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一个来自电弧增材制造工艺的原位和异位联合注册数据集。

A co-registered in-situ and ex-situ dataset from wire arc additive manufacturing process.

作者信息

Orlyanchik Vladimir, Kimmell Jeffrey, Snow Zackary, Ziabari Amir, Paquit Vincent

机构信息

Manufacturing Science Division, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA.

Electrification and Energy Infrastructure Division, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA.

出版信息

Sci Data. 2025 Feb 26;12(1):343. doi: 10.1038/s41597-025-04638-0.

Abstract

Recent progress in sensing techniques and data analytics tools have significantly accelerated the development of Wire Arc Additive Manufacturing (WAAM) systems. This data-centric approach emphasizes leveraging sensor data available throughout the production process to optimize performance. Integration of extensive data analysis provides opportunities for improving precision, reducing waste, and enhancing the quality of produced parts. This method relies on AI/ML models and optimization techniques, which are developed using the data collected from various sources, including in-situ sensors, ex-situ imaging, and manufacturing process parameters. The quality and diversity of this data, along with the alignment between different data streams (achieved through spatiotemporal registration) are critical for the successful development of AI/ML and optimization models. In this work, we present a spatiotemporally registered dataset generated during the WAAM process of deposition of a rectangular block. The dataset includes a comprehensive description of the deposition process, process parameters, welding characteristics and acoustic data collected in-situ, and X-Ray Computed Tomography data of the build.

摘要

传感技术和数据分析工具的最新进展显著加速了电弧增材制造(WAAM)系统的发展。这种以数据为中心的方法强调利用整个生产过程中可用的传感器数据来优化性能。广泛的数据分析集成提供了提高精度、减少浪费和提高所生产零件质量的机会。该方法依赖于人工智能/机器学习模型和优化技术,这些模型和技术是使用从各种来源收集的数据开发的,包括原位传感器、非原位成像和制造工艺参数。这些数据的质量和多样性,以及不同数据流之间的对齐(通过时空配准实现)对于人工智能/机器学习和优化模型的成功开发至关重要。在这项工作中,我们展示了在矩形块沉积的WAAM过程中生成的时空配准数据集。该数据集包括对沉积过程、工艺参数、焊接特性和原位收集的声学数据的全面描述,以及构件的X射线计算机断层扫描数据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf33/11865620/24552dc6ad0b/41597_2025_4638_Fig1_HTML.jpg

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