Vibration-suppressed toolpath generation for kinematic and energy performance optimization in large dimension additive manufacturing
Kang Wang, Jinghua Xu, Shuyou Zhang, Jianrong Tan

TL;DR
This paper introduces a vibration-suppressed toolpath generation method to optimize kinematic and energy performance in large dimension additive manufacturing, improving product quality and sustainability.
Contribution
It proposes a novel VTG method that customizes servo trajectories to reduce vibration and enhance performance in LDAM systems.
Findings
VGT reduces mechanical vibration amplitude.
VGT improves surface roughness.
VGT enhances energy efficiency.
Abstract
Product quality and sustainability in large dimension additive manufacturing (LDAM) highly rely on the kinematic and energy performance of LDAM systems. However, the mechanical vibration occurring in the fabrication process hinders the further development of AM technology in industrial manufacturing. To this end, a kinematic and energy performance optimization method for LDAM via vibration-suppressed toolpath generation (VTG) is put forward. Kinematic modeling of LDAM system and related energy consumption modeling are first constructed to reveal that the toolpath of servo system assumes the main responsibility for kinematic and energy performance in LDAM. The vibration-suppressed toolpath generation (VTG) method is thus proposed to customize servo trajectory for kinematic and energy performance optimization in LDAM. Extensive numerical and physical experiments are conducted on the W16…
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Taxonomy
TopicsAdditive Manufacturing and 3D Printing Technologies · Additive Manufacturing Materials and Processes · Manufacturing Process and Optimization
