CVIVJul 28, 2023

Integrated Digital Reconstruction of Welded Components: Supporting Improved Fatigue Life Prediction

arXiv:2307.15604v1h-index: 12
Originality Incremental advance
AI Analysis

This addresses the need for improved fatigue life prediction in offshore jacket foundations, though it is incremental as it builds on existing HFMI and scanning technologies.

The paper tackles the problem of inaccurate fatigue life prediction in welded joints by developing a framework that integrates digital reconstruction of actual weld geometry into automated HFMI treatment, resulting in a generic, cost-effective, and rapid method.

In the design of offshore jacket foundations, fatigue life is crucial. Post-weld treatment has been proposed to enhance the fatigue performance of welded joints, where particularly high-frequency mechanical impact (HFMI) treatment has been shown to improve fatigue performance significantly. Automated HFMI treatment has improved quality assurance and can lead to cost-effective design when combined with accurate fatigue life prediction. However, the finite element method (FEM), commonly used for predicting fatigue life in complex or multi-axial joints, relies on a basic CAD depiction of the weld, failing to consider the actual weld geometry and defects. Including the actual weld geometry in the FE model improves fatigue life prediction and possible crack location prediction but requires a digital reconstruction of the weld. Current digital reconstruction methods are time-consuming or require specialised scanning equipment and potential component relocation. The proposed framework instead uses an industrial manipulator combined with a line scanner to integrate digital reconstruction as part of the automated HFMI treatment setup. This approach applies standard image processing, simple filtering techniques, and non-linear optimisation for aligning and merging overlapping scans. A screened Poisson surface reconstruction finalises the 3D model to create a meshed surface. The outcome is a generic, cost-effective, flexible, and rapid method that enables generic digital reconstruction of welded parts, aiding in component design, overall quality assurance, and documentation of the HFMI treatment.

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