Three-dimensional distribution of organic matter in coastal-deltaic peat: Implications for subsidence and carbon dioxide emissions by human-induced peat oxidation

Anthropocene - Tập 22 - Trang 1-9 - 2018
K. Koster1,2, J. Stafleu2, K.M. Cohen1,2,3, E. Stouthamer1, F.S. Busschers2, H. Middelkoop1
1Utrecht University, Department of Physical Geography, Utrecht, The Netherlands
2TNO-Geological Survey of the Netherlands, Utrecht, The Netherlands
3Deltares, Department of Applied Geology and Geophysics, Utrecht, The Netherlands

Tài liệu tham khảo

Andrejko, 1983, Origin of mineral matter in peat, 3 Auerbach, 2015, Flood risk of natural and embanked landscapes on the Ganges-Brahmaputra tidal delta plain, Nat. Clim. Change, 5, 153, 10.1038/nclimate2472 Beets, 2000, The Holocene evolution of the barrier and back-barrier basins of Belgium and The Netherlands as a function of late Weichselian morphology, relative sea-level rise and sediment supply, Neth. J. Geosci., 79, 3 Berendsen, 2001 Borger, 1992, Draining-digging-dredging; the creation of a new landscape in the peat areas of the low countries, 131 Bos, 2012, Organic-facies determination: a key for understanding facies distribution in the basal peat layer of the Holocene Rhine-Meuse delta, The Netherlands, Sedimentology, 59, 676, 10.1111/j.1365-3091.2011.01271.x Bos, 2010 Busschers, 2007, Late Pleistocene evolution of the Rhine-Meuse system in the southern North Sea basin: imprints of climate change, sea-level oscillation and glacio-isostacy, Quat. Sci. Rev., 26, 3216, 10.1016/j.quascirev.2007.07.013 CBS, 2016 Cohen, 2012, Digitaal Basisbestand Paleogeografie van de Rijn-Maas Delta / Rhine-Meuse Delta Studies’ Digital Basemap for Delta Evolution and Palaeogeography De Mulder, 1982, Holocene stratigraphy, radiocarbon datings and paleogeography of Central and Northern North-Holland (The Netherlands), Med. van de Rijks Geol. Dienst, 111 Den Haan, 2006, Characterisation and engineering properties of Dutch peats, Sec. Int. Workshop on Charact. and Eng. Prop. of Nat. Soils, 3, 2101 Den Haan, 1992, The formulation of virgin compression of soils, Géotechnique, 42, 465, 10.1680/geot.1992.42.3.465 Dixon, 2006, Subsidence and flooding in New Orleans, Nature, 441, 587, 10.1038/441587a Drexler, 2009, The legacy of wetland drainage on the remaining peat in the Sacramento−San Joaquin delta, USA, Wetlands, 29, 372, 10.1672/08-97.1 Edwards, 2006, Mid- to late-Holocene relative sea-level change in southwest Britain and the influence of sediment compaction, Holocene, 16, 575, 10.1191/0959683606hl941rp Erkens, 2006, Holocene sediment budgets in the Rhine Delta (The Netherlands): a record of changing sediment delivery, Proc. IAHS, 306, 406 Erkens, 2012 Erkens, 2016, Double trouble: subsidence and CO2 respiration due to 1000 years of cultivation of the Dutch coastal peatlands, Hydrogeol. J., 24, 551, 10.1007/s10040-016-1380-4 Erkens, 2009, 388 Gambolati, 2006, Subsidence due to peat oxidation and impact on drainage infrastructures in a farmland catchment south of the Venice Lagoon, Environ. Geol., 49, 814, 10.1007/s00254-006-0176-6 Gotjé, 1993 Heiri, 2001, Loss on ignition as a method for estimating organic and carbonate content in sediments: reproducibility and comparability of results, J. Paleolimnol., 25, 101, 10.1023/A:1008119611481 Higgins, 2016, Review: advances in delta-subsidence research using satellite methods, Hydrogeol. J., 24, 587, 10.1007/s10040-015-1330-6 Hijma, 2010, Timing of and magnitude of the sea-level jump preluding the 8200 yr event, Geology, 38, 275, 10.1130/G30439.1 Hiraishi, 2014 Hooijer, 2010, Current and future CO2 emissions from drained peatlands in Southeast Asia, Biogeosciences, 7, 1505, 10.5194/bg-7-1505-2010 Hooijer, 2012, Subsidence and carbon loss in drained tropical peatlands, Biogeosciences, 9, 1053, 10.5194/bg-9-1053-2012 Ishii, 2016, Middel to late-Holocene decreased fluvial aggradation and widespread peat initiation in the Ishikari lowland (northern Japan), Holocene, 26, 1924, 10.1177/0959683616646189 Jelgersma, 1970, The coastal dunes of the Western Netherlands: geology, vegetational history and archaeology, Med. van de Rijks Geol. Dienst, 21, 93 Jelgersma, 1961, Holocene sea level changes in the Netherlands, Med. van de Rijks Geol. Sticht. Serie C, 6, 1 Kluiving, 2013, Soil archives of a Fluvisol: subsurface analysis and soil histrory of the medieval city centre of Vlaardingen, The Netherlands−an integral approach, Soil, 2, 271, 10.5194/soil-2-271-2016 Kool, 2006, Oxidation and compaction of a collapsed peat dome in Central Kalimantan, Geoderma, 137, 217, 10.1016/j.geoderma.2006.08.021 Koster, 2018, Characterizing void ratio and compressibility of Holocene peat with CPT for assessing coastal-deltaic subsidence, Quart. J. Eng. Geol., 1 Koster, 2016, Cone Penetration Testing: a sound method for urban archaeological prospection, Arch. Prosthet., 23, 55 Kosters, 1983, Sedimentary and botanical factors influencing peat accumulation in the Mississippi delta, J. Geol. Soc., 144, 423, 10.1144/gsjgs.144.3.0423 Kruiver, 2017, An integrated shear-wave velocity model for the Groningen gas field, The Netherlands, Bull. Earthquake Eng., 9, 3555, 10.1007/s10518-017-0105-y Kuikman, 2003 Landva, 2006, Characterization of Escuminac peat and construction on peatland, Sec. Int. Workshop on Charact. and Eng. Prop. of Nat. Soils, 3, 2135 Morris, 2016, Contributions of organic and inorganic matter to sediment volume and accretion in tidal wetlands at steady state, Earth’s Future, 4, 110, 10.1002/2015EF000334 NHI, 2016 Nieuwenhuis, 1997, Land subsidence in drained peat areas of the Province of Friesland, Quart. J. Eng. Geol., 30, 37, 10.1144/GSL.QJEGH.1997.030.P1.04 Pierik, 2016, A new GIS approach for reconstructing and mapping dynamic late Holocene coastal plain palaeogeography, Geomorphology, 270, 55, 10.1016/j.geomorph.2016.05.037 Pierik, 2017 Pons, 1974 Sarnecki, 1983, Selected trace element anomalies in a front range bog, Larimer County, Colorado, 179 Schothorst, 1977, Subsidence of low moor peat soils in the western Netherlands, Geoderma, 17, 265, 10.1016/0016-7061(77)90089-1 Stafleu, 2011, 3D modelling of the shallow subsurface of Zeeland, the Netherlands, Neth. J. Geosci., 90, 293 Stouthamer, 2000, Factors controlling the Holocene avulsion history of the Holocene Rhine-Meuse delta (The Netherlands), J. Sediment. Res. Section A, 70, 1051, 10.1306/033000701051 Syvitski, 2009, Sinking deltas due to human activities, Nat. Geosci., 2, 681, 10.1038/ngeo629 Törnqvist, 1994, Definition of two new members in the upper Kreftenheye and Twente Formations (Quaternary, The Netherlands): a final solution to persistant confusion?, Geologie en Mijnbouw, 72, 251 Törnqvist, 2008, Mississippi Delta subsidence primarily caused by compaction of Holocene strata, Nat. Geosci., 1, 173, 10.1038/ngeo129 TNO-GSN, 2016 Van Asselen, 2017, The impact of avulsion on groundwater level and peat formation in delta floodbasins during the Middle Holocene transgression in the Rhine-Meuse delta, The Netherlands, Holocene, 27, 1694, 10.1177/0959683617702224 Van Asselen, 2010, 395 Van Dam, 2001, Sinking peat bogs. Environmental change in Holland 1350–1550, Environ. Hist., 1, 32, 10.2307/3985230 Van den Akker, 2008, Emission of CO2 from agricultural peat soils in the Netherlands and ways to limit this emission, 1 Van de Plassche, 2010, Mid-Holocene water-level changes in the lower Rhine-Meuse delta (western Netherlands): implications for the reconstruction of relative mean sea-level rise, palaeoriver-gradients and coastal evolution, Neth. J. Geosci., 89, 3 Van de Plassche, 1982, Sea-level change and water-level movements in the Netherlands during the Holocene, Med. Rijks Geol. Dienst, 36, 1 Van den Born, 2016 Van der Meulen, 2013, 3D geology in a 2D country: perspectives for geological surveying in The Netherlands, Neth. J. Geosci., 92, 217 Visscher, 1949 Vos, 2015 Wösten, 1997, Peat subsidence and its practical implications: a case study in Malaysia, Geoderma, 78, 25, 10.1016/S0016-7061(97)00013-X