Two-fluid model stability, simulation and chaos / Martin Lopez de Bertadano, William Fullmer, Alejandro Clausse, Victor H. Ransom.
By: Lopez de Bertodano, Martin A.,, autor
Contributor(s): Clausse, Alejan,, autor | Fullmer, William,, autor | Ransom, Victor,, autor
Material type:
E-bookPublisher: Cham, Switzerland : Springer, [2017]Description: 1 recurso en línea.ISBN: 3319449680; 9783319449685.Subject: Estructuras (Construcción) -- Estabilidad
| Item type | Current library | Collection | Call number | Status | Date due | Barcode | Item holds | |
|---|---|---|---|---|---|---|---|---|
LIBRO-E NO PRÉSTAMO
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Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | QA871 .L674 2017 EB (Browse shelf(Opens below)) | Acceso electrónico | eBook.20022468 |
SpringerLink Springer Engineering eBooks 2017 English+International
Incluye referencias bibliográficas e índice
Part I: Horizontal and near horizontal wavy flow -- Fixed-flux model -- Two-fluid model -- Fixed-flux model chaos -- Part II: Vertical bubbly flow -- Fixed-flux model -- Drift-flux model -- Drift-flux model nonlinear dynamics and chaos -- RELAP5 two-fluid model -- Two-fluid model CFD.
This book addresses the linear and nonlinear two-phase stability of the one-dimensional Two-Fluid Model (TFM) material waves and the numerical methods used to solve it. The TFM fluid dynamic stability is a problem that remains open since its inception more than forty years ago. The difficulty is formidable because it involves the combined challenges of two-phase topological structure and turbulence, both nonlinear phenomena. The one dimensional approach permits the separation of the former from the latter. The authors first analyze the kinematic and Kelvin-Helmholtz instabilities with the simplified one-dimensional Fixed-Flux Model (FFM). They then analyze the density wave instability with the well-known Drift-Flux Model. They demonstrate that the Fixed-Flux and Drift-Flux assumptions are two complementary TFM simplifications that address two-phase local and global linear instabilities separately. Furthermore, they demonstrate with a well-posed FFM and a DFM two cases of nonlinear two-phase behavior that are chaotic and Lyapunov stable. On the practical side, they also assess the regularization of an ill-posed one-dimensional TFM industrial code. Furthermore, the one-dimensional stability analyses are applied to obtain well-posed CFD TFMs that are either stable (RANS) or Lyapunov stable (URANS), with the focus on numerical convergence.
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