Our research operates at the intersection of structural engineering, computational design, and robotic automation. By rethinking traditional material application and structural mechanics, the primary focus centers on decoupling design complexity from production costs while drastically lowering the built environment's carbon footprint.
Additive Manufacturing- Material-optimized 3D concrete printing (3DCP) workflows.
Robotic Fabrication- Multi-axis path planning and high-precision physical automation.
Hybrid Construction- Hardware-free, interlocking timber-concrete composite frameworks.
Digital Planning & Optimization- Force-driven algorithmic material synthesis via structural topology optimization based on internal static stresses.