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A Bi-Modulus Material Model for Bending Test on NHL3.5 Lime Mortar
Rebecca Grazzini1, Giulia Misseri1, Luisa Rovero1
1Materials and Structures Division, Department of Architecture, University of Florence, Piazza Brunelleschi 6, 50121 Florence, Italy.
This study introduces a bi-modulus material model for analyzing mortar bending tests, revealing different elastic moduli in tension and compression. Experimental validation confirmed this behavior, improving model accuracy for slender specimens.
Area of Science:
- Civil Engineering
- Materials Science
- Solid Mechanics
Background:
- Traditional material models often assume isotropic elastic behavior, which may not accurately represent materials like mortar under stress.
- Mortar exhibits different mechanical responses in tension and compression, necessitating a bi-modulus approach for precise analysis.
- Understanding the asymmetric constitutive law is crucial for accurate structural performance prediction.
Purpose of the Study:
- To develop and validate a bi-modulus material model for interpreting three-point and four-point bending tests on mortars.
- To investigate the asymmetric constitutive law of lime mortar, considering distinct elastic moduli for tension and compression.
- To provide displacement fields for bi-modulus Euler-Bernoulli and Timoshenko beam models under three-point and four-point loading.
Main Methods:
- Definition of Euler-Bernoulli and Timoshenko bi-modulus beam models.
- Conducting extensive experimental campaigns on lime mortar specimens, including uni-axial tensile/compressive tests and three-point/four-point bending tests.
- Utilizing contact (CE-DT) and contactless (Digital Image Correlation - DIC) measurement systems for data acquisition.
Main Results:
- Experimental determination of tensile and compressive mechanical characteristics for model validation.
- Observed average tension-to-compression moduli ratio of 0.52, confirming the bi-modulus behavior.
- DIC analysis demonstrated neutral axis shifting during four-point bending tests, validating the bi-modulus assumption.
Conclusions:
- The developed bi-modulus analytical model offers improved accuracy in predicting the behavior of mortars under bending, especially for slender specimens.
- The study confirms the significant impact of asymmetric constitutive laws on the mechanical response of lime mortar.
- The findings contribute to a more refined understanding and modeling of heterogeneous materials in structural engineering applications.
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