MS
Mahendra Kumar Samal
Also known as: M.K. Samal, Mahendra K. Samal
Bhabha Atomic Research Centre, University of Stuttgart
About
Working as Scientist in Reactor Safety Division, Bhabha Atomic Research Centre (BARC), Mumbai, India. Faculty in the Division of Engineering Science, Homi Bhabha National Institute (HBNI), Mumbai, India.
Employment
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Bhabha Atomic Research Centre Scientist1996 - Present
Education
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University of Stuttgart Dr. Ing. (Ph.D. in Mechanical Engineering)
Projects & Funding
Projects & funding information is unavailable.
Publications (154)
- Analysis of non-Schmid effects in a Ni-based superalloy Save
- Study of Anisotropy in High Temperature Tensile and Shear Deformation Behavior of Zirconium-2.5Nb Alloy and Evaluation of Parameters of Hill’s Material Model Save
- Atomistically-driven crystal plasticity modeling of a Ni-based superalloy Save
- On Ballooning and Burst Behavior of Nuclear Fuel Clad Considering Heating Rate Effect: Development of a Damage Model, a Burst Correlation and Experimental Validation Save
- A New Methodology to Evaluate High Temperature Mechanical Properties of Thin-Walled Tubes Using Ring Tension Specimen and Its Validation with Conventional Tests Save
- On Ballooning and Burst Behavior of Nuclear Fuel Clad Considering Heating Rate Effect: Development of a Damage Model, a Burst Correlation and Experimental Validation Save
- Experimental Evaluation of Temperature and Strain-Rate-Dependent Mechanical Properties of Austenitic Stainless Steel SS316LN and a New Methodology to Evaluate Parameters of Johnson–Cook and Ramberg–Osgood Material Models Save
- Experimental Evaluation of Temperature and Strain-Rate-Dependent Mechanical Properties of Austenitic Stainless Steel SS316LN and a New Methodology to Evaluate Parameters of Johnson-Cook and Ramberg-Osgood Material Models Save
- Influence of textural variability on plastic response of porous crystal embedded in polycrystalline aggregate: A crystal plasticity study Save
- A Crystal Plasticity-Based Simulation to Predict Fracture Initiation Toughness of Reactor-Grade Aluminium: Experimental Verification and Study of Effect of Crystal Orientation Save