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Spatial Optimization of Interconnected Systems in Non-Convex Design Spaces

Computational Engineering, Finance, and Science 2026-05-19 v1 Mathematical Software

Abstract

This paper presents a spatial optimization methodology that extends the Spatial Packaging of Interconnected Systems with Physical Interaction (SPI2) framework to support arbitrary, non-convex design boundaries. We introduce a smooth, differentiable inside-outside evaluation for components represented using the Maximal Disjoint Ball Decomposition (MDBD) method. The framework also incorporates center-of-gravity and moment-of-inertia calculations directly into the optimization, and provides an end-to-end computer-aided design (CAD) workflow for importing components and reconstructing the optimized assembly. The method is demonstrated on a fictional aircraft auxiliary unit. Results show that the optimizer can place multiple interconnected components within a custom geometry while simultaneously handling routing and physics-based objectives. The approach maintains geometric feasibility within numerical tolerance and illustrates the potential of MDBD-based SPI2 methods for practical engineering design applications.

Keywords

Cite

@article{arxiv.2605.17387,
  title  = {Spatial Optimization of Interconnected Systems in Non-Convex Design Spaces},
  author = {S. Westerhof and T. Hofman},
  journal= {arXiv preprint arXiv:2605.17387},
  year   = {2026}
}

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R2 v1 2026-07-22T07:17:18.809Z