Novel techniques for modeling 3D cracks and their evolution in solids are presented. Cracks are modeled in terms of signed distance functions (level sets). Stress, strain and displacement field are determined using the extended finite elements method (X-FEM). Non-linear constitutive behavior for the crack tip region are developed within this framework to account for non-linear effect in crack propagation. Applications for static or dynamics case are provided.
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Sylvie Pommier, ENS-Cachan, France.
Anthony Gravouil, INSA de Lyon, France
Nicolas Moes, Ecole Centrale de Nantes, France.
Alain Combescure, INSA de Lyon, France.
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Condition: New. * Presents novel techniques for modeling 3D cracks and their evolution in solids. * Cracks are modeled in terms of signed distance functions (level sets). Stress, strain and displacement field are determined using the extended finite elements method (X-FEM). Num Pages: 278 pages, Illustrations. BIC Classification: TGMD5. Category: (P) Professional & Vocational. Dimension: 243 x 164 x 22. Weight in Grams: 564. . 2011. . . . . Seller Inventory # V9781848212091
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Hardcover. Condition: new. Hardcover. Novel techniques for modeling 3D cracks and their evolution in solids are presented. Cracks are modeled in terms of signed distance functions (level sets). Stress, strain and displacement field are determined using the extended finite elements method (X-FEM). Non-linear constitutive behavior for the crack tip region are developed within this framework to account for non-linear effect in crack propagation. Applications for static or dynamics case are provided. * Presents novel techniques for modeling 3D cracks and their evolution in solids. * Cracks are modeled in terms of signed distance functions (level sets). Stress, strain and displacement field are determined using the extended finite elements method (X-FEM). Shipping may be from multiple locations in the US or from the UK, depending on stock availability. Seller Inventory # 9781848212091
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