Numerical Simulation of Impact Behavior of Ceramic Coatings Using Smoothed Particle Hydrodynamics Method

Author:

Zhang Jian1,Lu Zhe2,Sagar Sugrim1,Choi Hyunhee3,Park Heesung4,Koo Dan Daehyun5,Jung Yeon-Gil6,Zhang Jing7

Affiliation:

1. 723 W Michigan St Indianapolis, IN 46202

2. University of Science and Technology Liaoning School of Materials and Metallurgical Engineering Anshan, Liaoning 114051 China

3. Changwon National University Changwon National University Changwon, 641-773 Republic of Korea

4. 20 Changwondaehak-ro, Mechanical Engineering Department Changwon National University Changwon, Gyeongsangnam-do 51140 Republic of Korea

5. 799 W Michigan St Indianapolis, IN 46202

6. #20 Changwondaehak-ro, Uichang-gu Changwon, Gyeongnam 51140 Republic of Korea

7. 723 W Michigan Street SL 260 Indianapolis, IN 46202

Abstract

Abstract In this work, the impact behavior of an alumina spherical particle on alumina coating is modeled using the smoothed particle hydrodynamics (SPH) method. The effects of impact angle (0°, 30°, and 60°) and velocity (100 m/s, 200 m/s, and 300 m/s) on the morphology changes of the impact pit and impacting particle, and their associated stress and energy are investigated. The results show that the combination of impact angle of 0° and velocity of 300 m/s produces the highest penetration depth and largest stress and deformation in the coating layer, while the combination of 100 m/s & 60° causes the minimum damage to the coating layer. This is because the penetration depth is determined by the vertical velocity component difference between the impacting particle and the coating layer, but irrelevant to the horizontal component. The total energy of the coating layer increases with the time, while the internal energy increases with the time after some peak values, which is due to energy transmission from the spherical particle to the coating layer and the stress shock waves. The energy transmission from impacting particle to coating layer increases with the increasing particle velocity, and decreases with the increasing inclined angle. The simulated impact pit morphology is qualitatively similar to the experimental observation. This work demonstrates that the SPH method is useful to analyze the impact behavior of ceramic coatings.

Funder

Korea Institute of Energy Technology Evaluation and Planning

National Natural Science Foundation of China

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

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