Robotic construction systems often treat the material system and the robot as separate design problems, locating intelligence primarily in hardware, sensing, motion planning, and control. This project instead investigates how geometric intelligence can be encoded within architected material systems to simultaneously address requirements for robotic grasping, self-alignment, reversible connection, structural performance, and three-dimensional aggregation. We introduce a self-aligning compound nested lattice module composed of conjoined cuboctahedral-octahedral units. The cuboctahedral features of the modules provide defined surfaces for robotic grasping and alignment, while the octahedral features incorporate screw-releasable snap-fit connectors and corresponding receptors. Additionally, we present a nested arrangement that enables interlocking aggregation along the x, y, and z axes. We demonstrate the system through furniture and architectural scale structures assembled using both a robotic arm and mobile assembler. The resulting configurations include seating, spanning structures, surfaces, and vertical frames. Compression testing of the compound module produced a stiffness of 4,556 N/mm, a maximum load of 3,445 N, and a compressive modulus of 17.5 MPa. The modules can also be disassembled and reused across different configurations, supporting reconfigurable and circular construction.
Achieving coordinated collective behaviors in modular robotic systems under a single global input remains challenging, particularly for forming and manipulating structures beyond planar configurations. Here, we introduce magnetic modular cubes with face-specific magnetic encoding across all six faces and investigate th...
Anuruddha Bhattacharjee, Min Jun Kim· npj Robotics· 0 citations
This paper presents the development of a co-designed timber assembly system with a mobile robotic platform for collective robotic construction (CRC) across three successive demonstrations. Iterative advances in the relationship between material, mechanical robot design, architectural design, and robotic control enable...
S. Leder, Hyungyu Kim, M. Sitti et al.· Construction Robotics· 0 citations
This letter introduces a square-cell abstraction that maps deformable rhombus modules to fixed-size grid cells while retaining physically interpretable local motions through two primitives, pivoting and shearing, and proves that every non-straight edge-connected configuration can be transformed to a fixed canonical sta...
Jie Gu, Tingting Wang, Hong Gao et al.· 0 citations
Conventional soft robot actuators excel in compliance, but their uncontrolled deformations compromise accuracy and hinder scaling to multi-degree-of-freedom (DoF) systems. We introduce a MONOlithic ORIGAMI-inspired soft folding actuator design (MONORIGAMI) that establishes a design strategy based on spatially programme...
JaeHyung Jang, Zhenishbek Zhakypov, Jasmin E. Palmer et al.· 0 citations
Cooperative 3D printing (C3DP) with multiple robotic manipulators can reduce build time through parallel deposition, but it requires layer partitioning that accounts for collision clearance, workload balance, G-code toolpath compatibility, and interlayer boundary alignment. This study presents a Voronoi- and graph-base...
Hwijae Park, Sang-in Park· Journal of the Korean Societ...· 0 citations
Tubular braided structures are widely used in soft robotics as passive constraint layers in McKibben-type actuators. Recent studies have shown that they can also serve as self-supporting structural bodies, where the braid itself provides shape adaptability, load transfer, and functional deformation. This review focuses...
Zufeng Shang, Tao Wang, Dezhong Gao· Textile research journal· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.