论文标题
本质上的优化振动衰减和声音控制的结构:评论
Optimized structures for vibration attenuation and sound control in Nature: a review
论文作者
论文摘要
大自然已经设计了复杂的设计,以通过进化来实现数百万年的进化。许多生物已经适应其生活环境,产生了极有效的材料和结构,这些材料和结构表现出优化的机械,热,光学特性,而当前技术通常无法再现。这些特性通常是使用横跨宏观,中索,微观和纳米级的分层结构来实现的,这些结构在许多天然材料(如木材,骨骼,蜘蛛丝和海绵)中广泛观察到。到目前为止,生物启发的方法已经成功地从准静态机械性能(例如强度,韧性,粘附)来识别优化的结构方面已经成功,但是就动态性而进行的工作相对较少(例如,振动阻尼,噪声绝缘,噪声绝缘,声音放大等)所做的工作很少。尤其是,当前相对有限的知识就层次结构如何在自然结构的优化中发挥作用,尽管并发长度尺度无疑可以解决多个频率范围。在这里,我们回顾了针对动态机械性能的结构优化领域所做的主要工作,突出了不同生物系统中的一些常见特征和策略。我们还讨论了与生物启发的材料的相关性,特别是在语音晶体和超材料领域,以及为技术应用开发自然设计的潜力。
Nature has engineered complex designs to achieve advanced properties and functionalities through evolution, over millions of years. Many organisms have adapted to their living environment producing extremely efficient materials and structures exhibiting optimized mechanical, thermal, optical properties, which current technology is often unable to reproduce. These properties are often achieved using hierarchical structures spanning macro, meso, micro and nanoscales, widely observed in many natural materials like wood, bone, spider silk and sponges. Thus far, bioinspired approaches have been successful in identifying optimized structures in terms of quasi-static mechanical properties, such as strength, toughness, adhesion, but comparatively little work has been done as far as dynamic ones are concerned (e.g. vibration damping, noise insulation, sound amplification, etc.). In particular, relatively limited knowledge currently exists on how hierarchical structure can play a role in the optimization of natural structures, although concurrent length scales no doubt allow to address multiple frequency ranges. Here, we review the main work that has been done in the field of structural optimization for dynamic mechanical properties, highlighting some common traits and strategies in different biological systems. We also discuss the relevance to bioinspired materials, in particular in the field of phononic crystals and metamaterials, and the potential of exploiting natural designs for technological applications.