NANOSONIC INC. — Department of Defense SBIR Phase I: N222-122

NANOSONIC INC. — SBIR Phase I award from Department of Defense.

Amount
$140,000
Agency
Department of Defense · Navy
Program / Phase
SBIR · Phase I
Topic
N222-122
Solicitation
22.2
NAICS
Place of performance
VA
Period
2022-11-28 → 2023-05-29

Description

Current commercial radio frequency (RF) cables and connectors are not suited to survive temperatures exceeding 1,200°C. For hypersonic systems, such as missiles, aircraft, or spacecraft, RF cables and connectors must be able to transmit telemetry, targeting, and other signals during flight. Considering the temperatures imposed on the leading edge of a vehicle traveling at hypersonic speeds (>1,800°C), the inner environment of the vessel will equilibrate to temperatures above 1,200°C, leading to material degradation and complete functional failure of commercial RF cables and connectors, regardless of location. Current cable and connector components including the signal carrying conductor, dielectric insulators, electrically conductive grounding, protective jacket, and metal connector housing cannot survive and function at these temperatures because of their material composition. It is the goal of this Phase I program to identify and down select materials for new and innovative RF cables and connectors that can maintain structure and functionality up to 1,500°C over extended flight times. Working with established corporate partners Lockheed Martin, New England Wire Technologies (NEWT), and McAllister Mills, materials will be chosen, supplied, and characterized at NanoSonic for prototyping and eventual inclusion into conventional manufacturing processes. Specific materials that will be investigated include, but are not limited to, ceramic fabrics for dielectric sleeving, steel alloys for conducting and shielding members, as well as 3D-printed steel and ceramic powders. Through an extensive design of experiments, materials that exhibit optimal performance once exposed to temperatures ranging from 1,200°C to 1,500°C will be down selected for prototyping.