标题: | 生质煤与粉煤混烧应用于切线式锅炉之数值模拟 The Numerical Simulation Analyses of Co-Firing of Pulverized Coal and Torrefied Biomass Used on Tangential Boiler |
作者: | 陈柏佑 陈俊勋 Chen, Po-Yu Chen, Chiun-Hsun 机械工程系所 |
关键字: | 切线式锅炉;混合燃烧;生质燃料;阿达罗煤;生质煤;Tangentially Coal-Fired Boiler;Two-Phase Combustion;Biomass Fuel;Adaro Coal;Torrefied Biomass |
公开日期: | 2017 |
摘要: | 中钢公司动力工场所使用之锅炉为切线式锅炉,主要燃料为阿达罗煤(Adaro Coal),温室气体排放量每年约为70~80万吨,占中钢公司总排放量百分比3.4%,为有效降低二氧化碳排放量兼具环境友善、洁净能源及分散能源供应,使用生质燃料取代或部分取代燃煤以达前述目标。本研究采用商业套装软体ANSYS/FLUENT模拟生质煤(Torrefied Biomass)与燃煤进行混合燃烧之现象及研发相关之控制技术。本研究之目的是建立切线式锅炉之数值模型,计算不同比例(0%(纯煤)、20%、40%、60%、80、100%)之生质煤与燃煤混合燃烧之结果,供实厂操作或后续研究评估生质煤取代燃煤之可行性参考。本研究完成建立锅炉数值模拟模型,以纯煤燃烧进行格点测试且与中钢公司提供之实验数据比对。经模拟结果得到最佳的格点数为130万,其中,过热水管群1出口温度之误差为3.3%、过热水管群2出口温度之误差为2.7%、节煤器入口量测点温度之误差为6.7%以及出口氧含量误差6.3%,由上述比较结果显示模拟的确能呈现锅炉内的燃烧行为。由各组混烧比例的模拟结果发现,混烧比例每提升20%,燃料的总热值虽减少3.6%,但烟气质量流率减少7.4%,混烧比例提高后,燃烧区域之温度会有提升的现象,但也因为烟气(flue gas)质量流率降低导致热容量降低,热交换后烟气温度下降幅度变大,其结果会严重地影响后续烟气预热空气和热水的效果。故未来应考量烟气质量流率来决定降载的程度,以符合边界条件对热水及过热蒸气入口的设定情况。 The Adaro coal is used by the tangentially coal-fired boiler of China Steel Corporation (CSC) for power generation. This boiler produces about 700,000 to 800,000 tons of greenhouse gas emission every year. CSC is trying to burn the biomass fuel to replace (or partially replace) the coal for the reduction of¬ carbon dioxide emission¬, which is apparently beneficial for company reputation. This research employs the Computational Fluid Dynamics (CFD) tool - ANSYS/FLUENT - to analyze the two-phase combustion flow fields of mixing torrefied biomass and Adaro coal inside the boiler. The main purpose is to build the corresponding numerical model and calculate the performance of combustion with different mixing rates of torrefied biomass (0%(pure coal), 20%, 40%, 60%, 80%, 100%). The assessment of replacement ratio can be used as a reference for real operation and future research. From the results of grid tests with the case of pure coal combustion, the grid number 1,300,000 is considered to be the optimal choice, which is the trade-off between the computational time and acceptable accuracy. Comparing with the numerical results with the experiment data from CSC, the error of temperature at superheated steam tube group 1 outlet is 3.3%, the one at superheated steam tube group 2 is 2.7%, the one at economizer inlet is 6.7% and the error of concentration of O2 at economizer inlet is 6.3%. According to the prediction results with different mixing rates of torrefied biomass, the total heating value will reduce 3.6% and the mass flow rate of flue gas will reduce 7.4% when the replacement ratio increases every 20%. Increasing the replacement ratio will raise the temperature of the combustion chamber and increase the temperature gradient of the flue gas after heat exchange. It may extremely affect the quality of preheating air and water. From the previous discussion, consideration of the loading of the water to satisfy the boundary conditions of hot water and superheated steam is recommended for the near future work. |
URI: | http://etd.lib.nctu.edu.tw/cdrfb3/record/nctu/#GT070451035 http://hdl.handle.net/11536/141235 |
显示于类别: | Thesis |