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Design and Experimental Analysis of a New Magnetically Levitated Tubular Linear Actuator

机译:新型磁悬浮管状直线执行器的设计与实验分析

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摘要

The usage of tubular linear actuators (TLAs) in direct-drive systems, where linear reciprocal motion is needed, is beneficial compared to systems where a rotational actuator is used together with a mechanical transmission. Systems with TLAs are more compact, more dynamic, and more reliable. Today's TLAs commonly employ mechanical or air bearings, which either result in friction and wear due to contact, or a costly and bulky system due to the external pressurized air supply. These issues can be avoided with magnetic bearings (MBs). In the literature, it has been proposed to use two separate MBs on each axial side of the TLA, but this approach leads to a longer shaft and a more complex overall system due to additional power and control electronics for the MBs. Therefore, this paper proposes an integration of MBs into the TLA, resulting in a new, self-bearing (bearingsless) TLA. The proposed system is derived from the standard TLA, by changing its stator geometry. The principle of operation is explained and key design aspects are studied using finite element method (FEM). A prototype integrated into a test bench is built, and used for experimentally verifying the design of the novel actuator.
机译:与需要将线性执行器与机械传动装置一起使用的系统相比,在需要线性往复运动的直接驱动系统中使用管状线性执行器(TLA)更为有利。带有TLA的系统更紧凑,更动态,更可靠。当今的TLA通常使用机械或空气轴承,由于接触而导致摩擦和磨损,或者由于外部加压空气供应而导致系统昂贵且笨重。使用磁性轴承(MB)可以避免这些问题。在文献中,已经提出在TLA的每个轴向侧使用两个单独的MB,但是由于MB的功率和控制电子器件的存在,这种方法导致了更长的轴和更复杂的整体系统。因此,本文提出将MB集成到TLA中,从而产生一个新的,自承载(无轴承)TLA。通过更改其定子几何形状,从标准TLA派生了所提出的系统。解释了工作原理,并使用有限元方法(FEM)研究了关键设计方面。构建了集成到测试台中的原型,并用于通过实验验证新型执行器的设计。

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