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Analytical Model-Based Multiphysics Optimization of a Nanopositioning Electromagnetic Actuator

机译:纳米定位电磁执行器的基于分析模型的多物理场优化

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This paper presents the multiphysics optimization of a new class of nanopositioning actuators, termed as flexure-based electromagnetic linear actuator (FELA). The optimization is carried out analytically based on the derived closed-form magnetic field, force, and thermal models, while its objectives include the maximizing of force generation and minimizing of thermal generation, which are both crucial for the nanopositioning actuators. The optimization results show that the new version of FELA achieved 67.3% improvement in force generation for certain current and 46.2% thermal reduction for certain output force, compared to the previous version of FELA with the same size, which was optimized using the numerical methods. The optimization results are also validated by the experiments of the new version FELA prototype, where 56.2% improvement in current-force sensitivity and 43% above reduction in thermal power are demonstrated experimentally. Furthermore, by utilizing the established modeling framework, several fundamental questions on the design of FELA are answered theoretically in this paper, such as the effect about the uniform and radial magnetization of the permanent magnet and the performance tradeoff between the different number of magnet segments.
机译:本文介绍了新型纳米定位执行器的多物理场优化,该执行器称为基于弯曲的电磁线性执行器(FELA)。该优化基于导出的闭合形式的磁场,力和热模型进行分析,而其目标包括使力产生最大化和使热产生最小化,这对于纳米定位致动器都是至关重要的。优化结果表明,与使用数值方法进行优化的具有相同尺寸的旧版FELA相比,新版FELA在一定电流下的力产生提高了67.3%,在一定输出力下的热量降低了46.2%。新版本FELA原型的实验也验证了优化结果,其中通过实验证明了56.2%的电流力灵敏度提高和43%的热功率降低。此外,通过使用已建立的建模框架,本文在理论上回答了有关FELA设计的几个基本问​​题,例如关于永磁体均匀和径向磁化的影响以及不同数量的磁体段之间的性能折衷。

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