The Chobe-Zambezi Channel-Floodplain System: Anatomy of a Wetland in a Dryland

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Landscapes and Landforms of Botswana

Part of the book series: World Geomorphological Landscapes ((WGLC))

Abstract

In this chapter, the Chobe-Zambezi channel-floodplain system is defined as the fluvially influenced area that is located around and between the Chobe and Zambezi rivers approaching their confluence. This area is located in the ‘Four Corners’ region, the informal term given to the region where the Botswana, Namibia, Zambia and Zimbabwe borders meet. The large-scale structure and medium-term (102–105 years) development of the channel-floodplain system is related to a combination of tectonic activity and climatically-driven changes to flow and sediment supply. The system has developed in a region of subsidence that is related to the East African Rift System. Upstream of the Mambova Rapids, the modern sinuous, alluvial channels are flanked by extensive floodplain wetlands, with crevasse splays, gullies, oxbows, scroll plains, abandoned channels and backwaters (stagnant or slow-flowing, channel-like depressions) all widespread. Collectively, these fluvial landforms create the physical template for shorter-term water, sediment and ecosystem dynamics. A strong flood and drying season dynamic is evident; river stages typically rise from January and peak around April, before subsequently falling again. The Zambezi provides the largest flow volumes, with flow spreading gradually from north to south through a complex system of active and partially active channels and floodplain wetlands towards the Chobe. Along the two rivers, lateral channel migration and extension of splays, gullies and backwaters has been negligible over at least the last 40–50 years, with few new oxbows forming. To the east, both rivers cross the uplifting Chobe fault, with each river forming complexes of steeper, bedrock anabranching channels in the region of the Mambova Rapids. The two rivers ultimately coalesce ~10 km farther downvalley, and continue as the Zambezi River. A longer term (>106 years) developmental model is outlined, which posits that headward retreat of the Victoria Falls, at present located ~80 km downstream of the Chobe fault, will initiate a phase of erosion that will cross the fault in ~1–2 million years’ time. This phase of erosion will initiate deep channel incision, river network reorganisation and wider landscape denudation.

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References

  • Alexander KA, Heaney AK, Sharman J (2018) Hydrometeorology and flood pulse dynamics drive diarrheal disease outbreaks and increase vulnerability to climate change in surface-water-dependent populations: a retrospective analysis. PLoS Med 15(11):e1002688

    Google Scholar 

  • Alexander WRJ (1999) Science, history and the Kasikili Island dispute. S Afr J Sci 95:321–324

    Google Scholar 

  • Bufford KM, Atekwana EA, Abdelsalam MG, Shemang E, Atekwana EA, Mickus K, Moidaki M, Modisi MP, Molwalefhe L (2012) Geometry and faults tectonic activity of the Okavango Rift Zone, Botswana: evidence from magnetotelluric and electrical resistivity tomography imaging. J Afr Earth Sc 65:61–71

    Article  Google Scholar 

  • Burke JJ, Pricope NG, Blum J (2016) Thermal imagery-derived surface inundation modeling to assess flood risk in a flood-pulsed savannah watershed in Botswana and Namibia. Rem Sens 8:676

    Article  Google Scholar 

  • Clark JD (1950) The stone age cultures of Northern Rhodesia: with particular reference to the cultural and climatic succession in the upper Zambesi Valley and its tributaries. South African Archaeological Society, Cape Town, p 157

    Google Scholar 

  • du Toit A (1927) The Kalahari and some of its problems. S Afr J Sci 24:88–101

    Google Scholar 

  • Fox JT, Alexander KA (2015) Spatiotemporal variation and the role of wildlife in seasonal water quality declines in the Chobe River, Botswana. PLoS One 10:e0139936

    Google Scholar 

  • Heaney AK, Shaman J, Alexander KA (2019) El Niño-Southern oscillation and under-5 diarrhea in Botswana. Nat Commun 10:5798, 9 pp

    Google Scholar 

  • Heritage GL, van Niekerk AW, Moon BP (1999) Geomorphology of the Sabie River, South Africa: an incised bedrock-influenced channel. In: Miller AJ, Gupta A (eds) Varieties of fluvial form: Chichester. Wiley, UK, pp 53–79

    Google Scholar 

  • Johnson C (2000) Case concerning Kasikili/Sedudu Island (Botswana/Namibia). Int J Mar Coast Law 15:581–599

    Google Scholar 

  • Larkin Z (2019) Dryland rivers and hydroclimatic change: past, present and future, unpublished PhD thesis, Macquarie University

    Google Scholar 

  • McCarthy TS (1993) The great inland deltas of Africa. J Afr Earth Sc 17:275–291

    Article  Google Scholar 

  • McCarthy TS (2013) The Okavango Delta and its place in the geomorphological evolution of Southern Africa. S Afr J Geol 116:1–54

    Article  Google Scholar 

  • Milan DM, Heritage G, Tooth S, Entwistle N (2018) Morphodynamics of bedrock-influenced dryland rivers during extreme floods: insights from the Kruger National Park South Africa. Geol Soc Am Bull 130:1825–1841

    Article  Google Scholar 

  • Milan DM, Tooth S, Heritage G (2020) Topographic, hydraulic, and vegetative controls on bar and island development in mixed bedrock-alluvial, multichanneled, dryland rivers. Water Resour Res 56:23 pp

    Google Scholar 

  • Modisi M, Atekwana E, Kampunzu A, Ngwisanyi T (2000) Rift kinematics during the incipient stages of continental extension: evidence from the nascent Okavango rift basin, northwest Botswana. Geology 28:939–942

    Article  Google Scholar 

  • Moore AE, Cotterill FPD (2010) Victoria falls: Mosi-oa-Tunya—the smoke that thunders. In: Migoń P (ed) Geomorphological landscapes of the world. Springer Science+Business Media, pp 143–153

    Google Scholar 

  • Moore AE, Larkin PA (2001) Drainage evolution in south-central Africa since the breakup of Gondwana. S Afr J Geol 104:47–68

    Article  Google Scholar 

  • Moore AE, Cotterill FPD, Main MPL, Williams HB (2007) The Zambezi River. In: Gupta A (ed) Large rivers: geomorphology and management. Wiley, pp 311–332

    Chapter  Google Scholar 

  • Moore AE, Cotterill FPD, Eckardt FD (2012) The evolution and ages of Makgadikgadi palaeo-lakes: consilient evidence from Kalahari drainage evolution, south-central Africa. S Afr J Geol 115:385–413

    Article  Google Scholar 

  • Nugent C (1990) The Zambezi River: tectonism, climatic change and drainage evolution. Palaeogeogr Palaeoclimatol Palaeoecol 78:55–69

    Article  Google Scholar 

  • Pastier A-M, Dauteuil O, Murray-Hudson M, Moreau F, Walpersdorf A, Makati K (2017) Is the Okavango Delta the terminus of the East African Rift System? Towards a new geodynamic model: geodetic study and geophysical review. Tectonophysics 712–713:469–481

    Article  Google Scholar 

  • Pricope NG (2013) Variable-source flood pulsing in a semi-arid transboundary watershed: the Chobe River, Botswana and Namibia. Environ Monit Assess 185:1883–1906

    Article  Google Scholar 

  • Salman MAS (2000) International rivers as boundaries: the dispute over Kasikili/Sedudu Island and the decision of the International Court of Justice. Water Int 25:580–585

    Article  Google Scholar 

  • Sanderson CE, Fox JT, Dougherty ER, Cameron ADS, Alexander KA (2018) The changing face of water: a dynamic reflection of antibiotic resistance across landscapes. Front Microbiol 9: 1894, 13 pp

    Google Scholar 

  • Scholz CH, Koczynski TA, Hutchins DG (1976) Evidence for incipient rifting in southern Africa. Geophys J Int 44:135–144

    Article  Google Scholar 

  • Shaw PA, Thomas DSG (1988) Lake Caprivi: a late Quaternary link between the Zambezi and middle Kalahari drainage systems. Z Geomorphol 32:329–337

    Article  Google Scholar 

  • Shaw PA, Thomas DSG (1992) Geomorphology, sedimentation, and tectonics in the Kalahari Rift. In: Schick AP (ed) Surficial processes and landscape evolution: rift valleys and arid terrains. Isr J Earth Sci 41:87–94

    Google Scholar 

  • Thomas DSG, Shaw PA (1991) The Kalahari Environment. Cambridge University Press, 284 pp

    Google Scholar 

  • Tooth S (2015) The Augrabies falls region: a fluvial landscape divided in flow but magnificent in spectacle. In: Grab S, Knight J (eds) Landscapes and landforms of South Africa. World geomorphological landscapes. Springer-Verlag, Berlin-Heidelberg, pp 65–73

    Google Scholar 

  • Tooth S, McCarthy TS (2004a) Controls on the transition from meandering to straight channels in the wetlands of the Okavango Delta Botswana. Earth Surf Process Landforms 29:1627–1649

    Article  Google Scholar 

  • Tooth S, McCarthy TS (2004b) Anabranching in mixed bedrock-alluvial rivers: the example of the Orange River above Augrabies Falls Northern Cape Province, South Africa. Geomorphology 57:235–262

    Article  Google Scholar 

  • Tooth S, McCarthy TS, Duller GAT, Assine ML, Wolski P, Coetzee G (2022) Significantly enhanced mid Holocene fluvial activity in a globally-important, arid-zone wetland: the Okavango Delta, Botswana, Earth Surf Process Landforms, in press

    Google Scholar 

  • Wellington JH (1955) Southern Africa: a geographical study. Physical geography, vol 1. Cambridge University Press, Cambridge

    Google Scholar 

Download references

Acknowledgements

This study was conducted under permit from the Ministry of Environment, Natural Resources Conservation and Tourism (EWT8/36/4). Support for this work was provided by the National Science Foundation Dynamics of Coupled Natural and Human Systems (Award #1518486 to Alexander, https://www.nsf.gov) and by CARACAL. We would like to thank Lipa Nkwalale for his assistance in obtaining historical aerial photographs, the Department of Wildlife and National Parks for facilitation of fieldwork and Gareth Edwin for cartographic support. Aberystwyth University’s Centre for International Development Research at Aberystwyth (CIDRA) is providing support for ongoing geomorphological investigations by Tooth and colleagues in the Four Corners region. We also appreciate the review and editorial comments of Fenton (Woody) Cotterill, Frank D. Eckardt, and Piotr Migoń, as these helped to shape the final version of the chapter.

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Tooth, S., Vandewalle, M., Goodin, D.G., Alexander, K.A. (2022). The Chobe-Zambezi Channel-Floodplain System: Anatomy of a Wetland in a Dryland. In: Eckardt, F.D. (eds) Landscapes and Landforms of Botswana. World Geomorphological Landscapes. Springer, Cham. https://doi.org/10.1007/978-3-030-86102-5_7

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