Project Grant 2201612
- This $236,309 National Science Foundation project grant supports fundamental research at Virginia Polytechnic Institute and State University to develop a novel approach for harnessing three-dimensional multi-stability induced by origami folding to engineer multi-functional material systems. The one-year project beginning July 15, 2022 aims to transform the ancient art of origami into a theoretical framework for designing materials with unprecedented functions through the NSF Engineering...
- The National Science Foundation (NSF) awarded a $479,255 Project Grant under its Engineering program (CFDA 47.041) to The Trustees Of The University Of Pennsylvania, doing business as Clinical Practices Of The University Of Pennsylvania, to develop algorithms for automated design of folded robots with custom geometry and motion requirements. The goal is to simplify the complex process of designing folded mechanisms and robots by creating an end-to-end design system that can directly convert...
- This $350,959 Project Grant awarded by the National Science Foundation (NSF) Engineering program (CFDA 47.041) to the Regents of the University of Michigan will establish a new strategy to integrate architectural design processes and human-derived designs with physics-guided machine learning and computational design optimization, focused on the application of origami-inspired responsive architecture. The key products and services to be delivered under this 3-year award include: 1) developing a...
- This $455,488 National Science Foundation project grant supports the development of origami-patterned silicone elastomer mechanoreceptors for fast, reconfigurable, and soft deformation sensing through Northeastern University from October 2021 to March 2024. The goal is to investigate whether soft material origami can demonstrate advantageous mechanical properties for selective or multimodal strain, pressure, and curvature sensing. Researchers will model and characterize origami-patterned...
- Form Finding Studio LLC was awarded a $275,000 Project Grant from the National Science Foundation under the NSF Technology, Innovation, and Partnerships federal grant program (CFDA 47.084) to develop computer-aided design and simulation software for origami-inspired engineering. The one-year award running from July 1, 2023 to June 30, 2024 will support research and development of an intelligent software system to facilitate the design and simulation of folded geometries. Key activities include...
- This $187,220 National Science Foundation project grant supports research at Virginia Polytechnic Institute and State University to establish an optimal design framework for multi-functional composite structures. Leveraging kirigami cutting principles and snap-through multi-stability, the framework will expand performance capabilities for composites in aerospace, automotive, and robotics applications. Under the NSF Engineering program (CFDA 47.041), which supports innovation and excellence in...
- This $1,200,000 Project Grant award from the National Science Foundation's (NSF) Computer and Information Science and Engineering (CISE) program (CFDA 47.070) will support the development of a critical technological capability for the accurate, large-scale deployment of battery-free wireless sensor networks using self-organizing "microfliers." The interdisciplinary research project aims to create networked, origami-inspired microfliers that can coordinate their in-air descent and...
- This $478,823 federal Project Grant award from the National Science Foundation (NSF), under the Engineering program (CFDA 47.041), supports foundational research to create intelligent structures and materials with multi-faceted mechanical intelligence (mechano-intelligence). The objective is to leverage multi-functional origami as a mechanical neural network to develop self-aware, autonomous engineering systems capable of perceiving, memorizing, and making decisions about their environment....
- This National Science Foundation (NSF) Project Grant award under CFDA 47.041 - Engineering, totaling $237,007, will be used by the Cal Poly Corporation at California Polytechnic State University in San Luis Obispo, CA to create a process that combines human creativity and computational intelligence to design more effective, adaptive building technologies. The key goals are to: 1) establish a strategy for integrating architectural design with physics-guided machine learning and optimization to...
- This Project Grant award from the National Science Foundation (NSF) under the Integrative Activities program (CFDA 47.083) aims to advance space exploration by improving the performance and resilience of multi-agent robotic systems for harsh environments like the Moon or Mars. The $269,069 award to the University of Vermont will develop data-driven control mechanisms to enhance fault tolerance and adaptive capabilities of distributed robot formations. The project will partner with NASA's Jet...
COLLABORATIVE RESEARCH: CPS: MEDIUM: AUTONOMY OF ORIGAMI-INSPIRED TRANSFORMABLE SYSTEMS IN SPACE OPERATIONS -ORIGAMI-INSPIRED STRUCTURES THAT FOLD FLAT SHEETS ALONG CREASES WITH DESIGNED PATTERNS TO CREATE TRANSFORMABLE STRUCTURES HAVE BEEN WIDELY APPLIED IN SCIENCE AND ENGINEERING, ESPECIALLY IN SPACE OPERATIONS, E.G., FOR DEPLOYMENT OF FOLDED SOLAR PANELS EQUIPPED ON LAUNCHED SATELLITES. ALTHOUGH THE DEFORMATION PROCESS PLAYS AN ESSENTIAL ROLE IN TRANSITIONS BETWEEN THE ORIGAMI STATES, FEW STUDIES FOCUS ON THE CONTROL AND ACTUATION OF THE ORIGAMI FOLDING MECHANISM TOWARD HIGH AUTONOMY OF THE DEFORMATION PROCESS. THIS PROJECT AIMS TO DEVELOP AN AUTONOMOUS ORIGAMI-INSPIRED TRANSFORMABLE SYSTEM TO ENABLE HIGH-PERFORMANCE DEFORMATION MANEUVERING IN SPACE OPERATIONS REQUIRING FREQUENT AND/OR TIME-RESPONSIVE SHAPE CHANGES. THE INTEGRATIVE RESEARCH INCORPORATING THEORY, ANALYSIS, ALGORITHM DEVELOPMENT, AND EXPERIMENTAL VERIFICATION WILL CONTRIBUTE TO A THEORETICAL AND EXPERIMENTAL PLATFORM TO ADVANCE THE AUTONOMY OF ORIGAMI SYSTEM OPERATIONS IN CHALLENGING ENVIRONMENTS. THE RESEARCH PRODUCTS WILL HAVE SIGNIFICANT IMPACTS ON THE PROLIFERATED SATELLITE MARKETPLACE WHERE LOW MASS, SMALL VOLUME, AND ADAPTABLE STRUCTURES/SUBSYSTEMS OF SPACE VEHICLES ARE IN DEMAND. GOING BEYOND THE APPLICATIONS IN SPACE MISSIONS, ORIGAMI-INSPIRED TRANSFORMABLE SYSTEMS HAVE MUCH BROADER APPLICATIONS IN SCIENCE AND ENGINEERING. MOREOVER, THE COLLABORATION OF EXPERTS IN BOTH CYBER AND PHYSICAL AREAS PROMOTES THE CREATION OF INTERDISCIPLINARY PRODUCTS THAT BRIDGE DIFFERENT DISCIPLINES. TO ACHIEVE THE RESEARCH GOAL OF ADVANCING AUTONOMY OF ORIGAMI-INSPIRED TRANSFORMABLE SYSTEMS, FOUR RESEARCH THRUSTS ARE IDENTIFIED, NAMELY (1) DEVELOPING A NETWORK-BASED APPROACH FOR MODELING AND DESIGN OF MULTI-SHAPE ORIGAMI STRUCTURES, (2) DESIGNING AN INTEGRATED SENSING AND CONTROL STRATEGY WITH GUARANTEED CONTROLLABILITY, REACHABILITY, AND ENERGY EFFICIENCY, (3) DEVELOPING PROGRAMMABLE UNTETHERED ACTUATION VIA THERMAL LOADING TO REALIZE DESIGNED CONTROL MANEUVERS, AND (4) EVALUATING THE PERFORMANCE OF AUTONOMOUS SYSTEMS USING MULTIPLE ORIGAMI STRUCTURES IN SPACE OPERATION MISSIONS. THESE IDENTIFIED RESEARCH THRUSTS WILL TOGETHER CONTRIBUTE TO AN ANALYTICAL AND COMPUTATIONAL FRAMEWORK FOR ACHIEVING AUTONOMY OF THE ORIGAMI DEFORMATION PROCESS, WHICH WILL RESULT IN REAL-WORLD APPLICATIONS IN FUTURE SPACE MISSIONS. THEORETICALLY, THE FUNDAMENTAL ANALYSIS BASED ON NETWORKED CONTROL AND GRAPH MODELING CAN LEAD TO RIGOROUS SUPPORT OF CONTROL PERFORMANCE IN TERMS OF CONTROLLABILITY, REACHABILITY, AND ENERGY EFFICIENCY FOR THE ORIGAMI DEFORMATION PROCESS. PRACTICALLY, THE DEVELOPMENT OF PROGRAMMABLE UNTETHERED ACTUATION ENABLES THE GENERATION OF DESIGNED CONTROL COMMANDS UNDER OPERATIONAL CONSTRAINTS. 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.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 7/11/25 | ||
| Not listed | $400.0k | 8/31/22 |