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Please use this identifier to cite or link to this item: http://repository.iitr.ac.in/handle/123456789/12605
Title: A novel energy-based method to evaluate indentation modulus and hardness of cementitious materials from nanoindentation load–displacement data
Authors: Jha K.K.
Suksawang N.
Lahiri, Debrupa
Agarwal A.
Published in: Materials and Structures/Materiaux et Constructions
Abstract: In this study, we propose an energy-based method to extract the nanomechanical properties such as indentation modulus and hardness for cementitious materials within the framework of contact mechanics that relies on more accurate and realistic interpretation of the load–displacement data. Such interpretation allows us to evaluate both the initial unloading stiffness and the hardness—two main input parameters for the Sneddon’s solution to indentation of an elastic half-space—directly as the functions of indentation works. Specifically, we show that while the initial unloading stiffness may be expressed in terms of normalized elastic work, the hardness may be evaluated from the total work done using the modified work-of-indentation approach. Results from nanoindentation on hardened cement paste show that the proposed energy-based method provides the indentation modulus and the hardness in agreement with the Oliver and Pharr method for all the nanomechanical phases of the paste considered. Two main advantages associated with the proposed method include: it circumvents the need of fitting the unloading response by a power-law and computing the area of contact between indenter and specimen. As the method described herein is simple and easy to use, it could be employed as a potential alternative to the conventional Oliver and Pharr method for a heterogeneous material like cement paste. © 2014, RILEM.
Citation: Materials and Structures/Materiaux et Constructions (2015), 48(9): 2915-2927
URI: https://doi.org/10.1617/s11527-014-0367-7
http://repository.iitr.ac.in/handle/123456789/12605
Issue Date: 2015
Publisher: Kluwer Academic Publishers
Keywords: Area function
Calcium–silicate–hydrate (C–S–H)
Energy constants
Hardness
Indentation modulus
Nanoindentation
Work-of-indentation
ISSN: 13595997
Author Scopus IDs: 36903751200
6507293829
26326345700
7401480913
Author Affiliations: Jha, K.K., Department of Civil and Environmental Engineering, Florida International University, Miami, FL 33174, United States
Suksawang, N., Department of Civil Engineering, Florida Institute of Technology, Melbourne, FL 32901, United States
Lahiri, D., Department of Metallurgical and Materials Engineering, Indian Institute of Technology Roorkee, Roorkee, Uttarakhand 247667, India, Nanomechanics and Nanotribology Laboratory, Department of Mechanical and Materials Engineering, Florida International University, Miami, FL 33174, United States
Agarwal, A., Nanomechanics and Nanotribology Laboratory, Department of Mechanical and Materials Engineering, Florida International University, Miami, FL 33174, United States
Corresponding Author: Suksawang, N.; Department of Civil Engineering, Florida Institute of TechnologyUnited States
Appears in Collections:Journal Publications [MT]

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