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Quantifying T-stress controlled constraint by the master curve transition temperature T-0

机译:通过主曲线转变温度T-0量化T应力控制的约束

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Specimen size, crack depth and loading conditions may effect the materials fracture toughness. In order to safeguard against these geometry effects, fracture toughness testing standards prescribe the use of highly constrained deep cracked bend specimens having a sufficient size to guarantee conservative fracture toughness values. One of the more advanced testing standards, for brittle fracture, is the master curve standard ASTM E1921-97, which is based on technology developed at VTT Manufacturing Technology. When applied to a structure with low constraint geometry, the standard fracture toughness estimates may lead to strongly over-conservative estimate of structural performance. In some cases. this may lead to unnecessary repairs or even to an early "retirement" of the structure. In the case of brittle fracture, essentially three different methods to quantify constraint have been proposed, J small scale yielding correction, Q-parameter and the T-stress. Here, a relation between the T-stress and the master curve transition temperature T-0, is experimentally developed and verified. As a result, a new engineering tool to assess low constraint geometries with respect to brittle fracture has been obtained. (C) 2001 Elsevier Science Ltd. All rights reserved. [References: 38]
机译:试样尺寸,裂纹深度和加载条件可能会影响材料的断裂韧性。为了防止这些几何形状的影响,断裂韧性测试标准规定了使用高度受约束的深裂纹弯曲试样,该试样的尺寸应足以保证保守的断裂韧性值。对于脆性断裂,更先进的测试标准之一是主曲线标准ASTM E1921-97,该标准基于VTT Manufacturing Technology开发的技术。当将其应用于具有低约束几何形状的结构时,标准断裂韧性估算值可能会导致结构性能的过度保守估计。在某些情况下。这可能导致不必要的维修,甚至导致结构的“提前退役”。在脆性断裂的情况下,基本上已经提出了三种不同的量化约束的方法,J小尺度屈服校正,Q参数和T应力。在此,通过实验开发并验证了T应力与主曲线转变温度T-0之间的关系。结果,已经获得了一种新的工程工具来评估关于脆性断裂的低约束几何形状。 (C)2001 Elsevier ScienceLtd。保留所有权利。 [参考:38]

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