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Analytical Field and Torque Analysis of a Reaction Sphere

机译:反应球的分析场和转矩分析

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In recent years, the increasing need in small satellite solutions triggers the miniaturization of attitude control systems. Reaction spheres were proposed as promising replacements of conventional reaction wheels for their 4π rotations. Since the generated control torques could be about any desired axes, a single reaction sphere is sufficient for three-axis stabilizations of spacecraft. This paper presents an innovative design of reaction spheres. Its driving unit is a combination of permanent magnets (PMs) and electromagnetic induction. This enables the generation of torques about three principle axes simultaneously. Meanwhile, a contactless bearing is integrated into the actuator design. Detailed designs and working principles of the reaction sphere are described. To investigate performance characteristics of the actuator, field modeling is of great importance and provides the basis for dynamics modeling. In this paper, an improved analytical model for dynamic fields excited by slotless distributed windings is presented for the first time. To study the cross coupling between PMs and electromagnetic induction, the static field generated by PMs is also modeled analytically. These developed models are validated through comparisons with numerical simulations. Electromagnetic torques generated by the actuator are calculated through the approaches of the Maxwell stress tensor and the Lorentz force law. Torque calculations based on the analytical field models deviate from those based on the numerical model slightly, with the maximum error within 4%. This means the presented analytical models allow to predict the electromagnetic field distribution and torques precisely.
机译:近年来,对小型卫星解决方案的日益增长的需求触发了姿态控制系统的小型化。提出了反应球作为其4π旋转的常规反应轮的有希望的替代品。由于产生的控制扭矩可以围绕任何所需的轴,因此单个反作用球就足以满足航天器的三轴稳定要求。本文提出了反应球的创新设计。它的驱动单元是永磁体(PM)和电磁感应的组合。这使得能够同时产生围绕三个主轴的转矩。同时,非接触轴承被集成到执行器设计中。描述了反应球的详细设计和工作原理。为了研究执行器的性能特征,现场建模非常重要,并为动力学建模提供了基础。本文首次提出了一种改进的无槽分布绕组激励的动态磁场解析模型。为了研究永磁体与电磁感应之间的交叉耦合,还对永磁体产生的静磁场进行了解析建模。通过与数值模拟进行比较,可以验证这些开发的模型。执行器产生的电磁转矩是通过麦克斯韦应力张量和洛伦兹力定律来计算的。基于解析场模型的扭矩计算与基于数值模型的扭矩计算略有不同,最大误差在4%内。这意味着所提供的分析模型可以精确预测电磁场分布和扭矩。

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