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超高应变率纳米压痕测试

Ultra High Strain Rate Nanoindentation Testing.

作者信息

Sudharshan Phani Pardhasaradhi, Oliver Warren Carl

机构信息

International Advanced Research Centre for Powder Metallurgy and New Materials (ARCI), Balapur PO, Hyderabad, Telangana 500005, India.

Nanomechanics Inc., 105 Meco Ln, Oak Ridge, TN 37830, USA.

出版信息

Materials (Basel). 2017 Jun 17;10(6):663. doi: 10.3390/ma10060663.

Abstract

Strain rate dependence of indentation hardness has been widely used to study time-dependent plasticity. However, the currently available techniques limit the range of strain rates that can be achieved during indentation testing. Recent advances in electronics have enabled nanomechanical measurements with very low noise levels (sub nanometer) at fast time constants (20 µs) and high data acquisition rates (100 KHz). These capabilities open the doors for a wide range of ultra-fast nanomechanical testing, for instance, indentation testing at very high strain rates. With an accurate dynamic model and an instrument with fast time constants, step load tests can be performed which enable access to indentation strain rates approaching ballistic levels (i.e., 4000 1/s). A novel indentation based testing technique involving a combination of step load and constant load and hold tests that enables measurement of strain rate dependence of hardness spanning over seven orders of magnitude in strain rate is presented. A simple analysis is used to calculate the equivalent uniaxial response from indentation data and compared to the conventional uniaxial data for commercial purity aluminum. Excellent agreement is found between the indentation and uniaxial data over several orders of magnitude of strain rate.

摘要

压痕硬度的应变率依赖性已被广泛用于研究与时间相关的塑性。然而,目前可用的技术限制了压痕测试过程中可实现的应变率范围。电子学的最新进展使得能够在快速时间常数(20微秒)和高数据采集率(100千赫)下进行具有非常低噪声水平(亚纳米)的纳米力学测量。这些能力为广泛的超快速纳米力学测试打开了大门,例如,在非常高的应变率下进行压痕测试。借助精确的动态模型和具有快速时间常数的仪器,可以进行阶跃载荷测试,从而能够获得接近弹道水平(即4000 1/s)的压痕应变率。本文提出了一种基于压痕的新型测试技术,该技术结合了阶跃载荷和恒载保持测试,能够测量跨越七个数量级应变率的硬度应变率依赖性。使用简单分析从压痕数据计算等效单轴响应,并与商业纯铝的传统单轴数据进行比较。在几个数量级的应变率范围内,压痕数据和单轴数据之间发现了极好的一致性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/612f/5554044/f1ba2f65bfa6/materials-10-00663-g001.jpg

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