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Microstructure and Energy Release Characteristics of W-Ni-Al All-metal Energetic Structural Materials Prepared by Explosive Sintering

  • Qiwen Hu
  • , Yibo Zhou
  • , Denggang Guo
  • , Qiang Zhou*
  • , Yansong Guo
  • , Pengwan Chen
  • *Corresponding author for this work
  • Kunming University of Science and Technology
  • China Ordnance Industry Test and Research Institute
  • University of Science and Technology Beijing
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Energetic structural materials (ESMs) have been widely studied due to their potential applications in the military field as reactive fragments, casings and shaped charges. Among them, Ni-Al ESMs, as typical intermetallic ESMs, face limitations in application due to their low density. Based on the explosive sintering method, the high-density W-Ni-Al ESMs is prepared by adding tungsten. A sample with a molar ratio of 1:1:1 is prepared, achieving a density of 10.08g/cm3 (theoretical density of 97.6). The microstructure of the sample is characterized using scanning electron microscopy, X-ray diffraction, and transmission electron microscopy. The thermal reaction properties of W-Ni-Al ESMs in air and argon are systematically investigated by differential scanning calorimetry and thermogravimetric analysis. The impact-induced energy release behaviors of W-Ni-Al ESMs are studied through ballistic gun experiments. Results show that the W-Ni-Al ESMs obtained via explosive sintering have a uniform microstructure, free of cracks and intermetallic phases. Under two different atmospheres, tungsten does not participate in the intermetallic reaction during heating. The energy release of W-Ni-Al ESMs is primarily attributed to Ni-Al intermetallic reactions at the impact velocities ranging from 765 to 1280m/s.

Translated title of the contribution爆炸烧结制备 W-Ni-Al 全金属含能结构材料的微结构及释能特性研究
Original languageEnglish
Article number250419
JournalBinggong Xuebao/Acta Armamentarii
Volume46
Issue number12
DOIs
Publication statusPublished - 2025
Externally publishedYes

Keywords

  • W-Ni-Al energetic structural material
  • explosive sintering
  • impact-induced energy release
  • microstructure
  • thermal reaction

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