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首页> 外文期刊>Sensors and Actuators, A. Physical >Pulse controlled microfluidic actuators with ultra low energy consumption
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Pulse controlled microfluidic actuators with ultra low energy consumption

机译:脉冲控制的微流体致动器,具有超低能量消耗

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摘要

This paper presents the modelling, simulation, implementation and performance analysis of a novel electropermanent magnet based, bistable wireless microactuator for microvalves with milli Joule level energy consumption. The microactuator is powered wirelessly through inductive power transfer with energy buffered in a supercapacitor bank. Two millimeter sized rods of semi hard and hard magnetic materials are placed side by side with a current carrying coil around them. A 120 mu s pulse of 15 V, 2.5 A is applied to the coil, which creates or eliminates the externally available magnetic field. The plunger is either attracted or repelled by this magnetic field to open or close the valve respectively. The theoretical analysis and modelling aligns well with the experimental results. The microactuator consume as little as 0.97-2.5 mJ of energy per actuation with no energy consumed between actuations. The actuation pulse width needs to be between 44 and 150 mu s. The actuator is capable of delivering large deflections in the range of 0.3-2.5 mm, which is much greater than any of the state-of-the-art valves. The maximum holding force of the actuator is 220 mN and the attraction force varies between 9.8-98 mN. Energy consumption per actuation, actuation speed and deflection of the novel actuator are much better than any state-of-the-art microvalves, with the added advantages of wireless power and control. The momentary peak power requirement of 40W is met by the supercapacitor energy buffer which stores 90 J per charge cycle, sourcing 37500 actuations. The energy efficiency and flexibility of this novel actuator can revolutionize the microactuator industry. (C) 2017 Elsevier B.V. All rights reserved.
机译:本文介绍了新型电动磁体基于磁体磁体的模拟,仿真,实施和性能分析,用于微型纤维的微型纤维,具有毫米焦耳级能耗。微致动器通过在超级电容器库中的电感电力传输无线通动。两毫米尺寸的半硬磁性材料并排放置在它们周围的电流携带线圈。 120μs脉冲为15V,2.5a施加到线圈上,该线圈产生或消除外部可用的磁场。柱塞被该磁场吸引或排斥以分别打开或关闭阀门。理论分析和建模与实验结果很好。微致动器每次致动的时间少于0.97-2.5 MJ的能量,在任何致动之间没有能量消耗的能量。致动脉冲宽度需要在44到150μm之间。致动器能够在0.3-2.5mm的范围内输送大的偏转,这远远大于任何最先进的阀门。致动器的最大保持力为220mN,吸引力在9.8-98mn之间变化。新型执行器的每个致动,致动速度和偏转的能耗远远优于任何最先进的微型纤维,具有无线动力和控制的附加优点。通过存储90 J的超级电容器能量缓冲器满足40W的瞬时峰值功率要求,该电荷能量缓冲器每次充电循环,采购37500致动。这种新型执行器的能效和灵活性可以彻底改变微致动器行业。 (c)2017年Elsevier B.V.保留所有权利。

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