Data from: Nanoindentation methods for viscoelastic characterization of stiff porous materials
Abstract
This data set contains data from three different types of nanoindentation experiments (stress relaxation, creep, and dynamic) on two different specimens (calcium-silicate-hydrate with different levels of porosity). The data are organized into folders for each experiment and specimen type.
Stress relaxation:
- "Load and Depth" folder contains the raw data for indents used in analysis
- .txt file ending in "SR_analysis.txt" contains nanoindentation data analyzed by the nanoindenter software package
- .txt file beginning with "SR_fittedmean" contains the mean normalized stress relaxation data with 95% confidence intervals.
Creep:
- "Load and Depth" folder contains the raw data for indents used in analysis
- .txt file ending in "crp_analysis.txt" contains nanoindentation data analyzed by the nanoindenter software package
- .txt file beginning with "SC_E_s" contains the mean solid elastic modulus using the self-consistent homogenization scheme with 95% confidence intervals
- .txt file beginning with "CrpComp" contains the mean composite creep compliance data with 95% confidence intervals
- .txt file beginning with "CrpMod" contains the mean composite creep modulus data with 95% confidence intervals
Dynamic:
- "Load and Depth" folder contains the raw data for indents
- "Averages" folder contains average and standard deviations for individual dynamic indents
- .txt file ending in "DMA_analysis.txt" contains nanoindentation data analyzed by the nanoindenter software package
- .txt file beginning with "mean_tand" contains the mean loss factor with 95% confidence intervals
Description of the data and file structure
Raw data and analyzed data used in the article on .txt files. The data are organized into folders for each experiment and specimen type.
Sharing/Access information
These data were collected by the author, further details can be requested via email.
Compacted pellets of calcium-silicate-hydrate were prepared with different porosity and subjected to three nanoindentation techniques to determine viscoelastic behavior and the influence of porosity: dynamic, stress relaxation, and creep. Results of the porosity and of the viscoelastic behavior measurements were analyzed with a reverse-micromechanics model to determine viscoelastic properties of the solid phase, which has not been achieved previously for calcium-silicate-hydrate. These methods can be used in development and refinement of materials to determine how changes in the solid phase (e.g. molecular structure) influence viscoelastic behavior while considering the effect of porosity.