Modeling of Atmospheric Chemistry

This document was uploaded by one of our users. The uploader already confirmed that they had the permission to publish it. If you are author/publisher or own the copyright of this documents, please report to us by using this DMCA report form.

Simply click on the Download Book button.

Yes, Book downloads on Ebookily are 100% Free.

Sometimes the book is free on Amazon As well, so go ahead and hit "Search on Amazon"

Mathematical modeling of atmospheric composition is a formidable scientific and computational challenge. This comprehensive presentation of the modeling methods used in atmospheric chemistry focuses on both theory and practice, from the fundamental principles behind models, through to their applications in interpreting observations. An encyclopaedic coverage of methods used in atmospheric modeling, including their advantages and disadvantages, makes this a one-stop resource with a large scope. Particular emphasis is given to the mathematical formulation of chemical, radiative, and aerosol processes; advection and turbulent transport; emission and deposition processes; as well as major chapters on model evaluation and inverse modeling. The modeling of atmospheric chemistry is an intrinsically interdisciplinary endeavour, bringing together meteorology, radiative transfer, physical chemistry and biogeochemistry, making the book of value to a broad readership. Introductory chapters and a review of the relevant mathematics make this book instantly accessible to graduate students and researchers in the atmospheric sciences.

Author(s): Guy P. Brasseur, Daniel J. Jacob
Edition: 1st
Publisher: Cambridge University Press
Year: 2017

Language: English
Pages: 632

1. The concept of model
2. Atmospheric structure and dynamics
3. Chemical processes in the atmosphere
4. Model equations and numerical approaches
5. Formulations of radiative, chemical, and aerosol rates
6. Numerical methods for chemical systems
7. Numerical methods for advection
8. Parameterization of subgrid-scale processes
9. Surface fluxes
10. Atmospheric observations and model evaluation
11. Inverse modeling for atmospheric chemistry