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

Toughening Mechanism in Nanotwinned Boron Carbide: A Molecular Dynamics Study

View through CrossRef
Boron carbide ceramics are potentially ideal candidates for lightweight bulletproof armor, but their use is currently limited by their low fracture toughness. Recent experimental results have shown that sintered samples with high twin densities exhibit high fracture toughness, but the toughening mechanism and associated crack propagation process of nanotwinned boron carbide at the atomic scale remain a mystery. Reported here are molecular dynamics simulations with a reactive force field potential to investigate how nanoscale twins affect the fracture toughness of boron carbide ceramics. The results show that the strength disparity on either side of a twin boundary is the fundamental reason for the toughening effect; the twin boundary impedes crack propagation only when the crack moves to a region of higher fracture strength. The fracture toughness of nanotwinned boron carbide is greatly affected by the angle between the twin boundary and the prefabricated crack. At an angle of 120°, the twin boundary provides the maximum toughening effect, enhancing the toughness by 32.72%. Moreover, phase boundaries—another common structure in boron carbide ceramics—have no toughening effect. This study provides new insights into the design of boron carbide ceramics with high fracture toughness.
Title: Toughening Mechanism in Nanotwinned Boron Carbide: A Molecular Dynamics Study
Description:
Boron carbide ceramics are potentially ideal candidates for lightweight bulletproof armor, but their use is currently limited by their low fracture toughness.
Recent experimental results have shown that sintered samples with high twin densities exhibit high fracture toughness, but the toughening mechanism and associated crack propagation process of nanotwinned boron carbide at the atomic scale remain a mystery.
Reported here are molecular dynamics simulations with a reactive force field potential to investigate how nanoscale twins affect the fracture toughness of boron carbide ceramics.
The results show that the strength disparity on either side of a twin boundary is the fundamental reason for the toughening effect; the twin boundary impedes crack propagation only when the crack moves to a region of higher fracture strength.
The fracture toughness of nanotwinned boron carbide is greatly affected by the angle between the twin boundary and the prefabricated crack.
At an angle of 120°, the twin boundary provides the maximum toughening effect, enhancing the toughness by 32.
72%.
Moreover, phase boundaries—another common structure in boron carbide ceramics—have no toughening effect.
This study provides new insights into the design of boron carbide ceramics with high fracture toughness.

Related Results

Boron isotopes indicate a possibility of subglacial geochemical cycles
Boron isotopes indicate a possibility of subglacial geochemical cycles
Snowball events are one of the most drastic episodes of climate change in Earth’s history. Its impact is considered to propagate every aspect of the planet, from atmospheric and oc...
Purification of amorphous boron powder by using the soluble transformation of acid-insoluble boron magnesium compounds
Purification of amorphous boron powder by using the soluble transformation of acid-insoluble boron magnesium compounds
At present, amorphous boron powder is considered to be the best fuel for solid fuel-rich propellants due to its extremely high volume calorific value and mass calorific value. Amor...
Abstract 5051: Assessment of boron delivery peptides with angiopep-2 for boron neutron capture therapy
Abstract 5051: Assessment of boron delivery peptides with angiopep-2 for boron neutron capture therapy
Abstract Boron neutron capture therapy (BNCT) induces intracellular nuclear reactions that release heavy charged particles to destroy cancer cells during thermal neu...
Boron Enrichment and Retention viaTraditional Leaf-Based Cooking Methods in Idly Preparation
Boron Enrichment and Retention viaTraditional Leaf-Based Cooking Methods in Idly Preparation
Abstract Boron is a vital trace element essential for bone health, cognitive function, and metabolic processes. However, boron deficiency remains a global concern due to so...
Response of Biofertilizer and Foliar Spray of Boron on Growth and Yield of Chickpea (Cicer arietinum L.)
Response of Biofertilizer and Foliar Spray of Boron on Growth and Yield of Chickpea (Cicer arietinum L.)
A field experiment was carried out at Crop Research Farm, Naini Agriculture Institute, Department of Agronomy, Sam Higginbottom University of Agriculture, Technology and Sciences, ...
Studies of Boron Segregation to {311} Defects in Silicon-Implanted Silicon
Studies of Boron Segregation to {311} Defects in Silicon-Implanted Silicon
Czochralski Si wafers with a boron concentration of 2.7×1017 cm-3 were implanted with 50 keV or 150 keV Si+ with doses from 5×1012 cm-2 to 5×1015 cm-2, followed by annealing at 670...
Nanovoid formation mechanism in nanotwinned Cu
Nanovoid formation mechanism in nanotwinned Cu
AbstractNanotwinned metals have been intensely investigated due to their unique microstructures and superior properties. This work aims to investigate the nanovoid formation mechan...
Ni doping of semiconducting boron carbide
Ni doping of semiconducting boron carbide
The wide band gap, temperature stability, high resistivity, and robustness of semiconducting boron carbide make it an attractive material for device applications. Undoped boron car...

Back to Top