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纳米机器人系统 iTRo 用于可控一维微/纳米材料扭转测试。

Nanorobotic System iTRo for Controllable 1D Micro/nano Material Twisting Test.

机构信息

Mechanical and Biomedical Engineering Department, City University of Hong Kong, Hong Kong, SAR 999077, China.

Mechanical Engineering Department, Xi'an University of Science and technology, Xi'an, 710054, China.

出版信息

Sci Rep. 2017 Jun 8;7(1):3077. doi: 10.1038/s41598-017-03228-4.

Abstract

In-situ micro/nano characterization is an indispensable methodology for material research. However, the precise in-situ SEM twisting of 1D material with large range is still challenge for current techniques, mainly due to the testing device's large size and the misalignment between specimen and the rotation axis. Herein, we propose an in-situ twist test robot (iTRo) to address the above challenges and realize the precise in-situ SEM twisting test for the first time. Firstly, we developed the iTRo and designed a series of control strategies, including assembly error initialization, triple-image alignment (TIA) method for rotation axis alignment, deformation-based contact detection (DCD) method for sample assembly, and switch control for robots cooperation. After that, we chose three typical 1D material, i.e., magnetic microwire FeBSiC, glass fiber, and human hair, for twisting test and characterized their properties. The results showed that our approach is able to align the sample to the twisting axis accurately, and it can provide large twisting range, heavy load and high controllability. This work fills the blank of current in-situ mechanical characterization methodologies, which is expected to give significant impact in the fundamental nanomaterial research and practical micro/nano characterization.

摘要

原位微/纳特性分析是材料研究中不可或缺的方法。然而,目前的技术仍然难以精确地对大范围的一维材料进行原位 SEM 扭转,主要是由于测试设备尺寸较大,以及样品与旋转轴之间的不对准。在此,我们提出了一种原位扭转测试机器人(iTRo)来解决上述挑战,并首次实现了精确的原位 SEM 扭转测试。首先,我们开发了 iTRo 并设计了一系列控制策略,包括装配误差初始化、旋转轴对准的三图像对准(TIA)方法、基于变形的样品装配接触检测(DCD)方法以及机器人协作的开关控制。之后,我们选择了三种典型的一维材料,即磁性微丝 FeBSiC、玻璃纤维和人发,进行扭转测试并对其性能进行了表征。结果表明,我们的方法能够准确地将样品对准扭转轴,并且能够提供大的扭转范围、大的负载和高的可控性。这项工作填补了当前原位力学特性分析方法的空白,有望对基础纳米材料研究和实际的微/纳特性分析产生重大影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ec9/5465204/ec171eb2423f/41598_2017_3228_Fig1_HTML.jpg

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