PR
PRASHANT RAWAT
Indian Institute of Technology Madras, Dr A P J Abdul Kalam Technical University Centre for Advanced Studies, Indian Institute of Technology (Indian School of Mines), Dhanbad, Hunan University
Employment
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Indian Institute of Technology Madras Assistant Professor2021 - Present
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Dr A P J Abdul Kalam Technical University Centre for Advanced Studies Assistant Professor2021 - 2021
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Hunan University Postdoc Researcher2018 - 2021
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Lingayas Vidyapeeth Assistant Professor2018 - 2019
Education
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Indian Institute of Technology (Indian School of Mines), Dhanbad PhD2014 - 2018
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Indian Institute of Technology (Indian School of Mines), Dhanbad M.Tech (Sp. in Manufacturing Engineering)2012 - 2014
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Mahatma Jyotiba Phule Rohilkhand University B.Tech2008 - 2012
Projects & Funding
Projects & funding information is unavailable.
Publications (60)
- Interfacial engineering and additive processing of continuous natural fiber composites Save
- Investigation of Stresses and Fatigue Life Prediction of Crankshafts Under Cyclic Loading Using FEM Approach Save
- Role of Adhesive Layers on Crack Growth Resistance Under Mode-I and Mode-II Loading in Co-Cured Skin–Stiffener Joints Save
- Single-Lap Joint Performance of Glass–Ramie Hybrid Epoxy Laminates: Effect of Adherend Surface Characteristics on Failure Mechanisms Save
- Damage mechanisms in bioinspired helicoidal glass fiber-reinforced epoxy composite laminates for enhanced control of mechanical properties compared to cross-ply laminates Save
- Analysis of mechanical properties and fracture mechanism in LM30 Al alloy composites with single and dual size reinforcements Save
- Axial Compression Behavior of Glass Fiber/Epoxy Sandwich Composites with Square, Honeycomb, and Tetra Chiral 3D Printed Polylactic Acid Cores Save
- Enhancing the characteristics of natural coir fiber yarns using biopolymer for textile reinforced cementitious composites Save
- Experimental analysis on the influence of graphene nanoplatelets in CFRP composite to explore the hole quality during drilling Save
- Flexural, compressive, and low-velocity impact behavior of bioinspired helicoidal glass fiber/epoxy composites under different loading rates Save