Showing posts with label climate change. Show all posts
Showing posts with label climate change. Show all posts

A Vast Machine: Computer Models, Climate Data, and the Politics of Global Warming Review

A Vast Machine: Computer Models, Climate Data, and the Politics of Global Warming
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Understanding how we know about climate, and even what it means to know about climate and climate change, is essential if we are to have an informed debate. This is far and away the best book I have read on the infrastructure behind our knowledge of climate change, how that infrastructure developed, and how the infrastructure shapes our understanding.
The story begins in the 1600s as systematic collection of weather data began (at least in the modern period, other cultures such as the Chinese have older records and it would be interesting to unearth these, although the data normalization issues would be extreme). It picks up speed in the 19th C with global trade and then the telegraph. The more data collected, and the more data is exchanged, the more important it becomes to normalize data for comparison. Normalization requires some form of data model, a theory that makes the data meaningful. Indeed, this is Edwards point, all data about weather and climate only becomes meaningful in the context of a model (this is of course generally true).
Work accelerated during WW2 and then exploded in the 50s and 60s as computers became more available. The role played by John Von Neumann in this is fascinating, as is the nugget that his second wife Klara Von Neumann taught early weather scientists how to program (there is a whole hidden history of the role of woman in developing computer programming that needs to be written - or if you know of one please add it to the comments of this review or tweet it to me @StevenForth).
Edwards also introduces some useful concepts such as Data Friction and Computational Friction. I think my company can apply these in its own work, so for me this has been a very practical text.
Modern models of climate are complex and are growing more so. They have to be to integrate data from multiple sources. One of the main lines of evidence for climate change is that data from many different sources are converging to suggest that climate change is a real and accelerating phenomena. One can meaningfully ask if this convergence is an artifact of the models, although this appears unlikely given the diversity of the data and models. But Edwards shows that it is idiotic to claim that the data and the models can be meaningfully separated. This is true in all science and not just climate science. A theory is a model to normalize and integrate data and to uncover and make meaningful relations between disparate data. That these models are now expressed numerically in computations, rather than as differential equations or sentences in a human language or drawings is one of the major shifts of the information age. It will be interesting to dig deeper into the formal relations between these diffferent modeling languages.

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The science behind global warming, and its history: how scientistslearned to understand the atmosphere, to measure it, to trace its past, and to modelits future.

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Snow and Climate: Physical Processes, Surface Energy Exchange and Modeling Review

Snow and Climate: Physical Processes, Surface Energy Exchange and Modeling
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This is a serious treatment that greatly updates the previously published Handbook of Snow: Principles, Processes, Management and Use. Richard Armstrong (Univ. Colorado, Boulder) has devoted much effort to the study of snow. This book may be a bit intimidating to the average user, but systematic reading and use reveals of wealth of current knowledge applicable to transportation, recreation and climate change. The book is organized in five sections: 1) Introduction and the basic properties of snow, 2) Physical processes within snow cover, 3) Snow-atmosphere energy and mass balance, 4) Snow cover parameterization and modeling, 5) Snow-cover data, measurement, products and sources. Sixteen contributers from around the world bring current language and knowledge regarding snow. It is refreshing that the text uses SI measurements exclusively. In light of global climate change, the presence and absence of snow has greater importance in the form of water, economics, transportation, weather and climate characteristics and ecosystem maintenance.
Snow is one of the most unstable substances on Earth. It changes during evaporation into the atmosphere, to formation of ice crystals suspended in the atmosphere, to clouds, to precipitation, to long-term deposition on the ground. It is a substance that exists close to the triple-point of water: vapor, liquid and solid. Geothermal heat plays a key role in the transformation of snow from deposition on the ground to release into the atmosphere. There is a good discussion of metamorphism using current terms and understanding - equilibrium growth form, kinetic growth form, wet and dry snow, porosity, permeability, radiation, snow albedo and more. This is collective wisdom that requires a heavy dose of hands-on time and serious look at snow, reflection, discussion.
The discussion of snow-cover data measurement, products and sources is welcome for common understanding and systematic measurement of snow. While many states view the winter snow pack as "water towers in the sky" that slowly release their water and sustain farms and cities below, global climate change is putting this all askew. Snow surveyors, water agencies, irrigation districts, and countries make periodic observations of snow-cover. This text helps standardize the rhetoric and practices of snow observation.
A Snow model questionaire helps the reader understand specifically what is involved in observing, recording and making use of snow cover data.

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The extent and variability of seasonal snow cover are important parameters in the climate system, due to their effects on energy and moisture budgets, and because surface temperature is highly dependent on snow cover. In turn, snow cover trends serve as key indicators of climate change. Many distinct techniques have become available to study snow-climate relationships. Satellites provided the first capability for monitoring snow cover extent at continental and hemispheric scales, and there have been rapid advances in snow modeling physics to represent snow cover and snow processes in Global Climate Models (GCMs). These advances have changed the way we look at snow cover. The main goal of this book is to provide a synthesis of the prevailing state of snow-climate science that reflects this distinct perspective. This volume provides an excellent synthesis for researchers and advanced students.

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Climate System Modeling Review

Climate System Modeling
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This book you can use to get a really good picture of what climate modelling really is. You should be somewhat into your studies and not a first year student.The book covers virtually every topic that is important if you want to build your own climate model.Do not try this, though; your PC cannot work with all the subsystems that are described in the volume. Following Schneiders 1982 book this is really guff!

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Modeling Dynamic Climate Systems (With CD-ROM) Review

Modeling Dynamic Climate Systems (With CD-ROM)
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This book aims to teach about climate modeling while presenting some fundamentals of atmospheric physics by providing numerous STELLA models ranging from a simple stability model of a leaky bucket to much more complex (and relevant) models for Rossby waves and El Nino. Though the models are not "rigorous", they are intended to show how simplifications can enhance understanding and how some simplifications meet the goals of the model while other times simplifications miss important aspects for accurate models.
For those who are looking for sophisticated programing and modeling approaches, they are sure to be disappointed. However, for those who are either trying to learn or teach basics of climate modeling to those with limited mathematical expertise or teaching students with such limited experience, this book will prove quite useful. The approximately 40 STELLA models included with the book guide the reader to an intuitive understanding of an Earth system approach of atmospheric science. I plan to use a number of examples with a group of students who have only a simple calculus background. Though the text has a 2001 copywrite and the CD-ROM was intended for an earlier version of STELLA, I found that the models could be translated to the newest versions of STELLA on a Macintosh through a fairly simple manipulations and help from software updates provided by High Performance Systems. The text would be useful for junior level classes in atmospheric science aimed at students in environmental science programs. It would be less useful for those with strong math skills majoring in a rigorous atmospheric science sequence, though it could provide such students with a much better conceptual understanding than they might receive in a more mathematically sophisticated class.

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In the process of building and using models to comprehend the dynamics of the atmosphere, ocean and climate, the reader will learn how the different components of climate systems function, interact with each other, and vary over time. Topics include the stability of climate, Earths energy balance, parcel dynamics in the atmosphere, the mechanisms of heat transport in the climate system, and mechanisms of climate variability. Special attention is given to the effects of climate change. The book is accompanied by a cross-platform CD-ROM containing models and a run-time version of STELLA modeling software.

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Distribution System Modeling and Analysis, Second Edition (Electric Power Engineering) Review

Distribution System Modeling and Analysis, Second Edition (Electric Power Engineering)
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This book is loaded with great examples and the problems at the end of chapters are based on these examples. There are multiple errors in this book though. Small errors. Chapter two has about 4 or 5 errors in it. I am up to chapter 6 right now and I think that every chapter so far has at least 1 error in it.

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First introduced in 2001, Kersting's Distribution System Modeling and Analysis is the only textbook on computational modeling for electric power distribution systems. Computer models are only as good as their input, and this intuitive work clearly explains the principles and mathematics behind these models and provides approximation methods that help students recognize when a result is not what it should be. Using the same authoritative yet accessible approach, this second edition was updated to reflect the changes and advances in the field since the first edition appeared.
Nearly every chapter of this book has been updated according to new trends and areas of interest, new technologies, and the increasing spread of distributed generation. Most notably, this edition features a new chapter on the center-tapped transformer for providing three-wire service to single-phase customers. New discussions consider the effects of mutual coupling between overhead and underground lines running parallel for long distances, expand on the discussion of induction machines to consider the rotor circuit, and examine the effects of distributed generation technologies such as windmills on feeders.
Illustrated with numerous figures, examples, and exercises, Distribution System Modeling and Analysis, Second Edition remains the definitive textbook for teaching students to understand and model all aspects of modern distribution systems.

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