Representing the impact of Rhizophora mangroves on flow in a hydrodynamic model (COAWST_rh v1.0): the importance of three-dimensional root system structures
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Published:2023-10-19
Issue:20
Volume:16
Page:5847-5863
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ISSN:1991-9603
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Container-title:Geoscientific Model Development
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language:en
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Short-container-title:Geosci. Model Dev.
Author:
Yoshikai MasayaORCID, Nakamura Takashi, Herrera Eugene C., Suwa Rempei, Rollon Rene, Ray RaghabORCID, Furukawa Keita, Nadaoka Kazuo
Abstract
Abstract. Coastal wetland vegetation modulates water flow by exerting drag, which has important implications for sediment transport and geomorphic dynamics. This vegetation effect on flow is commonly represented in hydrodynamic models by approximating the vegetation as an array of vertical cylinders or increased bed roughness. However, this simple approximation may not be valid in the case of Rhizophora mangroves that have complicated three-dimensional root structures. Here, we present a new model to represent the impact of Rhizophora mangroves on flow in hydrodynamic models. The model explicitly accounts for the effects of the three-dimensional root structures on mean flow and turbulence as well as for the effects of two different length scales of vegetation-generated turbulence characterized by stem diameter and root diameter. The model employs an empirical model for the Rhizophora root structures that can be applied using basic vegetation parameters (mean stem diameter and tree density) without rigorous measurements of the root structures. We tested the model against the flows measured by previous studies in a model mangrove forest in the laboratory and an actual mangrove forest in the field, respectively. We show that, compared with the conventional approximation using an array of cylinders or increased bed roughness, the new model significantly improves the predictability of velocity, turbulent kinetic energy, and bed shear stress in Rhizophora mangrove forests. Overall, the presented new model offers a more realistic but feasible framework for simulating flows in Rhizophora mangrove forests with complex root structures using hydrodynamic models.
Funder
Science and Technology Research Partnership for Sustainable Development Japan Science and Technology Agency Ministry of the Environment, Government of Japan
Publisher
Copernicus GmbH
Reference75 articles.
1. Ashall, L. M., Mulligan, R. P., van Proosdij, D., and Poirier, E.: Application and validation of a three-dimensional hydrodynamic model of a macrotidal salt marsh, Coast. Eng., 114, 35–46, https://doi.org/10.1016/j.coastaleng.2016.04.005, 2016. 2. Azman, M. S., Sharma, S., Shaharudin, M. A. M., Hamzah, M. L., Adibah, S. N., Zakaria, R. M., and MacKenzie, R. A.: Stand structure, biomass and dynamics of naturally regenerated and restored mangroves in Malaysia, Forest Ecol. Manag., 482, 118852, https://doi.org/10.1016/j.foreco.2020.118852, 2021. 3. Best, Ü. S. N., van der Wegen, M., Dijkstra, J., Reyns, J., van Prooijen, B. C., and Roelvink, D.: Wave attenuation potential, sediment properties and mangrove growth dynamics data over Guyana's intertidal mudflats: assessing the potential of mangrove restoration works, Earth Syst. Sci. Data, 14, 2445–2462, https://doi.org/10.5194/essd-14-2445-2022, 2022. 4. Beudin, A., Kalra, T. S., Ganju, N. K., and Warner, J. C.: Development of a coupled wave-flow-vegetation interaction model, Comput. Geosci., 100, 76–86, https://doi.org/10.1016/j.cageo.2016.12.010, 2017. 5. Boechat Albernaz, M., Roelofs, L., Pierik, H. J., and Kleinhans, M. G.: Natural levee evolution in vegetated fluvial-tidal environments, Earth Surf. Proc. Land., 45, 3824–3841, https://doi.org/10.1002/esp.5003, 2020.
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