Loterie Damien, Delrot Paul, Moser Christophe
Laboratory of Applied Photonics Devices, School of Engineering, Ecole Polytechnique Fédérale de Lausanne, CH-1015, Lausanne, Switzerland.
Nat Commun. 2020 Feb 12;11(1):852. doi: 10.1038/s41467-020-14630-4.
In tomographic volumetric additive manufacturing, an entire three-dimensional object is simultaneously solidified by irradiating a liquid photopolymer volume from multiple angles with dynamic light patterns. Though tomographic additive manufacturing has the potential to produce complex parts with a higher throughput and a wider range of printable materials than layer-by-layer additive manufacturing, its resolution currently remains limited to 300 µm. Here, we show that a low-étendue illumination system enables the production of high-resolution features. We further demonstrate an integrated feedback system to accurately control the photopolymerization kinetics over the entire build volume and improve the geometric fidelity of the object solidification. Hard and soft centimeter-scale parts are produced in less than 30 seconds with 80 µm positive and 500 µm negative features, thus demonstrating that tomographic additive manufacturing is potentially suitable for the ultrafast fabrication of advanced and functional constructs.
在断层体积增材制造中,通过用动态光图案从多个角度照射液态光聚合物体积,整个三维物体可同时固化。尽管断层增材制造有可能比逐层增材制造生产出更复杂的部件,且具有更高的吞吐量和更广泛的可打印材料,但目前其分辨率仍限制在300微米。在此,我们表明低扩展度照明系统能够生产高分辨率特征。我们还展示了一种集成反馈系统,以在整个构建体积上精确控制光聚合动力学,并提高物体固化的几何保真度。在不到30秒的时间内生产出了具有80微米正特征和500微米负特征的厘米级硬部件和软部件,从而证明断层增材制造有可能适用于先进功能结构的超快制造。