Willi Brandenburg, Ryan P. Russell, M. Shaw
Abstract
Abstract An efficient new framework for automating the search for multiple-body high-fidelity pump-down tours is presented. An existing pathfinding method for same-body transfer sequences is extended to include inter-moon transfers in patched conics. A separate algorithm analyzes each multiple-body sequence to determine how many legs can be efficiently converted to high-fidelity and optimized. The sequences are pruned, and patched conics searches are repeated from the terminal conditions of the high-fidelity trajectories. Frequent corrections in the high-fidelity model allow the optimization scheme to exploit, rather than fight, the high-fidelity perturbations. The process is automated and returns a Pareto optimal trade space of high-fidelity multiple-body pump-down tours. The method is used to create integrated trajectories starting at Titan arrival conditions and terminating with capture at Enceladus. The resulting Pareto front ranges from 900-1030 days time of flight and 410-550 m/s $$\Delta v$$ <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML"> <mml:mrow> <mml:mi>Δ</mml:mi> <mml:mi>v</mml:mi> </mml:mrow> </mml:math> , and leads to a compelling case for sending an orbiter to Enceladus.
Citation format
BRANDENBURG, Willi; RUSSELL, Ryan P.; SHAW, M. Automation of high-fidelity pump-down flyby tours at saturn. JOURNAL OF THE ASTRONAUTICAL SCIENCES, 2026, 73(4).