PDF

Numerical Simulation and Hot Isostatic Pressing Technology of Powder Titanium Alloys: A Review

Jianglei Cui, Xiaolong Lv

2025Englishtitanium alloyspowder metallurgyhot isostatic pressingnumerical simulationnear-net shapedensification

Abstract

Language:

Titanium and its alloys have been widely used in high-end fields such as aerospace and biomedical engineering due to their excellent corrosion resistance and comprehensive mechanical properties. However, traditional titanium alloy processing technologies suffer from low material utilization and numerous defects. The emergence of near-net shape forming technology for powder titanium alloys via hot isostatic pressing (HIP) has broken through the limitations of traditional casting and forging, significantly improving the mechanical properties of titanium alloy materials, increasing material utilization, and shortening the production cycle of products. The application of numerical simulation technology has provided a scientific basis for the design of capsules and cores of complex high-performance components and has offered theoretical support for the densification of powders under thermomechanical coupling, becoming an essential foundation for achieving controllable shape and properties of components. This paper introduces the characteristics and process flow of HIP technology for powder titanium alloys, summarizes the current development status and research achievements of this technology both domestically and internationally, elaborates on the research progress of numerical simulation of HIP, and concludes with an analysis of the existing technological challenges and possible solutions, as well as an outlook on future development directions.

Download

Cite This Work

@article{853f9ff3-e8ea-41c3-9b35-8e789585c8e3,
  title={Numerical Simulation and Hot Isostatic Pressing Technology of Powder Titanium Alloys: A Review},
  author={Jianglei Cui and Xiaolong Lv},
  year={2025},
  language={English}
}
TY  - JOUR
TI  - Numerical Simulation and Hot Isostatic Pressing Technology of Powder Titanium Alloys: A Review
AU  - Jianglei Cui
AU  - Xiaolong Lv
PY  - 2025
LA  - English
ER  -

Similar Items

Modeling of Metal Powder Densification under Hot Isostatic Pressing

Jingzhe Wang, Shesh Srivatsa

The consolidation of metal powders is a complex thermomechanical process, and the temperature significantly affects the density distribution in the co

2024EnglishPDF

Numerical Simulation as a Tool for the Study, Development, and Optimization of Rolling Processes: A Review

Adrián Ojeda-López, Marta Botana-Galvín

Rolling is one of the most important processes in the metallurgical industry due to its versatility. Despite its inherent advantages, design and manuf

2024EnglishPDF

Comprehensive Weldability Criterion for Magnetic Pulse Welding of Dissimilar Materials

Angshuman Kapil, P. Mastanaiah

Despite its exceptional ability to join dissimilar materials and environmental friendliness, several challenges must be addressed in magnetic pulse we

2022EnglishPDF

Numerical simulation of inductive

A. J. de Wit, N. van Hoorn

Thermoplastic composites can be re-melted, making them suitable for welding, which offers a compelling alternative to traditional methods used for joi

2023EnglishPDF

Numerical Simulation of Sand Casting of Stainless Steel Pump Impeller

Karlo Jurkovi´ c, Zdravko Schauperl

This paper investigates the casting defects of a stainless steel pump impeller manufactured through the sand casting process. The material characteriz

2024EnglishPDF

Elaboration of Metallic Materials by SPS: Processing, Microstructures, Properties, and Shaping

Jean-Philippe Monchoux, Alain Couret

After a few decades of increasing interest, spark plasma sintering (SPS) has now become a mature powder metallurgy technique, which allows assessing i

2021EnglishPDF