Jonathan Colton

Jonathan Colton's profile picture
jonathan.colton@me.gatech.edu

Colton's research interests are in the areas of design and manufacturing, focusing on polymers and polymer composites. Processing techniques, such as micro-molding, injection molding, filament winding, resin transfer molding and the like, are studied and used to fabricate these devices and products, such as smart composite structures.

The design of processing techniques and equipment for metamaterials also are being studied with applications being dielectric materials for electromagnetic applications. Due to the small-scale physics associated with their engineering, nano-scale metamaterials exhibit superior properties and enhanced performance.

Colton has a strong passion for the application of engineering for the common good – "humanitarian design and engineering" and "design that matters," - such as in developing countries and other resource limited environments. To be successful, multidisciplinary teams must work together to produce products that function as well as delight, that exceed customer's expectations, regardless of where the product is used. Along these lines, product design and role that the interactions between engineering and industrial design forms another research interest.

Professor, Woodruff School of Mechanical Engineering
Phone
404.894.7407
Office
Callaway 434
Additional Research

Manufacturing and CAE & Design; Humanitarian Design and Engineering (HumDE); Manufacturing; Production; and Design; Polymer and polymer composites; Biomedical and Medical Devices; Technologies for developing countries and other resource-limited environment; Product development and industrial design; Computer-Aided Engineering; Polymeric composites; Materials Design

Google Scholar
https://scholar.google.com/citations?hl=en&user=nW3g6dMAAAAJ&view_op=list_works&sortby=pubdate

Min Zhou

Min Zhou's profile picture
min.zhou@me.gatech.edu

Zhou's research interests concern material behavior over a wide range of length scales. His research emphasizes finite element and molecular dynamics simulations as well as experimental characterization with digital diagnostics. The objective is to provide guidance for the enhancement of performance through material design and synthesis. Zhou maintains a high-performance computer cluster with 384 parallel processors and an intermediate-to-high strain rate material research facility which includes a split Hopkinson pressure bar apparatus, a tension bar apparatus, and a combined torsion-tension/torsion-compression bar apparatus.

Recent research focuses on the characterization of the dynamic shear failure resistance of structural metals and the role of microscopic damage in influencing failure processes through shear banding and fracture. Micromechanical models are developed to outline microstructural adjustments that can improve the performance of materials such as metal matrix composites, ceramic composites, composite laminates and soft composites. These models explicitly account for random microstructures as well as random crack and microcrack development. At the nanoscale, ongoing research focuses on the novel shape memory and pseudoelasticity that were recently discovered in metal (e.g., Cu, Au and Ni) nanowires. The coupling between the thermal and mechanical responses of semiconducting oxide (e.g., ZnO and GaN) nanowires is another active research direction which uses molecular dynamics simulations and continuum modeling. Dr. Zhou's group is also actively engaged in research on the equivalent continuum (EC) representation of atomistic deformation at different length scales. Related research projects are sponsored by the National Science Foundation (NSF), NASA, the Air Force Office of Scientific Research (AFOSR), the Air Force Research Lab (AFRL), the Office of Naval Research (ONR), the Army Research Office (ARO), industry, and the Center for Computational Materials Design (CCMD).

George W. Woodruff Professorship, Woodruff School of Mechanical Engineering
Phone
404.894.3294
Office
MRDC 4109
Additional Research

Computational MechanicsFracture & FatigueMechanics of Materials & ManufacturingMicro- and Nanoscale BehaviorNanomechanics.  

Google Scholar
https://scholar.google.com/citations?hl=en&user=f76HumIAAAAJ&view_op=list_works&sortby=pubdate

Donggang Yao

Donggang Yao's profile picture
yao@gatech.edu

Donggang Yao is a professor in the School of Materials Science and Engineering at Georgia Institute of Technology. He received his Ph.D. and Master’s degrees both from University of Massachusetts Amherst, and his B.S. degree from Shanghai Jiao Tong University, China. He teaches and directs research in the broad area of polymer engineering. His current research focuses on polymer micromolding, fiber spinning, single-polymer composites, constitutive modeling, and process modeling and simulation. He has published over 60 journal papers and 80 conference papers on polymer processing. He was a recipient of NSF Career Award in 2003 for his research on polymer micromolding. He chaired the ASME Composites and Textile Engineering Technical Committee from 2009 to 2011. He currently serves as an associate editor for ASME Journal of Manufacturing Science and Engineering and an editorial board member for Polymer Engineering and Science.

Professor, School of Materials Science and Engineering
Phone
404.894.9076
Office
MRDC, Room 4407
Additional Research

Biocomposites; Biomanufacturing; Biomaterials; Bioprocessing; Bioproducts; Fiber Properties; Forming; Lignin & Hemicellulose; Manufacturing; Mechanics of Materials; Microfluidics; Microporous Materials; New Materials for 3D Printing; Polymer & Fiber; Process Modeling; Non-Newtonian Fluid Mechanics

Hamid Garmestani

Hamid Garmestani's profile picture
hamid.garmestani@mse.gatech.edu

Hamid Garmestani is a professor in the School of Materials Science and Engineering at the Georgia Institute of Technology. He received his education from Cornell University (Ph.D. 1989 in Theoretical and Applied Mechanics) and the University of Florida (B.S. 1982 in Mechanical Engineering, M.S. 1984 in Materials Science and Engineering). After serving a year as a post-doctoral fellow at Yale University, he joined the Mechanical Engineering Department at Florida State University (FAMU-FSU College of Engineering) in 1990. 

Primary research and teaching interests include microstructure/property relationship in textured polycrystalline materials, composites, superplastic, magnetic and thin film layered structures. He uses phenomenological and statistical mechanics models in a computational framework to investigate microstructure and texture (micro-texture) evolution during processing and predict effective properties (mechanical, transport and magnetic). His present research interests are processing of fuel cell materials and modeling of their transport and mechanical properties.

Garmestani has been the recipient of a research award (FAR) through NASA in  1997. He received the Superstar in  Research award in 1999 by FSU-CRC.  He  has also been the recipient of the Engineering Research Award at the FAMU-FSU College of Engineering, Spring 2000. He is a member of the editorial board of the International Journal of Plasticity and board of reviewers for journal of Metal Transaction.  He is presently funded through NSF (MRD), NASA, Air Force and the Army.

Professor, School of Materials Science and Engineering
Phone
404.385.4495
Office
Love 361
Additional Research
  • Computational mechanics
  • Micro and nanomechanics
  • Electrical charge storage and transport
  • Fuel Cells
Google Scholar
https://scholar.google.com/citations?hl=en&user=P2kgdO0AAAAJ&view_op=list_works&sortby=pubdate

Chuck Zhang

Chuck Zhang's profile picture
chuck.zhang@isye.gatech.edu

Chuck Zhang is the Harold E. Smalley Professor in the H. Milton Stewart School of Industrial and Systems Engineering at Georgia Tech.

Zhang's research interests include scalable nanomanufacturing, modeling, simulation, and optimal design of advanced composite and nanomaterials manufacturing processes, multifunctional materials development, geometric dimensioning and tolerancing, and metrology. Most recently, he has initiated new research and education programs in advanced materials and manufacturing engineering for orthotics and prosthetics (O&P) applications. His research projects have been sponsored by a number of organizations, including the Air Force Office of Scientific Research, Army Research Laboratory, National Institute of Standards and Technology, National Science Foundation, Office of Naval Research, and Society of Manufacturing Engineers, as well as industrial companies such as ATK Launch Systems, Cummins, General Dynamics, GKN Aerospace Services, Lockheed Martin, and Siemens Power Generation.

Zhang received his Ph.D. degree in Industrial Engineering from the University of Iowa, an M.S. degree in Industrial Engineering from the State University of New York at Buffalo, and B.S. and M.S. degrees in Mechanical Engineering from Nanjing University of Aeronautics and Astronautics in China. Prior to joining ISyE, Zhang served as a professor and chairman of the Department of Industrial and Manufacturing Engineering at the Florida A&M University - Florida State University College of Engineering.

Harold E. Smalley Professor, H. Milton Stewart School of Industrial and Systems Engineering
Phone
404.894.4321
Office
Groseclose 0205 334
Additional Research

CompositesManufacturingNanomanufacturing

Google Scholar
https://scholar.google.com/citations?hl=en&user=8FCK0CIAAAAJ&view_op=list_works&sortby=pubdate