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首页> 外文期刊>PLoS One >Wireless Magnetic-Based Closed-Loop Control of Self-Propelled Microjets
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Wireless Magnetic-Based Closed-Loop Control of Self-Propelled Microjets

机译:基于无线电磁的自行式微射流闭环控制

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In this study, we demonstrate closed-loop motion control of self-propelled microjets under the influence of external magnetic fields. We control the orientation of the microjets using external magnetic torque, whereas the linear motion towards a reference position is accomplished by the thrust and pulling magnetic forces generated by the ejecting oxygen bubbles and field gradients, respectively. The magnetic dipole moment of the microjets is characterized using the U-turn technique, and its average is calculated to be 1.310−10 A.m2 at magnetic field and linear velocity of 2 mT and 100 µm/s, respectively. The characterized magnetic dipole moment is used in the realization of the magnetic force-current map of the microjets. This map in turn is used for the design of a closed-loop control system that does not depend on the exact dynamical model of the microjets and the accurate knowledge of the parameters of the magnetic system. The motion control characteristics in the transient- and steady-states depend on the concentration of the surrounding fluid (hydrogen peroxide solution) and the strength of the applied magnetic field. Our control system allows us to position microjets at an average velocity of 115 m/s, and within an average region-of-convergence of 365 m.
机译:在这项研究中,我们演示了在外部磁场的影响下,自推进式微射流的闭环运动控制。我们使用外部磁转矩控制微射流的方向,而朝参考位置的线性运动则分别由喷射氧气泡和场梯度产生的推力和拉力实现。微型喷气机的磁偶极矩使用掉头技术进行表征,在磁场和2 mT的线速度和100 µm / s的线速度下,其平均值分别为1.310-10 A.m2。表征的磁偶极矩用于实现微射流的磁力-电流图。该图又用于设计闭环控制系统,该系统不依赖于微喷头的精确动力学模型和磁系统参数的准确知识。瞬态和稳态下的运动控制特性取决于周围流体(过氧化氢溶液)的浓度和所施加磁场的强度。我们的控制系统使我们能够以115 m / s的平均速度在365 m的平均会聚区域内定位微型喷气机。

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