Vision-controlled jetting for composite systems and robots.

Buchner, Thomas J K; Rogler, Simon; Weirich, Stefan; Armati, Yannick; Cangan, Barnabas Gavin; Ramos, Javier; Twiddy, Scott T; Marini, Davide M et al. · Nature · 2023

biomechanical · Level V

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Abstract

Recreating complex structures and functions of natural organisms in a synthetic form is a long-standing goal for humanity<sup>1</sup>. The aim is to create actuated systems with high spatial resolutions and complex material arrangements that range from elastic to rigid. Traditional manufacturing processes struggle to fabricate such complex systems<sup>2</sup>. It remains an open challenge to fabricate functional systems automatically and quickly with a wide range of elastic properties, resolutions, and integrated actuation and sensing channels<sup>2,3</sup>. We propose an inkjet deposition process called vision-controlled jetting that can create complex systems and robots. Hereby, a scanning system captures the three-dimensional print geometry and enables a digital feedback loop, which eliminates the need for mechanical planarizers. This contactless process allows us to use continuously curing chemistries and, therefore, print a broader range of material families and elastic moduli. The advances in material properties are characterized by standardized tests comparing our printed materials to the state-of-the-art. We directly fabricated a wide range of complex high-resolution composite systems and robots: tendon-driven hands, pneumatically actuated walking manipulators, pumps that mimic a heart and metamaterial structures. Our approach provides an automated, scalable, high-throughput process to manufacture high-resolution, functional multimaterial systems.

Medical subject headings