材料科学
制作
表面粗糙度
粘度
表面光洁度
热的
机械工程
过程(计算)
3D打印
联轴节(管道)
流量(数学)
放热反应
制造工艺
工程制图
还原(数学)
粘弹性
热稳定性
计算机科学
固化(化学)
曲面(拓扑)
复合材料
工艺工程
表面处理
模具
作者
Ming Li,Zhenyu Wang,Shuai Peng,Yu Liu
标识
DOI:10.6084/m9.figshare.31175772
摘要
Volumetric additive manufacturing (VAM) enables one-step, layer-free fabrication of 3D parts by spatially controlling energy–matter interactions within a photosensitive resin. While VAM is faster than conventional layer-based printing and well suited for complex geometries, wider adoption is limited by coupling between exothermic curing and non-uniform light fields. This interaction degrades surface finish and dimensional accuracy, reducing mechanical and functional performance. Herein, we propose a low-temperature assisted VAM (L-VAM) strategy that tunes resin viscosity via precise temperature–reaction coupling. By stabilizing material flow and mitigating uneven thermal gradients and irradiance disparities, L-VAM suppresses defect formation associated with spatially varying fluidity and heating. Experiments show that an optimized L-VAM process significantly improves dimensional stability and surface quality, delivering a 65.3% reduction in surface roughness compared with conventional VAM. These improvements establish the proposed L-VAM strategy as particularly suitable for high-precision applications including micro-optics and soft robotics.
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