Javascript is required
Search

Acadlore takes over the publication of IJCMEM from 2025 Vol. 13, No. 3. The preceding volumes were published under a CC BY 4.0 license by the previous owner, and displayed here as agreed between Acadlore and the previous owner. ✯ : This issue/volume is not published by Acadlore.

Open Access
Research article

Strain Rate Behavior of Pure Aluminum in Conical Indentation with Different Indenter Control Methods

Tsuyoshi Kami1,
Hiroyuki Yamada2,
Nagahisa Ogasawara2,
Xi Chen3
1
Graduate School of Science and Engineering, National Defense Academy, Japan
2
Department of Mechanical Engineering, School of Systems Engineering, National Defense Academy, Japan
3
Department of Earth and Environmental Engineering, Columbia University, United States
International Journal of Computational Methods and Experimental Measurements
|
Volume 6, Issue 3, 2018
|
Pages 515-526
Received: N/A,
Revised: N/A,
Accepted: N/A,
Available online: N/A
View Full Article|Download PDF

Abstract:

Strain rate effect of strength is a crucial factor for material characterization. Attempts have been made to evaluate strain rate effect by indentation tests. An indentation causes a non-uniform stress and strain field inside a specimen. This must induce a non-uniform strain rate field. However, little has been reported about strain rate distribution beneath the indenter. So far, various indenter control methods have been used. In previous studies, no direct comparisons were available as to how strain rate distribution was affected by different control methods. In this study, we report on the strain rate effect of indentation with two indenter control methods: constant loading rate (CLR) and constant indentation strain rate (CISR). The finite element method was designed to reproduce deformation caused by a conical indenter of a half apex angle of 70.3°. Pure aluminum (99.999 mass% purity), which showed high strain rate dependence of strength, was chosen as a specimen. Material properties were obtained from low strain rate (10–4, 10–2/s) to high strain rate (102/s) tests, and results were incorporated into a FEM analysis using the Cowper-Symonds equation. Four constant loading rates (from 0.7 to 350 mN/s) and constant indentation strain rates (from 0.006 to 6/s) were used, and both results were compared. Differences between both indenter control methods were displacement-dependent. Loading curvature, which has been defined as a material constant in the indentation, was calculated from load divided by square of displacement. Although loading curvatures were decreased with increasing displacement for CLR, they were constant for CISR. Results also showed that values of strain rate decreased as displacement increased for CLR, whereas they were the same for CISR. Similarities of both indenter control methods were found as follows. The highest strain rate regions were observed at the edge of the indenter. In addition, higher strain rate region was distributed hemispherically from the edge of the indenter.

Keywords: finite element analysis, indentation, indentation strain rate, pure aluminum, strain rate, strain rate sensitivity


Cite this:
APA Style
IEEE Style
BibTex Style
MLA Style
Chicago Style
GB-T-7714-2015
Kami, T., Yamada, H., Ogasawara, N., & Chen, X. (2018). Strain Rate Behavior of Pure Aluminum in Conical Indentation with Different Indenter Control Methods. Int. J. Comput. Methods Exp. Meas., 6(3), 515-526. https://doi.org/10.2495/CMEM-V6-N3-515-526
T. Kami, H. Yamada, N. Ogasawara, and X. Chen, "Strain Rate Behavior of Pure Aluminum in Conical Indentation with Different Indenter Control Methods," Int. J. Comput. Methods Exp. Meas., vol. 6, no. 3, pp. 515-526, 2018. https://doi.org/10.2495/CMEM-V6-N3-515-526
@research-article{Kami2018StrainRB,
title={Strain Rate Behavior of Pure Aluminum in Conical Indentation with Different Indenter Control Methods},
author={Tsuyoshi Kami and Hiroyuki Yamada and Nagahisa Ogasawara and Xi Chen},
journal={International Journal of Computational Methods and Experimental Measurements},
year={2018},
page={515-526},
doi={https://doi.org/10.2495/CMEM-V6-N3-515-526}
}
Tsuyoshi Kami, et al. "Strain Rate Behavior of Pure Aluminum in Conical Indentation with Different Indenter Control Methods." International Journal of Computational Methods and Experimental Measurements, v 6, pp 515-526. doi: https://doi.org/10.2495/CMEM-V6-N3-515-526
Tsuyoshi Kami, Hiroyuki Yamada, Nagahisa Ogasawara and Xi Chen. "Strain Rate Behavior of Pure Aluminum in Conical Indentation with Different Indenter Control Methods." International Journal of Computational Methods and Experimental Measurements, 6, (2018): 515-526. doi: https://doi.org/10.2495/CMEM-V6-N3-515-526
KAMI T, YAMADA H, OGASAWARA N, et al. Strain Rate Behavior of Pure Aluminum in Conical Indentation with Different Indenter Control Methods[J]. International Journal of Computational Methods and Experimental Measurements, 2018, 6(3): 515-526. https://doi.org/10.2495/CMEM-V6-N3-515-526