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Metis Design Corporation STTR Phase I Award, October 2018

A STTR Phase I contract was awarded to Metis Design Corporation in October, 2018 for $124,999.0 USD from the U.S. Department of Defense and United States Navy.

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Contents

sbir.gov/node/1846705
Is a
SBIR/STTR Awards
SBIR/STTR Awards

SBIR/STTR Award attributes

SBIR/STTR Award Recipient
Metis Design Corporation
Metis Design Corporation
0
Government Agency
U.S. Department of Defense
U.S. Department of Defense
0
Government Branch
United States Navy
United States Navy
0
Award Type
STTR0
Contract Number (US Government)
N68335-19-C-00800
Award Phase
Phase I0
Award Amount (USD)
124,9990
Date Awarded
October 4, 2018
0
End Date
December 24, 2019
0
Abstract

Manufacturing of structural composites traditionally employs autoclaves to achieve high quality parts, including high fiber-volume-fractions and low porosity. A laminate comprised of stacked prepreg plies are cured under a vacuum in addition to ~7 bar of pressure to prevent formation of voids, particulalry in interlaminar (inter-sheet/ply) regions. However, manufacturing composites within an autoclave is accompanied by high acquisition and operation costs due to the necessity of specialized heated pressure vessels. Furthermore, these costs increase dramatically as the size of structure increases. The capacity of autoclaves limits the size of parts, and the production rate is primarily affected by autoclave availability. As a result, there has been interest in development of alternative techniques. Out-of-autoclave (OoA) prepreg has been introduced commercially as an alternative to autoclave-cured prepreg, however it still imposes similar limitations due to the need for an oven, plus OoA material does not yet yield the same properties as those cured in an autoclave under pressure. Thus, MDC and MIT have developed a process to manufacture quality prepreg-based composite laminates out-of-oven (OoO) using conductive curing via embedded and/or surface-mounted carbon nanotube networks (CNT) that have been demonstrated at 550C.

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