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Jurjen de Jong

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3 records found

Journal article (2025) - H.J. Barneveld, R. M. Frings, R.P. van Denderen, J.S. de Jong, J.G.W. Beemster, L.A. Melsen, A.J.F. Hoitink, E. Mosselman, J. G. Venditti, M. G. Kleinhans, A. Blom, R.M.J. Schielen, W.H.J. Toonen, D. Meijer, A.J. Paarlberg
Climate change is expected to increase the frequency and magnitude of river floods 1. Floods not only cause damage by inundation and loss of life 2,3 but also jeopardize infrastructure because of bank failure and riverbed erosion processes that are poorly understood. Common flood safety programmes include dyke reinforcement and river widening 4, 5, 6, 7, 8–9. The 2021 flood in the Meuse Basin caused 43 fatalities and billions of dollars of damage to infrastructure 10. Here, on the basis of analysis of the Meuse flood, we show how uneven widening of the river and heterogeneity of sediment deposits under the river can cause massive erosion. A recent flood safety programme widened the river 11, but created bottlenecks where widening was either prevented by infrastructure or not yet implemented. Riverbed erosion was exacerbated by tectonic uplift that had produced a thin top gravel layer above fine-grained sediment. Greatly enhanced flow velocities produced underwater dunes with troughs that broke through the gravel armour in the bottlenecks, exposing easily erodible sands, resulting in extreme scour holes, one more than 15 m deep. Our investigation highlights the challenges of re-engineering rivers in the face of climate change, increased flood risks and competition for river widening space, and calls for a better understanding of the subsurface. ...
Journal article (2023) - Bart Strijker, Nathalie Asselman, Jurjen de Jong, Hermjan Barneveld
In July of 2021, large areas in the catchment of the Meuse River in Belgium, the Netherlands and Germany were affected by extreme rainfall and floods. This paper presents the hydraulic and morphological data that were collected during and after the flood. The data were analysed to understand the hydraulic and morphological functioning of the Meuse River in the Netherlands during the flood event. The data showed that measured peak discharges in the upstream part of the Meuse and regional tributaries were the highest ever recorded. However, as the flood had a very short duration, peak attenuation played an important role, resulting in discharges and water levels in downstream reaches that were lower than during previous floods. Furthermore, the implementation of river widening and floodplain lowering measures as part of the Meuse Works programme contributed to a reduction in peak water levels along the Meuse. The analysis also showed that flood forecasts in the upstream part of the Meuse in the Netherlands depended heavily on rainfall forecasts and rainfall-runoff modelling and underestimated the peak water levels up to 36 hours before the flood actually peaked. Further downstream, the lead time increases and forecasts are based on discharge levels that are measured in upstream parts of the catchments. This results in more accurate estimates. The floods have also resulted in unprecedented morphological changes. The armour layer in the riverbed of the ‘Common Meuse’, consisting of very coarse gravel, was mobilised and layers of fine sand quickly eroded. This resulted in multiple scour holes with depths of 3 to 15m, especially in a reach which was hardly or not at all widened in the room for the river programme called Meuse Works. In this reach, the flow velocities were high and even higher than prior to the Meuse Works. ...
Abstract (2023) - Tom Buijse, Erik Mosselman, Henk Eerden, Frank Collas, Laura Verbrugge, Andries Paarlberg, Amgad Omar, Jurjen de Jong, Víctor Chavarrías, More Authors...