6 | 296 | 6.2~6.5 | 315.6~316.6 |
| 超临界60万kW | 566 | 24.2 | 43.6 | 282 | 6.2~6.5 | 300.6~301.6 |
| 超超临界60万kW | 600 | 25.0 | 45.4 | 271 | 6.0~6.2 | 288.3~288.9 |
| 超超临界100万kW | 600 | 27.0 | 45.7 | 269 | 5.0~5.5 | 283.2~284.7 |
Tab. 1 Design thermal efficiency and coal consumption for power supply of coal-fired power units with capacity of 300 000 kW and above
| 机组种类 | 蒸汽初参数 | 设计热效率/% | 设计发电煤耗/[g/(kW⋅h)] | 设计厂用电率/% | 设计供电煤耗/[g/(kW⋅h)] | |
|---|---|---|---|---|---|---|
| 温度/℃ | 压力/MPa | |||||
| 亚临界30万kW | 538 | 16.67 | 41.3 | 298 | 6.7 | 319.9 |
| 亚临界60万kW | 538 | 16.67 | 41.6 | 296 | 6.2~6.5 | 315.6~316.6 |
| 超临界60万kW | 566 | 24.2 | 43.6 | 282 | 6.2~6.5 | 300.6~301.6 |
| 超超临界60万kW | 600 | 25.0 | 45.4 | 271 | 6.0~6.2 | 288.3~288.9 |
| 超超临界100万kW | 600 | 27.0 | 45.7 | 269 | 5.0~5.5 | 283.2~284.7 |
| 机组容量 | 2012年 | 2021年 | ||
|---|---|---|---|---|
装机容量/ 亿kW | 占比/% | 装机容量/亿kW | 占比/% | |
| >1 000 MW机组 | 3.224 1 | 40.15 | 0.57 | 4.99 |
| 600~1 000 MW(含) | 3.94 | 34.44 | ||
| 300~600 MW(含) | 2.844 1 | 35.42 | 4.44 | 38.81 |
| 100~300 MW(含) | 1.147 3 | 14.29 | 1.72 | 15.03 |
| ≤100 MW | 0.814 6 | 10.14 | 0.77 | 6.73 |
Tab. 2 Distribution of installed capacity of coal-fired power in China
| 机组容量 | 2012年 | 2021年 | ||
|---|---|---|---|---|
装机容量/ 亿kW | 占比/% | 装机容量/亿kW | 占比/% | |
| >1 000 MW机组 | 3.224 1 | 40.15 | 0.57 | 4.99 |
| 600~1 000 MW(含) | 3.94 | 34.44 | ||
| 300~600 MW(含) | 2.844 1 | 35.42 | 4.44 | 38.81 |
| 100~300 MW(含) | 1.147 3 | 14.29 | 1.72 | 15.03 |
| ≤100 MW | 0.814 6 | 10.14 | 0.77 | 6.73 |
| 项目 | 美国 | 德国 | 英国 | 日本 | 中国 |
|---|---|---|---|---|---|
| 2005年化石能源发电量占比 | 73.3 | 64.8 | 76.8 | 63.8 | 81.8 |
| 2023年化石能源发电量占比 | 59.9 | 41.0 | 36.3 | 65.0 | 64.1 |
| 2023年油电发电量占比 | 0.4 | 1.0 | 0.8 | 3.3 | 0.1 |
| 2023年气电发电量占比 | 43.1 | 15.1 | 34.3 | 31.7 | 3.2 |
| 2023年煤电发电量占比 | 16.4 | 24.9 | 1.2 | 30.0 | 60.8 |
Tab. 3 Proportion of fossil energy power generation in different countries
| 项目 | 美国 | 德国 | 英国 | 日本 | 中国 |
|---|---|---|---|---|---|
| 2005年化石能源发电量占比 | 73.3 | 64.8 | 76.8 | 63.8 | 81.8 |
| 2023年化石能源发电量占比 | 59.9 | 41.0 | 36.3 | 65.0 | 64.1 |
| 2023年油电发电量占比 | 0.4 | 1.0 | 0.8 | 3.3 | 0.1 |
| 2023年气电发电量占比 | 43.1 | 15.1 | 34.3 | 31.7 | 3.2 |
| 2023年煤电发电量占比 | 16.4 | 24.9 | 1.2 | 30.0 | 60.8 |
| 项目 | 2021年 | 2025年预测 | 2030年预测 |
|---|---|---|---|
| 平均供电煤耗/[g/(kW∙h)] | 301.5 | 298.9 | 293.9 |
| 标煤耗减少量/亿t | — | 0.13 | 0.35 |
| CO2减排量/亿t | — | 0.35 | 0.95 |
Tab. 4 Analysis of carbon emission reduction of energy-saving and efficiency-improving measures
| 项目 | 2021年 | 2025年预测 | 2030年预测 |
|---|---|---|---|
| 平均供电煤耗/[g/(kW∙h)] | 301.5 | 298.9 | 293.9 |
| 标煤耗减少量/亿t | — | 0.13 | 0.35 |
| CO2减排量/亿t | — | 0.35 | 0.95 |
| 项目 | 能源化利用率 | |
|---|---|---|
| 低 | 中 | |
| 掺混比例 | 10% | 20% |
| CO2减排量/亿t | 0.76~1.44 | 1.84~4.11 |
| 目标达成年份 | 2025 | 2030 |
Tab. 5 Analysis of carbon emission reduction in biomass co-firing power generation
| 项目 | 能源化利用率 | |
|---|---|---|
| 低 | 中 | |
| 掺混比例 | 10% | 20% |
| CO2减排量/亿t | 0.76~1.44 | 1.84~4.11 |
| 目标达成年份 | 2025 | 2030 |
| 项目 | 2025年 | 2030年 | 2060年 |
|---|---|---|---|
| 绿氢产量/万t | 10~20 | 300~500 | 9 100 |
| 绿氨/万t* | 18~36 | 545~907 | 16 500 |
| 绿氨/万t** | 56~112 | 1 701~2 835 | 51 600 |
Tab. 6 Projection of green hydrogen production (2025-2060)
| 项目 | 2025年 | 2030年 | 2060年 |
|---|---|---|---|
| 绿氢产量/万t | 10~20 | 300~500 | 9 100 |
| 绿氨/万t* | 18~36 | 545~907 | 16 500 |
| 绿氨/万t** | 56~112 | 1 701~2 835 | 51 600 |
| [1] | 朱法华,王玉山,徐振,等 .中国电力行业碳达峰、碳中和的发展路径研究[J].电力科技与环保,2021,37(3):9-16. |
| ZHU F H, WANG Y S, XU Z,et al .Research on the development path of carbon peak and carbon neutrality in China’s Power Industry[J].Electric Power Technology and Environmental Protection,2021,37(3):9-16. | |
| [2] | 周原冰,张士宁,侯方心,等 .电力行业碳达峰及促进全社会碳减排影响分析[J].中国电力,2024,57(9):1-9. |
| ZHOU Y B, ZHANG S N, HOU F X,et al .Analysis of carbon peaking in power sector and its impact on promoting whole-society carbon emissions reduction[J].Electric Power,2024,57(9):1-9. | |
| [3] | 徐静馨,朱法华,王圣,等 .煤电清洁高效发展政策与实践[J].中国环保产业,2023(2):34-38. |
| XU J X, ZHU F H, WANG S,et al .Policies and practices on clean and efficient development of coal power industry[J].China Environmental Protection Industry,2023(2):34-38. | |
| [4] | 国家发展改革委 .关于燃煤电站项目规划和建设有关要求的通知(发改能源[2004]864号)[EB/OL].(2004-05-16)[2025-07-25].. |
| National Development and Reform Commission .Notice on relevant requirements for the planning and construction of coal-fired power station projects (Development and Reform Energy [2004]No. 864)[EB/OL].(2004-05-16)[2025-07-25].. | |
| [5] | 发展改革委,环境保护部,国家能源局 .关于印发《煤电节能减排升级与改造行动计划(2014—2020年)》的通知(发改能源[2014]2093号)[EB/OL].(2014-09-12)[2025-07-25].. |
| National Development and Reform Commission,Ministry of Environmental Protection,National Energy administration .Notice on issuing the “Action Plan for Upgrading and Transformation of Coal Energy Conservation and Emission Reduction (2014-2020)”(Development and Gai Energy [2014] No. 2093).. | |
| [6] | 国家发展和改革委员会 .关于发布《煤炭清洁高效利用重点领域标杆水平和基准水平(2022年版)》的通知(发改运行〔2022〕559号)[EB/OL].(2022-04-09)[2025-07-25].. |
| National Development and Reform Commission .Notice on Issuing the “Benchmarking Levels and Benchmark Levels in Key Areas of Clean and Efficient Coal Utilization (2022 Edition)”(Fa Gai Operation [2022]No. 559)[EB/OL].(2022-04-09)[2025-07-25].. | |
| [7] | 国家发展改革委,国家能源局 .关于开展全国煤电机组改造升级的通知(发改运行[2021]1519号)[EB/OL].(2021-10-29)[2025-07-25].. |
| National Development and Reform Commission,National Energy administration .Notice on Carrying out the Transformation and Upgrading of Coal Power Units nationwide (Development and Reform Operation [2021]No.1519).(2021-10-29)[2025-07-25].. | |
| [8] | 中华人民共和国中央人民政府 .国务院批转发展改革委、能源办关于加快关停小火电机组若干意见的通知(国发[2007]2号)[EB/OL].(2008-03-28)[2025-07-25].. |
| Central People’s Government of People’s Republic of China .Notice of the state council on transmitting certain opinions of the development and reform commission and the energy office on accelerating the shutdown of small thermal power units Guo Fa [2007]No. 2[EB/OL].(2008-03-28)[2025-07-25].. | |
| [9] | 王放放,杨鹏威,赵光金,等 .新型电力系统下火电机组灵活性运行技术发展及挑战[J].发电技术,2024,45(2):189-198. doi:10.12096/j.2096-4528.pgt.23079 |
| WANG F F, YANG P W, ZHAO G J,et al .Development and challenge of flexible operation technology of thermal power units under new power system[J].Power Generation Technology,2024,45(2):189-198. doi:10.12096/j.2096-4528.pgt.23079 | |
| [10] | 邬凯浪,单兰晴,薄利明,等 .考虑电力系统灵活爬坡需求的火电厂碳捕集改造方案优化方法[J].电力建设,2025,46(9):27-41. |
| WU K L, SHAN L Q, BO L M,et al .Optimization methodology for carbon capture reformation schemes in thermal power plants considering the power flexible ramping demand[J].Electric Power Construction,2025,46(9):27-41. | |
| [11] | 李家桐,谢宁,王承民,等 .基于CHP机组碳排放分析的综合能源系统低碳调度优化方法[J].智慧电力,2024,52(6):31-37,83. |
| LI J T, XIE N, WANG C M,et al .Low-carbon dispatch optimization method for integrated energy system based on carbon emission analysis of CHP units[J].Smart Power,2024,52(6):31-37,83. | |
| [12] | 朱法华,徐静馨,王圣,等 .中国燃煤电厂大气污染物治理历程及展望[J].电力科技与环保,2023,39(5):371-384. |
| ZHU F H, XU J X, WANG S,et al .Processes and prospects of air pollutant control in coal-fired power plants in China[J].Electric Power Technology and Environmental Protection,2023,39(5):371-384. | |
| [13] | 国家能源局 .煤电核准量增加推动产能升级[EB/OL].(2023-04-17)[2025-07-28].. |
| National Energy administration .Increase in coal power approvals promotes production capacity upgrading[EB/OL].(2023-04-17)[2025-07-28]... | |
| [14] | 刘志强,李建锋,潘荔,等 .中国煤电机组改造升级效果分析与展望[J].中国电力,2024,57(7):1-11. doi:10.11930/j.issn.1004-9649.202402031 |
| LIU Z Q, LI J F, PAN L,et al .Analysis and prospect of transformation and upgrading effects of coal-fired power units in China[J].Electric Power,2024,57(7):1-11. doi:10.11930/j.issn.1004-9649.202402031 | |
| [15] | 刘宇,任品桥,郑焱,等 .水力发电生命周期评价及碳足迹区域化分析[J].北京工业大学学报,2024,50(3):282-289. doi:10.11936/bjutxb2022080001 |
| LIU Y, REN P Q, ZHENG Y,et al .Life cycle assessment and regionalized carbon footprint analysis of hydropower generation[J].Journal of Beijing University of Technology,2024,50(3):282-289. doi:10.11936/bjutxb2022080001 | |
| [16] | 钱兴坤,王新哲,王海博 .美国天然气发电快速发展的原因与启示[J].国际石油经济,2015,23(10):18-24. doi:10.3969/j.issn.1004-7298.2015.10.004 |
| QIAN X K, WANG X Z, WANG H B .The rapid development of natural gas-fired power generation in the US[J].International Petroleum Economics,2015,23(10):18-24. doi:10.3969/j.issn.1004-7298.2015.10.004 | |
| [17] | BP .Statistical review of world energy 2023[R].London,2023. |
| [18] | 葛然 .合理规划煤电升级改造 助力构建新型电力系统[J].中国电力企业管理,2022(4):74-75. |
| GE R .Reasonable planning of coal-fired power upgrading and reconstruction to help build a new power system[J].China Power Enterprise Management,2022(4):74-75. | |
| [19] | 葛然 .以“三改”拓展煤电企业综合能源服务[J].中国电力企业管理,2022(16):34-36. |
| GE R .Expanding comprehensive energy services of coal-fired power enterprises with “three reforms”[J].China Power Enterprise Management,2022(16):34-36. | |
| [20] | 林富生,谢锡善,赵双群,等 .我国700 ℃超超临界锅炉过热器管用高温合金选材探讨[J].动力工程学报,2011,31(12):960-968. |
| LIN F S, XIE X S, ZHAO S Q,et al .Selection of superalloys for superheater tubes of domestic 700 ℃ A-USC boilers[J].Journal of Chinese Society of Power Engineering,2011,31(12):960-968. | |
| [21] | 莫春鸿,刘宇钢,王冬平,等 .更高参数二次再热超超临界锅炉关键技术探讨[J].中国电力,2018,51(9):73-77. doi:10.11930/j.issn.1004-9649.201804047 |
| MO C H, LIU Y G, WANG D P,et al .Discussion on critical technologies of double-reheat ultra-supercritical boiler with higher steam parameters[J].Electric Power,2018,51(9):73-77. doi:10.11930/j.issn.1004-9649.201804047 | |
| [22] | 毛健雄 .燃煤耦合生物质发电[J].分布式能源,2017,2(5):47-54. doi:10.16513/j.cnki.10-1427/tk.2017.05.008 |
| MAO J X .Co-firing biomass with coal for power generation[J].Distributed Energy,2017,2(5):47-54. doi:10.16513/j.cnki.10-1427/tk.2017.05.008 | |
| [23] | Ammonia Energy News .Chugoku electric completes successful trial,seeks patent for ammonia co-firing technology[EB/OL].(2023-03-17)[2025-0-28].https:/ . |
| [24] | NAGATANI G .Development of co-firing method of pulverized coal and ammonia to reduce greenhouse gas emissions[J].IHI Engineering Review,2020,53(1):1-10. |
| [25] | 赖诗妮,江丽霞,李军,等 .含碳掺氨燃料的研究进展[J].化工进展,2023,42(9):4603-4615. doi:10.16085/j.issn.1000-6613.2022-2005 |
| LAI S N, JIANG L X, LI J,et al .Research progress of ammonia blended fossil fuel[J].Chemical Industry and Engineering Progress,2023,42(9):4603-4615. doi:10.16085/j.issn.1000-6613.2022-2005 | |
| [26] | 曹权,王洪建,吴荣,等 .氢能供热技术发展现状与分析[J].煤气与热力,2023,43(11):28-32. |
| CAO Q, WANG H J, WU R,et al .Development status and analysis of hydrogen energy heating technology[J].Gas & Heat,2023,43(11):28-32. | |
| [27] | 邹鹏,王晓娜,王光礼,等 .燃煤锅炉混氨燃烧技术研究进展[J].节能,2024,43(6):113-116. |
| ZOU P, WANG X N, WANG G L,et al .Research progress of mixed ammonia combustion technology for coal-fired boilers[J].Energy Conservation,2024,43(6):113-116. | |
| [28] | 刘小伟,周昊,吴玉新,等 .“绿氢/氨碳中性燃料燃烧机理与技术”专题特约主编寄语[J].热力发电,2025,54(8):3-6. |
| LIU X W, ZHOU H, WU Y X,et al .Message from the special editor of “combustion mechanism and technology of green hydrogen/ammonia carbon neutral fuel”[J].Thermal Power Generation,2025,54(8):3-6. | |
| [29] | 王凯卉,刘斌,折晓会,等 .氨氢混合燃烧在旋流燃烧器中的动力学特性与NO x 减排机理研究[J].发电技术,2025,46(1):171-179. |
| WANG K H, LIU B, ZHE X H,et al .Kinetic characterization and NO x reduction mechanism of mixed ammonia-hydrogen combustion in cyclone combustor[J].Power Generation Technology,2025,46(1):171-179. | |
| [30] | 汪飞,喻梦伊,陈良勇 .氢能产业技术经济性分析及展望[J].电力科技与环保,2024,40(5):445-454. doi:10.19944/j.eptep.1674-8069.2024.05.001 |
| WANG F, YU M Y, CHEN L Y .Technical and economic analysis and outlook of hydrogen energy industry[J].Electric Power Environmental Protection,2024,40(5):445-454. doi:10.19944/j.eptep.1674-8069.2024.05.001 | |
| [31] | 牛涛,张文振,刘欣,等 .燃煤锅炉氨煤混合燃烧工业尺度试验研究[J].洁净煤技术,2022,28(3):193-200. doi:10.13226/j.issn.1006-6772.CC22022401 |
| NIU T, ZHANG W Z, LIU X,et al .Industrial-scale experimental investigation of ammonia-coal cofiring in coal-fired boiler[J].Clean Coal Technology,2022,28(3):193-200. doi:10.13226/j.issn.1006-6772.CC22022401 | |
| [32] | 王震,张晓舟,周彦希 .碳中和目标下CCUS产业特征和趋势及支持政策分析[J].天然气与石油,2024,42(5):1-7. |
| WANG Z, ZHANG X Z, ZHOU Y X .Analysis on CCUS industry characteristics,trends and supporting policies under the carbon neutrality goal[J].Natural Gas and Oil,2024,42(5):1-7. | |
| [33] | 谢斌,卢大贵,吴彩斌 .碳捕集利用与封存技术研究进展[J].有色金属科学与工程,2023,14(6):871-878. doi:10.13264/j.cnki.ysjskx.2023.06.015 |
| XIE B, LU D G, WU C B .Research progress of carbon capture utilization and storage technology[J].Nonferrous Metals Science and Engineering,2023,14(6):871-878. doi:10.13264/j.cnki.ysjskx.2023.06.015 | |
| [34] | 叶云云,廖海燕,王鹏,等 .我国燃煤发电CCS/CCUS技术发展方向及发展路线图研究[J].中国工程科学,2018,20(3):80-89. doi:10.15302/J-SSCAE-2018.03.012 |
| YE Y Y, LIAO H Y, WANG P,et al .Research on technology directions and roadmap of CCS/CCUS for coal-fired power generation in China[J].Engineering Science,2018,20(3):80-89. doi:10.15302/J-SSCAE-2018.03.012 | |
| [35] | 张贤,杨晓亮,鲁玺 等 .中国二氧化碳碳捕集与封存(CCUS)年度报告(2023)[R].北京:中国21世纪议程管理中心,全球碳捕集与封存研究院,清华大学,2023. |
| ZHANG X, YANG X L, LU X,et al .China carbon dioxide capture and storage (CCUS) annual report (2023)[R].Beijing:China Agenda 21 Management Center,Global Carbon Capture and Storage Institute,Tsinghua University,2023. | |
| [36] | 韩学义 .电力行业二氧化碳捕集、利用与封存现状与展望[J].中国资源综合利用,2020,38(2):110-117. doi:10.3969/j.issn.1008-9500.2020.02.031 |
| HAN X Y .Current situation and prospect of carbon dioxide capture,utilization and storage in electric power industry[J].China Resources Comprehensive Utilization,2020,38(2):110-117. doi:10.3969/j.issn.1008-9500.2020.02.031 | |
| [37] | 彭雪婷,吕昊东,张贤. IPCC AR 6 报告解读:全球碳捕集利用与封存(CCUS)技术发展评估[J].气候变化研究进展,2022,18(5):580-590. doi:10.12006/j.issn.1673-1719.2022.140 |
| PENG X T, LYU H D, ZHANG X .Interpretation of IPCC AR6 report on carbon capture,utilization and storage (CCUS) technology development[J].Climate Change Research,2022,18(5):580-590. doi:10.12006/j.issn.1673-1719.2022.140 | |
| [38] | 朱法华,徐静馨 .双碳背景下中国与主要发达国家电力低碳转型比较[J].电力科技与环保,2024,40(6):561-571. |
| ZHU F H, XU J X .Comparison of low-carbon transformation in electricity between China and major developed countries under the background of carbon peaking and carbon neutrality[J].Electric Power Technology and Environmental Protection,2024,40(6):561-571. |
| [1] | Ping ZHANG, Hongliang DI, Long HU, Yangang XUE, Haitao LIU. Hybrid Energy Storage Participation in Secondary Frequency Regulation Control Strategy Based on Hierarchical Adaptive Control [J]. Power Generation Technology, 2026, 47(1): 99-110. |
| [2] | Chao LIU, Liangde LIU, Tiancheng LIAN, Wei ZHAO, Xufei YANG, Guanglin LIU. Parameter Optimization of Geothermal Organic Rankine Cycle Power Generation System Based on Ton of Water Generation [J]. Power Generation Technology, 2025, 46(6): 1223-1230. |
| [3] | Wei LI, Yingxu WANG, Shipeng WANG. Research on Capacity Allocation Optimization Model of Thermal Power Unit Participating in Electricity Market Considering Carbon Trading [J]. Power Generation Technology, 2025, 46(6): 1260-1268. |
| [4] | Jianjun LI, Manxia SHANG, Hailong DONG, Bingming LI, Zhong HUANG. Application and Optimization Research on Combined Denitrification Technology in 350 MW Supercritical Circulating Fluidized Bed Boiler [J]. Power Generation Technology, 2025, 46(5): 1014-1021. |
| [5] | Cheng LUO, Lei WANG, Yang LI, Qingming MENG, Guibin ZHANG, Yuanbin ZHAO. Effects of Variable-Flow Water Distribution on Cooling Performance of Wet Cooling Towers and Its Optimization [J]. Power Generation Technology, 2025, 46(5): 1041-1049. |
| [6] | Bo ZOU, Jiandi REN, Daoming XU, Lisheng DENG, Lida LIAO, Junbing XIAO. Recent Developments on the Application of Chloride Molten Salt Heat Storage Technology to New Energy Power Generation [J]. Power Generation Technology, 2025, 46(5): 872-884. |
| [7] | Jing CHEN, Hui LIU, Meng ZHU, Can WANG, Lei CHEN, Jing ZHOU, Kai XU, Long JIANG, Song HU, Jun XIANG. Analysis of Influence of Flue Gas Recirculation on Thermodynamic Performance and Economic Efficiency of 125 MW Supercritical CO2 Coal-Fired Power Generation Unit [J]. Power Generation Technology, 2025, 46(5): 986-995. |
| [8] | Shuaining ZHANG, Mingming GAO, Yongquan WANG, Weihua WANG, Haoyang YU, Zhong HUANG. Integrated Modeling Study of Desulfurization in Circulating Fluidized Bed Boilers Under Wide Load Conditions [J]. Power Generation Technology, 2025, 46(4): 849-856. |
| [9] | Zhiyong ZHANG, Linggang KONG, Duojin FAN, Xiaojuan LU. Modeling Simulation and Experimental Verification of Focal Length Optimization in Linear Fresnel Collector [J]. Power Generation Technology, 2025, 46(3): 590-599. |
| [10] | Guolin ZHANG, Zhezhao ZENG, Yuqi TANG. Research on Auto-Coupling PID Control Method of Firing Rate to Feed Water Ratio System of Supercritical Unit [J]. Power Generation Technology, 2025, 46(2): 344-352. |
| [11] | Xianmin ZENG, Boyun LI, Xiangyang SHEN, Jiashu CHEN, Lixing DING. Thermal Stress Analysis of Transversally Corrugated Tube in Solar Receiver Under Semi-Circumference Heating [J]. Power Generation Technology, 2025, 46(1): 190-199. |
| [12] | Jianning DONG, Jizhen AN, Heng CHEN, Peiyuan PAN, Gang XU, Xiuyan WANG. Performance Prediction Method for Air Cooling System of Thermal Power Unit Considering Weather Effect [J]. Power Generation Technology, 2024, 45(6): 1105-1113. |
| [13] | Changhong ZHAO, Lilin ZHANG, Yunshu SHAO, Jiahai YUAN, Yilu DENG. Research on Low Carbon Information Disclosure and Low Carbon Transition Efficiency of Listed Power Generation Companies [J]. Power Generation Technology, 2024, 45(6): 1121-1134. |
| [14] | Lixiang QIU, Chao HUANG, Gaosheng WEI, Liu CUI, Xiaoze DU. Effect of Particle Agglomeration on Thermal Conductivity of Solar Salt Nanofluids [J]. Power Generation Technology, 2024, 45(5): 878-887. |
| [15] | Tingting XIE, Youyuan SUN, Zhen GUO, Mingguang SONG. Summary of Research and Application of Continuous Monitoring Technology for Carbon Emissions From Thermal Power Units [J]. Power Generation Technology, 2024, 45(5): 919-928. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||