Related Experiment Video
Updated: Jan 19, 2026

Atomic Force Microscopy Cantilever-Based Nanoindentation: Mechanical Property Measurements at the Nanoscale in Air and Fluid
Published on: December 2, 2022
An Investigation of Nanomechanical Properties of Materials using Nanoindentation and Artificial Neural Network
Hyuk Lee1, Wai Yeong Huen2, Vanissorn Vimonsatit2
1Curtin University, School of Civil and Mechanical Engineering, Perth, WA, Australia. lee.lee@curtin.edu.au.
Abstract:
Mechanical properties of materials can be derived from the force-displacement relationship through instrumented indentation tests. Complications arise when establishing the full elastic-plastic stress-strain relationship as the accuracy depends on how the material's and indenter's parameters are incorporated. For instance, the effect of the material work-hardening phenomenon such as the pile-up and sink-in effect cannot be accounted for with simplified analytical indentation solutions. Due to this limitation, this paper proposes a new inverse analysis approach based on dimensional functions analysis and artificial neural networks (ANNs). A database of the dimensional functions relating stress and strain parameters of materials has been developed. The database covers a wide range of engineering materials that have the yield strength-to-modulus ratio (σy/E) between 0.001 to 0.5, the work-hardening power (n) between 0-0.5, Poisson's ratio (v) between 0.15-0.45, and the indentation angle (θ) between 65-80 degrees. The proposed algorithm enables determining the nanomechanical stress-strain parameters using the indentation force-displacement relationship, and is applicable to any materials that the properties are within the database range. The obtained results are validated with the conventional test results of steel and aluminum samples. To further demonstrate the application of the proposed algorithm, the nanomechanical stress-strain parameters of ordinary Portland cement phases were determined.
Related Concept Videos
08:58Atomic Force Microscopy Cantilever-Based Nanoindentation: Mechanical Property Measurements at the Nanoscale in Air and Fluid
11:18Closed-loop Neuro-robotic Experiments to Test Computational Properties of Neuronal Networks
Ceramic-matrix Composite Materials and Their Bending Properties
Bones are composites, made of a ceramic matrix and polymer fiber reinforcements. The ceramic contributes compressive strength, and the polymer provides tensile and flexural strength. By combining ceramic and polymer materials in different amounts, the body can create unique materials tailored for a specific application. As biomedical engineers, having the ability...
13:04Experimental and Data Analysis Workflow for Soft Matter Nanoindentation
Visualization of Neural and Vascular Networks in a Chicken Embryo
11:30Brain Imaging Investigation of the Neural Correlates of Emotional Autobiographical Recollection

