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Design Methodology of a Dual-Halbach Array Linear Actuator with Thermal-Electromagnetic Coupling

机译:具有热电磁耦合的双哈尔巴赫阵列线性作动器的设计方法

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摘要

This paper proposes a design methodology for linear actuators, considering thermal and electromagnetic coupling with geometrical and temperature constraints, that maximizes force density and minimizes force ripple. The method allows defining an actuator for given specifications in a step-by-step way so that requirements are met and the temperature within the device is maintained under or equal to its maximum allowed for continuous operation. According to the proposed method, the electromagnetic and thermal models are built with quasi-static parametric finite element models. The methodology was successfully applied to the design of a linear cylindrical actuator with a dual quasi-Halbach array of permanent magnets and a moving-coil. The actuator can produce an axial force of 120 N and a stroke of 80 mm. The paper also presents a comparative analysis between results obtained considering only an electromagnetic model and the thermal-electromagnetic coupled model. This comparison shows that the final designs for both cases differ significantly, especially regarding its active volume and its electrical and magnetic loading. Although in this paper the methodology was employed to design a specific actuator, its structure can be used to design a wide range of linear devices if the parametric models are adjusted for each particular actuator.
机译:本文提出了一种线性执行器的设计方法,该方法考虑了几何和温度约束下的热和电磁耦合,从而使力密度最大化,并使力波动最小。该方法允许逐步地为给定规格定义致动器,从而满足要求并将装置内的温度保持在连续运行所允许的最高温度以下。根据提出的方法,利用准静态参数化有限元模型建立了电磁模型和热模型。该方法已成功应用于带有永久磁铁和运动线圈的双重准哈尔巴赫阵列的线性圆柱致动器的设计。执行器可以产生120 N的轴向力和80 mm的行程。本文还提出了仅考虑电磁模型和热电磁耦合模型获得的结果之间的比较分析。这种比较表明,两种情况的最终设计都存在显着差异,尤其是在其有效容积以及其电磁负载方面。尽管在本文中,该方法用于设计特定的执行器,但如果针对每个特定的执行器调整了参数模型,则其结构可用于设计各种线性设备。

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