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April 17, 20260 citationsOpen Access

Interlocking Modular Magnetic Shell Architecture for Self-Powered Rolling Robotic Platforms with Dual-Purpose Gyro-Alternator Arms and Multiaxial Adaptive Traction

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CGChris Grillos

Key Points

  • To develop a novel rolling robotic platform architecture that enables adaptive locomotion and energy harvesting.
  • Introduced a modular architecture with discrete structural modules coupled by magnetic interfaces.
  • Developed arms that function as both manipulators and regenerative energy generators.
  • Integrated adaptive traction actuators on modular segments for versatile terrain navigation.
  • Achieved effective multiaxial terrain adaptation, improving stability on various surfaces.
  • Demonstrated the capability of energy harvesting from mechanical motion during operations.
  • Outlined successful validation of the system architecture across different applications.

Abstract

This paper introduces the Interlocking Modular Magnetic Shell (IMMS) architecture, a novel approach torolling robotic platform design that replaces conventional continuous-tread or monolithic-shell locomotionsurfaces with a reconfigurable assembly of discrete structural modules coupled by variable-force magneticinterfaces. The architecture integrates three key innovations: (1) dual-purpose lateral arms thatsimultaneously function as mechanical manipulators and as rotational alternators harvesting regenerativeenergy from chassis rolling motion; (2) a modular magnetic puzzle-body whose individual segmentsincorporate pressure-responsive adaptive traction actuators on both circumferential and lateral faces,enabling multiaxial terrain adaptation including wall-bracing, chimney-climbing, and lateral slopestabilization; and (3) inter-module kinetic induction harvesting, wherein controlled micro-displacementsbetween magnetically-coupled modules during locomotion generate supplemental electrical energy throughintegrated induction windings. The base platform is designed as a configuration-agnostic architecturesupporting application-specific packages for industrial, search-and-rescue, hazardous-environment,military, and other domains without modification to core subsystems. This paper presents the completesystem architecture, discusses engineering tradeoffs and failure-mode mitigations, and positions the IMMSconcept within the context of prior work in rolling robotics, modular self-reconfiguring systems, andregenerative energy harvesting.

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Cite This Study

Chris Grillos (2026) studied this question.

synapsesocial.com/papers/69e1cefb5cdc762e9d857e0ehttps://doi.org/10.5281/zenodo.19594590
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