EURUS.SPACE / LUNAR INDUSTRIAL SYSTEMS
VISUAL PROTOTYPE / NASA ARCHIVE IMAGERY USED AS CONTEXTUAL PLACEHOLDERS

Lunar infrastructure,
built as a system.

Resources, storage, mobility, power and construction — designed to connect instead of ending at the edge of one mission.

THE SURFACE IS NOT A DESTINATION.
IT IS AN OPERATING ENVIRONMENT.
WEBSITE 3.0 / CONCEPT 03 SCROLL ↓
01 / WHY WE’RE BUILDING THIS

Individual machines can accomplish missions. Shared infrastructure changes what the next mission does not need to bring again — a systems view increasingly reflected in NASA’s Moon to Mars architecture.

LUNAR INDUSTRIAL ARCHITECTURE

The useful Moon begins after the first machine leaves something behind.

02 / HOW IT ALL CONNECTS

Five connected layers. They roughly span the same terrain NASA describes through ISRU, Logistics, Mobility, Power and Infrastructure Support — organized here around the eurus resource loop.

01

Acquire

Capture and condition useful resources.

02

Hold

Keep matter and energy available through harsh cycles.

03

Move

Transfer payloads, resources and capability.

04

Build

Turn local material and terrain into infrastructure.

05

Operate

Coordinate assets across intermittent and degraded links.

02A / WHAT COMES NEXT

Built for the Moon we’re reaching now.
Ready for what comes after.

Near-term lunar exploration needs practical capabilities that work together. Longer term, the same interfaces can support shared utilities, commercial services and a resource-driven lunar economy.

HORIZON 01 / ARTEMIS ERA

Living and working on the Moon

Science, exploration, polar resource assessment, surface mobility, power, logistics, construction and increasingly persistent robotic and human activity.

ISRUMobilityPowerLogisticsConstructionAutonomy
HORIZON 02 / SPACE RESOURCES

When the Moon becomes an economy

Resources become commodities. Depots become utilities. Mobility becomes reusable. Construction becomes civil infrastructure. Multiple operators begin sharing the same underlying systems.

Water economyDepotsReusable transportIndustrial powerLocal constructionShared operations
REFERENCE FRAME / NASA MOON TO MARS: ISRU · LOGISTICS · MOBILITY · POWER · INFRASTRUCTURE SUPPORT / DARPA LunA-10 (completed study): shareable, scalable, resource-driven systems
CONTEXT / APOLLO 14 LUNAR MODULE NASA ARCHIVE IMAGE
03 / WHAT SHOULD REMAIN

A lander arrives.
A utility remains.

The difference between exploration and an economy is what the next mission does not need to bring again: power, storage, mobility, logistics, interfaces — infrastructure that can be reused.

REFERENCE IMAGE IS HISTORICAL CONTEXT, NOT EURUS.SPACE HARDWARE. PRODUCTION SITE WOULD REPLACE OR PAIR ARCHIVE IMAGERY WITH EURUS TEST AND DEVELOPMENT PHOTOGRAPHY.

One company.
Six working layers.

Website 3.0 treats the programs as an infrastructure stack rather than a catalogue of inventions.

01
WATERIG / OASIS
Volatile handling, capture and conditioning.
Resource
01Why this matters+
Lunar polar volatiles are potentially more than scientific samples. WATERIG and OASIS explore how volatile-bearing material can be handled, captured and conditioned so useful molecules can move into a wider surface resource chain.
Artemis / sustained operations

Supports resource prospecting, ISRU demonstrations and progressively more sustained surface operations.

Long-term space resources

Resource production layer feeding storage, oxygen production, mobility, life-support and other downstream uses.

02
FIRN / TARN
Storage and reserve architecture for long-duration surface use.
Reserve
02Why this matters+
Resource extraction only matters if the product can be preserved, staged and allocated. FIRN and TARN explore storage and reserve architectures intended to make water and thermal capacity available across operational cycles.
Artemis / sustained operations

Supports logistics, staging, contingency reserves and longer-duration surface operations.

Long-term space resources

Commodity storage and depot layer within a future lunar resource network.

03
WAVE Multi-Modal / FLARE
A water-centered propulsion family spanning spacecraft, lunar mobility and future reusable transport.
Mobility
03Why this matters+
WAVE™ Multi-Modal is the frontier propulsion program: a common water-centered architecture intended to scale across more than one operating regime rather than ending as a single thruster or vehicle.
Artemis / sustained operations

Near-term small-spacecraft propulsion and subsystem validation, with a path toward refuelable lunar mobility and logistics.

Long-term space resources

A reusable transport layer connecting depots, surface assets and future cislunar cargo services.

04
EMBER
Compact regenerative power architecture.
Power
04Why this matters+
EMBER extends the utility architecture into energy. Regenerative fuel-cell concepts can link stored reactants, electrical demand and thermal management in compact systems that complement other surface power sources.
Artemis / sustained operations

Supports distributed power, backup energy and operations through variable illumination or duty cycles.

Long-term space resources

Power utility supporting industrial loads and resource-processing infrastructure.

05
LOOM / LatticeForm
Surface preparation, positioning and construction.
Build
05Why this matters+
LOOM and LatticeForm treat construction as shared infrastructure rather than a one-off building task. Cable-driven positioning and regolith-based forming can support berms, landing protection, pathways and other early civil works.
Artemis / sustained operations

Supports autonomous construction, landing-zone preparation and reduced dependence on imported construction mass.

Long-term space resources

Converts local mass and terrain into productive infrastructure — the physical foundation of a lunar industrial base.

06
CAIRN / LUI
Interfaces, telemetry and inherited autonomy.
Operate
06Why this matters+
CAIRN and LUI address the operating layer: interfaces, telemetry, distributed control and inherited autonomy across assets that may be intermittently connected or managed by different operators.
Artemis / sustained operations

Supports interoperable operations, communications resilience and coordination across heterogeneous surface assets.

Long-term space resources

Industrial operating layer — effectively the control fabric for future lunar utilities and resource networks.

FRONTIER PROGRAM / WAVE™ MULTI-MODAL
Not another vehicle. Not one propulsion point solution. WAVE asks whether water can become a common mobility medium across a family of missions.

Water becomes mobility.

One resource. Multiple propulsion regimes. A path from small-spacecraft validation to reusable lunar and cislunar transport.

NOW / VALIDATE
WAVE-XS
Small-spacecraft propulsion, feed-system learning and subsystem validation.
NEXT / MOBILITY
WAVE + FLARE
Refuelable lunar mobility, payload repositioning and reusable surface operations.
FRONTIER / SCALE
Cislunar transport
Future cargo movement, depot-linked logistics and propulsion as shared infrastructure.

WAVE sits where eurus.space’s resource architecture becomes a transportation architecture: water captured or delivered to the lunar environment can be stored, allocated and eventually used to move useful mass.

ARCHITECTURE CONTEXT / NASA: ISRU · LOGISTICS · MOBILITY · TRANSPORTATION SYSTEMS
DARPA LunA-10 (completed): integrated, shareable and resource-driven lunar infrastructure
04 / WATER CONNECTS EVERYTHING

Water connects more than propulsion.

Capture, store, allocate, move and reuse. The value of lunar water grows when each subsystem can hand it to the next one.

010203 0405 CAPTURESTORE ALLOCATEMOVEUSE OASIS / WATERIGWAVE / FLARE SURFACE SYSTEMS

Built, tested, learned.

The production site should become increasingly physical: workshop images, test articles, dated experiments, measured results and architecture studies. Capability, evidence, readiness — and the gap still left to close.

CONTEXT / APOLLO 17 SURFACE OPERATIONS NASA ARCHIVE IMAGE
A / BUILD

Prototype photography

Real scale, real fixtures, real mess. Development photography should not be over-produced.

B / TEST

Measured test records

Date, setup, purpose, result. Enough detail to establish that the work exists.

C / STUDY

Engineering architecture

Clean diagrams and renders remain useful — as long as maturity is unmistakable.

D / FIELD

Program participation

Technical papers, agency programs, demonstrations and partner work appear as evidence, not logo wallpaper.

VERSION 3 DESIGN PRINCIPLE: IF IT IS A RENDER, SAY IT IS A RENDER. IF IT IS A TEST, SHOW THE TEST. IF IT IS AN ARCHITECTURE, SHOW THE CONNECTIONS.
05 / BUILDING THE GROUND

Build the ground before the base.

LOOM™ and LatticeForm™ form the construction layer: positioning tools, working with regolith and preparing shared surface infrastructure before larger permanent assets arrive.

PositioningLOOM™
Form / reinforcementLatticeForm™
FeedstockLocal regolith
Initial focusLanding infrastructure

Leave capability on the surface.