scientific article; zbMATH DE number 1497152
DOI<link itemprop=identifier href="https://doi.org/10.1002/1521-4001(200011)80:11/12<815::AID-ZAMM815>3.0.CO;2-H" /><815::AID-ZAMM815>3.0.CO;2-H 10.1002/1521-4001(200011)80:11/12<815::AID-ZAMM815>3.0.CO;2-HzbMath0957.65117MaRDI QIDQ4498880
Publication date: 27 August 2000
Title: zbMATH Open Web Interface contents unavailable due to conflicting licenses.
Helmholtz equationill-posed problemsinverse scatteringLippmann-Schwinger integral equationnonlinear inverse problemmethod of approximate inverseill-posed Fredholm integral equation
Numerical methods for integral equations (65R20) Laplace operator, Helmholtz equation (reduced wave equation), Poisson equation (35J05) Numerical methods for inverse problems for integral equations (65R32) Singular nonlinear integral equations (45G05) Inverse problems (including inverse scattering) in optics and electromagnetic theory (78A46) Inverse problems for integral equations (45Q05)
Cites Work
- Unnamed Item
- Remarks on turbulent constitutive relations
- The numerical computation of turbulent flows
- Exact solution of a restricted Euler equation for the velocity gradient tensor
- An improved algebraic Reynolds stress model and corresponding nonlinear stress model
- A more general effective-viscosity hypothesis
- A study of the evolution and characteristics of the invariants of the velocity-gradient tensor in isotropic turbulence
- On explicit algebraic stress models for complex turbulent flows
- Frame-indifferent and positive-definite Reynolds stress–strain relation
- On predicting the turbulence-induced secondary flows using nonlinear k-ε models
- Topology of fine-scale motions in turbulent channel flow
- Bemerkungen zur Theorie der freien Turbulenz .
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