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EFRI NewLAW: Topological Mechanical Metamaterials Science

EFRI NewLAW: Topological Mechanical Metamaterials Science
EFRI NewLAW:拓扑机械超材料科学
批准号:
1741685
负责人:
Katia Bertoldi
金额:
$200.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-01 至 2023-08-31

项目摘要

项目成果

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中文摘要
翻译
工程学、物理学和材料科学面临的重大挑战之一是设计具有自然系统中不存在的特性的材料的能力。机械超材料试图通过构建线性或非线性组件的聚合系统来实现这一点,这些组件共同表现出不同于并超越其组成材料的材料特性和功能。 然而,它们的功能通常会受到缺陷和瑕疵的损害,这在真实的世界应用中是不可避免的。这就引出了一个问题,即是否存在一种新的范式,即一种新的构建模块和相互作用,使材料的设计对缺陷具有鲁棒性,并具有新的功能。这些研究将表明,拓扑学的概念提供了一个组织原则,引起了广泛的杂质免疫现象的领域,如波导,结构稳定性和断裂。该项目的研究结果将对机械能控制系统和设备的设计和制造产生影响,这些系统和设备的操作依赖于波的聚焦、放大、定位和衰减。这些包括超声波换能器、声纳、噪声吸收或增强装置以及用于振动过滤和冲击/爆炸保护的材料系统。 该项目的目标将通过一个团队的合作来实现,该团队将拓扑机械超材料、实验波动力学、线性和非线性波传播、凝聚态物理学和数学方面的专家结合起来。这种多学科的研究方法是丰富的机会,推广和扩大代表性不足的群体在工程和科学的参与。例如,将与芝加哥的科学和工业博物馆合作,为代表性不足的群体组织外联方案。这个项目研究拓扑机械超材料,挑战经典的力学概念,如互易性,时间反演对称性和缺陷的敏感性。其目的是研究它们的基本性质,如在有序,无序和无定形系统的拓扑模式的存在,非线性的影响,以及在散装的能量传输。在这些研究的指导下,研究小组将探索拓扑机械超材料的工程意义,重点是波导,结构稳定性和断裂。这些研究将在新的实验平台上进行,从陀螺仪系统作为概念验证,到新设计的具有材料/结构系统开发潜力的连续系统。该研究有望实现改变动态控制设备和材料设计模式的功能。该团队在理论,模拟和实验方面的独特优势提供了成功执行这一雄心勃勃的研究计划所必需的技能组合。
英文摘要
One of the grand challenges in engineering, physics, and materials science is the ability to design materials with properties that do not occur in natural systems. Mechanical metamaterials attempt to achieve this by building an aggregate system out of linear or nonlinear components, that collectively exhibit material properties and functionalities that differ from, and surpass those of, their constituent materials. However, their functionality is typically compromised by defects and imperfections, which are unavoidable in real world applications. This begs the question of whether a new paradigm exists, whereby a new class of building blocks and interactions enables the design of materials that are robust to imperfections and that are characterized by new functionalities. These studies will demonstrate that concepts from topology provide an organizing principle that gives rise to a wide range of impurity-immune phenomena in areas such as wave guiding, structural stability, and fracture. The project findings will have implications for the design and fabrication of mechanical energy control systems and devices whose operation relies on wave focusing, amplification, localization and attenuation. These include ultrasonic acoustic transducers, sonars, noise absorbing or enhancing devices, and material systems for vibration filtering and impact/blast protection. The objectives of the project will be achieved through the collaboration of a team that combines experts in topological mechanical metamaterials, experimental wave dynamics, linear and nonlinear wave propagation, condensed matter physics and mathematics. This multi-disciplinary approach to research is rich in opportunities for outreach and for broadening participation of underrepresented groups in engineering and science. For example, outreach programs to underrepresented groups will be organized in collaboration with the Museum of Science and Industry in Chicago. This project investigates topological mechanical metamaterials that challenge classical notions in mechanics such as reciprocity, time reversal symmetry and sensitivity to defects. The objective is to investigate their fundamental properties, such as the existence of topological modes in ordered, disordered and amorphous systems, the effects of nonlinearities, as well as energy transport in the bulk. Guided by these studies, the research team will then explore the engineering implications of topological mechanical metamaterials, focusing on wave guiding, structural stability and fracture. These investigations will be conducted on novel experimental platforms ranging from gyroscopic systems as proof-of-concepts, to newly designed continuous systems that have potential for material/structural system development. The research is expected to enable functionalities that shift the paradigm in which dynamic control devices and materials are designed. The team's unique strengths in theory, simulation and experiments provide the combination of skills that are essential for the successful execution of this ambitious research program.
期刊论文(40)
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科研奖励(0)
会议论文
DOI: 10.1103/physrevapplied.17.014004
发表时间: 2022-01-04
期刊: PHYSICAL REVIEW APPLIED
影响因子: 4.6
作者: [Deng,Bolei, Zanaty,Mohamed, Bertoldi,Katia]
通讯作者: Bertoldi,Katia
DOI: 10.1103/physrevapplied.15.014058
发表时间: 2021-01-28
期刊: PHYSICAL REVIEW APPLIED
影响因子: 4.6
作者: [Li, Shuaifeng, Yang, Jinkyu]
通讯作者: Yang, Jinkyu
Rectification in Nonequilibrium Parity Violating Metamaterials
违反非平衡宇称超材料的纠正
DOI: 10.1103/physrevx.10.021036
发表时间: 2020
期刊: Physical Review X
影响因子: 12.5
作者: [Liao, Zhenghan, Irvine, William T., Vaikuntanathan, Suriyanarayanan]
通讯作者: Vaikuntanathan, Suriyanarayanan
DOI: 10.1103/physrevapplied.12.024058
发表时间: 2019-08
期刊: Physical Review Applied
影响因子: 4.6
作者: [Xiaotian Shi;R. Chaunsali;Feng Li;Jinkyu Yang]
通讯作者: Xiaotian Shi;R. Chaunsali;Feng Li;Jinkyu Yang
共 34 条
    Collaborative Research: Programming Non-Linear Waves in Compliant Mechanical Metamaterials
    • 批准号:
      2041440
    • 项目类别:
      Standard Grant
    • 资助金额:
      $41.37万
    • 财政年份:
      2021
    • 负责人:
      Katia Bertoldi
    • 依托单位:
    DMREF: Hydrogel-actuated cellular soft robotic materials with programmable mechanical properties
    • 批准号:
      1922321
    • 项目类别:
      Standard Grant
    • 资助金额:
      $175.0万
    • 财政年份:
      2019
    • 负责人:
      Katia Bertoldi
    • 依托单位:
    DMREF: Biologically Inspired Optimized Materials And Technologies Transformed by Evolutionary Rules (BIOMATTER)
    • 批准号:
      1533985
    • 项目类别:
      Standard Grant
    • 资助金额:
      $150.0万
    • 财政年份:
      2015
    • 负责人:
      Katia Bertoldi
    • 依托单位:
    CAREER: BuckliOrigami: Soft, Active and Foldable Structures Through Instabilities and Large Deformation
    • 批准号:
      1149456
    • 项目类别:
      Standard Grant
    • 资助金额:
      $40.0万
    • 财政年份:
      2012
    • 负责人:
      Katia Bertoldi
    • 依托单位:
    海外基金