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Table of contents
- Cover
- Contents Volume 2xxi
- Prefacev
- Session Organizersvi
- Fellowship Awardeesvii
- Sponsorsix
- Part 4: Fluids761
- Chapter 212. Comparison of wall laws for unsteady incompressible Navier–Stokes equations over roug762
- Chapter 213. Dual–level parallelization of structural acoustics computations764
- Chapter 214. K–ε Model simulation by Lagrangian block method767
- Chapter 215. Numerical simulations of viscoelastic flow around sharp corners772
- Chapter 216. A droplet formation model for stratified liquid–liquid shear flows776
- Chapter 217. Buoyancy and Marangoni convections of Te-doped GaSb779
- Chapter 218. Preconditioners for parallel adaptive hp FEM for incompressible flows782
- Chapter 219. Flow in sclerotic carotid arteries786
- Chapter 220. Heat transfer calculations of high-Reynolds-number flows around a circular cylinder791
- Chapter 221. Hierarchical expansion method in the solution of the Navier–Stokes equations for inco795
- Chapter 222. On the periodicity of the extra-stress tensor in non-Newtonian steady recirculating flo799
- Chapter 223. Transformations of solitary waves in a forced variable-coefficient extended Korteweg-de803
- Chapter 224. A finite volume – level set method for free surface viscous flows around ships810
- Chapter 225. Evaluation of a one-dimensional vertical model for turbulence modelling in wave boundar814
- Chapter 226. A poly-region boundary element method for buoyancy-driven flows818
- Chapter 227. High performance multi-layer ocean modeling822
- Chapter 228. Using computational fluid dynamics to model the passive human neutrophil during micropi826
- Chapter 229. Domain decomposition with mortar elements for hyperbolic problems830
- Chapter 230. Flow past multi-box bridge decks833
- Chapter 231. A virtually meshless formulation for compressible high speed flows with free mesh metho836
- Chapter 232. Latency, bandwidth, and concurrent issue limitations in high-performance CFD839
- Chapter 233. Grid-quality measures for error estimation of CFD solutions843
- Chapter 234. Laminar jet impingement convective heat transfer in partially vented enclosures typical847
- Chapter 235. Statistical error in particle simulations of low Mach number flows853
- Chapter 236. Aerodynamics of the Crew Return Vehicle and parafoil at different opening stages857
- Chapter 237. An efficient step-flow simulation scheme using potential theory861
- Chapter 238. Computational modeling of blood flow and rheology in fractal microvascular networks864
- Chapter 239. Parallel large eddy simulation technique with heat transfer using tetrahedral finite el868
- Chapter 240. Computational aeroacoustics applications in automotive design871
- Chapter 241. Numerical simulation of spilled oil drifted on the sloping beach876
- Chapter 242. Two-dimensional boundary treatment of a finite volume particle method879
- Chapter 243. The application of a fast solver in marine hydrodynamics883
- Chapter 244. Positive finite element schemes based on the flux-corrected transport procedure887
- Chapter 245. Large amplitude internal waves in a continuously stratified fluid889
- Chapter 246. Optimal particle controller for coupled continuum/MD fluid simulation895
- Chapter 247. Validating CFD for automotive applications899
- Chapter 248. Direct numerical simulation of pulsatile flows in three-dimensional arterial stenoses903
- Chapter 249. Numerical analysis of natural convection in a cubic cavity at the Rayleigh number Ra =905
- Chapter 250. Meshless methods applied to potential flow problems908
- Chapter 251. Role of CFD in analysis and optimization of the continuous casting processes912
- Chapter 252. On a bilayer shallow-water problem917
- Chapter 253. An adjoint method for the calculation of non-collocated sensitivities in supersonic flo921
- Chapter 254. Development of distribution-formula scheme for compressible flows926
- Chapter 255. Laminar flow in a partially filled pipe930
- Chapter 256. Upwind discretization schemes for the incompressible Navier–Stokes equations934
- Chapter 257. Parallel computation of viscous incompressible flows using Godunov-projection method on940
- Chapter 258. A fictitious domain/wave-like equation method for viscoelastic particulate flows944
- Chapter 259. Estimation of erosion effects due to solid contaminant in hydraulic valves947
- Chapter 260. Computational topology for CFD: theorems, criteria and issues951
- Chapter 261. An analysis of the incompressible viscous flow using parallel computation954
- Chapter 262. Interactions between sloshing modes and incompressible hydroelastic modes for internal957
- Chapter 263. A finite-element/spectral incompressible Navier–Stokes solver for eventual applicatio960
- Chapter 264. An agglomerated multigrid hybrid mesh method for compressible flow964
- Chapter 265. Aerodynamic interaction between multiple parachute canopies968
- Chapter 266. A stimulated small scale model of LES for calculation of airflow in and around building973
- Chapter 267. Perspectives on asynchronous computations for fluid flow problems977
- Chapter 268. Hamiltonian structure of CIVA-particle method in two-dimensional passive scalar advecti981
- Chapter 269. Simulation of fluid flow in porous media with object oriented techniques985
- Chapter 270. Interface-tracking and interface-capturing techniques for computation of two-fluid flow989
- Chapter 271. Solution of the incompressible fluid dynamics problem via the R-function meshfree metho993
- Chapter 272. Trends in processor technology and their impact on Numerics for incompressible flow998
- Chapter 273. A numerical study on two dimensional Faraday waves1000
- Chapter 274. Aerodynamic simulation of an object separating from an aircraft during initial deployme1004
- Chapter 275. An integral equation formulation of the Navier–Stokes equations1008
- Chapter 276. Stochastic flow through multifractal porous media1010
- Chapter 277. A fast and robust variant of the SIMPLE algorithm for finite-element simulations of inc1014
- Chapter 278. Flow of fiber-reinforced cement slurries at elevated temperatures1017
- Chapter 279. Velocity slip and temperature jump in dilute hard sphere gases at finite Knudsen number1019
- Chapter 280. Parallelizing a mould filling calculation by using a dynamic domain decomposition metho1022
- Chapter 281. Numerical schemes of capturing multiple solutions of steady convective heat transfer wi1026
- Chapter 282. Implementation and analysis of a general CFD parallel finite element program on a Beowu1030
- Chapter 283. Numerical study of laminar mixed convection in the entrance region of a helical pipe wi1033
- Part 5: Multi-Physics1037
- Chapter 284. Parallel algorithms for miscible displacement in porous media1038
- Chapter 285. Fluid/structure computational methods in restraint system design1041
- Chapter 286. Supersonic flutter of a circular cylindrical shell with structural nonlinearity1045
- Chapter 287. Nonlinear dynamics of circular cylindrical shells coupled to flowing fluid1050
- Chapter 288. Energy of fluid method for diabatic two-phase flow with phase change1054
- Chapter 289. Simulations of the solid/liquid two-phase flow field in jet loop reactors1058
- Chapter 290. Numerically stable modular time integration of multiphysical systems1062
- Chapter 291. Dispersion and concentration of Lagrangian particles in a neutral atmosphere, using a M1065
- Chapter 292. Fluid–structure interaction analysis in biomechanics1068
- Chapter 293. Adaptive numerical simulation of turbulent premixed combustion1073
- Chapter 294. Finite element analysis of a pressure/potential formulation for structural–acoustic p1077
- Chapter 295. Boundary damper approximations for finite element analysis of transient fluid–structu1081
- Chapter 296. Multibody multidisciplinary rotorcraft analysis: an overview1084
- Chapter 297. Nonstationary flow forces for the numerical simulation of aeroelastic instability of br1088
- Chapter 298. An approach to coupled, multi-physics thermal analysis1090
- Chapter 299. ACME: a parallel library of algorithms for contact in a multi-physics environment1094
- Chapter 300. The penalization method: an efficient tool to modelize obstacles with different permeab1098
- Chapter 301. Practical implementation of a p-version wave envelope infinite element for structural a1101
- Chapter 302. Coupling damage and moisture induced phenomena in open porous materials1105
- Chapter 303. Influence of moisture saturation on the nonlinear hysteretic response of damaged porous1107
- Chapter 304. Modeling and analysis of a 3-D asymmetric mine–soil–structure interaction problem w1110
- Chapter 305. Electroelastic analysis of general piezoelectric composite laminates by boundary integr1116
- Chapter 306. Investigation about chaos in a magneto-elastic dynamical system1120
- Chapter 307. A Trefftz-based prediction technique for coupled structural–acoustic radiation proble1124
- Chapter 308. Nonlinear finite element modelings of seepage flows and pollutant transports in unsatur1129
- Chapter 309. Modeling dendritic solidification with the extended finite element method1135
- Chapter 310. Fluid–structure interaction of high lift devices at low Mach numbers1139
- Chapter 311. LATIN strategy for coupled fluid–solid problems in the domain1143
- Chapter 312. SIERRA: a software environment for developing complex multiphysics applications1147
- Chapter 313. Adaptive techniques for semiconductor equations with a Raviart–Thomas element1151
- Chapter 314. Numerical study of the Soret effect in a binary system1155
- Chapter 315. Reduced order system identification of nonlinear aeroelastic systems1158
- Chapter 316. Simulation of air–water flows in soils1163
- Chapter 317. From ALE to transpiration1166
- Chapter 318. Investigation of sensitivity analysis for fluid–structure interaction systems1170
- Chapter 319. Fluid flows in compliant vessels: application to hemodynamics1174
- Chapter 320. Solution mapping approach to modeling combustion1177
- Chapter 321. Coupled analysis for geotechnical and environmental applications1180
- Chapter 322. Numerical simulations in magnetohydrodynamics with free surfaces1184
- Chapter 323. Towards Lagrangian, grid free simulation of combustion1188
- Chapter 324. Computation of wind-induced vibrations of flexible shells and membranous structures1192
- Chapter 325. Coupled thermal stress analysis in die casting: a contact problem1196
- Chapter 326. Heat transfer models for gas–solid fluidized beds with internals1199
- Chapter 327. Linear stability of convection in rotating mushy layers1205
- Chapter 328. Adaptive chemistry1209
- Chapter 329. Numerical simulation of the piezo-aero-elasticity of smart helicopter rotor blades in t1213
- Chapter 330. Co-simulation of algebraically coupled dynamic subsystems using discrete-time sliding m1218
- Chapter 331. Mathematical study of the contact between a drop and a cylindrical fibre1222
- Chapter 332. Coupling of fluid and structure analysis codes for air- and spacecraft applications1226
- Chapter 333. A diffusion model for affinity adsorption of glycoprotein on immobilized lectin1232
- Chapter 334. Computational thermochemomechanics of low-sulfate shotcrete in tunneling1236
- Chapter 335. Dynamic computational subgrid modeling in turbulent reactive flow problems1241
- Chapter 336. Direct numerical simulation of turbulent premixed flame interaction using parallel comp1244
- Chapter 337. Towards free surface hydroplaning over a loaded tire1250
- Chapter 338. A control analysis of interaction problem by fluid force1254
- Chapter 339. A fixed-grid analysis of convection-dominated melting and solidification1257
- Chapter 340. Numerical simulation of unsteady reacting flow with detailed kinetics1261
- Chapter 341. Single crystal growing problem in the FZ method under microgravity (three-dimensional n1265
- Chapter 342. Particle method for fluid and solid dynamics1269
- Chapter 343. On some aspects of fluid–structure interaction analysis with respect to aeroelasticit1272
- Chapter 344. A comparison of coupled chemo-mechanical damage models of concrete using phenomenologic1278
- Chapter 345. Evaluation of properties of soilcrete by means of back analysis: combination of in-situ1281
- Chapter 346. Flow bifurcation and its coupling with the deformable interface in solidification1285
- Chapter 347. Numerical estimation of the flutter derivatives of an airfoil1287
- Chapter 348. Arbitrary order edge elements and hybrid meshes for electromagnetic scattering problems1292
- Chapter 349. Instability behaviors of thermocapillary convection in a system of two-layer liquids1296
- Chapter 350. Modelling the response of reinforced plastic joins to fire1299
- Chapter 351. Mathematical modeling of the coupling of chemical kinetics with laminar and turbulent t1304
- Chapter 352. Model-based simulation of demineralization processes in cracked porous media1309
- Chapter 353. On local solutions for piezoelectric laminates1313
- Chapter 354. How to make weak couplings strong1317
- Chapter 355. Non-linear Galerkin methods in the simulation of the aeroelastic response of wind turbi1320
- Chapter 356. Accelerated iterative substructuring schemes for instationary fluid–structure interac1325
- Chapter 357. Lock-in prediction for bridge decks using a Discrete Vortex Method1329
- Chapter 358. Transient response of premixed methane–air flames1334
- Chapter 359. Primitive variable solver for modeling steady-state and time-dependent laminar flames w1338
- Chapter 360. Fluid–structure interaction modelling in adaptive undersea vehicles1342
- Chapter 361. The importance of pore water pressures in modelling time dependent soil behaviour1346
- Chapter 362. Analysis of coupled flow, heat and brine transport in the far field of a nuclear waste1349
- Chapter 363. Multiplicity and stability of exothermic chemical reaction in catalyst beds: a numerica1353
- Chapter 364. Numerical investigation of the time-dependent temperature field in and around aerotherm1355
- Chapter 365. Thermomechanical description of large structural transformations1360
- Chapter 366. A symmetric time integration formulation for a class of coupled problems1363
- Chapter 367. A tool-box approach to the simulation of multi-physics systems1365
- Chapter 368. The influence of a soluble surfactant on the displacement of a gas–liquid interface b1369
- Chapter 369. Analysis of the forced convection boiling with the particle interaction method1373
- Chapter 370. Parallel unstructured dynamic grid direct simulation Monte Carlo of molecular gas dynam1376
- Chapter 371. Computational and experimental study of laminar premixed and nonpremixed flames1381
- Chapter 372. Combustion of hydrocarbon fuels in scramjet engines: ethylene combustion1384
- Chapter 373. A 3-D model with fluid–structure interactions for unsteady blood flow in stenotic art1388
- Chapter 374. Driving a real-time multi-physics simulator to follow an actual system: a DAE observer1393
- Chapter 375. Simulating airbag inflation for occupant safety development1397
- Chapter 376. An indirect boundary element method for three-dimensional explosion bubbles1401
- Chapter 377. Active control of interior acoustics of an enclosure with smart materials1407
- Chapter 378. Computation of Marangoni convection at the vapor–liquid interface in aqueous surfacta1412
- Chapter 379. Physics applications in the ALEGRA framework1417
- Chapter 380. Modeling uncertainty in flow–structure interactions1420
- Chapter 381. A universal numerical solver for solid, liquid and gas1424
- Chapter 382. Modeling gas damping and spring phenomena in MEMS with frequency-dependent macro-models1426
- Chapter 383. Atomistic measures of mechanical deformation and thermal transport processes1430
- Chapter 384. Challenges in developing an accurate model for carotid bifurcation blood flow and wall1434
- Chapter 385. Direct and iterative computing of fluid flows fully coupled with structures1440
- Part 6: CFD for the Natural Convection Problem1445
- Chapter 386. Finite-volume analysis of natural convection in a 8:1 tall enclosure1446
- Chapter 387. Simulation of the differentially heated 8:1 rectangular cavity by a Galerkin–Legendre1451
- Chapter 388. Computation of natural convection flows in the 8 :1 enclosure by a multigrid method1456
- Chapter 389. LS-DYNA and the 8:1 differentially-heated cavity1460
- Chapter 390. Computational predictability of natural convection flows in enclosures1465
- Chapter 391. Numerical prediction of natural convection in a tall enclosure1469
- Chapter 392. Finite element solutions for natural convection flows in a tall rectangular cavity1472
- Chapter 393. Simulation of natural convection flows in enclosures by an unstaggered grid finite volu1477
- Chapter 394. 8:1 Thermal cavity problem1482
- Chapter 395. Computational predictability of natural convection flows in enclosures: a benchmark pro1486
- Chapter 396. Numerical investigation of laminar natural convection flow inside a tall cavity using a1490
- Chapter 397. A projection/wave-like equation method for natural convection flows in enclosures1493
- Chapter 398. Understanding the 8:1 cavity problem via scalable stability analysis algorithms1497
- Chapter 399. A Petrov–Galerkin method for flows in cavities1501
- Chapter 400. Thermally driven flow in a cavity using the Galerkin finite element method1505
- Chapter 401. An extended Chebyshev pseudo-spectral contribution to the CPNCFE benchmark1509
- Part 7: Algorithms (independent of physical applications)1515
- Chapter 402. An improved finite cloud method1516
- Chapter 403. A refinement technique for all-hexahedral adaptive meshing1519
- Chapter 404. A fictitious domain problem1524
- Chapter 405. On the „grad div + s curl rot operator1526
- Chapter 406. Mesh simplification made easy1530
- Chapter 407. Tetrahedral meshing by an advancing front method through a CAD interface1535
- Chapter 408. Differential quadrature, the generalization and the related discrete element analysis m1540
- Chapter 409. Equilibrium problems and variational inequalities: a continuum transportation model1543
- Chapter 410. The method of finite spheres: a summary of recent developments1546
- Chapter 411. Some recent developments for moving-least-squares particle methods1550
- Chapter 412. Mesh-independent directional p-enrichment using the generalized finite element method1555
- Chapter 413. An inverse-free interface patch test for nonmatching FEM meshes1559
- Chapter 414. Load-balancing for mesh-based applications on heterogeneous cluster computers1561
- Chapter 415. PAL: a Parallel Application Library1565
- Chapter 416. Anisotropic surface remeshing1569
- Chapter 417. Development of finite elements based on Walsh series1572
- Chapter 418. Stochastic error estimation: integrated data and mesh resolutions1576
- Chapter 419. Stability analysis of BEM approximate solutions in grounding analysis1579
- Chapter 420. Finite elements and Greens functions1582
- Chapter 421. A note on the rate of convergence and complexity of domain decomposition approximate in1586
- Chapter 422. A boundary point interpolation method (BPIM) using radial function basis1590
- Chapter 423. Updating procedures of stochastic non-Gaussian fields1593
- Chapter 424. From meshless methods to natural hierarchical refinement of finite element meshes1595
- Chapter 425. A boundary cloud method for exterior electrostatic analysis1598
- Chapter 426. Reduction of large circuit models via low rank system gramians1601
- Chapter 427. An exploration of global stability of a three-dimensional dynamical system with a stron1606
- Chapter 428. Data management and load balancing schemes for 3D parallel adaptive hp FEM1610
- Chapter 429. Stability boundaries of linear periodic systems1613
- Chapter 430. Shape functions for concave quadrilaterals1617
- Chapter 431. Multilevel solvers for the analysis of stochastic systems1620
- Chapter 432. A new approach in meshfree method: least-squares meshfree method1623
- Chapter 433. Projection-based model reduction using implicit nonlinearity representation1627
- Chapter 434. A fictitious domain general PDE solver1631
- Chapter 435. A unified procedure for simulating second-order stochastic processes1633
- Chapter 436. A matrix description for the domain decomposition methods of the FETI family1636
- Chapter 437. Lyapunov characteristic exponent calculation for finite element discretized models1640
- Chapter 438. Parallel 3D mesh generator: performance comparison1644
- Chapter 439. Scalable bifurcation analysis algorithms for large parallel applications1647
- Chapter 440. A Fourier–Galerkin technique to predict periodic and quasi-periodic response of large1651
- Chapter 441. Construction of splines moving least squares and an application to differential equatio1655
- Chapter 442. Parallel adaptive application development using the SIERRA framework1661
- Chapter 443. Sibson and non-Sibsonian interpolants for elliptic partial differential equations1665
- Chapter 444. Multiplicity and stability in transport phenomena1668
- Chapter 445. Numerical solution of a four-dimensional Fokker–Planck equation1673
- Chapter 446. Anisotropic tetrahedral meshing via bubble packing and advancing front1676
- Chapter 447. A new meshless regular hybrid boundary node method1680
- Chapter 448. Group-theoretic computation of matrices for rectangular hexahedral finite elements1683
- Author Index1687
- Keyword Index1693
- Vendor Elsevier S & T
- SKU 9780080439440
- ISBN-13 9780080552811
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Mathematical modeling and numerical solution is today firmly established in science and engineering. Research conducted in almost all branches of scientific investigations and the design of systems in practically all disciplines of engineering can not be pursued effectively without, frequently, intensive analysis based on numerical computations.
The world we live in has been classified by the human mind, for descriptive and analysis purposes, to consist of fluids and solids, continua and molecules; and the analyses of fluids and solids at the continuum and molecular scales have traditionally been pursued separately. Fundamentally, however, there are only molecules and particles for any material that interact on the microscopic and macroscopic scales. Therefore, to unify the analysis of physical systems and to reach a deeper understanding of the behavior of nature in scientific investigations, and of the behavior of designs in engineering endeavors, a new level of analysis is necessary.
This new level of mathematical modeling and numerical solution does not merely involve the analysis of a single medium but must encompass the solution of multi-physics problems involving fluids, solids, and their interactions, involving multi-scale phenomena from the molecular to the macroscopic scales, and must include uncertainties in the given data and the solution results. Nature does not distinguish between fluids and solids and does not ever repeat itself exactly.
This new level of analysis must also include, in engineering, the effective optimization of systems, and the modeling and analysis of complete life spans of engineering products, from design to fabrication, to possibly multiple repairs, to end of service.
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