[1] 姚妹铭, 付国. 电力新能源与生态环境−评《电力环保政策法规汇编》 [J]. 环境工程, 2020, 38(10): 246.

YAO M M, FU G. New energy of electric power and ecological environment——Comment on the compilation of electric power environmental protection policies and regulations [J]. Environmental engineering, 2020, 38(10): 246.
[2] 张甲, 席静, 胡久平. 新能源技术的研究综述 [J]. 山东化工, 2018, 47(19): 75+83. DOI:  10.3969/j.issn.1008-021X.2018.19.029.

ZHANG J, XI J, HU J P. Research summary on new energy technology [J]. Shandong Chemical Industry, 2018, 47(19): 75+83. DOI:  10.3969/j.issn.1008-021X.2018.19.029.
[3] 严辉. 整体煤气化联合循环发电系统技术研究综述 [J]. 化学工程与装备, 2015(2): 155-157.

YAN H. Summary of research on integrated coal gasification combined cycle power generation system [J]. Chemical Engineering & Equipment, 2015(2): 155-157.
[4] 厉剑梁. 燃气-蒸汽联合循环机组余热锅炉优化研究 [D]. 北京: 华北电力大学(北京), 2017.

LI J L. Study on optimization of heat recovery steam generator for gas-steam combined cycle unit [D]. Beijing: North China Electric Power University(Beijing), 2017.
[5] 王颖, 邱朋华, 吴少华, 等. IGCC系统中余热锅炉的优化研究 [J]. 电站系统工程, 2009, 25(5): 31-32+35. DOI:  10.3969/j.issn.1005-006X.2009.05.013.

WANG Y, QIU P H, WU S H, et al. Study on optimization of HRSG in IGCC system [J]. Power System Engineering, 2009, 25(5): 31-32+35. DOI:  10.3969/j.issn.1005-006X.2009.05.013.
[6] 刘传成. 燃气-蒸汽联合循环双压、三压再热余热锅炉性能分析 [J]. 科技风, 2020(25): 106-107. DOI:  10.19392/j.cnki.1671-7341.202025053.

LIU C C. Comparison and analyses of dual and triple pressure HRSG performance in combined cycle power plant [J]. Technology Wind, 2020(25): 106-107. DOI:  10.19392/j.cnki.1671-7341.202025053.
[7] 沈桂男. 三压再热余热锅炉及运行 [C]//中国电机工程学会. 大型燃气轮机发电技术发展学术研讨会, 杭州, 2005-10-17. 北京: 中国电机工程学会, 2006: 206-212.

SHEN G N. Three pressure reheat waste heat boiler and its operation [C]//CSEE. Academic Seminar on the Development of Large Gas Turbine Power Generation Technology, Hangzhou, October 17, 2005. Beijing: CSEE, 2006: 206-212.
[8] 陈俊, 徐民. 400 MW级燃气-蒸汽联合循环机组余热锅炉调试技术与实践 [J]. 上海节能, 2019(10): 858-863. DOI:  10.13770/j.cnki.issn2095-705x.2019.10.012.

CHEN J, XU M. Commissioning technology and practice on heat residual boilers in 400 MW gas-steam combined circulation unit [J]. Shanghai Energy Conservation, 2019(10): 858-863. DOI:  10.13770/j.cnki.issn2095-705x.2019.10.012.
[9] 陈维春, 李素芬. 余热锅炉动态特性的数值计算 [J]. 节能, 2002(3): 8-10+2. DOI:  10.3969/j.issn.1004-7948.2002.03.003.

CHEN W C, LI S F. Numerical calculation of dynamic performance of dual-pressure heat recovery steam generator [J]. Energy Conservation, 2002(3): 8-10+2. DOI:  10.3969/j.issn.1004-7948.2002.03.003.
[10] 黄文波, 林汝谋, 肖云汉, 等. 联合循环中余热锅炉及其热力特性分析 [J]. 燃气轮机技术, 1996, 9(4): 21-30. doi:  10.16120/j.cnki.issn1009-2889.1996.04.004

HUANG W B, LIN R M, XIAO Y H, et al. Analysis of waste heat boiler and its thermal characteristics in combined cycle [J]. Gas Turbine Technology, 1996, 9(4): 21-30. doi:  10.16120/j.cnki.issn1009-2889.1996.04.004
[11] 吕太, 郭耀德, 霍利, 等. 350 MW级燃气-蒸汽联合循环电站余热锅炉配置 [J]. 华北电力技术, 2006(10): 9-11+19. DOI:  10.3969/j.issn.1003-9171.2006.10.003.

LÜ T, GUO Y D, HUO L, et al. Heat recovery steam generator choice of 350 MW class combined cycle power plant [J]. North China Electric Power, 2006(10): 9-11+19. DOI:  10.3969/j.issn.1003-9171.2006.10.003.
[12] 聂宇宏, 梁融, 钱飞舟, 等. 高炉煤气余热锅炉数值模拟与传热系数的修正 [J]. 江苏科技大学学报(自然科学版), 2014, 28(1): 46-49. DOI:  10.3969/j.issn.1673-4807.2014.01.009.

NIE Y H, LIANG R, QIAN F Z, et al. Numerical simulation of BFG waste heat boiler and correction of its heat transfer coefficient [J]. Journal of Jiangsu University of Science and Technology(Natural Science Edition), 2014, 28(1): 46-49. DOI:  10.3969/j.issn.1673-4807.2014.01.009.
[13] 郁鸿凌, 杜艳艳, 葛卫东, 等. 对干熄焦余热锅炉热力计算中传热系数的探讨 [J]. 工业锅炉, 2009(2): 14-17. DOI:  10.3969/j.issn.1004-8774.2009.02.003.

YU H L, DU Y Y, GE W D, et al. Discussion on the heat transfer coefficient in thermal calculation of CDQ waste-heat boiler [J]. Industrial Boiler, 2009(2): 14-17. DOI:  10.3969/j.issn.1004-8774.2009.02.003.