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Devasri Fuloria

Researcher at Indian Institute of Technology Roorkee

Publications -  6
Citations -  119

Devasri Fuloria is an academic researcher from Indian Institute of Technology Roorkee. The author has contributed to research in topics: Ultimate tensile strength & Tensile testing. The author has an hindex of 6, co-authored 6 publications receiving 93 citations.

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Tensile properties and microstructural evolution of Zircaloy-4 processed through rolling at different temperatures

TL;DR: In this article, the effect of rolling at different temperatures and deformation strains on the variation in hardness and tensile properties of Zircaloy-4 has been investigated in the present work.
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An investigation of effect of annealing at different temperatures on microstructures and bulk textures development in deformed Zircaloy-4

TL;DR: The effect of various annealing temperatures on the microstructural and textural evolution in deformed Zircaloy-4 has been investigated in this article, where the deformed samples were characterized by a high dislocation density and nano scale subgrains.
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Mechanical properties and microstructural evolution of ultrafine grained zircaloy-4 processed through multiaxial forging at cryogenic temperature

TL;DR: In this paper, the microstructural evolution of zircaloy-4 subjected to cumulative strains of 1.48, 2.96, 4.44 and 5.91 through multiaxial forging (MAF) at cryogenic temperature (77 K) were investigated.
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Microstructural and textural characterization of Zircaloy-4 processed by rolling at different temperatures

TL;DR: In this paper, the effect of rolling at room (298 K) and cryogenic temperatures (77 K) on the microstructural and textural evolution of the as-received Zircaloy-4 bar along the planes parallel to the extrusion direction and in the transverse direction has been investigated.
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Evaluating Fracture Toughness of Rolled Zircaloy-2 at Different Temperatures Using XFEM

TL;DR: In this article, the authors investigated the fracture toughness and mechanical properties of the zircaloy-2 processed by rolling at different temperatures and simulations have been performed using extended finite element method (XFEM).