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On control of transport in Brownian ratchet mechanisms

机译:关于布朗棘轮机构中运输的控制

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Engineered transport of material at the nano/micro scale is essential for the manufacturing platforms of the future. Unlike conventional transport systems, at the nano/micro scale, transport has to be achieved. in the presence of fundamental sources of uncertainty such as thermal noise. Remarkably, it is possible to extract useful work by rectifying noise using an asymmetric potential; a principle used by Brownian ratchets. In this article a systematic methodology for designing open-loop Brownian ratchet mechanisms that optimize velocity and efficiency is developed. In the case where the particle position is available as a measured variable, closed loop methodologies are studied. Here, it is shown that Methods that strive to optimize velocity of transport may compromise efficiency. A dynamic programming based approach is presented which yields up to three times improvement in efficiency over optimized open loop designs and 35% better efficiency over reported closed loop strategies that focus on optimizing velocities. (C) 2014 Elsevier Ltd. All rights reserved.
机译:纳米/微米级材料的工程运输对于未来的制造平台至关重要。与传统的运输系统不同,必须在纳米/微米尺度上实现运输。存在不确定性的基本来源,例如热噪声。值得注意的是,可以通过使用非对称电位校正噪声来提取有用的功。布朗棘轮所使用的原理。在本文中,开发了一种用于设计开环布朗棘轮机构的系统方法,以优化速度和效率。在粒子位置可用作测量变量的情况下,研究闭环方法。在此表明,努力优化运输速度的方法可能会降低效率。提出了一种基于动态编程的方法,该方法的效率比优化的开环设计提高了三倍,而效率则比报告的专注于优化速度的闭环策略提高了35%。 (C)2014 Elsevier Ltd.保留所有权利。

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