Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particles
Ti–Ta alloy micro-nano surface processing is crucial for achieving biocompatibility. To investigate the cavitation and micro-abrasive particle damage characteristics, and the deformation mechanism of Ti–Ta alloy material surface, indentation theory, and the J-C constitutive model were adopted. Numer...
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Elsevier
2023-09-01
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Series: | Journal of Materials Research and Technology |
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Online Access: | http://www.sciencedirect.com/science/article/pii/S2238785423019488 |
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author | Yingze Fu Xijing Zhu Jianqing Wang Tai Gong Shaohuan Sun Jing Li Linzheng Ye Xiangmeng Li |
author_facet | Yingze Fu Xijing Zhu Jianqing Wang Tai Gong Shaohuan Sun Jing Li Linzheng Ye Xiangmeng Li |
author_sort | Yingze Fu |
collection | DOAJ |
description | Ti–Ta alloy micro-nano surface processing is crucial for achieving biocompatibility. To investigate the cavitation and micro-abrasive particle damage characteristics, and the deformation mechanism of Ti–Ta alloy material surface, indentation theory, and the J-C constitutive model were adopted. Numerical load prediction models for ultrasonic cavitation and micro-abrasive particles' impact on Ti–Ta alloy surfaces were developed, and the erosion behaviors of ultrasonic cavitation and micro-abrasive particles’ impact on Ti–Ta alloy surfaces individually and in synergy were experimentally investigated. The inversion analysis shows that the range of ultrasonic cavitation impact load is 0.025–1.015 N, and there are material peeling and interconnection phenomena in the cavitation erosion pit. On the other hand, the impact load range of 10 μm spherical smooth SiO2 micro-abrasive particles is 0.107–0.814 N, and there is no material peeling or interconnection phenomenon in the micro-abrasive particle erosion pit. Additionally, the cavitation erosion rate is determined through changes in roughness and depression volume, resulting in a rate of 38.6%. In contrast, the cavitation-induced micro-abrasive particle erosion rate reached 166.4%. The results show that the impact load and erosion rate of ultrasonic cavitation-induced micro-abrasive particles are greater than those of cavitation impact load and erosion rate. Furthermore, ultrasonic cavitation-induced micro-abrasive particles impact is found to be more conducive to achieving micro-nano processing of Ti–Ta alloy surface. |
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issn | 2238-7854 |
language | English |
last_indexed | 2024-03-11T15:05:36Z |
publishDate | 2023-09-01 |
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series | Journal of Materials Research and Technology |
spelling | doaj.art-3f1fb82564544ed3a4eb2b916273ae862023-10-30T06:03:34ZengElsevierJournal of Materials Research and Technology2238-78542023-09-012638933904Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particlesYingze Fu0Xijing Zhu1Jianqing Wang2Tai Gong3Shaohuan Sun4Jing Li5Linzheng Ye6Xiangmeng Li7Shanxi Key Laboratory of Advanced Manufacturing Technology, North University of China, Taiyuan, Shanxi, 030051, China; School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, ChinaShanxi Key Laboratory of Advanced Manufacturing Technology, North University of China, Taiyuan, Shanxi, 030051, China; School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, China; Corresponding author. School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, China.Shanxi Key Laboratory of Advanced Manufacturing Technology, North University of China, Taiyuan, Shanxi, 030051, China; School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, ChinaShanxi Key Laboratory of Advanced Manufacturing Technology, North University of China, Taiyuan, Shanxi, 030051, China; School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, ChinaShanxi Key Laboratory of Advanced Manufacturing Technology, North University of China, Taiyuan, Shanxi, 030051, China; School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, ChinaShanxi Key Laboratory of Advanced Manufacturing Technology, North University of China, Taiyuan, Shanxi, 030051, China; School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, ChinaShanxi Key Laboratory of Advanced Manufacturing Technology, North University of China, Taiyuan, Shanxi, 030051, China; School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, ChinaShanxi Key Laboratory of Advanced Manufacturing Technology, North University of China, Taiyuan, Shanxi, 030051, China; School of Mechanical Engineering, North University of China, Taiyuan, Shanxi, 030051, ChinaTi–Ta alloy micro-nano surface processing is crucial for achieving biocompatibility. To investigate the cavitation and micro-abrasive particle damage characteristics, and the deformation mechanism of Ti–Ta alloy material surface, indentation theory, and the J-C constitutive model were adopted. Numerical load prediction models for ultrasonic cavitation and micro-abrasive particles' impact on Ti–Ta alloy surfaces were developed, and the erosion behaviors of ultrasonic cavitation and micro-abrasive particles’ impact on Ti–Ta alloy surfaces individually and in synergy were experimentally investigated. The inversion analysis shows that the range of ultrasonic cavitation impact load is 0.025–1.015 N, and there are material peeling and interconnection phenomena in the cavitation erosion pit. On the other hand, the impact load range of 10 μm spherical smooth SiO2 micro-abrasive particles is 0.107–0.814 N, and there is no material peeling or interconnection phenomenon in the micro-abrasive particle erosion pit. Additionally, the cavitation erosion rate is determined through changes in roughness and depression volume, resulting in a rate of 38.6%. In contrast, the cavitation-induced micro-abrasive particle erosion rate reached 166.4%. The results show that the impact load and erosion rate of ultrasonic cavitation-induced micro-abrasive particles are greater than those of cavitation impact load and erosion rate. Furthermore, ultrasonic cavitation-induced micro-abrasive particles impact is found to be more conducive to achieving micro-nano processing of Ti–Ta alloy surface.http://www.sciencedirect.com/science/article/pii/S2238785423019488Ultrasonic cavitationMicro-abrasive particlesTi–Ta alloyImpact loadErosion rate |
spellingShingle | Yingze Fu Xijing Zhu Jianqing Wang Tai Gong Shaohuan Sun Jing Li Linzheng Ye Xiangmeng Li Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particles Journal of Materials Research and Technology Ultrasonic cavitation Micro-abrasive particles Ti–Ta alloy Impact load Erosion rate |
title | Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particles |
title_full | Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particles |
title_fullStr | Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particles |
title_full_unstemmed | Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particles |
title_short | Investigation of impact load and erosion behaviors on Ti-Ta alloy surface through the synergistic effect of ultrasonic cavitation and micro-abrasive particles |
title_sort | investigation of impact load and erosion behaviors on ti ta alloy surface through the synergistic effect of ultrasonic cavitation and micro abrasive particles |
topic | Ultrasonic cavitation Micro-abrasive particles Ti–Ta alloy Impact load Erosion rate |
url | http://www.sciencedirect.com/science/article/pii/S2238785423019488 |
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