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Snapping Shells: Coupling Geometry, Dynamics, and Materials to Harvest Energy through Instability

Snapping Shells: Coupling Geometry, Dynamics, and Materials to Harvest Energy through Instability
折断壳:耦合几何、动力学和材料,通过不稳定性获取能量
批准号:
1505125
负责人:
Douglas Holmes
金额:
$29.46万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-08-18 至 2018-07-31

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中文摘要
翻译
当一个结构突然变成另一种形状时--就像在刮风的日子里把伞倒过来一样--它的结构和材料的完整性往往会永久地丧失。然而,许多软结构能够逆转两种形状之间的变化。这为设计动态和适应性强的工程结构提供了一个迷人的机会。捕蝇草叶子的快速闭合是捕捉在自然界中提供功能的一个例子。该奖项支持结构不稳定力学的基础研究。特别是,它考虑了由先进和活性材料制成的结构,这些材料能够将变形转化为能量。其结果将帮助工程师设计将不稳定性作为特征而不是故障的系统,从而使结构能够在短时间内轻松且可预测地改变形状,并在此过程中转换和存储能量。这种结构在需要自主电源的美国工业中有应用。 由于在“跳盘”和“爆破器”玩具中采用了非常有趣的卡扣结构,这些玩具可以发出砰的一声跳跃,因此这项研究将有助于提高公众对科学的兴趣。许多柔软的细长结构能够通过突跳弹性不稳定性在两种稳定构型之间快速变化。本研究将建立壳体双稳性的力学与几何准则。它将确定壳体几何形状对突跳速度、突跳后振动和非对称到对称壳体耗散率的影响。材料特性的影响将被检查,以了解壳,结构,是暂时冻结的自我驱动的快速恢复。研究小组将用一种电活性材料制备外壳。这将使研究小组能够在不稳定期间对壳体的面内应变进行新的测量。这些测量将有助于重要的实验洞察力的理论壳结构。最后,介电弹性体壳体还将提供用于在快速通过变形期间收集能量的自然手段。研究团队将进一步开发BLINK,这是一个创新的项目,向学生介绍我们的眼睛经常错过的快速发展的科学。该计划将最终与学生使用的力学玩具poppers作为一种方式来研究牛顿的运动定律。该计划的实施,以及随后相关在线视频内容的创建,将为学生和公众提供机会,使他们认识到力学研究在应对当前技术挑战方面的重要性。
英文摘要
When a structure snaps to an alternate shape -- like the inversion of an umbrella on a windy day -- its structural and material integrity are often permanently lost. Many soft structures, however, are able to reverse the change between two shapes. This presents a fascinating opportunity to design dynamic and adaptable engineering structures. The rapid leaf closure of the Venus flytrap is an example of how snapping provides functionality in nature. This award supports fundamental research on the mechanics of instabilities in structures. In particular, it considers structures made of advanced and active materials which are capable of converting deformation into energy. Its results will help engineers design systems that use instabilities as a feature rather than a fault, thereby enabling structures that easily and predictably change shape over a short timescale, converting and storing energy in the process. Such structures have applications in U.S. industries with needs for autonomous power sources. Since snapping structures have been employed with great amusement in the `jumping disc' and `popper' toys that jump with an audible pop, this research will help increase public interest in science. Many soft, slender structures are able to rapidly change between two stable configurations by a snap-through elastic instability. This research will establish the mechanical and geometric criteria for shell bistability. It will determine the effect of shell geometry on the speed of snap-through, the post-snap vibrations, and the rate of asymmetric-to-symmetric shell dissipation. The effect of material properties will be examined to understand the self-actuated snap-back of shells, structures that are temporarily bistable. The research team will prepare shells out of an electrically active material. This will allow the research team to conduct novel measurements of the in-plane strain in shells during instability. These measurements will contribute important experimental insight to the theory of shell structures. Finally, the dielectric elastomeric shells will also offer a natural means for harvesting energy during the snap-through deformation. The research team will further develop BLINK, the innovative program that introduces students to the fast-moving science that our eyes often miss. The program will culminate with students using the mechanics of toy poppers as a way to study Newton's laws of motion. The implementation of this program, and subsequent creation of relevant online video content, will provide opportunities for students and the general public to realize the importance of mechanics research in answering current technological challenges.
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Natural Curvature and Soft Shells: Shape Shifting through Mechanical Instabilities
  • 批准号:
    1824882
  • 项目类别:
    Standard Grant
  • 资助金额:
    $53.15万
  • 财政年份:
    2018
  • 负责人:
    Douglas Holmes
  • 依托单位:
CAREER: Understanding and Controlling the Deformation of Thin Rods within Soft and Fragile Matter
  • 批准号:
    1454153
  • 项目类别:
    Standard Grant
  • 资助金额:
    $50.0万
  • 财政年份:
    2015
  • 负责人:
    Douglas Holmes
  • 依托单位:
Snapping Shells: Coupling Geometry, Dynamics, and Materials to Harvest Energy through Instability
Swelling-Induced Origami
海外基金