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Anurag Bajpai

Researcher at Indian Institute of Technology Kanpur

Publications -  18
Citations -  85

Anurag Bajpai is an academic researcher from Indian Institute of Technology Kanpur. The author has contributed to research in topics: High entropy alloys & Computer science. The author has an hindex of 2, co-authored 6 publications receiving 9 citations.

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TiVCrNiZrFex High entropy alloy: Phase evolution,magnetic and mechanical properties

TL;DR: In this article, a series of TiVCrNiZrFex high entropy alloys were synthesized via vacuum arc melting route and phase evolution in the alloy system was examined in the present study.
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A new perspective to thermodynamical designing of high entropy bulk metallic glasses (HE-BMGs)

TL;DR: In this article, the enthalpy of chemical mixing (Hmix), configurational entropy (ΔSconfig), and entropy due atomic size mismatch (Sσ) were used to design new HE-BMG compositions.
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Machine learning based approach for phase prediction in high entropy borides

TL;DR: In this paper , a data-driven machine learning (ML) technique was used to provide the appropriate phase structures of multicomponent high entropy diborides, and a semi-empirical technique was first used to create the dataset using structure plots and developed a k-Nearest Neighbour (kNN) algorithm based classification model based on many structural and thermodynamic characteristics.
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Green Route for Beneficiation of Metallic Materials from Electronic Waste for Selective Reduction of CO2

TL;DR: In this article, the authors demonstrate an easily scalable green route for the beneficiation and effective usage of metallic materials from the e-waste using cryo-temperature grinding with the primary objective of retrieving the near-full metallic residue from ewaste by an energy-efficient and eco-friendly approach.
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Novel Alloy Design Concepts Enabling Enhanced Mechanical Properties of High Entropy Alloys

TL;DR: In this paper , the authors discuss the various design strategies based on multi-principal elements alloys in accordance with the desired mechanical properties dictated by the micro mechanisms associated with them to overcome the bottlenecks presented by the conventional approaches.