Space Frontier
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High-density rocket propulsion

Rocket engines.Engineered from the fuel up.

Space Frontier combines new fuels and advanced manufacturing to unlock the potential of hybrid propulsion.

The premise

Engineering liquid-class performance.
With solid-fuel simplicity.

Our goal is to bring the performance potential of liquid propulsion together with the simplicity of solid fuels and the safety advantages of a hybrid architecture. Our work on proprietary fuels targets the historical constraint: solid-fuel performance and reliability.

We treat fuel as a performance-defining element to be engineered. Our proprietary bio-based formulations, tailored grain geometries and additive manufacturing aim to unlock safer, more efficient and more versatile hybrid systems, with lower pollutant emissions as a development objective.

01 / SAFETY

Non-explosive architecture

Fuel and oxidizer remain physically separated until operation, supporting safer handling and integration.

02 / SIMPLICITY

Fewer components. Easier integration.

Compared with liquid-propellant architectures, hybrid systems can reduce plumbing and component count, with potential benefits for size, cost and integration.

03 / VERSATILITY

Fuel tailored to the mission

High-density formulations and printed grain architectures let us design around different operating profiles, from satellite propulsion to atmospheric flight.

The platform

Unlocking hybrid potential.
In five connected steps.

Our approach connects fuel chemistry, grain geometry, manufacturing and physical evidence with AI-assisted modelling. Each step informs the next design iteration.

01

Material design

Engineer proprietary bio-based formulations around density, combustion response and the required performance.

02

Grain design

Tailor geometry, composition and layering to the application and its operating profile.

03

Print & characterise

Translate the design into hardware through multi-material 3D printing and characterise the resulting grain.

04

Test & scan

We will test in our proprietary infrastructure, purpose-built for liquid N₂O, then use CT analysis to observe how the grain evolves.

05

AI-assisted modelling

Combine combustion and regression-rate models with AI-assisted analysis to interpret test evidence and guide the next iteration.

Application domains

One platform.
Multiple applications.

The same engineering core is configured for satellite propulsion, solid turbojets and hypersonic operating profiles.

Built on evidence

Design, test,
model, repeat.

Meet Space Frontier →
01 / DESIGN

Engineer

Fuel formulation and grain geometry start from the required operating profile.

02 / TEST

Observe

We will test in our proprietary propulsion test infrastructure, purpose-built for liquid nitrous oxide (N₂O). Dedicated combustion testing and CT analysis will connect measured behaviour with the next design iteration.

03 / MODEL

Predict

AI-assisted combustion and regression-rate modelling connects physical evidence with the next design iteration.

Customers · Partners · Investors

Build the next propulsion
system with us.

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