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Materials challenges and gasifier choices in IGCC processes for clean and efficient energy conversion

机译:IGCC工艺中的材料挑战和气化炉选择,以实现清洁高效的能源转换

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摘要

In the 1970 and 1980s, gasifiers were envisaged for synthesising substitute natural gas (SNG) as well for IGCC (integrated gasification combined cycle) systems. Component temperatures were above 700°C, but stainless alloys did not have the required corrosion resistance. Experimental alloys developed in the UK were alumina formers, incorporating Ta, W, and Mo as gettering elements for sulphidation resistance. Sulphidation corrosion is solvable, but attack by HCl in gasification environments seems intractable. The supposed materials problems of gasification, plus the complexity of IGCC, have led to them being sidelined for power generation. However, commercial IGCC plants are not dependent on high temperature materials and offer higher efficiency than Rankine cycle steam. Best near term prospects for IGCC are for CO2 capture, but this constrains the type of gasifier. Gasifiers incorporating carbon capture and storage produce hydrogen, or with less capture, SNG. Such systems will supply SNG for space heating as well as electricity, and can cope with the intermittency of wind energy. High efficiency IGCCs will need very advanced gas turbines with 100 bar, 1500-1600°C turbine inlet conditions. Key requirements will be thermal barrier coatings and catalytic combustor materials. Such gas turbines would offer efficiencies of 70% in straight CCGTs, or 50% when used in carbon capture IGCCs.
机译:在1970和1980年代,人们设想将气化炉用于合成替代天然气(SNG)以及用于IGCC(整体气化联合循环)系统。组件温度高于700°C,但是不锈钢不具有所需的耐腐蚀性。在英国开发的实验合金是氧化铝形成剂,结合了Ta,W和Mo作为用于抗硫化的吸气元素。硫化物腐蚀是可以解决的,但是在气化环境中被HCl侵蚀似乎很难。气化的假定材料问题,再加上IGCC的复杂性,导致它们被淘汰发电。但是,商业IGCC设备不依赖高温材料,并且比兰金循环蒸汽具有更高的效率。 IGCC的最佳近期前景是捕获二氧化碳,但这限制了气化炉的类型。结合了碳捕获和存储功能的气化炉可产生氢气,或捕获较少的SNG。这样的系统将为空间供暖和电力供应SNG,并且可以应对风能的间歇性问题。高效IGCC将需要具有100 bar,1500-1600°C涡轮进口条件的非常先进的燃气轮机。关键要求是隔热涂层和催化燃烧器材料。此类燃气轮机在直式CCGT中的效率为70%,在碳捕获IGCC中使用时的效率为50%。

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