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Researcher
- Sudarsanam Babu
- Thomas Feldhausen
- Adam Stevens
- Ahmed Hassen
- Alex Roschli
- Blane Fillingim
- Lauren Heinrich
- Peeyush Nandwana
- Yousub Lee
- Cameron Adkins
- Chris Tyler
- Craig Blue
- David Olvera Trejo
- Halil Tekinalp
- Isha Bhandari
- J.R. R Matheson
- Jesse Heineman
- Jim Tobin
- John Lindahl
- Liam White
- Michael Borish
- Paritosh Mhatre
- Peter Wang
- Rangasayee Kannan
- Roger G Miller
- Ryan Dehoff
- Sarah Graham
- Scott Smith
- Soydan Ozcan
- Steven Guzorek
- Umesh N MARATHE
- Vipin Kumar
- Vlastimil Kunc
- William Peter
- Yukinori Yamamoto
- (-) Brian Post

This manufacturing method uses multifunctional materials distributed volumetrically to generate a stiffness-based architecture, where continuous surfaces can be created from flat, rapidly produced geometries.

A valve solution that prevents cross contamination while allowing for blocking multiple channels at once using only one actuator.

This work seeks to alter the interface condition through thermal history modification, deposition energy density, and interface surface preparation to prevent interface cracking.

Additive manufacturing (AM) enables the incremental buildup of monolithic components with a variety of materials, and material deposition locations.

Wire arc additive manufacturing has limited productivity and casting processes require complex molds that are expensive and time-consuming to produce.

As additive manufacturing technologies advance and 3D-printers get larger, there is a constant need for larger extruders with higher throughput to construct larger objects at reasonable time.

Complex protective casings and housings are necessary for many applications, including combustion chambers of gas turbines used in aerospace engines. Manufacturing these components from forging and/or casting as a whole is challenging, costly, and time-consuming.

In wire-arc additive manufacturing and hot-wire laser additive manufacturing, wire is fed into a melt pool and melted through the arc or laser process.