Category

Deployable Structures Companies

4 organizations3 countries

4 organizations working in deployable structures across the global space industry.

Names to know in deployable structures

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Power Systems In development

Astradyne

Bari, Italy commercial

Astradyne is a Bari, Italy-based deep-tech startup, founded in 2021, that develops lightweight, high-performance deployable solar power systems for small satellites, with a parallel photovoltaic product line for terrestrial use. Its flagship space product, Solar-Z, is a compact deployable solar array intended to maximize power generation per unit of mass for small satellites; the company also lists a Solar-X array and says it is developing a high-power spacecraft platform. Astradyne's stated goal is to deliver payload power, volume and mass efficiency associated with larger satellites at small-satellite cost points, and its partner and supporter list includes Thales Alenia Space and the European Space Agency. The company built its early capital base from a roughly €400,000 pre-seed round in 2023 backed by Galaxia (the CDP Venture Capital-run National Technology Transfer Hub for Aerospace, not to be confused with the Canadian satellite company of a similar name) and Obloo Ventures. In September 2025 Astradyne closed a €2 million seed round led by Primo Capital's Primo Space fund, with Galaxia and Obloo Ventures both returning as investors. CEO Davide Vittori said the new funding would be used to push the company's solar-array technology toward Technology Readiness Level 9 and in-orbit qualification. As of its most recent funding announcement, Astradyne had not yet flown its solar arrays in orbit; the company describes itself as working toward its first in-orbit qualification mission rather than having already demonstrated hardware on orbit, placing it at an earlier stage than flight-proven satellite-subsystem suppliers.

Bari, Italy · Est. 2021 €2.4M raised
Deployable Structures

Dcubed

Munich, Germany commercial

Dcubed is a Munich-based German space technology company founded in 2019, developing deployable space structures and in-orbit manufacturing systems — particularly focused on manufacturing large-format solar arrays directly in space using UV-cured photopolymer resin technology, enabling spacecraft to deploy far larger power-generating structures than could be packaged and launched as pre-built rigid or folded arrays. The core innovation is the ARAQYS (Additive Resin Architecture for Quantified Yield in Space) system: a compact launch package containing liquid photopolymer resin within a precision fiber structure that, once on orbit, deploys and manufactures a rigid structural solar array by exposing the resin to the abundant UV radiation of the space environment — the sun's intense UV light (unfiltered by atmosphere in space) polymerizes the liquid resin into solid structural members at essentially zero energy cost to the spacecraft. ARAQYS is planned to demonstrate a 15-meter solar array generating 2 kW of electrical power in a Q1 2027 orbital mission, validating the manufacturing process at flight scale. The problem ARAQYS solves is fundamental: large solar arrays must fit within launch vehicle fairing constraints (~5m diameter) despite needing to deploy 10-30m across to generate sufficient power for ambitious missions. Current solutions — roll-out solar arrays (ROSA/iROSA), Z-fold rigid panels, Flex/PRAM concepts — achieve impressive mass efficiency but face packaging and deployment mechanism complexity. Dcubed's approach: launch the raw material (resin + fiber frame) in a compact roll, then manufacture the finished structure in the destination environment. Mass efficiency is dramatically superior because liquid resin is denser than air-gapped folded panel structures and no complex spring-loaded deployment mechanisms are required. Munich's space cluster provides essential ecosystem access: Airbus Defence and Space's Munich-Ottobrun facility (Ariane program hardware, satellite structures), ISAR Aerospace (orbital launch vehicle startup), OHB System (small satellite manufacturer), ESA BIC Bavaria incubation funding, and DLR's Munich/Oberpfaffenhofen campuses with space structures research laboratories. Dcubed competes with Redwire Space (US, roll-out solar arrays, Archinaut in-space fabrication), Made In Space/Redwire (fiber optic manufacturing in orbit), and ATK/Northrop Grumman ULTRAFLEX arrays for large deployable power generation aboard future spacecraft.

Munich, Germany · Est. 2019
Antennas Verified

HPS GmbH

Munich, Germany commercial

HPS GmbH (High Performance Space Structure Systems) is a Munich, Germany-based spacecraft antenna and thermal hardware specialist founded in 2000, providing European satellite programs with precision solid reflector antennas, large deployable reflector antenna subsystems, and passive thermal control hardware — operating as a niche systems supplier to major European primes (Airbus Defence & Space, Thales Alenia Space, OHB) and ESA for mission-critical antenna and thermal components. HPS's solid reflector antennas range from compact high-gain antennas for spacecraft TT&C uplink/downlink and scientific instrument beamforming to larger direct radiating and offset-fed parabolic reflectors for communications satellites. The company's engineering capability spans RF performance prediction (using electromagnetic simulation tools including GRASP), structural design for launch environment survival, and thermal stability design ensuring the reflector maintains its parabolic shape within allowable distortion limits across the orbital thermal environment (-180°C to +150°C cycling in shade-to-sun transitions). Large deployable reflector subsystems represent HPS's most technically demanding product area: foldable antenna structures that stow compactly within the satellite launch configuration and then unfurl to produce apertures several meters in diameter after satellite separation. These deployable reflectors use carbon fiber reinforced polymer (CFRP) ribs, tension cables, and precision release mechanisms, requiring rigorous structural analysis and test verification to guarantee deployment reliability on orbit. Flight heritage includes contributions to the Heinrich Hertz satellite (Germany's geostationary technology demonstration satellite, testing high-frequency Q-band and V-band communications for future beyond-5G applications) and ESA's Euclid space telescope — launched in 2023 to map the large-scale structure of the universe through weak gravitational lensing and galaxy clustering measurements, for which HPS provided antenna hardware for the satellite's communications system. Thermal control hardware from HPS includes multi-layer insulation (MLI) blankets, thermal radiators, heat pipes, and precision thermal management structures for temperature-sensitive instruments and batteries. The company's dual competency in antennas and thermal systems reflects the physical overlap between these domains — large antennas must be thermally designed to maintain dimensional stability, and thermal radiators often share structural integration requirements with antenna mounting.

Munich, Germany · Est. 2000
Antennas Verified

Tendeg

Louisville, United States commercial

Tendeg is a Louisville, Colorado-based deployable space antenna company founded in 2016, specializing in precision mesh reflector antennas for synthetic aperture radar (SAR), communications, and science missions — with over 25 systems flown across commercial and government missions at 100% on-orbit deployment success, including more than 10 high-precision SAR antenna reflectors deployed for Capella Space's commercial X-band SAR constellation. Tendeg's core product is a precision deployable mesh reflector: a large parabolic reflector antenna surface woven from a tensioned metallic mesh (typically gold-plated molybdenum wire for thermal stability and RF reflectivity) supported by deployable ribbed frames, struts, and tensioning structures that unfurl from a compact stowed package after satellite deployment. The mesh reflector can achieve very large apertures (1 to 6+ meters in diameter) while folding into the volume of a briefcase-sized stowed package — critical for small satellites where the entire bus might fit in a shoebox but the mission requires a large antenna aperture for the radar cross-section sensitivity or downlink gain the mission needs. For SAR satellites, aperture size directly determines synthetic aperture radar resolution and swath width — a larger real aperture enables a longer synthetic aperture to be formed, yielding finer cross-range resolution. Capella Space's early X-band SAR constellations used Tendeg reflectors to achieve sub-meter resolution imagery from satellites small enough for rideshare launches, enabling Capella's rapid deployment of commercial SAR capability at dramatically lower cost than traditional large SAR satellites. The 100% deployment success rate across all 25+ flown systems is commercially critical in an industry where a single deployment failure destroys the entire mission investment. Tendeg's manufacturing process involves precision tooling to ensure the mesh reflector's parabolic shape accuracy meets the antenna gain and pattern specifications, validated through RF characterization and photogrammetry measurements of deployed shape. The company works with NASA on science mission antennas requiring specific frequency bands and polarization combinations, and with Lockheed Martin on government communications satellite antennas. Competitors include Harris Corporation (now L3Harris) for large deployable mesh reflectors, MMA Design (tape spring booms), Opterus R&D (origami composites), and RUAG Space's deployable reflectors. Tendeg's SAR-specific track record with Capella is a key commercial differentiator.

Louisville, United States · Est. 2016

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