Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Computational Micro-Macro Analysis of Impact on Strain-Hardening Cementitious Composites (SHCC) Including Microscopic Inertia

View through CrossRef
This paper presents a numerical two-scale framework for the simulation of fiber reinforced concrete under impact loading. The numerical homogenization framework considers the full balance of linear momentum at the microscale. This allows for the study of microscopic inertia effects affecting the macroscale. After describing the ideas of the dynamic framework and the material models applied at the microscale, the experimental behavior of the fiber and the fiber-matrix bond under varying loading rates are discussed. To capture the most important features, a simplified matrix cracking and a strain rate sensitive fiber pullout model are utilized at the microscale. A split Hopkinson bar tension test is used as an example to present the capabilities of the framework to analyze different sources of dynamic behavior measured at the macroscale. The induced loading wave is studied and the influence of structural inertia on the measured signals within the simulation are verified. Further parameter studies allow the analysis of the macroscopic response resulting from the rate dependent fiber pullout as well as the direct study of the microscale inertia. Even though the material models and the microscale discretization used within this study are still simplified, the value of the numerical two-scale framework to study material behavior under impact loading is shown.
Title: Computational Micro-Macro Analysis of Impact on Strain-Hardening Cementitious Composites (SHCC) Including Microscopic Inertia
Description:
This paper presents a numerical two-scale framework for the simulation of fiber reinforced concrete under impact loading.
The numerical homogenization framework considers the full balance of linear momentum at the microscale.
This allows for the study of microscopic inertia effects affecting the macroscale.
After describing the ideas of the dynamic framework and the material models applied at the microscale, the experimental behavior of the fiber and the fiber-matrix bond under varying loading rates are discussed.
To capture the most important features, a simplified matrix cracking and a strain rate sensitive fiber pullout model are utilized at the microscale.
A split Hopkinson bar tension test is used as an example to present the capabilities of the framework to analyze different sources of dynamic behavior measured at the macroscale.
The induced loading wave is studied and the influence of structural inertia on the measured signals within the simulation are verified.
Further parameter studies allow the analysis of the macroscopic response resulting from the rate dependent fiber pullout as well as the direct study of the microscale inertia.
Even though the material models and the microscale discretization used within this study are still simplified, the value of the numerical two-scale framework to study material behavior under impact loading is shown.

Related Results

Hypoxia-driven tumor stromal remodeling and immunosuppressive microenvironment in scirrhous HCC
Hypoxia-driven tumor stromal remodeling and immunosuppressive microenvironment in scirrhous HCC
Background and Aims: Scirrhous HCC (SHCC) is one of the unique subtypes of HCC, characterized by abundant fibrous stroma in the tumor microenvironment. However, the mol...
Probabilistic Finite Element Modeling of Textile Reinforced SHCC Subjected to Uniaxial Tension
Probabilistic Finite Element Modeling of Textile Reinforced SHCC Subjected to Uniaxial Tension
The paper presents a finite element investigation of the effect of material composition and the constituents’ interaction on the tensile behavior of strain-hardening cement-based c...
Computational Micro-Macro Analysis of Impact on Strain-Hardening Cementitious Composites (SHCC) Including Microscopic Inertia
Computational Micro-Macro Analysis of Impact on Strain-Hardening Cementitious Composites (SHCC) Including Microscopic Inertia
This paper presents a numerical two-scale framework for the simulation of fiber reinforced concrete under impact loading. The numerical homogenization framework considers the full ...
Dynamic balancing of roller forming unit drive
Dynamic balancing of roller forming unit drive
The dynamic balancing of the drive mechanism for the roller forming unit with balanced drive is consideredin order to increase reliability and durability. Two dynamic balancing pro...
Engineering Cementitious Composite with Nature-Inspired Architected Polymeric Reinforcing Elements Using Additive Manufacturing Method
Engineering Cementitious Composite with Nature-Inspired Architected Polymeric Reinforcing Elements Using Additive Manufacturing Method
Concrete, known for its excellent compression strength, faces challenges in tensile strength, requiring additional steel or polymers reinforcements. Incorporating nature-inspired p...
Financial Strain and Health
Financial Strain and Health
One of the most fundamental results in health economics is that a greater socio-economic status is associated with better health outcomes. However, the experience of financial pres...
Enhanced inherent strain modelling for powder-based metal additive manufacturing
Enhanced inherent strain modelling for powder-based metal additive manufacturing
(English) Metal additive manufacturing (MAM), particularly powder bed fusion using a laser beam (PBF-LB), has transformed manufacturing by enabling the production of intricate and ...
Impact Strain Signal Characteristics of Al and Mg under Instrumented Charpy Test
Impact Strain Signal Characteristics of Al and Mg under Instrumented Charpy Test
Impact strain signal is used to examine strain signal patterns under various parameters. Impact is a complicated phenomenon that occurs within a millisecond timeframe. Material tou...

Back to Top