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Data-driven generative design for mass customization: A case study

delete2022-10-01
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PRE
AI
Z
Zhoumingju Jiang
闻辉 封面图
闻辉 (Hui Wen)
F
Fred X. Han
Y
Yunlong Tang *
熊
熊异 (Yi Xiong) *
DOI:10.1016/j.aei.2022.101786delete
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摘要

摘要

En 中文
Generative design provides a promising algorithmic solution for mass customization of products, improving both product variety and design efficiency. However, the current designer-driven generative design formulates the automated program in a manual manner and has insufficient ability to satisfy the diverse needs of individuals. In this work, we propose a data-driven generative design framework by integrating multiple types of data to improve the automation level and performance of detail design to boost design efficiency and improve user satisfaction. A computational workflow including automated shape synthesis and structure design methods is established. More specifically, existing designs selected based on user preferences are utilized in the shape synthesis for creating generative models. For structural design, user-product interaction data gathered by sensors are used as inputs for controlling the spatial distributions of heterogeneous lattice structures. Finally, the pro-posed concept and workflow are demonstrated with a bike saddle design with a personalized shape and inner structures to be manufactured with additive manufacturing.
Keyword:
Design for additive manufacturing
Generative design
Data-driven design
Mass customization
Design automation
Product design

期刊

Advanced Engineering Informatics 封面图
Advanced Engineering Informatics
IF:
9.9
论文数:
4.1K
被引数:
1.7W

机构

M
Monash University
学者数:
5.4W
论文数: 5.4W
被引数: 79
G
Guilin University of Electronic Technology
学者数:
7.4K
论文数: 5.2K
被引数: 5.4K
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