Collaborative Proposal: Impact of a colloidal suspension droplet: suspension flows at extreme shear rates
Collaborative Proposal: Impact of a colloidal suspension droplet: suspension flows at extreme shear rates
批准号:
2002817
负责人:
Xiang Cheng
金额:
$22.58万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-08-01 至 2024-02-29
中文摘要
非技术摘要:撞击液滴不仅是一种引人注目的现象,也是研究材料性能的理想试验台。这是由于撞击液滴扩散的速度很快(高达10米/S);在普通流体中对这种扩散过程进行了仔细的研究,但很少有人研究如何在复杂的流体中改变这种撞击行为。复杂的流体,如番茄酱、油漆和水中的玉米淀粉,其粘度(流变性)取决于所施加的应力。因此,这些流体的流动方式完全不同,取决于它们所承受的压力。这项研究项目探索了这种应力依赖的粘度如何改变跌落冲击行为。复杂的流体无处不在,深入了解它们在冲击过程中的行为对于食品和药品加工、添加剂制造和印刷/涂层等行业至关重要。除了Pi Driscoll和Co-Pi Cheng之间的研究协同作用外,这次合作还为扩大学生培训提供了一个独特的机会:已经实施了人员交流,因此参与该项目的学生每年有两周的时间在他们的非家乡机构。这种人员交流为学员提供了与更大的科学家网络建立联系的机会,以及在另一个学科和机构的经验。此外,研究团队利用跌落冲击这一令人惊叹和引人注目的现象来设计演示,教育更广泛的公众了解复杂流体的迷人特性。技术摘要:液滴撞击是流体力学和软材料中的经典问题,几十年来得到了广泛的研究。相比之下,关于非牛顿流体液滴,特别是悬浮液滴的影响的研究一直很少,尽管这种过程在食品和药品加工、添加剂制造和印刷/涂层等行业中是必不可少的。该项目通过对撞击胶体悬浮液滴进行广泛的研究,充分了解悬浮-液滴撞击的动力学,并对牛顿和非牛顿液滴撞击过程进行直接比较,填补了这一知识空白。这项系统的研究改变了控制参数,如悬浮体积分数、颗粒形状、撞击能量和靶子尺寸。使用先进的成像技术,以及测量冲击力和应力分布的新工具,该团队的目标是全面描述撞击悬浮液滴的运动学和动力学。悬浮液滴撞击为探测复杂和极端条件下的悬浮液滴动力学提供了理想的模型系统:扩散液滴产生的剪切速率至少比通过标准流变仪获得的剪切速率高一个数量级。此外,跌落碰撞中孤立的空气-流体界面形成了在其他情况下很少见的独特的开放边界。因此,这个项目提供了极端条件下悬浮动力学的关键缺失信息,补充了目前在常规整体流变学测试中获得的对悬浮流动的理解。该材料研究部(DMR)拨款支持研究牛顿和非牛顿液滴撞击过程之间胶体悬浮液滴之间的影响的研究,资金来自数学和物理科学(MPS)总监DMR中的凝聚态物质物理(CMP)计划。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Non-technical Abstract:An impacting liquid drop is not only an eye-catching phenomenon, it is also an ideal testbed for studying material properties. This is due to the high speed at which an impacting drop spreads out (up to 10 m/s); this spreading process has been carefully studied in ordinary fluids, but little work has been done to understand how this impact behavior is modified in a complex fluid. Complex fluids such as ketchup, paint, and oobleck (cornstarch-in-water) have the property that their viscosity (resistance to flow) depends on the applied stress. Thus, these fluids flow quite differently depending on the stress they experience. This research project explores how this stress-dependent viscosity alters drop-impact behavior. Complex fluids are ubiquitous, and a deeper understanding of their behavior in impact processes is essential to industries such as food and drug processing, additive manufacturing, and printing/coating. In addition to the research synergy between PI Driscoll and Co-PI Cheng, the collaboration allows a unique opportunity for expanding students’ training: a personnel exchange has been implemented, so that the students involved in the project spend two weeks each year at their non-home institution. This personnel exchange provides trainees opportunities to connect with a larger network of scientists, as well as the experience of another discipline and institution. Additionally, the research team leverages the stunning and eye-catching phenomena of drop impact to design demos to educate the broader public about the fascinating properties of complex fluids. Technical Abstract:Liquid drop impact is a classic problem in fluid mechanics and soft materials and has been studied extensively for many decades. In comparison, studies focusing on the impact of non-Newtonian fluid droplets, particularly suspension droplets, have been few and far between, even though such processes are essential in industries such as food and drug processing, additive manufacturing, and printing/coating. This project addresses this knowledge gap by conducting an extensive study of impacting colloidal suspension droplets, providing a full understanding of the dynamics of suspension-drop impact and drawing a direct comparison between Newtonian and non-Newtonian drop impact processes. This systematic study varies control parameters such as suspension volume fraction, particle shape, impact energy, and target size. Using both advanced imaging techniques, as well as new tools to measure impact forces and stress distributions, the team aims to fully characterize both the kinematics and dynamics of impacting suspension droplets. Suspension-drop impact provides an ideal model system to probe suspension dynamics under complex and extreme conditions: a spreading droplet generates shear rates at least an order of magnitude higher than those that are accessible via standard rheometry. In addition, the isolated air-fluid interface in drop impact imposes a unique open boundary rarely seen in other circumstances. Thus, this project provides crucial missing information on suspension dynamics under extreme conditions, complementary to the current understanding of suspension flows obtained in conventional bulk rheological tests.This Division of Materials Research (DMR) grant supports research to study impacting colloidal suspension droplets between Newtonian and non-Newtonian drop impact processes with funding from the Condensed Matter Physics (CMP) Program in DMR of the Mathematical and Physical Sciences (MPS) Directorate.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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