Computer Based Environmental Management

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Computer-Based Environmental Management

Here, the author provides professionals in environmental research and management with the information they need with respect to computer modeling: An understanding of the mathematical fundamentals and the choice of the optimal approach and corresponding software for their particular task. - Numerous illustrations, flowcharts and graphs, partly in color, as well as worked examples help in comprehending complex mathematical tasks and their solutions without the use of confusing mathematical formalism; - Case studies from various fields of environmental research, such as landscape ecology, environmental assessment, population ecology, hydrology, and agroecology, facilitate the application of simulation models to the solution of real-world problems; - Contains a detailed summary of currently available software tools and the application in spatially explicit simulation based on geographic information systems. The worked examples and case studies cover a broad range of environmental systems and processes, adopting such modern mathematical methodology as partial differential equations, fuzzy logic, hybrid Petri nets, and optimum control theory. The result is a unique presentation of applications for high standard modeling and simulation methodologies in the interdisciplinary fields of environmental research. From the Foreword by Robert Costanza (Gund Institute of Ecological Economics, Burlington, VT, USA): "As a teacher of environmental modeling, I've been searching for many years for the perfect text to use courses. My search has ended with the publication of Ralf Seppelt's book and I intend to use it as a core text in modeling courses."
Computer Aided Environmental Management

An integration of the fascinating stream of computers with an equally fascinating domain of environmental studies has given birth to the new branch of science we call, Computer-aided Environmental Management (CAEM). This book provides us with glimpses of the power CAEM can wield. It gives us insights into the innumerable ways in which CAEM can solve intricate practical problems of environmental pollution in a sophisticated yet inexpensive manner. Contents: COBAS: Cost Benefit Analysis of Anaerobic Digester Systems, Water Quality Modelling: Approaches to Water Pollution Forecasting and Management, Modelling of Buckingham Canal Water Quality, Modelling and Simulation of Heavy Gas Dispersion on the Basis of Modification in Plume Path Theory, Case Study: Modelling and Simulation of Heavy Gases Released by Petrochemical Industries, HAZDIG: A new Software Package for Assessing Accidental Release and Dispersion Characteristics, Attenuation of Gaseous Pollutants by Greenbelts, TORAP A New Tool for Conducting Rapid Risk Assessment in Petroleum Refineries and Petrochemical Industries, Case Study: Application of a New Computer Automated Tool TORAP in Conducting Risk Assessment of a Petrochemical Industry, Models for Domino Effect Analysis in Chemical Process Industries, Studies on the Probabilities are Likely Impacts of Chains of Accident (Domino Effect) in a Fertilizer Industry.
Environmental Software Systems

Due to increasing practical needs, software support of environmental protection and research tasks is growing in importance and scope. Software systems help to monitor basic data, to maintain and process relevant environmental information, to analyze gathered information and to carry out decision processes, which often have to take into account complex alternatives with various side effects. Therefore software is an important tool for the environmental domain. When the first software systems in the environmental domain grew - 10 to 15 years ag- users and developers were not really aware of the complexity these systems are carrying with themselves: complexity with respect to entities, tasks and procedures. I guess nobody may have figured out at that time that the environmental domain would ask for solutions which information science would not be able to provide and - in several cases - can not provide until today. Therefore environmental informatics - as we call it today - is also an important domain of computer science itself, because practical solutions need to deal with very complex, interdisciplinary, distributed, integrated, sometimes badly defined, user-centered decision processes. I doubt somebody will state that we are already capable of building such integrated systems for end users for reasonable cost on a broad range. The development of the first scientific community for environmental informatics started around 1985 in Germany, becoming a technical committee and working group of the German Computer Society in 1987.