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A REVIEW OF HAYNES~(R) 230 AND HAYNES 617 ALLOYS FOR HIGH TEMPERATURE GAS COOLED REACTORS

机译:对高温气体冷却反应器的Haynes〜(R)230和Haynes 617合金的综述

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Haynes 230 and 617 alloys are competing for use on Generation IV, high temperature gas cooled reactor components because of their good high temperature creep strength in the temperature range of 760°C and 982°C and resistance to attack in the gas cooled reactor environment. A review of the metallurgy affecting the properties in each alloy is provided. It is shown that the grain size and carbide precipitation developed during manufacture affect short term and long term ductility, fatigue life, and creep strength. For example, 230 alloy has a finer grained structure which promotes fatigue strength with a slight sacrifice in creep strength. The 617 alloy has a coarser grain structure which provides slightly higher creep resistance while sacrificing some fatigue strength. Thermal aging also introduces gamma prime precipitation to 617 alloy in addition to grain boundary carbides. This, along with grain boundary oxidation, reduces the low cycle fatigue strength of 617 alloy compared to 230 alloy. Independent studies have shown that 230 alloy possesses higher resistance to thermal fatigue than 617 alloy. However, welds of both base metals with similar weld composition have about the same thermal fatigue life. Cooling rates from solution annealing temperatures during processing affect the ductility and creep strength of these alloys with the highest cooling rates preferred for retention of ductility and creep strength. Slow cooling rates promote carbide precipitation in the grain boundaries which reduces ductility and creep strength.
机译:Haynes 230和617合金正在竞争IV的一代,高温气体冷却反应器部件,因为它们在760°C和982℃的温度范围内的良好高温蠕变强度,并且在气体冷却反应器环境中抗攻击性。提供了影响每种合金中性质的冶金的综述。结果表明,在制造过程中产生的晶粒尺寸和碳化物沉淀影响短期和长期延展性,疲劳寿命和蠕变强度。例如,230合金具有更精细的粒度结构,促进疲劳强度较小的蠕变强度。 617合金具有较粗的晶粒结构,可提供略高的蠕变性,同时牺牲一些疲劳强度。除了晶界碳化物之外,热老化还引入了617合金的γ丸沉淀。与230合金相比,这与晶界氧化一起降低了617合金的低循环疲劳强度。独立研究表明,230合金具有比617合金高的热疲劳性更高的耐受性。然而,具有相似焊接组合物的两种碱金属的焊缝具有大致相同的热疲劳寿命。从溶液退火温度的冷却速率在加工过程中影响这些合金的延展性和蠕变强度,其具有最优选的冷却率,以保持延展性和蠕变强度。缓慢冷却速率促进晶界中的碳化物沉淀,降低延展性和蠕变强度。

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