详细信息
Comprehensive modeling of corkscrew motion in micro-/nano-robots with general helical structures ( SCI-EXPANDED收录)
文献类型:期刊文献
英文题名:Comprehensive modeling of corkscrew motion in micro-/nano-robots with general helical structures
作者:Hu, Ningning[1];Ding, Lujia[2];Wang, Aihui[3];Zhou, Wenju[1];Zhang, Chris[2];Zhang, Bing[1];Yin, Ruixue[4]
机构:[1]Shanghai Univ, Sch Mechatron Engn & Automat, Shanghai 200444, Peoples R China;[2]Univ Saskatchewan, Div Biomed Engn, Saskatoon, SK, Canada;[3]Zhongyuan Univ Technol, Sch Automat & Elect Engn, Zhengzhou 450007, Peoples R China;[4]East China Univ Sci & Technol, Sch Mech & Power Engn, Shanghai 200237, Peoples R China
年份:2024
卷号:15
期号:1
外文期刊名:NATURE COMMUNICATIONS
收录:;WOS:【SCI-EXPANDED(收录号:WOS:001300255000035)】;
基金:This work was supported by the High-level Talent Recruitment Research Start-up Fund, Shanghai University No. 13-G210-18-230 (C.Z.), China Scholarship Council No. 202106890059 (N.-N.H) and National Natural Science Foundation of China No. 81801795 (B.Z.). The authors acknowledge the Mingche Biotechnology (Suzhou) Co., Ltd for the experimental support of the samples.
语种:英文
摘要:Micro-/nano-robots (MNRs) have impressive potential in minimally invasive targeted therapeutics through blood vessels, which has disruptive impact to improving human health. However, the clinical use of MNRs has yet to happen due to intrinsic limitations, such as overcoming blood flow. These bottlenecks have not been empirically solved. To tackle them, a full understanding of MNR behaviors is necessary as the first step. The common movement principle of MNRs is corkscrew motion with a helical structure. The existing dynamic model is only applicable to standard helical MNRs. In this paper, we propose a dynamic model for general MNRs without structure limitations. Comprehensive simulations and experiments were conducted, which shows the validity and accuracy of our model. Such a model can serve as a reliable basis for the design, optimization, and control of MNRs and as a powerful tool for gaining fluid dynamic insights, thus accelerating the development of the field. Micro-/nano-robots (MNRs) hold potential for minimally invasive targeted therapies through blood vessels, but clinical use is hindered by challenges such as overcoming blood flow. This study proposes a dynamic model for general MNRs without structural limitations, validated through simulations and experiments, to facilitate their design, optimization, and control.
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