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中广核太阳能德令哈有限公司50 MW槽式光热示范电站汽轮机在首次大修中发现双轴系转子找中心测量误差超限、汽轮机高低压缸末级动静叶片水蚀及汽水疏水管道弯头频繁泄漏等典型问题, 对其进行原因分析, 确定双轴系转子找中心测量误差超限原因为减速机高速轴中间过渡轴因自重牵引减速机高速轴下沉引起测量误差;汽轮机高低压缸末级动静叶片水蚀严重原因为高压中温机组高压缸排汽存在蒸汽带水情况, 机组低负荷、低背压长时间运行, 导致高低压缸末级蒸汽湿度增大, 加剧了水蚀作用;汽水疏水管道弯头泄漏原因为机组疏水使用频繁,蒸汽湿度升高及安装时吹管不彻底,汽水管道内存有焊渣等杂质,导致浮球式疏水器无法形成凝结水,管道弯头长期经受汽水混合物冲蚀,使管壁减薄、泄漏。 后经处理后,以上问题得到解决。
Abstract:The typical problems encountered in the first overhaul of the steam turbine of CGN Delingha 50 MW trough photothermal Demonstration Power Station are analyzed in this paper, such as excessive measurement errors in the center finding of the dual-axis rotor, water erosion of the turbine′s high and low pressure cylinder end-stage dynamic and static blades, and frequent leakage of the elbows of the steam and water drainage pipelines, etc. The reason for the exceeding measurement errors in the center finding of the dual axis system rotor is determined to be the measurement error caused by the sinking of the high-speed shaft of the reducer due to self weight traction. The serious water erosion of the dynamic and static blades at the end stage of the turbine high and low pressure cylinders is caused by steam with water in the exhaust steam of the high pressure cylinder of the high pressure and medium temperature unit, and the long time operation of the unit with low load and low backpressure leads to the increase of the humidity of the steam at the end stage of the high and low pressure cylinders and aggravates the effect of water erosion. The frequent leakage of steam and water drainage pipeline elbows was caused by frequent use of unit drainage, increased steam humidity, incomplete blowing during installation, and impurities such as welding slag, which prevent the floating steam trap from forming condensate. The steam and drainage pipeline elbows are subjected to erosion for a long time by the steam and watermixture, resulting in the thinning and leakage of the pipe wall at the elbow. After treatment, the above problems are solved.
[1] 张伟华,邓文刚.汽轮机轴系温度升高原因排查及处理[J].中氮肥,2024(2):62-66. ZHANG Weihua, DENG Wengang. Investigation and treatment of turbine shafting temperature rise[J]. Nitrogenous Fertilizer Progress, 2024(2): 62-66.
[2] 李成.小型汽轮机结构特点及其抗摆能力分析[J].机电工程技术, 2023,52(12):248-251. LI Cheng. Structural Characteristics and Anti Swing Ability Analysis of Small Steam Turbines[J]. Mechanical& Electrical Engineering Technology, 2023, 52(12): 248-251.
[3] 赵先波,曹寒,董卫红,等.某50 MW光热汽轮机轴系振动特性分析[J].东方电气评论,2019(2):56-60. ZHAO Xianbo, CAO Han, DONG Weihong, et al. Vibration Characteristics Analysis of Rotor-bearing System for A 50 MW Solar Thermal Steam Turbine Unit[J]. Dongfang Electric Review, 2019(2): 56-60.
[4] 徐灿君,张岗,曾勇,等.光热发电系统蓄热及汽轮机运行特性研究[J].化工机械,2022(1):103-109. XU Canjun, ZAHNG Gang, ZENG Yong, et al. Study on Thermal Storage and Turbine Operation Characteristics of Photothermal Power Generation System[J]. Chemical Engineering& Machinery, 2022(1): 103-109.
[5] 钱勇,倪剑,周勇.50 MW等级光热发电汽轮机总体设计[J].发电设备,2020(3):170-173. Qian Yong, Ni Jian, ZHOU Yong. Overall Design of a 50 MW Steam Turbine for CSP System[J]. Power Equipment, 2020(3): 170-173.
[6] 尹刚,范小平,吴方松,等.槽式光热发电汽轮机经济性关键技术研究[J].东方汽轮机,2021(1):29-32. YIN Gang, FAN Xiaoping, WU Fangsong, et al. Research on Key Technology for Economy of Trough Solar Thermal Power Turbine[J]. Dongfang Turbine, 2021(1): 29-32.
[7] 焦玉雪,徐自力,尹刚,等.太阳能光热发电汽轮机转子热机械应力分析及启动优化[J].汽轮机技术,2020(6):417-420. JIAO Yuxue, XU Zili, YIN Gang, et al. Start-up Optimization and Analysis of Thermo- mechanical Stressof Solar Thermal Steam Turbine Rotor[J]. Turbine Technology, 2020(6): 417-420.
[8] 吴智泉.太阳能光热发电汽轮机及主要技术特点[J].汽轮机技术, 2016(6):401-404,478. WU Zhiquan. Technical Features of Steam Turbine for Concentrated Solar Power Plant[J]. Turbine Technology, 2016(6): 401-404, 478.
[9] 李庆有,刘家琛,吕勇根.某F级联合循环发电机组汽轮机液压盘车故障分析与处理[J].机电工程技术,2021,50(9):269-271,279. LI Qingyou, LIU Jiachen, LYU Yonggen. Fault Analysis and Treatment of a Steam Turbine Hydraulic Jigger[J]. Mechanical& Electrical Engineering Technology, 2021, 50(9): 269- 271, 279.
[10] 刘勇,刘涛,李鹏.330 MW东方汽轮机低压缸零出力改造案例研究[J].机电工程技术,2019,48(9):237-242. LIU Yong, LIU Tao, LI Peng. Case Analysis of Low Pressure Cylinder Zero Output Retrofit of 300 MW Oriental Steam Turbine[J]. Mechanical& Electrical Engineering Technology, 2019, 48(9): 237-242.
[11] 谭文,祝朝阳,张治湖,等.火力发电厂汽轮机现场安装的技术改造策略[J].中国设备工程,2023(1):210-212. TAN Wen, ZHU Chaoyang, ZHANG Zhihu, et al. Technical improvement strategy of steam turbine on- site Installation in thermal power plant[J]. China Plant Engineering, 2023(1): 210- 212.
[12] 朱伟,周晟阳,管风羽,等.汽轮机发电机轴振分析及处理研究[J].节能技术,2023(3):244-247. ZHU Wei, ZHOU Shengyang, GUAN Fengyu, et al. Analysis and Treatment of shaft vibration of Turbine generator[J]. Energy Conservation Technology, 2023(3): 244-247.
[13] 王东健,仇友泽,梁海滨,等.汽轮机低旁阀在调峰工况下的强度与寿命分析[J].电站系统工程,2024,40(3):61-63. WANG Dongjian, QIU Youze, LIANG Haibin, et al. Strength and Life Analysis of Turbine low side Valve under Peak load control[J]. Power System Engineering, 2024, 40(3): 61-63.
[14] 祁乃斌,何江南,曹寒,等.深度调峰对汽轮机转子寿命损耗的影响及运行优化研究[J].东方电气评论,2024(1):59-64. QI Naibin, HE Jiangnan, CAO Han, et al. Study on Effect of depth peak Regulation on life loss of Turbine rotor and Operation Optimization[J]. Dongfang Electric Review, 2024(1): 59-64.
[15] 王永军.电厂汽轮机及其辅机的运行与管理探究[J].电力设备管理,2024(2):274-276. WANG Yongjun. Research on Operation and Management of Steam Turbine and its auxiliaries in Power plant[J]. Electric Power Equipment Management, 2024(2): 274-276.
[16] 廖尚君.疏水管道冲刷腐蚀原因及预防措施[J].设备管理与维修,2021(15):71-73. LIAO Shangjun. Causes and preventive measures of scour corrosion in drain pipes[J]. Plant Maintenance Engineering, 2021(15): 71-73.
[17] 左启尧,唐震,李慧勇,等.电网调峰背景下汽轮机低压缸零出力技术现状综述[J].发电技术,2022,43(4):645-654. ZUO Qiyao, TANG Zhen, LI Huiyong, et al. Overview on the Current Situation of Steam Turbine Low- Pressure Cylinder Zero- Output Technology Under Background of Power Grid Peak Regulation[J]. Power Generation Technology, 2022, 43(4): 645-654.
[18] 徐茂森.火电厂汽轮机运行故障处理技术探讨[J].电力设备管理,2024(3):53-55. XU Maosen. Discussion on fault handling technology of steam turbine operation in thermal power plant[J]. Electric Power Equipment Management, 2024(3): 53-55.
[19] 马坤仪.电厂汽轮机检修及维护技术要点分析[J].中文科技期刊数据库(全文版)工程技术,2024(3):59-62. MA Kunyi. Analysis of key technical points of steam turbine repair and maintenance in power plant[J]. Chinese Science and Technology Periodical Database (Full- text Version) Engineering Technology, 2024(3): 59-62.
[20] 郝天明,展尧,谢彦军.光热电站汽轮机面临的问题以及如何实现快速频繁启停[J].科技资讯,2019(35):73,75. HAO Tianming, ZHAN Yao, XIE Yanjun. The problems faced by the turbine of photothermal power station and how to achieve fast and frequent start- stop[J]. Science& Technology Information, 2019(35): 73, 75.
基本信息:
DOI:10.19929/j.cnki.nmgdljs.2024.0037
中图分类号:
引用信息:
[1]王自发,刘一丁,杨涛等.槽式光热电站汽轮机大修问题分析及对策[J].内蒙古电力技术,2024,42(03):28-32.DOI:10.19929/j.cnki.nmgdljs.2024.0037.
基金信息: