Project Grant 2311698

Award Date 7/15/23
Completion Date 6/30/26
Dollars Obligated $400K
Federal Grant Program
47.049
Assistance Type
Project Grant
Place of Performance
Evanston, IL 60208, USA
Similar Awards
This Project Grant award from the National Science Foundation (CFDA 47.041 - Engineering) provides $450,000 in funding to New York University to design gel materials with controlled mechanical and optical properties. The key products and services to be delivered under this 4-year award include: Developing new computational simulation methods and open-source software to design colloidal gel networks with tunable characteristics. The project will advance strategies to modularly control the...
This National Science Foundation (NSF) Engineering Program (CFDA 47.041) Project Grant award of $453,738 supports fundamental research at the University of Texas at Austin to develop an integrated experimental and computational framework for analyzing soft material fracture behavior. The key objectives are to: Advance high-resolution experimental methods for tracking crack propagation in soft materials like hydrogels, elastomers, and biological tissues using improved digital image and volume...
This three-year, $345,410 project grant from the National Science Foundation's Engineering program (CFDA 47.041) supports computational, theoretical, and experimental investigation of the elementary dynamics and rheology of soft glassy materials. The University of Akron will provide a fundamental understanding of the mechanical and flow properties of suspensions of soft solids like microgels, which have applications in drug delivery, tissue engineering, and wound dressing. Researchers will...
This $251,445 Project Grant awarded by the National Science Foundation's (NSF) Engineering program (CFDA 47.041) will support fundamental research at the University of Texas at Austin (UT Austin) focused on investigating fracture propagation in soft viscoelastic materials across a wide range of loading rates and temperatures. The research aims to develop integrated experimental and computational methods to provide a comprehensive understanding of dynamic fracture behavior in materials such as...
This Project Grant award from the National Science Foundation (NSF) Division of Civil, Mechanical, and Manufacturing Innovation under the NSF Engineering program (CFDA 47.041) supports research to characterize, model, and predict the mechanical response of non-uniform soft materials subjected to rapid bubble collapse and oscillation. The total funding amount is $194,800 for the period of June 1, 2023 to May 31, 2026. The research aims to leverage quantities surrounding asphericity, which was...
This Project Grant award of $350,456 from the National Science Foundation (NSF) Division of Civil, Mechanical, and Manufacturing Innovation supports research at Brown University to characterize, model, and predict the mechanical response of non-uniform soft materials subject to rapid bubble collapse and oscillation. The research aims to leverage inertial cavitation - the rapid, unstable growth and collapse of bubbles - as a tool for ultra-high-rate rheometry of graded hydrogels. The experimental...
The National Science Foundation (NSF) awarded a 4-year, $400,000 Project Grant under the Mathematical and Physical Sciences program (CFDA 47.049) to Trustees of Boston University for their research project titled "COLLABORATIVE RESEARCH: DMREF: CLOSED-LOOP DESIGN OF POLYMERS WITH ADAPTIVE NETWORKS FOR EXTREME MECHANICS." The project aims to develop an integrated experimental and computational platform for accelerated discovery and design of novel polymers exhibiting unprecedented...
This National Science Foundation (NSF) Engineering (CFDA 47.041) Project Grant award supports fundamental research into the puncture mechanics of soft solids, such as hydrogels and biological tissues. The $546,068 award to Georgia Tech Research Corporation, a non-profit research organization and state institution of higher education, will fund a 3-year study to provide a quantitative understanding of the fracture and penetration properties of ultra-soft materials. The research aims to develop...
The National Science Foundation (NSF) awarded a 4-year, $510,000 Project Grant under the NSF Engineering program (CFDA 47.041) to the University of California, Los Angeles (UCLA) to conduct research on crack propagation in nonlinearly viscoelastic materials, using hydrogels as a model system. The objectives are to identify criteria governing crack growth and path selection in viscoelastic solids through a combined numerical and experimental study of crack propagation under mixed-mode planar...
This $336,240 federal Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) supports fundamental research to investigate the role of topological defects in regulating strain-induced crystallization in end-linked polymer networks. The research aims to combine experimental and modeling approaches to understand the coupling between strain-induced crystallization, topological defects, temperature, and the corresponding mechanical properties of these materials...

COLLABORATIVE RESEARCH: GEL RUPTURE UNDER SIMPLE AND DYNAMIC LOADING: MANIPULATION OF FAILURE MODE VIA PATTERNED HETEROGENEITY IN SOFT MATERIALS -NON-TECHNICAL ABSTRACT SOFT MATERIALS ARE UBIQUITOUS IN NATURE (PLANTS, TISSUE, FOODS) AND ARE ALSO OF INTEREST FOR ADVANCED ENGINEERING APPLICATIONS (IMPLANTABLE MEDICAL DEVICES, ETC.). SOFT MATERIALS ARE INCREDIBLY VERSATILE, PARTICULARLY POLYMER NETWORKS AND GELS, AS THEY CAN BE ENGINEERED TO BE COMPATIBLE WITH COMPLEX ENVIRONMENTS (BIOLOGICAL SYSTEMS, TISSUES, AQUEOUS ENVIRONMENTS, ETC.). WHILE IT IS WELL KNOWN THAT SOFT MATERIALS CAN WITHSTAND LARGER DEFORMATIONS THAN BRITTLE PLASTICS OR METALS, THEY STILL SUFFER FROM SUDDEN AND CATASTROPHIC FAILURE, SUCH AS A RAPIDLY FORMING CRACK SPANNING THE ENTIRE MATERIAL NEARLY INSTANTANEOUSLY. THIS LIMITS THE POTENTIAL OF SOFT MATERIALS, AS ENGINEERED MATERIALS ARE TYPICALLY DESIGNED TO AVOID OR ELIMINATE THE LIKELIHOOD OF CATASTROPHIC FAILURE EVENTS. WHILE FUNDAMENTAL RELATIONSHIPS BETWEEN GEOMETRY AND FAILURE MODE HAVE BEEN EXPLORED IN TRADITIONAL ELASTIC SOLIDS, LIMITED WORK HAS BEEN DONE TO ESTABLISH SIMILAR DESIGN PRINCIPLES FOR SOFT MATERIALS. THEREFORE, UNDERSTANDING HOW TO TAILOR THE FAILURE RESPONSE OF SOFT MATERIALS, PARTICULARLY PRIOR TO USE, IS ESSENTIAL. THIS PROJECT ADDRESSES THIS GAP BY INVESTIGATING HOW THE GEOMETRY (E.G., LATTICE PATTERN), AS WELL AS THE PRESENCE OF INCLUSIONS (E.G., FILLED-IN DOMAINS WITHIN A LATTICE STRUCTURE) INFLUENCE THE FAILURE MODE OF SOFT MATERIALS, MAINLY POLYMER GELS. FURTHERMORE, THIS PROJECT PROVIDES UNIQUE TRAINING OPPORTUNITIES FOR STUDENTS FROM VARIED DISCIPLINES (MATERIALS SCIENCE, PHYSICS, AND CIVIL ENGINEERING) BY ENABLING THEM TO WORK TOGETHER COLLABORATIVELY AND PARTICIPATE IN RESEARCH EXCHANGES BETWEEN THE TWO INSTITUTIONS. THESE EXCHANGES PROVIDE STUDENTS WITH THE OPPORTUNITY TO ENGAGE IN A DISCIPLINE AND DEPARTMENT OUTSIDE OF THEIR OWN TO ENHANCE THEIR TRAINING, BROADEN THEIR PROFESSIONAL SCIENTIFIC NETWORK, AND ESTABLISH THEMSELVES AS MEMBERS OF THE STEM WORKFORCE. TECHNICAL ABSTRACT COMPOSITE MATERIALS, SUCH AS PERFORATED STRUCTURES OR STRUCTURES WITH EMBEDDED DOMAINS, OFFER EXCEPTIONAL FREEDOM TO ALTER MATERIAL PROPERTIES SUCH AS STIFFNESS, TOUGHNESS, AND FAILURE MODE. FOR EXAMPLE, THE FAILURE MODE OF A PLASTIC LATTICE SUBJECTED TO STRAIN CAN BE TAILORED VIA GEOMETRY; THINNER STRUTS AFFORD SLOW AND DIFFUSE FAILURE. WHILE THIS TYPE OF RELATIONSHIP BETWEEN GEOMETRY AND FAILURE MODE HAS BEEN EXPLORED IN TRADITIONAL ELASTIC SOLIDS, LIMITED WORK HAS BEEN DONE TO ESTABLISH SIMILAR DESIGN PRINCIPLES FOR SOFT MATERIALS. THIS PROJECT ADDRESSES THIS GAP BY INVESTIGATING HOW THE GEOMETRY OF A LATTICE STRUCTURE, AS WELL AS ENGINEERED INCLUSIONS, INFLUENCE THE FAILURE MODE OF SOFT MATERIALS (POLYMER GELS). THIS STUDY USES A COMBINED EXPERIMENTAL AND COMPUTATIONAL APPROACH TO SYSTEMATICALLY ADDRESS A LARGE PARAMETER SPACE FOR THIS MATERIAL SYSTEM, INCLUDING LATTICE GEOMETRY, GEL STIFFNESS, AND THE DIFFERENTIAL IN MECHANICAL PROPERTIES BETWEEN THE LATTICE STRUCTURE AND ENGINEERED INCLUSIONS. IN THIS PROJECT, SAMPLES ARE FABRICATED USING PHOTO-LITHOGRAPHY TECHNIQUES, AND PHOTOELASTIC IMAGING WILL BE USED TO ESTABLISH THE RELATIONSHIP BETWEEN STRESS TRANSMISSION AND FAILURE MODE. THE PHOTOELASTIC IMAGING INFORMS COMPUTATIONAL MODELS USING THE EXTENDED FINITE ELEMENT METHOD (XFEM). THIS PROJECT PROVIDES CRUCIAL INFORMATION REGARDING THE FAILURE BEHAVIOR OF SOFT MATERIALS, WHICH ARE UBIQUITOUS IN NATURE AND ENGINEERED MATERIALS. FURTHERMORE, THIS INFORMATION WILL ADVANCE APPLICATION FIELDS INCLUDING BIOMEDICAL DEVICES AND SOFT ROBOTICS, WHERE SOFT MATERIALS ARE HEAVILY EMPLOYED BUT CHALLENGES ARISE WHEN ADDRESSING THE FAILURE AND MECHANICAL PERFORMANCE OF THESE PLATFORMS. 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.

Posted 7/3/23