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Field Test of High-Temperature Corrosion Sensors in a Waste-to-Energy Plant

机译:垃圾发电厂中的高温腐蚀传感器的现场测试

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Electrochemical probes originally designed for use in aqueous environments were shown to measure corrosion rates in a high-temperature gaseous environment where electrolyte consisted of conductive ashes and liquid slag. The field trial of the probes was conducted over a five-month period to monitor fireside corrosion in a waste-to-energy (WTE) plant. The three-electrode air-cooled corrosion sensors, each including a thermocouple to monitor sensor temperature, were installed in four different ports at approximately the same level of the WTE boiler. A total of 12 sensors were tested: six with electrodes using the carbon steel boiler tube material and six using the nickel-chromium alloy used for weld overlays for the electrodes. Corrosion rates and temperatures of the sensors were monitored continuously throughout the trial. Metallographic measurements of sensor thickness loss were used to calibrate the electrochemical corrosion rates. Air cooling of the sensors was found to be necessary to bring the sensors to the temperature of the boiler tubes, to better match the corrosion rate of the tubes, and to increase survivability of the sensors and thermocouples. Varying the temperature of the sensors simulated corrosion rates of boiler tubes with steam temperatures above and below that in the actual WTE plant. Temperatures of two of the sensors were successfully held at controlled temperatures close to the steam temperature for a three-hour test period. Trends in the corrosion rates of the two materials tested were similar though of different magnitude. An expression relating the corrosion rate of the boiler tube material to the corrosion rate of weld overlay was determined for a seven-day period in the middle of the field trial. Results from the field trial suggested that corrosion rate sensors controlled to the outer waterwall temperature can monitor successfully fireside corrosion in WTE plants and can be used as a process control tool by plant operators. [PUBLICATION ABSTRACT]
机译:最初设计用于水性环境的电化学探针已显示出可在高温气体环境中测量腐蚀速率的条件,其中电解质由导电性灰烬和液态炉渣组成。在五个月的时间内对探针进行了现场试验,以监测废物变能源(WTE)工厂的炉膛腐蚀情况。三电极风冷腐蚀传感器每个都包含一个热电偶以监测传感器温度,它们安装在与WTE锅炉高度相同的四个不同端口中。总共测试了12个传感器:六个带有碳钢锅炉管材料的电极,六个带有镍铬合金的电极(用于电极堆焊)。在整个试验过程中,对传感器的腐蚀速率和温度进行了连续监测。传感器厚度损失的金相测量用于校准电化学腐蚀速率。发现必须进行传感器的空气冷却,以使传感器达到锅炉管道的温度,以更好地匹配管道的腐蚀速率,并提高传感器和热电偶的使用寿命。改变传感器的温度可以模拟锅炉管在蒸汽温度高于或低于实际WTE工厂时的腐蚀速率。在三个小时的测试期间内,两个传感器的温度成功地保持在接近蒸汽温度的受控温度下。尽管幅度不同,但两种测试材料的腐蚀速率趋势相似。在现场试验的中间,确定了为期7天的表达式,该表达式将锅炉管材料的腐蚀速率与焊缝的腐蚀速率相关。现场试验的结果表明,控制到外部水冷壁温度的腐蚀速率传感器可以成功监控WTE工厂的炉边腐蚀,并且可以用作工厂操作员的过程控制工具。 [出版物摘要]

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  • 来源
    《Corrosion》 |2010年第2期|p.1-12|共12页
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    S.A. Matthes** B.S. Covino, Jr.,* S.J. Bullard,* and K.M. Williamson*Submitted for publication October 2008, In revised form, September 2009.[double dagger] Corresponding author. E-mail: matthes@proaxis.com.* U.S. Department of Energy, National Energy Technology Laboratory, 1450 Queen Ave. , SW, Albany, OR 97321.,;

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  • 入库时间 2022-08-17 13:45:35

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