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Mercury capture by boiler modifications with sub-bituminous coals

机译:用亚烟煤通过锅炉改造捕获汞

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The extent of mercury (Hg) emissions at a particular coal-fired boiler is unit-specific and determined by factors that include the type of coal fired, boiler operating conditions, and the amount of Hg removed at the boiler back-end by the pollution control devices. Mercury speciation, adsorption and removal in the boiler are affected by parameters such as the flue gas and fly ash characteristics, and back-end boiler configuration/operation. Various studies have reported that boiler operating conditions can be optimized to enhance the "naturally" occurring Hg capture in coal-fired boilers. A study was carried out to investigate the impact of boiler operating conditions on Hg emissions at a full-scale coal-fired power plant. Testing was performed at a 810 MW coal-fired power plant firing a Northern Powder River Basin (PRB) coal, and equipped with a low-NO_x system and a wet flue gas desul-furization (FGD) system for particulate and sulfur dioxide (SO_2) control. Speciated (total and elemental, Hg°) Hg measurements and analytical procedures were performed according to the Ontario Hydro Method (OHM)/ASTM D6784-02 Method. OHM measurements were conducted at the air preheater (APH) inlet and the stack. Mercury emissions were also continuously monitored using single-point, non-isokinetic sampling with semi-continuous emissions monitors (SCEM). Readings from these analyzers were used for guidance during boiler control setting manipulations. Individual semi-continuous sampling modules were installed at four single-point locations along the convective pass: APH inlet, FGD inlet, FGD outlet and the stack. The test results obtained in this study showed the benefit of boiler modifications for Hg control and the extent to which the "natural" Hg control could be influenced. Parametric testing indicated a modest, but inconsistent improvement in the stack Hg (Hg~T) emissions at reduced excess oxygen. This was probably due to the fact that the fly ash unburned carbon levels were very low (less than 1.0%). Modifications to the low-NO_x system over-fire registers, burner tilt and FGD liquid-to-gas (L/C) ratio resulted in stack Hg~T reductions in excess of 25%. The FGD L/G ratio manipulations also resulted in an improvement in oxidized mercury removal across the FGD. However, none of the test data suggested any reduction in Hg° across the FGD. The combination of optimal boiler control settings for reduced Hg emission operation resulted in a 34.5% reduction in Hg~T at the stack.
机译:特定燃煤锅炉的汞(Hg)排放量是单位特定的,并由以下因素决定,这些因素包括燃煤的类型,锅炉的运行条件以及在锅炉后端因污染而去除的Hg量。控制设备。锅炉中的汞形态,吸附和去除受到诸如烟气和飞灰特性以及后端锅炉配置/操作等参数的影响。各种研究报告说,可以优化锅炉的运行条件,以提高燃煤锅炉中“自然”发生的汞捕获。进行了一项研究,以调查锅炉运行条件对大型燃煤电厂汞排放的影响。测试是在一个810 MW的燃煤电厂中进行的,该电厂使用的是北部粉末河盆地(PRB)煤,并配备了低NO_x系统和湿法烟气脱硫(FGD)系统,用于处理颗粒物和二氧化硫(SO_2) ) 控制。根据安大略水法(OHM)/ ASTM D6784-02方法进行了指定的(总和元素,Hg°)Hg测量和分析程序。 OHM测量在空气预热器(APH)入口和烟囱处进行。还使用带有半连续排放监测器(SCEM)的单点,非等速采样来连续监测汞排放。这些分析仪的读数在锅炉控制设置操作中用作指导。沿对流通道将单个半连续采样模块安装在四个单点位置:APH入口,FGD入口,FGD出口和烟囱。在这项研究中获得的测试结果表明,锅炉改型对于汞控制的好处以及“天然”汞控制的影响程度。参数测试表明,在减少过剩氧气的情况下,烟囱中的Hg(Hg〜T)排放量适度但不一致地改善。这可能是由于粉煤灰的未燃烧碳含量非常低(小于1.0%)这一事实。对低NO_x系统过火寄存器,燃烧器倾斜和FGD液气比(L / C)的修改导致烟囱Hg〜T降低了25%以上。 FGD L / G比率的操作还提高了整个FGD的氧化汞去除率。但是,没有测试数据表明整个烟气脱硫装置中的Hg°都有降低。减少锅炉汞排放的最佳锅炉控制设置相结合,使烟囱处的Hg〜T降低了34.5%。

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