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Identification of fracture toughness parameters to understand the fracture resistance of advanced high strength sheet steels

机译:抗断裂韧性参数的识别,了解先进高强度板钢的断裂性

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The fracture toughness of four advanced high strength steel (AHSS) thin sheets is evaluated through different characterization methodologies, with the aim of identifying the most relevant toughness parameters to describe their fracture resistance. The investigated steels are: a Complex Phase steel, a Dual Phase steel, a Trip-Aided Bainitic Ferritic steel and a Quenching and Partitioning steel. Their crack initiation and propagation resistance is assessed by means of J-integral measurements, essential work of fracture tests and Kahn-type tear tests. The results obtained from the different methodologies are compared and discussed, and the influence of different parameters such as specimen geometry or notch radius is investigated. Crack initiation resistance parameters are shown to be independent of the specimen geometry and the testing method. However, significant differences are found in the crack propagation resistance values. The results show that, when there is a significant energetic contribution from necking during crack propagation, the specific essential work of fracture (w(e)) better describes the overall fracture resistance of thin AHSS sheets than J(C). In contrast, energy values obtained from tear tests overestimate the crack propagation resistance and provide a poor estimation of AHSS fracture performance. w(e) is concluded to be the most suitable parameter to describe the global fracture behaviour of AHSS sheets and it is presented as a key property for new material design and optimization.
机译:通过不同的表征方法评估四种先进的高强度钢(AHSS)薄板的断裂韧性,目的是鉴定最相关的韧性参数来描述其骨折性抗性。所研究的钢是:复杂的阶段钢,双相钢,跳闸辅助贝氏体铁素体钢和淬火和隔离钢。通过J-积分测量评估它们的裂纹启动和传播电阻,断裂试验和Kahn型撕裂试验的基本作品。比较和讨论从不同方法获得的结果,研究了不同参数如样品几何或缺口半径的影响。裂纹启动电阻参数被显示为独立于试样几何形状和测试方法。然而,在裂缝传播电阻值中发现了显着的差异。结果表明,当裂缝繁殖期间缩颈有显着的能量贡献时,骨折的具体基本作品(W(e))更好地描述了比J(C)的薄AHSS板的总裂缝性。相反,从撕裂试验获得的能量值高估裂纹传播电阻,并提供了AHSS裂缝性能的差异差。 W(e)被结束为最合适的参数来描述AHSS纸张的全球性骨折行为,并作为新材料设计和优化的关键属性。

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