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Design, fabrication, and evaluation of negative stiffness elements using SLS

机译:使用SLS进行负刚度元件的设计,制造和评估

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Purpose - Recent research has shown that constrained bistable structures can display negative stiffness behavior and provide extremal vibrational and acoustical absorptive capacity. These bistable structures are therefore compelling candidates for constructing new meta-materials for noise reduction, anechoic coatings, and backing materials for broadband imaging transducers. To date, demonstrations of these capabilities have been primarily theoretical because the geometry of bistable elements is difficult to construct and refine with conventional manufacturing methods and materials. The purpose of this paper is to leverage the geometric design freedoms provided by selective laser sintering (SLS) technology to design and construct constrained bistable structures with negative stiffness behavior. Design/methodology/approach - A meso-scale negative stiffness system is designed and fabricated with SLS technology. The system includes a bistable structure in the form of a pre-compressed/pre-buckled beam. The dynamic transmissibility of the system is measured, and its behavior is compared to the predictions of analytical models. Findings - Experimental results demonstrate that pre-compression and pre-buckling can be used to induce negative stiffness behavior and thereby increase the damping and shift the resonant frequency of an unconstrained beam. Originality/value - The results support the usefulness of SLS and other additive manufacturing technologies for acoustic and dynamic applications. Specifically, the demonstrated advantages of SLS include the ability to rapidly redesign, functionally 2 prototype, and tune physical models for acoustic and dynamic experimentation. Of significant importance is the ability of SLS to enable consolidation of parts that are traditionally separate, thereby reducing vibrational noise in these systems. In this specific application, SLS enables a proof-of-concept comparison of the theoretical and experimental behavior of a meso-scale negative stiffness system. The demonstrated acoustical and vibrational absorptive capacity of these systems is expected to lead to designs for new structures and materials that offer significantly improved energy absorbing capabilities over a broad range of tunable frequencies without compromising structural stiffness.
机译:目的-最新研究表明,受约束的双稳态结构可显示负刚度行为,并具有极好的振动和声学吸收能力。因此,这些双稳态结构成为构建用于降噪的新型超常材料,消声涂层和宽带成像换能器背衬材料的理想候选材料。迄今为止,这些功能的演示主要是理论上的,因为用传统的制造方法和材料很难构造和完善双稳态元件的几何形状。本文的目的是利用选择性激光烧结(SLS)技术提供的几何设计自由度来设计和构造具有负刚度行为的约束双稳态结构。设计/方法/方法-使用SLS技术设计和制造中尺度负刚度系统。该系统包括呈预压缩/预屈曲梁形式的双稳态结构。测量系统的动态透射率,并将其行为与分析模型的预测进行比较。发现-实验结果表明,预压缩和预屈曲可用于引起负刚度行为,从而增加阻尼并改变无约束梁的共振频率。原创性/价值-结果支持SLS和其他增材制造技术对声学和动态应用的有用性。具体而言,SLS的已证明优势包括能够快速重新设计,功能上为2个原型以及调整物理模型以进行声学和动态实验的能力。 SLS能够整合传统上分开的零件,从而减少这些系统中的振动噪声,这一点至关重要。在此特定应用中,SLS可以对中尺度负刚度系统的理论和实验行为进行概念验证比较。这些系统在声学和振动方面的吸收能力有望导致新结构和材料的设计,这些结构和材料可以在广泛的可调频率范围内显着提高能量吸收能力,而不会损害结构刚度。

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