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Contents
Foreword & Publication Details
Executive Summary & Acknowledgements
1. Introduction
2. Load-Response Models
3. Biogeochemical Process Models
- 3.1 Phytoplankton Growth And Nutrient Uptake
- 3.2 Phytoplankton Loss Rates
- 3.3 Zooplankton Growth and Losses
- 3.4 Detritus and Nutrient Recycling
- 3.5 Sediment Biogeochemistry
- 3.6. Simple vs Complex Process Models
- 3.6.1. Multiple Nutrients
- 3.6.2. Trophic Complexity
- 3.6.3. Organic Matter
- 3.6.4. Benthic Communities
- 3.6.5. Complexity and Data Requirements
4. Analysis of a Steady-State 1-Box Model
- 4.1 Model Definition
- 4.2 Steady-state Analysis
- 4.2.1 Total N Balance
- 4.2.2 Composition of TN
- 4.2.3. Response to Nitrogen Load
- 4.2.4 Phytoplankton Mortality and Multiple Stable States
- 4.2.5. Denitrification as an Internal Sink
- 4.2.6. Organic Nitrogen Loads
- 4.3. Conclusions
5. Simple Inverse Models for Driving Estuarine Transport and Eutrophication Models
- 5.1. Introduction
- 5.2. Hansen-Rattray Estuary Classification
- 5.3. Summary of Possible Models
- 5.3.1. Nomenclature
- 5.3.2. A Pseudo-Potential Method
- 5.3.3 One-Dimensional Single-Layer Model
- 5.3.4. One-Dimensional Two-Layer (Pritchard) Model
- 5.3.5. One-Dimensional Two-Layer Hybrid Model
- 5.3.6. One-Dimensional n-Layer Hybrid Model
- 5.4. Implementation of One-Dimensional n-Layer Hybrid Model
- 5.4.1. Weighting of Fluxes and Equations
- 5.4.2. The Diffusive Fraction
- 5.4.3. Upstream Differencing
- 5.4.4. Evaluation of Time-Dependent Flow Fields
6. Application of a Simple Spatially-Resolved Eutrophication Model
- 6.1. The spatially-resolved model
- 6.2. Derwent River Estuary
- 6.2.1. General Description
- 6.2.2. Data Sets
- 6.2.3. Estuary Geometry and Physical Exchanges
- 6.2.4. Nutrient Loads and Boundary Conditions
- 6.2.5. Model 0 Data Comparisons
- 6.2.6. Model Behaviour And Experiments
- 6.2.7. Implications For Point Source Locations
- 6.3. Brunswick River Estuary
- 6.3.1. General Description
- 6.3.2. Data Sets
- 6.3.3 Estuary Geometry and Physical Exchanges
- 6.3.4. Nutrient Loads and Boundary Conditions
- 6.3.5. Model-Data Comparisons
- 6.3.6. Model behaviour and experiments
- 6.3.7. Implications for Point Source Location
- 6.4. Hardy Inlet
- 6.4.1. General Description
- 6.4.2. Data Sets
- 6.4.3. Estuary Geometry and Physical Exchanges
- 6.4.4. Nutrient Loads and Boundary Conditions
- 6.4.5. Model-Data Comparisons
- 6.4.6. Model Behaviour
- 6.5. Conclusions from Test Cases
7. Algal Bloom Composition
- 7.1. Introduction
- 7.2. Predicting Bloom Composition
- 7.3. Feedback of algal composition on biomass models
- 7.3.1.Loss rates
- 7.3.2.Growth Rates
- 7.3.3.N-fixation
- 7.3.4.Implementation
8. Conclusions
- 8.1. Conclusions from the one-box model
- 8.2. Conclusions from the Spatially Resolved Model
9. Recommendations
- 9.1. Data Requirements for Modelling and Predicting Eutrophication and Algal Blooms in estuaries
- 9.2. Priorities for Further Model Development
References
Glossary of Symbols
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