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Planar arrangement of permanent magnets in design of a magneto-solid damper by finite element method

机译:有限元法设计磁固阻尼器中永磁体的平面布置

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This article studies the energy dissipation mechanism of a proposed magneto-solid damper using a three-dimensional finite element model developed in COMSOL Multiphysics software. The energy dissipation mechanism of the magneto-solid damper dissipates energy through combined actions of friction and eddy current damping. The key components of the magneto-solid damper are a steel plate, two copper plates placed on two sides of the steel plate in parallel, and two planar arrays of permanent magnets each one placed between the steel plate and one of the copper plates. These arrays are kept away from the steel and copper plates through narrow gaps; the gaps between them and the steel plate are filled with thin friction pads made of non-magnetic materials. The attractive magnetic interaction between the permanent magnet arrays and the steel plate provides the normal force for the friction developed between the friction pads and the steel plate when the permanent magnet arrays move relative to the steel plate. The motion of the permanent magnet arrays relative to the copper plates, on the other hand, provides the eddy current damping. The main contribution of this article is to optimize the pole arrangement of the permanent magnets and demonstrate that how the optimum pole arrangement can affect the energy dissipation capacity of the magneto-solid damper. The analysis results show that, for a given number and size of the permanent magnets, alternate arrangement of the poles of permanent magnets along the direction of their motion is the most optimal case resulting in large and smooth hysteresis force-displacement loops. This pole arrangement has also been used to find the optimum size of the steel and copper plates by addressing edge and skin effects in the design of the damper.
机译:本文使用在COMSOL Multiphysics软件中开发的三维有限元模型研究拟议的磁固阻尼器的能量耗散机理。磁固阻尼器的能量耗散机制通过摩擦和涡流阻尼的组合作用来耗散能量。磁固体阻尼器的关键组件是一块钢板,两个铜板平行放置在钢板的两侧,以及两个平面永磁体阵列,每个永磁体位于钢板和一个铜板之间。这些阵列通过狭窄的间隙远离钢板和铜板。它们和钢板之间的缝隙中填充了由非磁性材料制成的薄摩擦垫。当永磁体阵列相对于钢板移动时,永磁体阵列与钢板之间的吸引力磁相互作用为摩擦垫与钢板之间产生的摩擦提供了法向力。另一方面,永磁体阵列相对于铜板的运动提供了涡流阻尼。本文的主要贡献在于优化了永磁体的磁极布置,并证明了最佳的磁极布置如何影响磁固阻尼器的能量耗散能力。分析结果表明,对于给定数量和尺寸的永磁体,永磁体的磁极沿其运动方向的交替排列是导致大而平滑的磁滞力-位移环的最佳情况。通过在减震器的设计中解决边缘和集肤效应,这种磁极布置也已用于找到钢板和铜板的最佳尺寸。

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