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材料导报  2023, Vol. 37 Issue (14): 21090184-8    https://doi.org/10.11896/cldb.21090184
  金属与金属基复合材料 |
620 ℃高效火电机组用CB2铸钢件材质特性与质量状态分析
田晓1,*, 刘德来2, 徐慧3, 秦承鹏1, 李太江1, 李益民1, 杨百勋1
1 西安热工研究院有限公司,西安 710051
2 山西兴能发电有限责任公司,太原 030200
3 西安益通热工技术服务有限责任公司,西安 710041
Analysis of Materials Characteristics and Quality State of CB2 Steel Castings for 620 ℃ High-efficiency Ultra-supercritical Steam-Turbine Unit
TIAN Xiao1,*, LIU Delai2, XU Hui3, QIN Chengpeng1, LI Taijiang1, LI Yimin1, YANG Baixun1
1 Xi’an Thermal Power Research Institute Co., Ltd., Xi’an 710051,China
2 Shanxi Xingneng Power Generation Co., Ltd., Taiyuan 030200,China
3 Xi’an Yitong Thermal Technology Service Co., Ltd., Xi’an 710041,China
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摘要 我国自2013年以来大力发展620 ℃高效超超临界发电技术,随着再热蒸汽温度提升至620 ℃,机组再热系统面临着更严峻的服役环境,传统12%Cr马氏体耐热钢难以满足汽轮机关键部件的服役要求,因此必须采用性能更优异的CB2铸钢来制作汽轮机高温内缸和主汽阀门等大型铸件。本文系统阐述了大型CB2铸钢件的制造工艺、关键工序、合金化原理及主要性能特点,并对不同厂家CB2铸钢件的质量状态进行了对比分析,掌握了国内外不同厂家CB2铸钢件之间的性能差异。结果表明,国产与进口CB2铸钢件的化学成分、常规力学性能处于同一水平,金相组织均为回火马氏体,但国产CB2铸钢件相对于进口产品在晶粒度、非金属夹杂物、δ-铁素体含量控制等方面还存在一定差异。上述研究结果可为CB2铸钢件的采购、订货、质量验收提供技术依据,并为CB2铸钢件的质量改进提供技术参考。
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田晓
刘德来
徐慧
秦承鹏
李太江
李益民
杨百勋
关键词:  USC汽轮机  CB2铸钢件  制造质量  化学成分  力学性能    
Abstract: The development of 620 ℃ high-efficiency USC power generation technology has gained intensive attention from China since 2013. The reheating system of the unit is facing a more severe service environment, as the temperature of reheated steam rises to 620 ℃. Hence, the traditional 12% martensitic heat-resistant steel cannot meet the service requirements of the key components of steam turbine, and CB2 steel cas-tings with better performance are thought to be good candidate for the manufacturing of massive castings, such as IP inner cylinder, and main or reheat steam valve. Herein, we systematically demonstrated the manufacturing process, key procedures, alloying principles, and main perfor-mance characteristics of CB2 steel castings. Moreover, the quality status of CB2 steel castings manufactured by domestic and imported manufacturers was compared and analyzed. It was found that the chemical composition and mechanical properties of those castings were comparable, with tempered martensite as the metallographic structure. However, compared with the imported products, the domestic CB2 steel castings still possessed some shortcomings in some aspects, involving precise control of grain size, non-metallic inclusions, and delta-ferrite content. It is believed that the conclusions can provide technical reference for the purchase, order, quality assessment of CB2 steel castings, and pave the way for their quality improvement of CB2 steel castings.
Key words:  USC steam-turbine    CB2 steel casting    manufacturing quality    chemical composition    mechanical property
出版日期:  2023-07-25      发布日期:  2023-07-24
ZTFLH:  TG142.1  
基金资助: 中国华能集团公司总部科技资助项目(HNKJ18-H05)
通讯作者:  *田晓,西安热工研究院有限公司高级工程师。2007年吉林大学材料系材料专业本科毕业,2010年中国科学院金属研究所金属材料专业硕士毕业,毕业后到西安热工研究院有限公司工作至今。目前主要从事火力发电厂用耐热高温材料的研究、质量评价和失效分析等方面的研究工作。发表核心期刊论文10余篇,授权发明专利4项、实用新型专利8项。tianxiao@tpri.com.cn   
引用本文:    
田晓, 刘德来, 徐慧, 秦承鹏, 李太江, 李益民, 杨百勋. 620 ℃高效火电机组用CB2铸钢件材质特性与质量状态分析[J]. 材料导报, 2023, 37(14): 21090184-8.
TIAN Xiao, LIU Delai, XU Hui, QIN Chengpeng, LI Taijiang, LI Yimin, YANG Baixun. Analysis of Materials Characteristics and Quality State of CB2 Steel Castings for 620 ℃ High-efficiency Ultra-supercritical Steam-Turbine Unit. Materials Reports, 2023, 37(14): 21090184-8.
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http://www.mater-rep.com/CN/10.11896/cldb.21090184  或          http://www.mater-rep.com/CN/Y2023/V37/I14/21090184
1 Li S H, Liu L, Peng H W. Coal Processing & Comprehensive Utilization, 2020(2), 65 (in Chinese).
李少华, 刘利, 彭红文. 煤炭加工与综合利用, 2020(2), 65.
2 Xiong L C, Tian Z L. Shanghai Metals, 2018, 40(1), 90 (in Chinese).
熊林敞, 田仲良. 上海金属, 2018, 40(1), 90.
3 Scarlin B, Kem T U, Staubli M. In:Conference Record of the Fourth Internation Conference on Advaces in Materials Technology for Fossil Power Plants. Hilton Head Island, 2004, pp.80.
4 Guo X L, Li Y X. Foundry Equipment & Technology, 2019(1), 4 (in Chinese).
郭小利, 李永新. 铸造设备与工艺, 2019(1), 4.
5 Cao D Y, Dong Z Z, Wang X M, et al. Heat Treatment of Metals, 2019, 44(7), 75 (in Chinese).
曹登云, 董治中, 王旭明, 等. 金属热处理, 2019, 44(7), 75.
6 Ma Y L, Liu Y, Jiang X, et al. Foundry, 2018, 67(11), 1016 (in Chinese).
马煜林, 刘越, 江旭, 等. 铸造, 2018, 67(11), 1016.
7 Bai Y J, Zheng K, Lu Y, et al. Foundry Technology, 2019, 40(4), 341 (in Chinese).
白玉洁, 郑康, 刘越, 等. 铸造技术, 2019, 40(4), 341.
8 Jiang X, Ma Y L, Liu Y. Materials Reports, 2019, 33(6), 2062 (in Chinese).
江旭, 马煜林, 刘越. 材料导报, 2019, 33(6), 2062.
9 Deng Q, Wang T, Qin B, et al. Heavy Casting and Forging, 2014, 3(2), 26 (in Chinese).
邓琴, 王涛, 邱斌, 等. 大型铸锻件, 2014,3(2), 26.
10 Zhang B, Fang H, Long L H, et al. Dongfang Turbine, 2016, 3(1), 55 (in Chinese).
张波, 范华, 龙老虎, 等. 东方汽轮机, 2016, 3(1), 55.
11 Wang Q. Foundry Engineering, 2016, 40(3), 4 (in Chinese).
王强. 铸造工程, 2016, 40(3), 4.
12 Ma Y W. Numerical simulation and process optimization of steel casting based on procast. Master’s Thesis, Inner Mongolia University of Science & Technology, China, 2019 (in Chinese).
马彦伟. 基于Procast 铸钢件数值模拟及工艺优化. 硕士学位论文, 内蒙古科技大学, 2019.
13 Wang C X. Prediction of microstructure and performance during casting steel heat treatment process based on inteCAST. Master’s Thesis, Huazhong University of Science and Technology, China, 2018 (in Chinese).
王崇浔. 基于华铸CAE的铸钢件热处理组织及性能预测. 硕士学位论文, 华中科技大学, 2018.
14 Josef K, Dagmar J. Materials Science Forum, 2014, 782, 179.
15 Mei L B, Shen W H, Wang S Y, et al. Thermal Turbine, 2012, 41(3), 184 (in Chinese).
梅林波, 沈红卫, 王思玉, 等. 东方汽轮机, 2012, 41(3), 184.
16 Semba H, Abe F. In:Conference Record of the Fourth Internation Confe-rence on Advaces in Materials Technology for Fossil Power Plants. Hilton Head Island, 2004, pp.1229.
17 A Gianfrancesco A D, Clpolla L, Venditti D. In:Conference Record of Internation Conference on Metallurgy and Applicactions of High Strength Steels. Roma, 2008, pp.13.
18 Torsten U K, Marc S, Brendon S. Transactions of the Iron & Steel Institute of Japan, 2002, 42(12), 1515.
19 Tian X. Research report on material characteristics and monitoring techno-logy of high-temperature steel castings of 620℃ high-efficiency USC unit (1) Conventional mechanical properties of CB2 steel, Xi’an Thermal Power Research Institute Co., Ltd., China, 2021 (in Chinese).
田晓. 620 ℃高效USC机组高温铸钢件材质特性与监控技术研究报告(一)CB2钢常规力学性能, 西安热工研究院有限公司, 2021.
20 Li Y M, Fang C X, Yang B X, et al. New heat-resistant steel for large thermal power unit, China Electric Power Press, China, 2013 (in Chinese).
李益民, 范长信, 杨百勋, 等. 大型火电机组用新型耐热钢, 中国电力出版社, 2013.
21 Liu Z D, Cheng S C, Bao H S, et al. Transactions of Materials and Heat Treatment, 2010, 31(11), 61 (in Chinese).
刘正东, 程世长, 包汉生, 等. 材料热处理学报, 2010, 31(11), 61.
22 Zhao M L. CFHI Technology, 2011(2), 31 (in Chinese).
赵美兰. 一重技术, 2011(2), 31.
23 Zhang J Y, Zhang R X, Qiu G M. Physical Testing and Chemical Analysis(Part A:Physical Testing), 2014, 50(8), 563 (in Chinese).
张景豫, 张瑞雪, 仇国民. 理化检验(物理分册), 2014, 50(8), 563.
24 Abe F, Torsten U K, Viswanthan R. Creep-resistant Steels, Woodhead Publishing Limited, UK, 2008.
25 Hu X Q, Xiao N M, Luo X H, et al. Acta Metallurgica Sinica, 2009, 45(5), 553 (in Chinese).
胡小强, 肖纳敏, 罗兴宏, 等. 金属学报, 2009, 45(5), 553.
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