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Tensile fracture behaviour of microstructurally engineered Cu bearing high strength low alloy steel

机译:显微组织工程铜轴承高强度低合金钢的拉伸断裂行为

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An attempt has been made to highlight the influence of precipitation and microstructural constituents on tensile fracture behaviour in Cu bearing HSLA 100 steel. Variations in the microconstituents have been incorporated in the steel by engineering the microstructures through thermal treatments consisting of solutionising, water quenching and aging at various temperatures. The microstructure in quenched condition consists of mainly lath martensite, bainite and acicular ferrite besides little amount of retained austenite, carbides and carbonitrides. Aging up to 500°C facilitated fine coherent ε-Cu precipitation that lost its coherency at >550°C. Simultaneously, recovery and recrystallisation of martensite and acicular ferrite occurred at higher temperatures. The formation of new martensite islands occurred on aging at >650°C. Carbides, carbonitrides and retained austenite remained essentially unchanged. Tensile tests were conducted at a slow strain rate to study the tensile fracture behaviour of the steel. Microstructural and fractographic evidences indicating that coherent Cu precipitate causes the brittleness in the material in initial stages of aging whereas loss of coherency of Cu precipitate in later stages results in the reappearance of ductility in the material.
机译:试图突出沉淀和微结构成分对含铜HSLA 100钢的拉伸断裂行为的影响。通过热处理,包括固溶化,水淬和在不同温度下进行时效处理,对微观结构进行改造,从而使钢中含有微量成分的变化。淬火条件下的显微组织主要由板条马氏体,贝氏体和针状铁素体组成,除了少量的残留奥氏体,碳化物和碳氮化物。在高达500°C的温度下进行时效会促进细微的相干ε-Cu沉淀,在> 550°C时失去相干性。同时,马氏体和针状铁素体在较高的温度下发生恢复和重结晶。在> 650°C时效下会发生新的马氏体岛的形成。碳化物,碳氮化物和残余奥氏体基本保持不变。以低应变速率进行拉伸测试以研究钢的拉伸断裂行为。显微组织和分形学证据表明,相干的铜析出物在时效的初期会导致材料的脆性,而在后期的析出相中铜析出物的相干性丧失会导致材料的延展性重新出现。

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