Cislunar Cargo Return by Distributed Laser-Ablative Trajectory Shaping (BRAKE) and Passive Atmospheric Capture (BOLT ODP): A Systems Engineering and Flight Mechanics Design Study

This design study introduces an end-to-end, zero-onboard-propellant architecture for returning uncrewed cargo from Earth–Moon Lagrange Point 4 (EML4) to a controlled ocean splashdown. The names used here — BRAKE for the distributed laser-kinetic network, BOLT ODP for the ballistic capsule, and KICK for the facility linear-synchronous-motor ejector — are coined in this paper to label the proposed elements; they do not refer to an existing program, station, or recovery authority. A facility-mounted 70 m linear synchronous motor (KICK) ejects the capsule from a proposed EML4 staging node at 150 m/s. Lunar-polar and Molniya-orbit ytterbium-fiber laser platforms (BRAKE-1/2/3) apply ablative Δv to sacrificial NiFe/slag targets to shape a lunar flyby and lock the Earth-entry corridor at γEI = −5.8°. Earth's atmosphere and a triple basalt-cloth parachute cluster complete capture to an 18 m/s tropical maritime splashdown. The study records the vehicle envelope, Δv allocation, laser-matter coupling and optical-range limits, entry and recovery sizing, and the critical risk register. Where a calculation is not closed, the governing assumption is stated explicitly. This record is the primary source for the architecture.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-12
DOI
https://doi.org/10.5281/zenodo.22725957
Primary Topic
Space Satellite Systems and Control
Type
preprint
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preprint

Cislunar Cargo Return by Distributed Laser-Ablative Trajectory Shaping (BRAKE) and Passive Atmospheric Capture (BOLT ODP): A Systems Engineering and Flight Mechanics Design Study

Tristan Lim
Zenodo (CERN European Organization for Nuclear Research)
Space Satellite Systems and Control
preprint

Cislunar Cargo Return by Distributed Laser-Ablative Trajectory Shaping (BRAKE) and Passive Atmospheric Capture (BOLT ODP): A Systems Engineering and Flight Mechanics Design Study

Tristan Lim
preprint en

Abstract

This design study introduces an end-to-end, zero-onboard-propellant architecture for returning uncrewed cargo from Earth–Moon Lagrange Point 4 (EML4) to a controlled ocean splashdown. The names used here — BRAKE for the distributed laser-kinetic network, BOLT ODP for the ballistic capsule, and KICK for the facility linear-synchronous-motor ejector — are coined in this paper to label the proposed elements; they do not refer to an existing program, station, or recovery authority. A facility-mounted 70 m linear synchronous motor (KICK) ejects the capsule from a proposed EML4 staging node at 150 m/s. Lunar-polar and Molniya-orbit ytterbium-fiber laser platforms (BRAKE-1/2/3) apply ablative Δv to sacrificial NiFe/slag targets to shape a lunar flyby and lock the Earth-entry corridor at γEI = −5.8°. Earth's atmosphere and a triple basalt-cloth parachute cluster complete capture to an 18 m/s tropical maritime splashdown. The study records the vehicle envelope, Δv allocation, laser-matter coupling and optical-range limits, entry and recovery sizing, and the critical risk register. Where a calculation is not closed, the governing assumption is stated explicitly. This record is the primary source for the architecture.

Zenodo (CERN European Organization for Nuclear Research)
Life below water
Space Satellite Systems and Control
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Cislunar Cargo Return by Distributed Laser-Ablative Trajectory Shaping (BRAKE) and Passive Atmospheric Capture (BOLT ODP): A Systems Engineering and Flight Mechanics Design Study — Tristan Lim · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS