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用于在多分支血管网络中进行微群引导的基于触觉的实时平台。

Haptic-Based Real-Time Platform for Microswarm Steering in a Multi-Bifurcation Vascular Network.

作者信息

Jarvis Benjamin W, Abolfathi Kiana, Poli Riccardo, Kafash Hoshiar Ali

机构信息

School of Computer Science and Electronic Engineering, University of Essex, Colchester CO4 3SQ, UK.

出版信息

Nanomaterials (Basel). 2024 Nov 28;14(23):1917. doi: 10.3390/nano14231917.

Abstract

The use of electromagnetic fields to control a collection of magnetic nanoparticles, known as a microswarm, has many promising applications. Current research often makes use of accurate but time-consuming simulations lacking real-time human input. On the contrary, human interaction is possible with a real-time simulator, allowing the collection of valuable user interaction data. This paper presents the development and validation of a real-time two-dimensional microswarm simulator to accommodate the human interaction aspect. A haptic device is used to steer the microswarm through a multi-bifurcation vascular network towards a selected outlet. The percentage of particles reaching the selected outlet is used as the success metric. The simulator is verified against collected real-world experimental data and shows an 8% deviation. Parametric studies demonstrate the most influential parameters. We found that reducing the magnetic gradient from 1000 mT/m to 100 mT/m resulted in a decrease in recorded performance from 100% to 30.8%. Variation in fluid flow also had a considerable effect on the recorded performance, presenting a drop from 100% to 35.3% when fluid flow velocities increased from 0.005 m/s to 0.06 m/s. Changing the starting arrangement of particles resulted in a drop to 59% over the same range of fluid flow velocities.

摘要

利用电磁场来控制被称为微群的磁性纳米颗粒集合体,有许多前景广阔的应用。当前的研究常常使用精确但耗时且缺乏实时人工输入的模拟。相反,实时模拟器能够实现人工交互,从而可以收集有价值的用户交互数据。本文介绍了一种用于适应人工交互方面的实时二维微群模拟器的开发与验证。使用一种触觉设备引导微群通过多分支血管网络到达选定的出口。到达选定出口的颗粒百分比被用作成功指标。该模拟器根据收集到的实际实验数据进行了验证,偏差为8%。参数研究表明了最具影响力的参数。我们发现,将磁场梯度从1000 mT/m降低到100 mT/m会导致记录的性能从100%下降到30.8%。流体流动的变化对记录的性能也有相当大的影响,当流体流速从0.005 m/s增加到0.06 m/s时,性能从100%下降到35.3%。在相同的流体流速范围内,改变颗粒的起始排列会导致性能下降到59%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ba20/11643468/fcf8f71d3795/nanomaterials-14-01917-g001.jpg

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