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Machine Learning for Powder-Based Metal Additive Manufacturing

Paperback Engels 2024 9780443221453
€ 265,00
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Samenvatting

Machine Learning for Powder-based Metal Additive Manufacturing outlines machine learning (ML) methods for additive manufacturing (AM) of metals that will improve product quality, optimize manufacturing processes, and reduce costs. The book combines ML and AM methods to develop intelligent models that train AM techniques in pre-processing, process optimization, and post-processing for optimized microstructure, tensile and fatigue properties, and biocompatibility for various applications. The book covers ML for design in AM, ML for materials development and intelligent monitoring in metal AM, both geometrical deviation and physics informed machine learning modeling, as well as data-driven cost estimation by ML.

In addition, optimization for slicing and orientation, ML to create models of materials for AM processes, ML prediction for better mechanical and microstructure prediction, and feature extraction by sensing data are all covered, and each chapter includes a case study.

Specificaties

ISBN13:9780443221453
Taal:Engels
Bindwijze:Paperback

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Inhoudsopgave

1. Overview of Machine learning for additive manufacturing<br>2. ML for Design in AM<br>3. Machine learning for materials developments in metals additive manufacturing<br>4. Geometrical deviation modelling by Machine learning<br>5. Physics informed machine learning modelling of metal AM<br>6. Machine learning enabled powder spreading process<br>7. Machine learning for Metal AM process optimization<br>8. Intelligent monitoring of metal additive manufacturing<br>9. Post-processing optimisation of nano finishing by machine learning<br>10. Data-driven cost estimation by Machine learning

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€ 265,00
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        Machine Learning for Powder-Based Metal Additive Manufacturing