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ROBUST DESIGN OF BISTABLE COMPLIANT MECHANISMS USING THE BISTABILITY OF A CLAMPED-PINNED BEAM

机译:使用夹紧固定梁的双稳态的双稳态柔顺机构的鲁棒设计

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Our research investigates a new approach to design of bistable compliant mechanisms using the bistability of a clamped-free beam. Bistability plays an important role for a variety of applications since energy is applied only to move the mechanism from one stable position to another and no energy needs to be expended once a stable position is reached. Behavior of a bistable compliant mechanism, in general, is highly non-linear and relies on the buckling phenomenon. Normally, buckling is very sensitive to imperfections in manufacturing processes, operating conditions and boundary conditions. We present a method for designing bistable mechanisms that are robust against such imperfections by utilizing the behavior of a simple clamped-free beam. A solution for large deformation of a simple clamped-free beam is first obtained to study its bistable behavior under various loading conditions. If the load is greater than the critical buckling load, the beam can be deflected not only in the normal direction but also in a 'reverse-lateral' (RL) direction. First, an initially straight beam must be bent to a certain curvature under the action of the applied force. In the second loading condition, the partially bent beam is further loaded so that it buckles in the RL direction into a stable position. The magnitude and direction of the forces in both loading conditions that are conducive to bistability are thus determined. A compliant mechanism is then designed such that its output generates desired forces on the beam to deform it in the RL direction. We demonstrate that the RL deformation is less sensitive to the imperfections and ensures bistable behavior. Using clamped-pinned beams, two design examples (symmetric and asymmetric cases) of bistable compliant mechanisms are presented. Results show very good correlation between the finite element analysis and experimental tests on prototypes.
机译:我们的研究通过夹紧的梁的双空性调查了一种设计的新方法来设计双稳态柔性机构。双稳态在各种应用中起重要作用,因为仅施加能量以将机构从一个稳定位置移动到另一个稳定位置,并且一旦达到稳定位置,就不需要消耗能量。一般而言,双稳态柔性机制的行为是高度非线性的并且依赖于屈曲现象。通常,屈曲对制造过程中的缺陷非常敏感,操作条件和边界条件。我们提出了一种设计一种设计的方法,其通过利用自由夹紧的梁的行为来设计对这种缺陷的稳健而鲁棒的机构。首先获得用于在各种负载条件下研究其双稳态行为的大变形的溶液。如果负载大于关键屈曲负荷,则光束可以不仅在正常方向上偏转,而且可以在“反向横向”(RL)方向上偏转。首先,在施加力的作用下,最初直梁必须弯曲到一定的曲率。在第二装载条件下,部分弯曲的光束进一步装载,使得将RL方向扣为稳定位置。因此确定有利于五菱的负载条件中的力的大小和方向。然后设计柔顺机构使得其输出在光束上产生所需的力以使其在R1方向上变形。我们证明RL变形对缺陷不太敏感,并确保双稳态行为。使用夹紧钉梁,呈现了双稳态柔性机制的两个设计示例(对称和不对称案例)。结果表明,有限元分析与原型的实验测试之间的相关性非常好。

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