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Comment on egusphere-2025-529
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This review examines process-based numerical models for studying microplastic transport and fate in estuarine environments, addressing the challenges of representing diverse microplastic properties and complex estuary hydrodynamics. Researchers evaluated model structures and identified critical gaps in simulating microplastic settling, resuspension, and biological uptake in transitional coastal waters.
Abstract. The study of microplastic transport and fate in estuaries poses significant challenges due to the complex, dynamic nature of these ecosystems and the diverse characteristics of microplastics. Process-based numerical models have become indispensable for studying microplastics, complementing observational data by offering insights into transport processes and dispersion trends that are difficult to capture through in-situ measurements alone. Effective model implementations require an accurate representation of the hydrodynamic conditions, relevant transport processes, particle properties, and their dynamic behaviour and interactions with other environmental components. In this paper, we provide a comprehensive review of the different process-based modelling approaches used to study the transport of microplastics in estuaries, including Eulerian Idealized 2DV models, Eulerian Realistic Models, Lagrangian Particle Tracking Models, and Population Balance Equation Models. We detail each approach and analyze previous applications, examining key aspects such as parameterizations, input data, model setups, and validation methods. We assess the strengths and limitations of each approach and provide recommendations, good practices, and future directions to address challenges, improve the accuracy of predictions, and advance modelling strategies, ultimately benefiting the research field.
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Comment on egusphere-2025-529
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This comment addresses methodological and modeling challenges in studying microplastic transport and fate in estuaries, emphasizing that the complex, dynamic nature of estuarine ecosystems and diverse microplastic properties make process-based numerical models essential complements to field observations. The author highlights key considerations for improving model accuracy in predicting microplastic dispersal through estuarine systems.
Comment on egusphere-2025-529
AI summary Read the abstract
This commentary examines the challenges and methodological requirements for process-based numerical modelling of microplastic transport and fate in estuaries, emphasizing the need for accurate hydrodynamic representation and robust parameterization of plastic particle properties. The piece argues that models must integrate observational data to capture dispersion trends that field measurements alone cannot resolve.
Modelling microplastic dynamics in estuaries: a comprehensive review, challenges, and recommendations
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This review examined process-based numerical models used to simulate microplastic transport and fate in estuaries, identifying key challenges including particle diversity, tidal dynamics, and limited field validation data. The authors highlight how models complement observational studies and outline priorities for improving predictive accuracy in these dynamic coastal environments.
Reply on RC2
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This study examines process-based numerical models for simulating microplastic transport and fate in estuaries, addressing the significant challenges posed by the complex hydrodynamic conditions and diverse physical properties of microplastics in these dynamic transitional ecosystems.
Reply on RC1
AI summary Read the abstract
This review examines process-based numerical modeling approaches for studying microplastic transport and fate in estuaries, highlighting the significant challenges posed by the complex hydrodynamics and diverse physicochemical properties of microplastics in these dynamic ecosystems. Researchers assessed the current state of estuarine microplastic models and identified key uncertainties in representing particle behavior, settling, and biological interactions.
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