Machine Learning Applied to Composite Materials Machine Learning Applied to Composite Materials
Composites Science and Technology

Machine Learning Applied to Composite Materials

Vinod Kushvaha und andere
    • 164,99 €
    • 164,99 €

Beschreibung des Verlags

This book introduces the approach of Machine Learning (ML) based predictive models in the design of composite materials to achieve the required properties for certain applications. ML can learn from existing experimental data obtained from very limited number of experiments and subsequently can be trained to find solutions of the complex non-linear, multi-dimensional functional relationships without any prior assumptions about their nature. In this case the ML models can learn from existing experimental data obtained from (1) composite design based on various properties of the matrix material and fillers/reinforcements (2) material processing during fabrication (3) property relationships. Modelling of these relationships using ML methods significantly reduce the experimental work involved in designing new composites, and therefore offer a new avenue for material design and properties. The book caters to students, academics and researchers who are interested in the field of materialcomposite modelling and design.

GENRE
Gewerbe und Technik
ERSCHIENEN
2022
29. November
SPRACHE
EN
Englisch
UMFANG
204
Seiten
VERLAG
Springer Nature Singapore
ANBIETERINFO
Springer Science & Business Media LLC
GRÖSSE
34
 MB
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