A Review on Additive Manufacturing of Ti‐Containing High‐Entropy Alloys: Processing, Microstructure, and Mechanical Behavior.

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Title: A Review on Additive Manufacturing of Ti‐Containing High‐Entropy Alloys: Processing, Microstructure, and Mechanical Behavior.
Authors: Zhumabekova, Anel1 (AUTHOR), Yankin, Andrei1 (AUTHOR), Perveen, Asma1 (AUTHOR), Zhumagaliyeva, Assem1 (AUTHOR), Zhakiyev, Nurkhat2 (AUTHOR), Talamona, Didier1 (AUTHOR) didier.talamona@nu.edu.kz, Habib, Mohammad Rezwan (AUTHOR) mohabib@wiley.com
Source: Advances in Materials Science & Engineering. 5/27/2026, Vol. 2026, p1-37. 37p.
Subjects: High-entropy alloys, Powder bed fusion, Three-dimensional printing, Laser deposition, Alloys, Mechanical behavior of materials, Microstructure, Titanium alloys
Abstract: High‐entropy alloys (HEAs) have emerged as a promising class of materials due to their unique chemical compositions and exceptional mechanical properties. Among them, Ti‐containing HEAs have gained significant attention for their applications in aerospace, biomedical, and high‐temperature environments, owing to their lightweight nature, superior strength, and excellent biocompatibility. The advent of additive manufacturing (AM) has further expanded the potential of these alloys by enabling precise microstructural control, enhanced mechanical performance, and cost‐effective production. This review provides a comprehensive analysis of the recent advancements in the development of Ti‐containing HEAs using various AM techniques, including powder bed fusion (PBF) and direct energy deposition (DED). The study examines critical aspects, including alloy classification, feedstock preparation, and AM processing methods, microstructural evolution, and resultant mechanical properties. By integrating a data‐driven approach using Scopus records, this review systematically analyzes and compares mechanical properties across studies and explores the relationships among feedstock preparation, AM processing, and material performance. The insights presented in this work aim to guide future research directions, refine alloy design, and optimize AM processes to enhance the industrial applicability of Ti‐containing HEAs. [ABSTRACT FROM AUTHOR]
Copyright of Advances in Materials Science & Engineering is the property of Wiley-Blackwell and its content may not be copied or emailed to multiple sites without the copyright holder's express written permission. Additionally, content may not be used with any artificial intelligence tools or machine learning technologies. However, users may print, download, or email articles for individual use. This abstract may be abridged. No warranty is given about the accuracy of the copy. Users should refer to the original published version of the material for the full abstract. (Copyright applies to all Abstracts.)
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  Data: A Review on Additive Manufacturing of Ti‐Containing High‐Entropy Alloys: Processing, Microstructure, and Mechanical Behavior.
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  Data: <searchLink fieldCode="JN" term="%22Advances+in+Materials+Science+%26+Engineering%22">Advances in Materials Science & Engineering</searchLink>. 5/27/2026, Vol. 2026, p1-37. 37p.
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  Data: High‐entropy alloys (HEAs) have emerged as a promising class of materials due to their unique chemical compositions and exceptional mechanical properties. Among them, Ti‐containing HEAs have gained significant attention for their applications in aerospace, biomedical, and high‐temperature environments, owing to their lightweight nature, superior strength, and excellent biocompatibility. The advent of additive manufacturing (AM) has further expanded the potential of these alloys by enabling precise microstructural control, enhanced mechanical performance, and cost‐effective production. This review provides a comprehensive analysis of the recent advancements in the development of Ti‐containing HEAs using various AM techniques, including powder bed fusion (PBF) and direct energy deposition (DED). The study examines critical aspects, including alloy classification, feedstock preparation, and AM processing methods, microstructural evolution, and resultant mechanical properties. By integrating a data‐driven approach using Scopus records, this review systematically analyzes and compares mechanical properties across studies and explores the relationships among feedstock preparation, AM processing, and material performance. The insights presented in this work aim to guide future research directions, refine alloy design, and optimize AM processes to enhance the industrial applicability of Ti‐containing HEAs. [ABSTRACT FROM AUTHOR]
– Name: AbstractSuppliedCopyright
  Label:
  Group: Ab
  Data: <i>Copyright of Advances in Materials Science & Engineering is the property of Wiley-Blackwell and its content may not be copied or emailed to multiple sites without the copyright holder's express written permission. Additionally, content may not be used with any artificial intelligence tools or machine learning technologies. However, users may print, download, or email articles for individual use. This abstract may be abridged. No warranty is given about the accuracy of the copy. Users should refer to the original published version of the material for the full abstract.</i> (Copyright applies to all Abstracts.)
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        Value: 10.1155/amse/5588584
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        Text: English
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        Type: general
      – SubjectFull: Powder bed fusion
        Type: general
      – SubjectFull: Three-dimensional printing
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      – SubjectFull: Laser deposition
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      – SubjectFull: Alloys
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      – SubjectFull: Mechanical behavior of materials
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      – SubjectFull: Microstructure
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      – SubjectFull: Titanium alloys
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      – TitleFull: A Review on Additive Manufacturing of Ti‐Containing High‐Entropy Alloys: Processing, Microstructure, and Mechanical Behavior.
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            – D: 27
              M: 05
              Text: 5/27/2026
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              Y: 2026
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