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利用神经网络优化基于挤出的3D打印工艺以实现可持续发展

Optimization of Extrusion-Based 3D Printing Process Using Neural Networks for Sustainable Development.

作者信息

Rojek Izabela, Mikołajewski Dariusz, Macko Marek, Szczepański Zbigniew, Dostatni Ewa

机构信息

Institute of Computer Science, Kazimierz Wielki University, 85-064 Bydgoszcz, Poland.

Department of Mechatronic Systems, Faculty of Mechatronics, Kazimierz Wielki University, 85-064 Bydgoszcz, Poland.

出版信息

Materials (Basel). 2021 May 22;14(11):2737. doi: 10.3390/ma14112737.

Abstract

Technological and material issues in 3D printing technologies should take into account sustainable development, use of materials, energy, emitted particles, and waste. The aim of this paper is to investigate whether the sustainability of 3D printing processes can be supported by computational intelligence (CI) and artificial intelligence (AI) based solutions. We present a new AI-based software to evaluate the amount of pollution generated by 3D printing systems. We input the values: printing technology, material, print weight, etc., and the expected results (risk assessment) and determine if and what precautions should be taken. The study uses a self-learning program that will improve as more data are entered. This program does not replace but complements previously used 3D printing metrics and software.

摘要

3D打印技术中的技术和材料问题应考虑可持续发展、材料使用、能源、排放颗粒和废物。本文的目的是研究基于计算智能(CI)和人工智能(AI)的解决方案是否能够支持3D打印过程的可持续性。我们提出了一种新的基于AI的软件,用于评估3D打印系统产生的污染量。我们输入诸如打印技术、材料、打印重量等数值以及预期结果(风险评估),并确定是否需要采取以及应采取何种预防措施。该研究使用了一个自学习程序,随着输入更多数据,它将不断改进。该程序并非取代而是补充先前使用的3D打印指标和软件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81e0/8196833/65de8b1a15e5/materials-14-02737-g001.jpg

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