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A Multiphysics Design Methodology Applied to a High-Force-Density Short-Duty Linear Actuator

机译:一种应用于高密度短行程线性执行器的多物理场设计方法

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摘要

This paper presents an iterative coupled electromagnetic and thermal design methodology applied to a short-duty high-force-density permanent magnet tubular linear actuator. A difficulty with such coupled methodologies is balancing the accuracy of the modelling methods with the computation time. This problem is often addressed by employing a relatively detailed electromagnetic model and a coarse low computational cost thermal model. The thermal model typically requires calibration or is evolved from previous validated designs. In this paper, a two-dimensional electromagnetic finite element model is coupled with a thermal equivalent circuit model which is automatically constructed and parameterised using geometric and material data. A numerical method of estimating the equivalent thermal properties of the winding amalgam is used along with pub- lished empirically derived convection and radiation heat transfer correlations. The relatively high number of network nodes and more accurate thermal material properties minimise the need for thermal model calibration and allows for improved temperature prediction, including winding hot-spots, whilst maintaining a low computational cost for steady-state and transient analyses. Thereby allowing the actuator to be designed to operate with a peak temperature close to the thermal limit of the electrical insulation system which is difficult to achieve with more traditional lumped parameter models containing few nodes. The effectiveness of the design methodology is demonstrated by the design and experimental test of a prototype actuator.
机译:本文提出了一种迭代耦合电磁和热设计方法,该方法适用于短时高强度高密度永磁管状线性致动器。这种耦合方法的困难在于在建模方法的准确性与计算时间之间取得平衡。通常通过采用相对详细的电磁模型和较低的计算成本的热模型来解决此问题。热模型通常需要校准,或者是从先前经过验证的设计演变而来的。在本文中,二维电磁有限元模型与热等效电路模型耦合,该模型使用几何和材料数据自动构建和参数化。估算绕组汞齐等效热特性的数值方法与已发布的根据经验得出的对流和辐射热传递相关性一起使用。相对较高的网络节点数和更精确的热材料属性可以最大程度地减少对热模型校准的需求,并可以改善温度预测(包括绕组热点),同时保持稳态和瞬态分析的计算成本较低。因此,允许将致动器设计成在接近电绝缘系统的热极限的峰值温度下操作,这对于包含较少节点的更传统的集总参数模型很难实现。设计方法的有效性通过原型执行器的设计和实验测试得到证明。

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