An antenna made up of many small radiating elements whose signals are shifted in phase and amplitude so the combined radio beam can be steered or shaped electronically rather than by moving parts. Think of it like a crowd doing a wave in precise timing to send a focused signal in one direction. Investors care because the technology can enable faster, more reliable wireless links, smaller form factors and lower mechanical maintenance, affecting product performance, manufacturing costs and addressable markets in telecom, satellite, defense and automotive applications.
low earth orbittechnical
Low Earth orbit (LEO) is the region of space close to Earth, roughly from about 160 to 2,000 kilometers above the surface, where satellites and spacecraft circle the planet quickly—think of it as a busy highway just overhead. It matters to investors because many communications, imaging and data services rely on satellites in LEO; their shorter lifespans, lower launch costs, crowded lanes and debris risks directly affect the cost, revenue potential and operational risks of companies that build, launch or use these satellites.
medium earth orbittechnical
Medium Earth orbit (MEO) is the band of space between low Earth orbit and geostationary orbit, roughly from about 2,000 km up to 35,786 km above Earth. It’s where many navigation and communications satellites operate because it balances coverage area, signal delay and satellite lifetime—think of it as the middle floor of a multi-story building where you trade proximity for broader reach. Investors care because a satellite’s orbit affects service quality, launch and replacement costs, regulatory needs and competitive positioning of space-related businesses.
geostationary orbittechnical
A geostationary orbit is a circular path about 35,786 kilometers above Earth’s equator where a satellite moves at the same speed as the planet’s rotation, so it appears fixed over one spot like a parked relay tower in the sky. For investors it matters because these orbits provide constant coverage for communications, broadcasting and weather services, are limited in supply and are tied to long-lived, revenue-generating assets and regulatory licenses.
dynamic beam steeringtechnical
Dynamic beam steering is a technology that electronically controls the direction of a light or radio-frequency beam in real time, steering where the energy points without moving mechanical parts by changing phase, timing or refractive properties across an array. It matters to investors because it enables smaller, faster and more reliable versions of radar, LIDAR, optical communications and sensing systems, affecting product performance, manufacturing cost and commercial opportunity much like replacing a bulky rotating antenna with a solid-state alternative.
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SALT LAKE CITY--(BUSINESS WIRE)--
Redwire Corporation (NYSE: RDW), a global leader in aerospace and defense technology solutions, today announced a strategic investment in next‑generation phased array antenna technology to deliver faster, more resilient, and more scalable space‑based data networks for global warfighter communications. This strategic investment positions Redwire at the forefront of a rapidly expanding market where high‑capacity, low‑latency communication is essential for national security, civil, and commercial missions.
Redwire’s investment will accelerate the development and production of highly adaptable phased array antenna systems capable of supporting emerging mission demands across low Earth orbit (LEO), medium Earth orbit (MEO), and geostationary orbit (GEO). These advanced systems will provide dynamic beam steering, improved link reliability, and increased throughput—critical capabilities for modern warfighter communications as the industry advances toward distributed architectures and proliferated constellations.
“Space data networks are evolving at an unprecedented pace, and phased arrays are a foundational technology enabling that transformation,” said Mike Sharkey, Senior Vice President, Redwire Defense Tech, RF Systems. “By investing heavily in this domain, Redwire is ensuring our customers can deploy communication solutions that are more flexible, more powerful, and more resilient than ever before.”
Redwire’s portfolio of flight-proven RF products includes the tactical connectivity antennas that are being utilized on the Proliferated Warfighter Space Architecture military satellite network—in 2023 the antennas enabled the first‑ever U.S. military Link‑16 communications from space. Additionally, Redwire’s portfolio includes highly complex RF payloads, including advanced RF payloads currently in production for a European defense contractor.
These advanced systems are flight-proven, providing a strong foundation for the company’s expanded product investment, which follows a major capital upgrade of Redwire’s RF flight electronics assembly facilities.
Redwire’s RF Systems group, based in Longmont, Colorado, is a merchant supplier of RF tactical communications and sensing payloads to Tier 1 aerospace and defense primes. These advanced RF systems are the backbone of mission-critical space communication and Redwire is a world leader in antenna production, with more than 200 flight antennas delivered.
About Redwire
Redwire Corporation (NYSE: RDW) is an integrated space and defense tech company focused on advanced technologies. We are building the future of aerospace infrastructure, autonomous systems, and multi-domain operations leveraging digital engineering and AI automation. Redwire’s approximately 1,400 employees located throughout North America and Europe are committed to delivering innovative space and airborne platforms transforming the future of multi-domain operations. For more information, please visit RDW.com.