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English
Oxford University Press
28 February 2020
This innovative study presents concepts and problems in soil physics, and provides solutions using original computer programs. It provides a close examination of physical environments of soil, including an analysis of the movement of heat, water and gases. The authors employ the programming language Python, which is now widely used for numerical problem solving in the sciences.

In contrast to the majority of the literature on soil physics, this text focuses on solving, not deriving, differential equations for transport.

Using numerical procedures to solve differential equations allows the solution of quite difficult problems with fairly simple mathematical tools.

Numerical methods convert differential into algebraic equations, which can be solved using conventional methods of linear algebra.

Each chapter introduces a soil physics concept, and proceeds to develop computer programs to solve the equations and illustrate the points made in the discussion.

Problems at the end of each chapter help the reader practise using the concepts introduced.

The text is suitable for advanced undergraduates, graduates and researchers of soil physics.

It employs an open source philosophy where computer code is presented, explained and discussed, and provides the reader with a full understanding of the solutions.

Once mastered, the code can be adapted and expanded for the user's own models, fostering further developments.

The Python tools provide a simple syntax, Object Oriented Programming techniques, powerful mathematical and numerical tools, and a user friendly environment.

By:   , , , , , ,
Imprint:   Oxford University Press
Country of Publication:   United Kingdom
Dimensions:   Height: 241mm,  Width: 169mm,  Spine: 23mm
Weight:   1g
ISBN:   9780198854791
ISBN 10:   019885479X
Pages:   460
Publication Date:  
Audience:   College/higher education ,  A / AS level ,  Further / Higher Education
Format:   Paperback
Publisher's Status:   Active
1: Introduction 2: Basic physical properties of soil 3: Soil gas phase and gas diffusion 4: Soil temperature and heat flow 5: Soil liquid phase and soil-water interactions 6: Steady state water flow and hydraulic conductivity 7: Variation in soil properties 8: Transient water flow 9: Triangulated irregular network 10: Water flow in three dimensions 11: Evaporation 12: Modeling coupled transport 13: Solute transport in soils 14: Transpiration and plant-water relations 15: Atmospheric boundary conditions 1: Introduction 2: Basic physical properties of soil 3: Soil gas phase and gas diffusion 4: Soil temperature and heat flow 5: Soil liquid phase and soil-water interactions 6: Steady state water flow and hydraulic conductivity 7: Variation in soil properties 8: Transient water flow 9: Triangulated irregular network 10: Water flow in three dimensions 11: Evaporation 12: Modeling coupled transport 13: Solute transport in soils 14: Transpiration and plant-water relations 15: Atmospheric boundary conditions

Marco Bittelli received his degree in Agricultural Science from the University of Bologna, Italy, as well as a M.S. and Ph.D. degrees in Soil Physics from Washington State University, USA. He spent a year as a postdoctoral scientist in the Physics Department at the University of Heidelberg, Germany. He now teaches courses in soil physics, hydrological modelling, and scientific methods at the undergraduate and graduate level, at the University of Bologna, Italy. He is a referee for the National Science Foundation, USA, and he also serves as a reviewer for international journals. He is the author and the coauthor of 40 journal papers, 3 book chapters, and over 50 papers in conference proceedings. Gaylon S. Campbell received a B.S. in Physics and M.S. in Soil Physics from Utah State University, USA; and a Ph.D. in Soil Physics from Washington State University, USA. He served as Captain, U.S. Army, doing meteorological research at White Sands Missile Range, New Mexico. He was Professor of Soils and Biophysics at Washington State University, USA, from 1971 to 1998. He has been Vice President, Engineer, and Senior Scientist at Decagon Devices, Inc., from 1998 to the present. He has written 3 books, over 100 journal articles and book chapters, and has several patents. Fausto Tomei received a degree in Mathematics and Computer Science from the University of Bologna, Italy. He is a researcher at the Regional Agency for Environmental Protection, Emilia-Romagna Region, Italy. His research focuses on numerical analysis of hydrological processes and software development. He is the author and the coauthor of 10 journal papers, 1 book, 2 book chapters, and over 30 papers in conference proceedings. He has worked on several Italian and European projects, on climate change, soil hydrology and agriculture.

Reviews for Soil Physics with Python: Transport in the Soil-Plant-Atmosphere System

This book aims to provide solutions to problems in soil physics through original programs written in the programming language Python. * David L. Hawksworth, Biodiversity and Conservation * ... the authors have rendered an extremely valuable service to the soil physics community with the publication of this nicely written and appealingly presented text, which I wholeheartedly recommend to soil physics students of all ages ... great book. * Philippe C. Baveye, Vadose Zone Journal * The combination of theory and computer code make this a unique text and reference book for experienced scientists and students alike. * Markus Flury, Professor of Soil Physics and Vadose Zone Hydrology, Washington State University, USA * Soil Physics with Python puts a wealth of knowledge about the quantitative functioning of a key environmental system, soils, into the reader's hand. This knowledge is readily operational through the provided code for the widely used open source language Python. The solutions cover a range of important processes, including the transfer of water, solutes, heat, and gases within soils as well as the soil-atmosphere coupling. Maybe most importantly, they entice the reader to expand and adapt the provided solutions and thereby capacitate him or her to implement and independently explore concepts of the still challenging soil physical processes. * Kurt Roth, Institute of Environmental Physics, Heidelberg University, Germany * ...Overall, I believe that the authors have rendered an extremely valuable service to the soil physics community with the publication of this nicely written and appealingly presented text, which I wholeheartedly recommend to soil physics students of all ages. I will definitely not hesitate to use it as a textbook in my own courses. If this great book were adopted widely, it would help train a new generation of soil physicists armed with a very solid understanding of what it really means to use computers to describe soil physical processes, and who would not be at the mercy of commercial software developers to satisfy their computational needs. At this stage, soil physics desperately needs such skilled people to move forward. * Professor Philippe Baveye, AgroParisTech, Paris *


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