An experimental investigation was performed to analyze the effects of grain size on the quasi-static and dynamic behavior of Ti2AlC. High-density Ti2AlC samples of three different grain sizes were densified using Spark Plasma Sintering and Pressureless sintering. A servo-hydraulic testing machine equipped with a vertical split furnace, and SiC pushrods, was used for the quasi-static experiments. Also, a Split Hopkinson Pressure Bar (SHPB) apparatus and an induction coil heating system were used for the dynamic experiments. A series of experiments were conducted at temperatures ranging from 25 °C to 1100 °C for strain rates of 10−4 s−1 and 400 s−1. The results show that under quasi-static loading the specimens experience a brittle failure fo...
This paper presents the effect of temperature and strain rate on the superplastic deformation behavi...
In the present investigation, high-temperature compression tests were conducted at strain rates of 0...
As one of the MAX phases, Ti2AlC combines attractive properties of both ceramics and metals, and has...
High density samples of Ti2AlC, a MAX Phase material, with three different grain sizes were processe...
An experimental investigation was conducted to evaluate the compressive constitutive behavior and fr...
To improve the performance, efficiency and safety of future equipment’s in commercial, aerospace, nu...
Experiments were performed to evaluate the dynamic mechanical response of MAX phase material Ti2AlC ...
The ternary carbides and nitrides, known as MAX phases combine the attractive properties of both cer...
MAX phases are ternary carbide and/or nitride with a great potential in various application. This st...
This study reports on the mechanical properties of Ti2AlC systematically designed with various grain...
The main focus of this research work was to investigate the high-temperature mechanical performance ...
To improve the performance, efficiency and safety of future equipment’s in commercial, aerospace, nu...
The hot deformation behavior of extra low interstitial (ELI) grade Ti-6Al-4V with a transformed β-pr...
The effect of strain rate, temperature, grain size, and texture on the substructure and mechanical r...
The titanium alloy Ti-407 (Ti407) is a new alloy being considered for single load to failure applica...
This paper presents the effect of temperature and strain rate on the superplastic deformation behavi...
In the present investigation, high-temperature compression tests were conducted at strain rates of 0...
As one of the MAX phases, Ti2AlC combines attractive properties of both ceramics and metals, and has...
High density samples of Ti2AlC, a MAX Phase material, with three different grain sizes were processe...
An experimental investigation was conducted to evaluate the compressive constitutive behavior and fr...
To improve the performance, efficiency and safety of future equipment’s in commercial, aerospace, nu...
Experiments were performed to evaluate the dynamic mechanical response of MAX phase material Ti2AlC ...
The ternary carbides and nitrides, known as MAX phases combine the attractive properties of both cer...
MAX phases are ternary carbide and/or nitride with a great potential in various application. This st...
This study reports on the mechanical properties of Ti2AlC systematically designed with various grain...
The main focus of this research work was to investigate the high-temperature mechanical performance ...
To improve the performance, efficiency and safety of future equipment’s in commercial, aerospace, nu...
The hot deformation behavior of extra low interstitial (ELI) grade Ti-6Al-4V with a transformed β-pr...
The effect of strain rate, temperature, grain size, and texture on the substructure and mechanical r...
The titanium alloy Ti-407 (Ti407) is a new alloy being considered for single load to failure applica...
This paper presents the effect of temperature and strain rate on the superplastic deformation behavi...
In the present investigation, high-temperature compression tests were conducted at strain rates of 0...
As one of the MAX phases, Ti2AlC combines attractive properties of both ceramics and metals, and has...