Diamond-TiC composite with an ultrahigh Hugoniot elastic limit

Author:

Zhou Liang1ORCID,He Hongliang2ORCID,Zhang Hong3,Li Yuanyuan4ORCID,Gan Bo1ORCID,He Ruiqi1ORCID,Zhang Youjun15ORCID,He Duanwei15ORCID

Affiliation:

1. Institute of Atomic and Molecular Physics, Sichuan University 1 , Chengdu 610065, China

2. National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics 2 , Mianyang 621900, China

3. College of Physical Science and Technology, Sichuan University 3 , Chengdu 610065, China

4. College of Aerospace and Civil Engineering, Harbin Engineering University 4 , Harbin 150000, China

5. Key Laboratory of High Energy Density Physics and Technology of Ministry of Education, Sichuan University 5 , Chengdu 610065, China

Abstract

The Hugoniot elastic limit (HEL) is widely adopted as an important criterion for assessing the dynamic strength of materials, representing the transition stress from elastic to plastic response prior to failure under shock compression. Nano-polycrystalline diamond currently holds the highest HEL of 208 (±14) GPa. Here, we report a diamond-TiC composite (∼11.5 wt. % TiC) showing an ultrahigh HEL of at least 195 (±3.5) GPa, which is comparable to that of nano-polycrystalline diamond. All measured velocity profiles on the diamond-TiC free surface exhibited a single-wave structure at shock pressures of 48–195 GPa. Moreover, the measured Us–Up (shock wave velocity–particle velocity) relation can be linearly fitted, indicating no elastic–plastic transition or solid–solid phase transition up to a shock pressure of 195 GPa. The diamond-TiC composite's compression ratio was similar to that of TiC but significantly higher than that of diamond. These extraordinary dynamic responses are intrinsically attributed to the unique microstructure in which diamond polycrystals are encased in a TiC matrix, providing protection against yielding. Our findings not only developed a mechanically reliable, lightweight, and high-performance armor material at low synthesis costs, but also provided new insights into the shock compression behavior of diamond composites.

Funder

National Key Laboratory of Shockwave and Detonation Physics

Sichuan Science and Technology Program

Institutional Research Fund from Sichuan University

National Natural Science Foundation of China

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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