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Reconciling the impact of mobile bottom-contact fishing on marine organic carbon sequestration. <i>ICES J. Mar. Sci./J. Cons. int. Explor. Mer 82(9)</i>: fsaf154. <a href=\"https://dx.doi.org/10.1093/icesjms/fsaf154\" target=\"_blank\">https://dx.doi.org/10.1093/icesjms/fsaf154</a>","AutID":607062,"MonDate":null,"AnaDate":2025,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":418505,"RR":"<b>Pelckmans, I.; Belliard, J.-P.; Gourgue, O.; Dominguez-Granda, L.; Temmerman, S.</b> (2025). Mangrove vegetation density and channel drainage density have trade‐off effects on nature‐based flood risk mitigation in estuaries. <i>JGR: Oceans 130(7)</i>: e2025JC022398. <a href=\"https://dx.doi.org/10.1029/2025jc022398\" target=\"_blank\">https://dx.doi.org/10.1029/2025jc022398</a>","AutID":604061,"MonDate":null,"AnaDate":2025,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":417426,"RR":"<b>Wang, D.; Gu, G.; Temmerman, S.; Belliard, J.-P.; Gourgue, O.; Xue, L.; Bai, J.</b> (2025). Coastal marsh vulnerability to sea-level rise is exacerbated by plant species invasion. <i>Glob. Chang. Biol. 31(2)</i>: e70058. <a href=\"https://dx.doi.org/10.1111/gcb.70058\" target=\"_blank\">https://dx.doi.org/10.1111/gcb.70058</a>","AutID":608448,"MonDate":null,"AnaDate":2025,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":392701,"RR":"<b>Liu, Z.; Fagherazzi, S.; He, Q.; Gourgue, O.; Bai, J.; Liu, X.; Miao, C.; Hu, Z.; Cui, B.</b> (2024). A global meta-analysis on the drivers of salt marsh planting success and implications for ecosystem services. <i>Nature Comm. 15(1)</i>. <a href=\"https://dx.doi.org/10.1038/s41467-024-47769-5\" target=\"_blank\">https://dx.doi.org/10.1038/s41467-024-47769-5</a>","AutID":567231,"MonDate":null,"AnaDate":2024,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":362431,"RR":"<b>Belliard, J.-P.; Gourgue, O.; Govers, G.; Kirwan, M.L.; Temmerman, S.</b> (2023). Coastal wetland adaptability to sea level rise: the neglected role of semi-diurnal vs. diurnal tides. <i>Limnology and Oceanography Letters 8(2)</i>: 340-349. <a href=\"https://dx.doi.org/10.1002/lol2.10298\" target=\"_blank\">https://dx.doi.org/10.1002/lol2.10298</a>","AutID":522177,"MonDate":null,"AnaDate":2023,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":391476,"RR":"<b>Pelckmans, I.; Belliard, J.-P.; Dominguez-Granda, L.E.; Slobbe, C.; Temmerman, S.; Gourgue, O.</b> (2023). Mangrove ecosystem properties regulate high water levels in a river delta. <i>Nat. Hazards Earth Syst. Sci. 23(9)</i>: 3169-3183. <a href=\"https://dx.doi.org/10.5194/nhess-23-3169-2023\" target=\"_blank\">https://dx.doi.org/10.5194/nhess-23-3169-2023</a>","AutID":563099,"MonDate":null,"AnaDate":2023,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":381136,"RR":"<b>van de Vijsel, R.C.; van Belzen, J.; Bouma, T.J.; van der Wal, D.; Borsje, B.W.; Temmerman, S.; Cornacchia, L.; Gourgue, O.; van de Koppel, J.</b> (2023). Vegetation controls on channel network complexity in coastal wetlands. <i>Nature Comm. 14(1)</i>: 7158. <a href=\"https://dx.doi.org/10.1038/s41467-023-42731-3\" target=\"_blank\">https://dx.doi.org/10.1038/s41467-023-42731-3</a>","AutID":502170,"MonDate":null,"AnaDate":2023,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":352370,"RR":"<b>Gourgue, O.; van Belzen, J.; Schwarz, C.; Vandenbruwaene, W.; Vanlede, J.; Belliard, J.-P.; Fagherazzi, S.; Bouma, T.J.; van de Koppel, J.; Temmerman, S.</b> (2022). Biogeomorphic modeling to assess the  resilience of tidal-marsh restoration to  sea level rise and sediment supply. <i>Earth Surface Dynamics 10(3)</i>: 531-553. <a href=\"https://dx.doi.org/10.5194/esurf-10-531-2022\" target=\"_blank\">https://dx.doi.org/10.5194/esurf-10-531-2022</a>","AutID":502170,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":351054,"RR":"<b>Liu, Z.; Gourgue, O.; Fagherazzi, S.</b> (2022). Biotic and abiotic factors control the geomorphic characteristics of channel networks in salt marshes. <i>Limnol. Oceanogr. 67(1)</i>: 89-101. <a href=\"https://dx.doi.org/10.1002/lno.11977\" target=\"_blank\">https://dx.doi.org/10.1002/lno.11977</a>","AutID":77954,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":351156,"RR":"<b>Belliard, J.-P.; Dominguez-Granda, L.E.; Ramos-Veliz, J.A.; Rosado-Moncayo, A.M.; Nath, J.; Govers, G.; Gourgue, O.; Temmerman, S.</b> (2021). El Niño driven extreme sea levels in an Eastern Pacific tropical river delta: Landward amplification and shift from oceanic to fluvial forcing. <i>Global Planet. Change 203</i>: 103529. <a href=\"https://dx.doi.org/10.1016/j.gloplacha.2021.103529\" target=\"_blank\">https://dx.doi.org/10.1016/j.gloplacha.2021.103529</a>","AutID":234917,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":345522,"RR":"<b>Cao, H.; Zhu, Z.; van Belzen, J.; Gourgue, O.; van de Koppel, J.; Temmerman, S.; Herman, P.M.J.; Zhang, L.; Yuan, L.; Bouma, T.J.</b> (2021). Salt marsh establishment in poorly consolidated muddy systems: effects of surface drainage, elevation, and plant age. <i>Ecosphere 12(9)</i>: e03755. <a href=\"https://dx.doi.org/10.1002/ecs2.3755\" target=\"_blank\">https://dx.doi.org/10.1002/ecs2.3755</a>","AutID":467099,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":329391,"RR":"<b>Gourgue, O.; van Belzen, J.; Schwarz, C.; Bouma, T.J.; van de Koppel, J.; Temmerman, S.</b> (2021). A convolution method to assess subgrid‐scale interactions between flow and patchy vegetation in biogeomorphic models. <i>J. Adv. Model. 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Res. 13</i>: 103-120. <a href=\"http://dx.doi.org/10.1016/j.jher.2015.04.005\" target=\"_blank\">dx.doi.org/10.1016/j.jher.2015.04.005</a>","AutID":248984,"MonDate":null,"AnaDate":2016,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":232875,"RR":"<b>de Brauwere, A.; Gourgue, O.; de Brye, B.; Servais, P.; Ouattara, N.K.; Deleersnijder, E.</b> (2014). Integrated modelling of faecal contamination in a densely populated river–sea continuum (Scheldt River and Estuary). <i>Sci. Total Environ. 468-469</i>: 31-45. <a href=\"http://dx.doi.org/10.1016/j.scitotenv.2013.08.019\" target=\"_blank\">http://dx.doi.org/10.1016/j.scitotenv.2013.08.019</a>","AutID":145922,"MonDate":null,"AnaDate":2014,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":241384,"RR":"<b>Elskens, M.; Gourgue, O.; Baeyens, W.; Chou, L.; Deleersnijder, E.; Leermakers, M.; de Brauwere, A.</b> (2014). Modelling metal speciation in the Scheldt Estuary: combining a flexible-resolution transport model with empirical functions. <i>Sci. Total Environ. 476-477</i>: 346-358. <a href=\"http://dx.doi.org/10.1016/j.scitotenv.2013.12.047\" target=\"_blank\">http://dx.doi.org/10.1016/j.scitotenv.2013.12.047</a>","AutID":145922,"MonDate":null,"AnaDate":2014,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":238113,"RR":"<b>de Brye, B.; de Brauwere, A.; Gourgue, O.; Delhez, E.J.M.; Deleersnijder, E.</b> (2013). Reprint of water renewal timescales in the Scheldt Estuary. <i>J. Mar. Syst. 128</i>: 3-16. <a href=\"http://dx.doi.org/10.1016/j.jmarsys.2012.03.002\" target=\"_blank\">dx.doi.org/10.1016/j.jmarsys.2012.03.002</a>","AutID":145922,"MonDate":null,"AnaDate":2013,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":232876,"RR":"<b>Gourgue, O.; Baeyens, W.; Chen, M.S.; de Brauwere, A.; de Brye, B.; Deleersnijder, E.; Elskens, M.; Legat, V.</b> (2013). A depth-averaged two-dimensional sediment transport model for environmental studies in the Scheldt Estuary and tidal river network. <i>J. Mar. Syst. 128</i>: 27-39. <a href=\"http://dx.doi.org/10.1016/j.jmarsys.2013.03.014\" target=\"_blank\">http://dx.doi.org/10.1016/j.jmarsys.2013.03.014</a>","AutID":164933,"MonDate":null,"AnaDate":2013,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":217978,"RR":"<b>de Brye, B.; de Brauwere, A.; Gourgue, O.; Delhez, E.J.M.; Deleersnijder, E.</b> (2012). Water renewal timescales in the Scheldt Estuary. <i>J. Mar. Syst. 94</i>: 74-86. <a href=\"http://dx.doi.org/10.1016/j.jmarsys.2011.10.013\" target=\"_blank\">http://dx.doi.org/10.1016/j.jmarsys.2011.10.013</a>","AutID":148207,"MonDate":null,"AnaDate":2012,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":208350,"RR":"<b>Kärnä, T.; de Brye, B.; Gourgue, O.; Lambrechts, J.; Comblen, R.; Legat, V.; Deleersnijder, E.</b> (2011). A fully implicit wetting–drying method for DG-FEM shallow water models, with an application to the Scheldt Estuary. <i>Comput. methods appl. mech. eng. 200(5-8)</i>: 509-524. <a href=\"http://dx.doi.org/10.1016/j.cma.2010.07.001\" target=\"_blank\">dx.doi.org/10.1016/j.cma.2010.07.001</a>","AutID":148207,"MonDate":null,"AnaDate":2011,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":144816,"RR":"<b>de Brye, B.; de Brauwere, A.; Gourgue, O.; Kärnä, T.; Lambrechts, J.; Comblen, R.; Deleersnijder, E.</b> (2010). A finite-element, multi-scale model of the Scheldt tributaries, river, estuary and ROFI. <i>Coast. 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