Study on Material Corrosion Resistance of Flue Gas Waste Heat Exchanger

被引:0
|
作者
Han, Tingting [1 ]
机构
[1] Datang Northwest Elect Power Test & Res Inst, Xian, Shanxi, Peoples R China
关键词
Desulfurization; flue gas; corrosion; condensation;
D O I
10.3233/ATDE220419
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
According to the statistics of China Electricity Council, about 97% of China's coal-fired power generating units adopted wet desulfurization process (WFGD), of which the limestone-gypsum wet desulfurization process is the main process, accounting for about 91% of coal generating units. Without GGH, chimney exports can form white smoke plume. To solve the problem of environmental protection of white smoke plume and boiler flue gas waste heat recovery, the heat exchanger will be applied in flue gas condensation. But, the SO2, CO2, HCl and other complex components in flue gas can lead to equipment serious corrosion, so, it is necessary to study the heat exchanger and chimney material's corrosion resistance. In this paper, the natural corrosion experiments in the actual chimney condensate of 2205 duplex stainless steel, 2507 super duplex stainless steel, 316L austenitic stainless steel and TA2 materials were studied by hanging weight loss method and electrochemical method at different temperatures. The results show that: The existence of weld in stainless steel and TA2 will increase the corrosion tendency and corrosion rate of the material. In static immersion, the higher the temperature, the higher the corrosion rate; Corrosion rate is 2507<2205< TA2< 316L; In the presence of SO42- and F-, the oxide film of TA2 is destroyed and its corrosion resistance is reduced, which provides a certain reference for material selection of heat exchangers and chimneys.
引用
收藏
页码:63 / 71
页数:9
相关论文
共 50 条
  • [21] Heat and mass transfer between flue gas and surface of condensing heat exchanger
    Wang, SL
    Li, LP
    Pan, SY
    Ai, XY
    Fu, ZC
    Zhang, JF
    Wen, Z
    PROCEEDINGS OF THE 4TH INTERNATIONAL SYMPOSIUM ON HEATING, VENTILATING AND AIR CONDITIONING, VOLS 1 AND 2, 2003, : 777 - 784
  • [22] Simulation of a packed bed regenerative heat exchanger for flue gas heat recovery
    Sadrameli, M
    Zarrinehkafsh, MT
    PRES '99: 2ND CONFERENCE ON PROCESS INTEGRATION, MODELLING AND OPTIMISATION FOR ENERGY SAVING AND POLLUTION REDUCTION, 1999, : 565 - 570
  • [23] Application of absorption heat pump and direct-contact total heat exchanger to advanced-recovery flue-gas waste heat for gas boiler
    Li Feng
    Lin, Duanmu
    Fu Lin
    Zhao Xiling
    SCIENCE AND TECHNOLOGY FOR THE BUILT ENVIRONMENT, 2019, 25 (02) : 149 - 155
  • [24] WASTE HEAT-RECOVERY - HEAT-EXCHANGER FOULING AND CORROSION
    SILVESTRINI, R
    CHEMICAL ENGINEERING PROGRESS, 1979, 75 (12) : 29 - 35
  • [25] Mechanisms and strategies for ash deposition reduction in flue gas heat exchanger
    Zefeng Guo
    Nianqi Li
    Jiří Jaromír Klemeš
    Qiuwang Wang
    Min Zeng
    Clean Technologies and Environmental Policy, 2022, 24 : 77 - 93
  • [26] Numerical investigation on ash fouling characteristics of flue gas heat exchanger
    Fu, Lei
    Liu, Pengfei
    Li, Guojun
    APPLIED THERMAL ENGINEERING, 2017, 123 : 891 - 900
  • [27] Mechanisms and strategies for ash deposition reduction in flue gas heat exchanger
    Guo, Zefeng
    Li, Nianqi
    Klemes, Jiri Jaromir
    Wang, Qiuwang
    Zeng, Min
    CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY, 2022, 24 (01) : 77 - 93
  • [28] Experimental Study on Low-temperature Corrosion and Fouling Heat Transfer Characteristics of Waste Heat Recovery Heat Exchanger for Waste Incineration
    Li J.
    Zhang Y.
    Yue M.
    Du X.
    Yan M.
    Hu Q.
    Shi Y.
    Zhongguo Dianji Gongcheng Xuebao/Proceedings of the Chinese Society of Electrical Engineering, 2021, 41 (24): : 8484 - 8493
  • [29] CONDENSING HEAT-EXCHANGER CAPTURES FLUE-GAS LATENT-HEAT
    VANHOVEN, E
    POWER, 1984, 128 (02) : 126 - 126
  • [30] Performance characteristics of a new type of lamellar heat exchanger for the utilization of flue gas heat
    Kolev, D
    Kolev, N
    APPLIED THERMAL ENGINEERING, 2002, 22 (17) : 1919 - 1930