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Laser-induced thermocapillary flow manipulation of microparticles with obstacle avoidance in a non-patterned fluidic environment

机译:在无模式流体环境中避免障碍物的激光诱导的微粒的热毛细管流操纵

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This paper proposes a technique for manipulating microparticles toward a desired position in a non-patterned fluidic environment, avoiding the possible obstacles that it may encounter along its path. Infrared laser pulses were used to generate thermocapillary convection flows, within the fluidic environment, which dragged the particles in a controlled manner. In order to avoid the obstacles in real time, an improved artificial potential method (IAPM) was implemented. Experiments were performed to obtain the optimal parameters involved in this optofluidic-based manipulation technique. Different sized of glass beads in the range from 40 μm to 100 μm were manipulated avoiding single and multiple virtual obstacles. This technique could contribute to the manipulation of micro-objects in non-patterned fluidic environments such as in the assembly of microcomponents, where the environment could not be patterned as an assembly factory, and/or the manipulation of biological cells inside a fluidic system without microchannels and chambers.
机译:本文提出了一种在无模式流体环境中将微粒操纵到所需位置的技术,可避免微粒沿其路径可能遇到的障碍。红外激光脉冲用于在流体环境中产生热毛细管对流,该热对流以受控方式拖动颗粒。为了实时避免障碍,实施了一种改进的人工势能方法(IAPM)。进行实验以获得该基于光流体的操纵技术中涉及的最佳参数。操纵范围从40μm到100μm的不同大小的玻璃珠,避免单个和多个虚拟障碍物。这项技术可能有助于在无图案的流体环境中进行微对象的操作,例如在无法将环境作为组装工厂进行图案化的微组件的装配中,和/或在没有流体模式的情况下对流体系统内部的生物细胞进行操纵。微通道和小室。

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