CAREER: Jamming in Flexible Geometries-from Shape Sculpting to Shapeshifting
CAREER: Jamming in Flexible Geometries-from Shape Sculpting to Shapeshifting
批准号:
1654283
负责人:
Timothy Atherton
金额:
$48.46万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-07-01 至 2023-06-30
中文摘要
非技术性总结这个职业奖支持理论研究,教育和推广卡住的软材料。随着密度的增加,沙子、玻璃、泡沫和胶体等材料会变硬或堵塞。堵塞的材料具有显着的属性,如脆弱性和流动容易,如果足够的力量施加。这些特性是由于它们的结构:处于堵塞状态的粒子只有最小数量的邻居来保持它们的位置。PI将研究当堵塞过程发生在一个正在改变形状的系统中时,如在一个流体液滴或弹性体上时,堵塞过程是如何改变的。更好的理解将有助于在利用形状的应用中创造材料和设备,例如软机器人,药物输送系统,致动器和人造肌肉。PI将开发一个灵活几何形状的干扰计算模型,并使用它来确定颗粒和初始形状如何影响结构,以及如何通过仔细选择系统的组件来塑造所需的最终形状。通过在模拟中加入对外部影响做出响应的粒子,例如响应施加的场,或者在它们自己的力量下移动,研究小组将确定如何使用这些粒子来创建可以自发改变形状的形状变化材料。作为该项目的一部分开发的计算机软件将在公共存储库中完全向社区开放。该奖项还支持与研究紧密结合的外展和教育工作。教育部分旨在通过将基于研究的项目和活动纳入PI新开发的计算物理课程,将软物质和计算整合起来。外联部分将制作和传播一个网络游戏,以及教师编写的课堂材料,向高中生和公众传播干扰音。该奖项还将支持聋人和重听学生参加塔夫茨大学的夏季研究,他们将进行模拟和分析以支持研究。技术总结这个职业奖支持理论研究,教育和推广卡住的软材料。堵塞是发生在粒状介质中的向刚性的转变。研究的目标是通过计算机模拟来了解干扰过渡在灵活的几何形状中发生时如何修改。该提案的中心假设是,在灵活的几何形状的堵塞状态构成了一个新的堵塞类别,称为“度量堵塞”的系统是稳定的,相对于集体运动的表面和变形的歧管。了解当形状和秩序共同进化时,如何修改物理效应(如干扰),为这些过程提供了基本的见解,并将能够创造新的材料,设备和工业技术,如软机器人,药物输送系统,执行器和利用结果的人造肌肉。为了测试中心假设,PI将创建度量干扰过程的计算模型,并使用该模型来:i)确定形状和颗粒如何控制度量干扰状态的性质; ii)识别灵活的几何形状如何影响度量干扰,以及如何使用该几何形状来塑造所需形状的软胶体颗粒; iii)将可致动的和活性的颗粒结合到模型中,以确定这样的颗粒如何可以用于创建可以自发地改变形状的形状改变材料。这项工作将有助于推进软物质领域的物理提供了一个详细的了解新的度量堵塞状态在两个和三个维度,秩序和形状变化之间的连接,可以从这些过程中出现的形状,以及如何微观结构的变化可以诱导形状演变。为了帮助其他人驾驭这类材料固有的众多复杂的物理效应,该研究还将提供开源计算工具来促进这一设计。该奖项还支持与研究紧密结合的推广和教育工作。教育部分旨在通过将基于研究的项目和活动纳入PI新开发的计算物理课程,将软物质和计算整合起来。外联部分将制作和传播一个网络游戏,以及教师编写的课堂材料,向高中生和公众传播干扰音。该奖项还将支持聋人和重听学生参加塔夫茨大学的夏季研究,他们将进行模拟和分析以支持研究。
英文摘要
NONTECHNICAL SUMMARYThis CAREER award supports theoretical research, education and outreach on jammed soft materials. Materials such as sand, glasses, foams and colloids can become rigid or jam as the density is increased. Jammed materials possess remarkable properties such as fragility and flowing readily if sufficient force is applied. These properties are due to their structure: particles in a jammed state have only the minimum number of neighbors required to hold them in place. The PI will investigate how the jamming process is altered when it occurs in a system that is changing shape, such as on a fluid droplet or an elastic body. A better understanding would enable the creation of materials and devices in applications that exploit shape, such as soft robotics, drug delivery systems, actuators, and artificial muscles. The PI will develop a computational model of jamming in flexible geometries and use it to determine how particles and initial shape affect the structure and how desired final shapes can be sculpted by carefully choosing the components of the system. By incorporating particles in the simulation that respond to external influences, such as in response to an applied field, or move under their own power, the research team will determine how these particles can be used to create shape-shifting materials that can change shape spontaneously. Computer software developed as part of this project will be made fully accessible to the community on public repositories.This award also supports outreach and education efforts that are closely integrated with the research. The educational component aims to integrate soft matter and computation by incorporating projects and activities based on the research into the PI's newly developed course in Computational Physics. The outreach component will create and disseminate a web game, together with classroom materials developed by teachers, that communicates jamming to high school students and the general public. This award will also support the participation of Deaf and Hard of Hearing students in summer research at Tufts who will conduct simulations and analysis in support of the research. TECHNICAL SUMMARYThis CAREER award supports theoretical research, education and outreach on jammed soft materials. Jamming is a transition to rigidity that occurs in granular media. The goal of the research is to understand by computer simulations how the jamming transition is modified when it occurs in a flexible geometry. The central hypothesis of the proposal is that jammed states in flexible geometries constitute a new jamming category called "metric jammed" where the system is stable both with respect to collective motions of the surface and deformations of the manifold. Understanding how physical effects such as jamming are modified when shape and order co-evolve provides fundamental insight into these processes and will enable the creation of new materials, devices and industrial techniques such as soft robotics, drug delivery systems, actuators and artificial muscles that exploit the results. To test the central hypothesis, the PI will create a computational model of the metric jamming process and use this to: i) determine how shape and particles control the properties of the metric jammed state; ii) identify how flexible geometries affect metric jamming and how this can be used to sculpt soft colloidal particles of a desired shape; iii) incorporate actuatable and active particles into the model to determine how such particles can be used to create shape-shifting materials that can change shape spontaneously. This work will help advance the field of soft matter by providing a detailed understanding of the physics of the new metric jammed state in both two and three dimensions, the connections between order and shape change, the shapes that can emerge from these processes, and how microstructural changes can induce shape evolution. To help others navigate the numerous and complex physical effects intrinsic to this class of materials, the research will also provide open-source computational tools to facilitate this design.This award also supports outreach and education efforts that are closely integrated with the research. The educational component aims to integrate soft matter and computation by incorporating projects and activities based on the research into the PI's newly developed course in Computational Physics. The outreach component will create and disseminate a web game, together with classroom materials developed by teachers, that communicates jamming to high school students and the general public. This award will also support the participation of Deaf and Hard of Hearing students in summer research at Tufts who will conduct simulations and analysis in support of the research.
期刊论文(14)
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Programming emergent symmetries with saddle-splay elasticity
使用鞍形弹性对涌现对称性进行编程
DOI:
10.1038/s41467-019-13012-9
发表时间:
2019
期刊:
Nature Communications
影响因子:
16.6
作者:
[Xia, Yu, DeBenedictis, Andrew A., Kim, Dae Seok, Chen, Shenglan, Kim, Se-Um, Cleaver, Douglas J., Atherton, Timothy J., Yang, Shu]
通讯作者:
Yang, Shu
Crystal Comets: A Geometric Model for Sculpting Anisotropic Particles from Emulsions
晶体彗星:从乳液中雕刻各向异性粒子的几何模型
DOI:
10.1021/acs.langmuir.0c02249
发表时间:
2020
期刊:
Langmuir
影响因子:
3.9
作者:
[Giso, Mathew Q., Zhao, Haoda, Spicer, Patrick T., Atherton, Timothy J.]
通讯作者:
Atherton, Timothy J.
Geometry and kinetics determine the microstructure in arrested coalescence of Pickering emulsion droplets
几何学和动力学确定皮克林乳液液滴滞留聚结的微观结构
DOI:
10.1039/c9sm00435a
发表时间:
2019
期刊:
Soft Matter
影响因子:
3.4
作者:
[Xie, Zhaoyu, Burke, Christopher J., Mbanga, Badel, Spicer, Patrick T., Atherton, Timothy J.]
通讯作者:
Atherton, Timothy J.
Computing equilibrium states of cholesteric liquid crystals in elliptical channels with deflation algorithms
用紧缩算法计算椭圆通道中胆甾液晶的平衡状态
DOI:
10.1080/02678292.2017.1365385
发表时间:
2017
期刊:
Liquid Crystals
影响因子:
2.2
作者:
[Emerson, David B., Farrell, Patrick E., Adler, James H., MacLachlan, Scott P., Atherton, Timothy J.]
通讯作者:
Atherton, Timothy J.
Physicality, modeling, and agency in a computational physics class
计算物理课程中的物理性、建模和代理
DOI:
10.1103/physrevphyseducres.19.010121
发表时间:
2023
期刊:
Physical Review Physics Education Research
影响因子:
3.1
作者:
[Phillips, A. M., Gouvea, E. J., Gravel, B. E., Beachemin, P.-H., Atherton, T. J.]
通讯作者:
Atherton, T. J.
共 11 条
Collaborative Research: Surfing the order parameter - assembling nanoparticle structures through phase transitions in liquid crystal solvents
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批准号:2104575
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项目类别:Continuing Grant
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资助金额:$23.27万
-
财政年份:2021
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负责人:Timothy Atherton
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依托单位:
Elements: Morpho-Cyberinfrastructure for scientists and engineers studying shape change
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批准号:2003820
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项目类别:Standard Grant
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资助金额:$60.0万
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财政年份:2020
-
负责人:Timothy Atherton
-
依托单位:
国内基金
海外基金
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基于Jamming相变的酪蛋白胶束基乳液凝胶形成机理研究
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批准号:32360597
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项目类别:地区科学基金项目
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资助金额:33万元
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批准年份:2023
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负责人:杨敏
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依托单位:
沥青混合料流变过程中的Jamming效应及其细观机制
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批准号:--
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项目类别:面上项目
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资助金额:58万元
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批准年份:2021
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负责人:裴建中
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依托单位:
活性可形变多边形的Jamming相图
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批准号:--
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项目类别:专项基金项目
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资助金额:18万元
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批准年份:2019
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负责人:祖梦婕
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依托单位:
不定形系统的Jamming和玻璃化转变的数值和理论研究
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批准号:11074228
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项目类别:面上项目
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资助金额:38.0万元
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批准年份:2010
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负责人:徐宁
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依托单位: