A digital-to-physical manufacturing platform using high-resolution 3D printing and carbonisation to produce reusable conductive carbon collectors that actively shape electric fields during fibre deposition, enabling programmable control over fibre orientation, density, and pore architecture compatible with electrospinning, EHD, and melt electrowriting systems.
This solution introduces an active collector design concept for fibre-deposition technologies such as electrospinning, electrohydrodynamic (EHD) printing, and melt electrowriting. Rather than treating the collector as a passive substrate, the platform uses conductive 3D carbon collectors with programmable architectures to locally shape the electric field during deposition. The collector geometry is derived from a digital twin and optimised to influence fibre trajectory, orientation, packing density, and pore architecture. By decoupling collector engineering from the fibre-generation process, the approach enables iterative design refinement using micro-CT feedback, supporting greater structural fidelity and reproducibility in advanced nonwoven and scaffold manufacturing.
Key features:
The concept is at an early-to-mid stage of development. Planned validation proceeds in four phases: digital translation of the digital twin into printable collector geometries with electric-field simulation, fabrication of polymer precursors by additive manufacturing followed by carbonisation and characterisation of dimensional accuracy, conductivity, and surface properties, evaluation of the collector concept on an established fibre-deposition platform with comparison to the digital twin, and iterative optimisation using micro-CT feedback to refine collector geometry. The approach is ready for collaborative research, pilot validation, and co-development activities to advance the technology toward broader application.
Ruhr‑Universität Bochum is a large, comprehensive public research university in Germany’s Ruhr metropolitan region. Industry engagement is embedded through co‑located applied research institutes and shared labs, a nearby research and technology park, and a startup center for spinouts and collaboration. Clinical translation is enabled by a university hospital network linking multiple teaching hospitals, providing access to patients, trials, and real‑world validation environments. Research is supported by competitive funding from the German Research Foundation, federal and state ministries, and European Union programs. A dedicated technology transfer office manages IP, licensing, and standardized collaboration agreements to accelerate partnerships.