4.8 Review

Water quality modeling in sewer networks: Review and future research directions

Journal

WATER RESEARCH
Volume 202, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.watres.2021.117419

Keywords

Sewer networks; Water quality models; Water quality parameters; Model types; Future directions

Funding

  1. National Natural Science Foundation of China [51922096]
  2. Excellent Youth Natural Science Foundation of Zhejiang Province, China [LR19E080003]

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Water quality models are a promising way to address water quality issues in urban sewer networks. Currently, there is a trend towards using empirical and kinetic models for prediction and process understanding, but the accuracy of the models needs improvement. Future research directions include determining appropriate data resolutions for different SN models, developing hybrid SN models, and enhancing SN model transferability.
Urban sewer networks (SNs) are increasingly facing water quality issues as a result of many challenges, such as population growth, urbanization and climate change. A promising way to addressing these issues is by developing and using water quality models. Many of these models have been developed in recent years to facilitate the management of SNs. Given the proliferation of different water quality models and the promise they have shown, it is timely to assess the state-of-the-art in this field, to identify potential challenges and suggest future research directions. In this review, model types, modeled quality parameters, modeling purpose, data availability, type of case studies and model performance evaluation are critically analyzed and discussed based on a review of 110 papers published between 2010 and 2019. The review identified that applications of empirical and kinetic models dominate those of data-driven models for addressing water quality issues. The majority of models are developed for prediction and process understanding using experimental or field sampled data. While many models have been applied to real problems, the corresponding prediction accuracies are overall moderate or, in some cases, low, especially when dealing with larger SNs. The review also identified the most common issues associated with water quality modeling of SNs and based on these proposed several future research directions. These include the identification of appropriate data resolutions for the development of different SN models, the need and opportunity to develop hybrid SN models and the improvement of SN model transferability.

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