Designing Time-varying Fields to Encode the Autonomous Navigation of Micro-robots
Designing Time-varying Fields to Encode the Autonomous Navigation of Micro-robots
批准号:
2153202
负责人:
Kyle Bishop
金额:
$37.96万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-05-15 至 2025-04-30
中文摘要
移动机器人使用关于环境的感官信息来自主地指导它们的行动,以实现特定的目标,如运送货物、清除废物或修复材料。要在微观环境中实现类似的目标,例如在人类血管系统内,需要机器人的尺寸与活细胞的尺寸相当。然而,所谓的“微型机器人”并不是自主的。取而代之的是,它们需要外部传感器和控制器来指导它们的运动和其他动作。该项目的目标是创造能够在外部监督下导航环境中的局部变化的自主微型机器人。这种微型机器人的基础是微小的粒子,可以通过将它们放置在时变的磁场中来为其充电。一旦了解了颗粒在磁场中的动力学,该项目将设计出引导颗粒沿表面地形(地形趋势性)和流体速度(流变性)梯度运动的场。除了为研究生和本科生提供研究培训外,该项目还将包括面向对攻读STEM领域感兴趣的高中年轻女性的教育拓展。与库兰特研究所的‘Girls in STEM’暑期项目合作,微型机器人暑期研究项目将培训学生整合数据、模型和设计,以推进工程目标。现有的基于场驱动粒子的微型机器人依赖于对当前位置和目标目的地的了解,以控制粒子在流体环境中的运动。这些外部控制策略经常受到有限信息(即粒子位置未知)和全局激励(即粒子在公共场中运动)的挑战。该项目将使用三维中的时变磁场来编码多个粒子的自主导航,以响应粒子环境中的梯度--特别是地形(地形)和速度(流变性)中的梯度。重要的是,磁场并不指示粒子移动到哪里,而是指示如何对环境中的局部变化做出反应。因此,相同的场可以驱动多个粒子同时向不同方向移动。在模型预测的基础上,该项目的目标是(1)在实验上展示磁性微粒在复杂地形中的自主导航,(2)设计改进的驱动方案,以自动化实验和动力学模型为依据,以及(3)开发能够在微流体通道内导航速度梯度的流变微粒。这些目标将通过时间周期场驱动的磁性微球和椭球体的实验和基于低雷诺数流体动力学的动力学模型相结合来实现,粒子跟踪数据提供了信息和增强。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
Mobile robots use sensory information about their environment to direct their actions autonomously toward specific goals such as cargo delivery, waste removal or materials repair. Achieving similar goals in microscopic environments, such as inside the human vascular system, requires robots with dimensions that are comparable to those of living cells. However, so-called “micro-robots” are not autonomous. Instead, they require on external sensor and controllers to direct their motion and other actions. The goal of this project is to create autonomous micro-robots that can navigate local variations in their environment with external supervision. The micro-robots are based on small particles that can be energized by placing them in time-varying magnetic fields. Once the dynamics of the particles in the magnetic field are understood, the project will design fields that direct particle motion along gradients in surface topography (topotaxis) and fluid velocity (rheotaxis). In addition to providing research training for graduate and undergraduate students, the project will include educational outreach to young women in high school interested in pursuing STEM fields. In partnership with the 'Girls in STEM' summer program at the Courant Institute, summer research projects on micro-robotics will train students on the integration of data, models, and design to advance engineering goals.Existing micro-robots based on field-driven particles rely on knowledge of the current position and the target destination to control particle motion through fluid environments. These external control strategies often are challenged by limited information (i.e., particle positions are unknown) and global actuation (i.e., particles move in a common field). This project will use time-varying magnetic fields in three-dimensions to encode the autonomous navigation of multiple particles in response to gradients in the particle environment—particularly, those in topography (topotaxis) and velocity (rheotaxis). Importantly, the field does not instruct particles on where to move but rather on how to respond to local variations in the environment. As a result, the same field can drive multiple particles to move simultaneously in different directions. Building on model predictions, the project aims (1) to demonstrate experimentally the autonomous navigation of magnetic micro-particles across complex topographic landscapes, (2) to design improved driving protocols informed by automated experiments and dynamical models, and (3) to develop rheotactic particles capable of navigating velocity gradients within microfluidic channels. These aims will be achieved through a combination of experiments on magnetic micro-spheres and ellipsoids driven by time-periodic fields and dynamical models based on low Reynolds number hydrodynamics informed and augmented by particle tracking data.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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会议论文
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