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LS2 Suite

Customized options for your lander and payload. 

From small payloads at universities
to full size lunar landers,

We have you covered.


An in-depth look at the 
First-Principles approach 
to the LS2 Suite and
all the options we
offer for your Mission. 

No legs, no limits,
the beauty of LS2
is in its simplicity. 

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FRAME
Polyhedral Structure

The Structural Integrity.

Engineered as an icosahedron  to grant unrestricted landing attitude. The shape provides omnidirectional assurance for any touchdown angle.

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VERTICES
Energy Dampers

The Impact
Mitigator.


Each vertex received the full load and dissipates up to 3.05 kJ, reducing 70-85% of peak shock to safeguard your lander and sensitive payloads.

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GIMBAL
Passive Stabilizer

The Self-Righting System.

360° mechanism requires zero power, sensors, or software. Frangible links shear on impact, freeing the gimbal for immediate, adaptive upright stability.

CAMERAS
Integrated Navigation

The Critical
View.


Optional passive cameras integrated within up to 10 vertices provide continuous visual telemetry across the entire mission and deliver real-time insight.

LS2 Mission Profile

Rooted in first-principles physics: momentum, energy dissipation, geometry, and low gravity. LS2 delivers deterministic success for your lander across any low-gravity surface.

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The Four Phases of Secure Upright Landing:

Phase 1: Terminal Descent

LS2 maintains structural alignment for a touchdown speed of 1 to 6 m/s, utilizing your lander’s thrusters. This ensures the system is optimized for powered braking maneuvers.

 

Phase 2: Initial Contact & Mitigation

Upon touchdown, the system absorbs 70-85% of peak forces across its structure, fully protecting your lander and sensitive payload. This is achieved through the LS2 Cascade Effect: impact forces are exponentially divided and dissipated as they travel away from the initial contact points, eliminating structural shock before it reaches the lander.

Phase 3: Link Fracture (Gimbal Release)
Frangible links shear instantly upon impact, freeing the passive gimbal to provide immediate, adaptive self-righting (upright) stability.

 

Phase 4: Self-Righting & Stabilization
The frame and gimbal passively rotate, achieving assured upright posture and omnidirectional stability on uneven terrain and slopes up to 45°.

This process directly eliminates the instability failure modes inherent to

lunar landings on uneven and challenging terrain.

 

Landing Complete: Mission Ready
Your lander is secure and upright. LS2 is rated to enable high-value, multi-site exploration hops of 10-50 meters, leveraging residual lander propellant. This offers mission planners unprecedented flexibility for site correction or scientific exploration.
 

Lunar Craters

Competitive Advantage

Why LS2 Wins Where Others Struggle:​​

Legacy rigid legs have dominated for 70 years — but they weren’t designed for today’s autonomous, off-nominal missions.

LS2 changes that equation.

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Rooted in First Principles:

We didn’t tweak legs. We asked, what does physics actually require? The answer: passive geometry, force distribution, low-gravity stability — not active crutches.

Built on First Principles,
Not Legacy Assumptions

For 70 years, landing systems have been built on the same assumption: rigid legs are necessary, terrain is forgiving, active control can fix everything.

 

At CrescentTide, we started from scratch and 

asked the questions nobody else was:
Do we need legs at all? Why are we fighting the

Moon instead of working with it?

 

From those fundamentals — momentum, energy dissipation, geometry, and low gravity

we reasoned upward.

 

No rigid legs. No active complexity. No assumptions.

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Force Mitigation Cascade Effect

The result? A passive, polyhedral stabilization system that:

  • Distributes forces through multi-point contact

  • Absorbs and cascades shock via layered vertices

  • Self-rights via pendulum effect in low gravity

  • Stabilizes on equilateral triangular faces once settled

  • Enables multi-site hops with residual propellant

 

This isn’t incremental improvement. It’s ruthless reduction to physics basics and fearless rebuilding; from fragile, one-shot landings to assured, mobile, multi-mission capability for your lander and payloads. 

We don’t build landers or payloads, we enable the companies that do so you can focus on propulsion, avionics, science, mining, ISRU, and the stars.

LS2 isn’t just hardware; it’s a declaration that we can do better by thinking harder and starting over when the old way is broken.​ Partner with us to make the impossible routine.

Partner with CrescentTide:

Tailored solutions for landers, payloads, and the new lunar economy: integration, licensing, and manufacturing support that keeps you at the center.

INTEGRATION CONSULTING​​

The Expert Partner

 

Use our leadership team for structural analysis, LS2 integration, mission assurance, and TRL advancement. We partner to assure your lander and payloads arrive ready to work.

TECHNOLOGY LICENSING​​

Strategic Access

 

Secure flexible licensing agreements for LS2 framework and gimbal mechanism. Gain access to a passive, proven stabilization system that enhances without redesign.

COLLABORATIVE

MANUFACTURING​​

Scalable Production

 

Partner with our supply chain experts to integrate LS2

into your manufacturing pipeline. Scalable production for landers and payloads with quality and speed you can trust.

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