Fluvial dynamics and 14C‐10Be disequilibrium on the Bolivian Altiplano. Issue 3 (20th November 2018)
- Record Type:
- Journal Article
- Title:
- Fluvial dynamics and 14C‐10Be disequilibrium on the Bolivian Altiplano. Issue 3 (20th November 2018)
- Main Title:
- Fluvial dynamics and 14C‐10Be disequilibrium on the Bolivian Altiplano
- Authors:
- Hippe, Kristina
Gordijn, Tiemen
Picotti, Vincenzo
Hajdas, Irka
Jansen, John D.
Christl, Marcus
Vockenhuber, Christof
Maden, Colin
Akçar, Naki
Ivy‐Ochs, Susan - Abstract:
- Abstract: Determining sediment transfer times is key to understanding source‐to‐sink dynamics and the transmission of environmental signals through the fluvial system. Previous work on the Bolivian Altiplano applied the in situ cosmogenic 14 C‐ 10 Be‐chronometer to river sands and proposed sediment storage times of ~10–20 kyr in four catchments southeast of Lake Titicaca. However, the fidelity of those results hinges upon isotopic steady‐state within sediment supplied from the source area. With the aim of independently quantifying sediment storage times and testing the 14 C‐ 10 Be steady‐state assumption, we dated sediment storage units within one of the previously investigated catchments using radiocarbon dating, cosmogenic 10 Be‐ 26 Al isochron burial dating, and 10 Be‐ 26 Al depth‐profile dating. Palaeosurfaces appear to preserve remnants of a former fluvial system, which has undergone drainage reversal, reduction in catchment area, and local isostatic uplift since ~2.8 Ma. From alluvium mantling the palaeosurfaces we gained a deposition age of ~580 ka, while lower down fluvial terraces yielded ≤34 ka, and floodplains ~3–1 ka. Owing to restricted channel connectivity with the terraces and palaeosurfaces, the main source of channel sediment is via reworking of the late Holocene floodplain. Yet modelling a set of feasible scenarios reveals that floodplain storage and burial depth are incompatible with the 14 C‐ 10 Be disequilibrium measured in the channel. Instead weAbstract: Determining sediment transfer times is key to understanding source‐to‐sink dynamics and the transmission of environmental signals through the fluvial system. Previous work on the Bolivian Altiplano applied the in situ cosmogenic 14 C‐ 10 Be‐chronometer to river sands and proposed sediment storage times of ~10–20 kyr in four catchments southeast of Lake Titicaca. However, the fidelity of those results hinges upon isotopic steady‐state within sediment supplied from the source area. With the aim of independently quantifying sediment storage times and testing the 14 C‐ 10 Be steady‐state assumption, we dated sediment storage units within one of the previously investigated catchments using radiocarbon dating, cosmogenic 10 Be‐ 26 Al isochron burial dating, and 10 Be‐ 26 Al depth‐profile dating. Palaeosurfaces appear to preserve remnants of a former fluvial system, which has undergone drainage reversal, reduction in catchment area, and local isostatic uplift since ~2.8 Ma. From alluvium mantling the palaeosurfaces we gained a deposition age of ~580 ka, while lower down fluvial terraces yielded ≤34 ka, and floodplains ~3–1 ka. Owing to restricted channel connectivity with the terraces and palaeosurfaces, the main source of channel sediment is via reworking of the late Holocene floodplain. Yet modelling a set of feasible scenarios reveals that floodplain storage and burial depth are incompatible with the 14 C‐ 10 Be disequilibrium measured in the channel. Instead we propose that the 14 C‐ 10 Be offset results from: (i) non‐uniform erosion whereby deep gullies supply hillslope‐derived debris; and/or (ii) holocene landscape transience associated with climate or human impact. The reliability of the 14 C‐ 10 Be chronometer vitally depends upon careful evaluation of sources of isotopic disequilibrium in a wide range of depositional and erosional landforms in the landscape. © 2018 John Wiley & Sons, Ltd. Abstract : Absolute dating of different sediment storage units suggests a significantly shorter storage duration of the currently reworked material than previously estimated based on in situ cosmogenic 14 C‐ 10 Be disequilibrium in river sediment. Thus, the 14 C‐ 10 Be offset is attributed to landscape transience with spatially and/or temporarily non‐uniform erosion processes and rates. … (more)
- Is Part Of:
- Earth surface processes and landforms. Volume 44:Issue 3(2019)
- Journal:
- Earth surface processes and landforms
- Issue:
- Volume 44:Issue 3(2019)
- Issue Display:
- Volume 44, Issue 3 (2019)
- Year:
- 2019
- Volume:
- 44
- Issue:
- 3
- Issue Sort Value:
- 2019-0044-0003-0000
- Page Start:
- 766
- Page End:
- 780
- Publication Date:
- 2018-11-20
- Subjects:
- cosmogenic nuclide dating -- steady‐state -- 14C‐10Be chronometer -- sediment -- storage -- radiocarbon dating
Geomorphology -- Periodicals
551.4 - Journal URLs:
- http://onlinelibrary.wiley.com/ ↗
- DOI:
- 10.1002/esp.4529 ↗
- Languages:
- English
- ISSNs:
- 0197-9337
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3643.564030
British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 9646.xml