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Low-cycle impact fatigue testing based on an automatized split Hopkinson bar device

机译:基于自动化拆分霍普金森棒装置的低循环冲击疲劳试验

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Preventing fatigue damage and failure in components subjected to repeated impact loading is of great interest in many engineering applications. Quite often, material response during high-rate loading differs from quasi-static response due to the material's strain rate sensitivity and adiabatic heating effects. Hence, experimental materials testing at realistic loading rates is important in many cases of impact fatigue. Impact loading tests involve an inherent challenge: since force equilibrium does not exist, the dynamic response of the whole load train must be properly accounted for in order to impose the desired loading on the specimen and to measure the specimen response. In the field of monotonic high strain rate materials testing, the Split Hopkinson Bar (SHB) technique has established itself due to its simplicity in terms of structural dynamics. However, traditional SHB setups require a long time to be reset/rearmed after the impact, and therefore they are ill-suited for cyclic impact loading studies. In this contribution, we present a modified SHB technique with fully automatized rapid resetting/rearming of the setup, which allows for controlled cyclic impact loading at a rate of 0.5 Hz. The applicability of the method is demonstrated in this paper with test results for a tempered steel.
机译:预防疲劳损坏和经过重复冲击负荷的组件的失败对许多工程应用具有很大的兴趣。通常,由于材料的应变速率灵敏度和绝热效应,高速率负荷期间的材料响应与准静电反应不同。因此,在逼真的加载率下测试在许多影响疲劳的情况下是重要的。冲击载荷测试涉及固有的挑战:由于不存在力平衡,必须适当地占据整个载荷系的动态响应,以便在样本上施加所需的载荷并测量样本响应。在单调高应变率材料测试领域,拆分霍普金森棒(SHB)技术由于其在结构动态方面的简单性而建立了本身。然而,传统的SHB设置需要长时间才能在冲击后重置/后方,因此它们对循环冲击载荷研究不适合。在这一贡献中,我们介绍了一种改进的SHB技术,具有完全自动化的快速重置/后方的设置,这允许以0.5Hz的速率控制循环冲击载荷。本文证明了该方法的适用性,并对钢化钢进行了测试结果。

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