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Welding and weldability of candidate ferritic alloys for future advanced ultrasupercritical fossil power plants

机译:未来先进的超超临界化石发电厂的候选铁素体合金的焊接性和可焊性

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Fossil fuels continue to be the primary source of energy in the world. The worldwide demand for clean and affordable energy will continue to grow, and a strong emphasis has been placed on increasing the efficiency and reducing the carbon footprint of new and existing fossil fired power plants. Throughout Asia, Europe and the USA, this demand is being met with programmes to develop advanced materials that have enhanced high temperature creep and corrosion properties. A new class of ferritic alloys, known as creep strength enhanced ferritic steels, has been developed to meet these requirements. This article focuses on the weldability of the advanced ferritic alloys used in boilers and boiler components of ultrasupercritical coal fired power plants. This review focuses on alloy selection; welding and weldability issues, including in service weld failure such as type IV cracking; welding of dissimilar metals; and weld repair. Future articles will address the welding and weldability issues of two other classes of materials, namely austenitic stainless steels and nickel base superalloys.
机译:化石燃料仍然是世界上的主要能源。全球对清洁和负担得起的能源的需求将继续增长,并且将重点放在提高新的和现有的化石燃料发电厂的效率和减少碳足迹上。在整个亚洲,欧洲和美国,通过开发具有增强的高温蠕变和腐蚀性能的先进材料的计划可以满足这一需求。为了满足这些要求,已经开发出一种新型的铁素体合金,称为蠕变强度增强铁素体钢。本文重点介绍用于超超临界燃煤电厂锅炉和锅炉部件的高级铁素体合金的可焊性。本文主要针对合金的选择。焊接和可焊性问题,包括在役焊接故障,例如IV型开裂;异种金属焊接;和焊缝修复。未来的文章将讨论其他两类材料的焊接和可焊性问题,即奥氏体不锈钢和镍基高温合金。

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