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SPECIMEN STRESS EQUILIBRIUM IN SPLIT HOPKINSON PRESSURE BAR TESTS OF CERAMICS AT HIGH STRAIN RATE

机译:高应变速率下陶瓷霍普金森压杆试验的试件应力平衡

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This paper provides an analytical method and guidelines for achieving valid Split Hopkinson Pressure Bar (SHPB) tests of ceramics at high strain rate. A one dimensional model of a SHPB test of an elastic specimen is expressed by the wave equation with the initial and boundary conditions. For any incident stress pulse, the analytical expression of the specimen stress is derived via Fourier transform analysis. Consequently, the general expressions for the bar stress at the two ends of the specimen, the specimen stress uniformity and the strain rate are established. For linear ramp loading, which is usually generated using pulse shaping technique in SHPB tests, the threshold time to achieve stress equilibrium and constant strain rate is determined. In addition, the strain rate when the specimen fractures is obtained. The effects of the bar-specimen mechanical impedance and the rising rate of the incident pulse on the stress uniformity and the strain rate are investigated. The analytical results are applied to determine the optimal test conditions for accurate and reliable SHPB experiments on ceramics at several thousand strain per-second.
机译:本文提供了一种用于在高应变速率下实现有效的陶瓷分裂霍普金森压力棒(SHPB)测试的分析方法和指南。弹性样本的SHPB测试的一维模型由具有初始和边界条件的波动方程表示。对于任何入射应力脉冲,通过傅立叶变换分析得出样品应力的解析表达式。因此,建立了试样两端的钢筋应力,试样应力均匀性和应变率的一般表达式。对于通常在SHPB测试中使用脉冲整形技术生成的线性斜坡加载,要确定达到应力平衡和恒定应变率的阈值时间。另外,获得了试样断裂时的应变率。研究了试件的机械阻抗和入射脉冲的上升速率对应力均匀性和应变率的影响。分析结果可用于确定以每秒几千个应变的速度对陶瓷进行准确可靠的SHPB实验的最佳测试条件。

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