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Dataset for fracture and impact toughness of high-entropy alloys

Xuesong Fan1*, Shiyi Chen1*, Baldur Steingrimsson2*, Weidong Li1*, Peter K. Liaw1*

1 Department of Materials Science and Engineering, The University of Tennessee, Knoxville, TN 37996, USA

2 Imagars LLC, Hillsboro, OR 97124, USA

* Corresponding authors emails: xfan5@vols.utk.edu, schen50@vols.utk.edu, baldur@imagars.com, lei432378yu@gmail.com, pliaw@utk.edu
DOI10.24435/materialscloud:d6-pf [version v3]

Publication date: Dec 12, 2022

How to cite this record

Xuesong Fan, Shiyi Chen, Baldur Steingrimsson, Weidong Li, Peter K. Liaw, Dataset for fracture and impact toughness of high-entropy alloys, Materials Cloud Archive 2022.171 (2022), doi: 10.24435/materialscloud:d6-pf.

Description

Fracture dictates the service limits of metallic structures. Damage tolerance of materials may be characterized by fracture toughness rigorously developed from fracture mechanics, or less rigorous yet more easily obtained impact toughness (or impact energy as a variant). Given the promise of high-entropy alloys (HEAs) in structural and damage-tolerance applications, we compiled a dataset of fracture toughness and impact toughness/energy from the literature till mid-2022. The dataset is subdivided into three categories, i.e., fracture toughness, impact toughness, and impact energy, which contain 148, 14, and 78 distinct data records, respectively. On top of the alloy chemistry and measured fracture quantities, each data record also records the factors influential to fracture. Examples are material processing history, phase structure, grain size, uniaxial tensile properties such as yield strength and elongation, and testing conditions.

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File name Size Description
Dataset for Fracture and Impact Toughness of High-Entropy Alloys_v3.xlsx
MD5md5:49752645bd1e9181049399f8702442eb
133.5 KiB A summary of data on fracture toughness, impact toughness, and impact energy for various high-entropy alloys.

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Files and data are licensed under the terms of the following license: Creative Commons Attribution 4.0 International.
Metadata, except for email addresses, are licensed under the Creative Commons Attribution Share-Alike 4.0 International license.

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Keywords

High-entropy Alloys Fracture Toughness Impact Toughness Impact Energy