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  • AIRICA analyzer (Miranda); Australia; Carbon, inorganic, dissolved; Carbon, organic, dissolved; Clarence_Estuary; DEPTH, sediment/rock; DEPTH, water; estuaries; EXP; Experiment; LDO-probe; Ocean acidification; Oxygen saturation; pH; pH probe; Replicates; Salinity; SALINO; Salinometer; sediment; Surface area; Temperature, water; Temperature sensor; Time in minutes; Time point, descriptive; TOC analyser, Aurora 1030W; Treatment; Volume; warming  (1)
  • Alkalinity, total; Aragonite saturation state; Benthos; Bicarbonate ion; Bottles or small containers/Aquaria (〈20 L); Calcification/Dissolution; Calcite saturation state; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbonate ion; Carbonate system computation flag; Carbon dioxide; Coast and continental shelf; Dissolution rate; Entire community; EXP; Experiment; Field experiment; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Gross primary production/Respiration rate ratio; Gross primary production of oxygen; Heron_Island_GBR; Immunology/Self-protection; Net dissolution rate of calcium carbonate; OA-ICC; Ocean Acidification International Coordination Centre; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); pH; Primary production/Photosynthesis; Respiration; Respiration rate, community; Rocky-shore community; Salinity; South Pacific; Temperate; Temperature; Temperature, water; Treatment; Type  (1)
  • Ammonium uptake rate; AWI_BioOce; Biological Oceanography @ AWI; DATE/TIME; DEPTH, water; Event label; IN2016-V03; IN2016-V03_102; IN2016-V03_103; IN2016-V03_105; IN2016-V03_106; IN2016-V03_107; IN2016-V03_109; IN2016-V03_110; IN2016-V03_114; IN2016-V03_115; IN2016-V03_118; IN2016-V03_119; IN2016-V03_12; IN2016-V03_121; IN2016-V03_122; IN2016-V03_124; IN2016-V03_125; IN2016-V03_126; IN2016-V03_128; IN2016-V03_129; IN2016-V03_13; IN2016-V03_131; IN2016-V03_132; IN2016-V03_134; IN2016-V03_136; IN2016-V03_139; IN2016-V03_140; IN2016-V03_15; IN2016-V03_17; IN2016-V03_19; IN2016-V03_2; IN2016-V03_20; IN2016-V03_21; IN2016-V03_23; IN2016-V03_24; IN2016-V03_26; IN2016-V03_27; IN2016-V03_29; IN2016-V03_3; IN2016-V03_30; IN2016-V03_31; IN2016-V03_33; IN2016-V03_34; IN2016-V03_36; IN2016-V03_37; IN2016-V03_38; IN2016-V03_39; IN2016-V03_40; IN2016-V03_41; IN2016-V03_43; IN2016-V03_44; IN2016-V03_47; IN2016-V03_49; IN2016-V03_5; IN2016-V03_50; IN2016-V03_52; IN2016-V03_53; IN2016-V03_54; IN2016-V03_56; IN2016-V03_57; IN2016-V03_59; IN2016-V03_6; IN2016-V03_60; IN2016-V03_62; IN2016-V03_64; IN2016-V03_65; IN2016-V03_66; IN2016-V03_67; IN2016-V03_69; IN2016-V03_70; IN2016-V03_71; IN2016-V03_73; IN2016-V03_74; IN2016-V03_76; IN2016-V03_77; IN2016-V03_78; IN2016-V03_8; IN2016-V03_80; IN2016-V03_81; IN2016-V03_84; IN2016-V03_86; IN2016-V03_88; IN2016-V03_89; IN2016-V03_9; IN2016-V03_90; IN2016-V03_92; IN2016-V03_93; IN2016-V03_94; IN2016-V03_95; IN2016-V03_96; IN2016-V03_98; IN2016-V03_99; Investigator (2014); LATITUDE; LONGITUDE; Mixed layer depth; Nitrate uptake rate; South Pacific Ocean; Water sample; WS  (1)
Document type
Keywords
Publisher
Years
  • 1
    Publication Date: 2023-11-15
    Keywords: Ammonium uptake rate; AWI_BioOce; Biological Oceanography @ AWI; DATE/TIME; DEPTH, water; Event label; IN2016-V03; IN2016-V03_102; IN2016-V03_103; IN2016-V03_105; IN2016-V03_106; IN2016-V03_107; IN2016-V03_109; IN2016-V03_110; IN2016-V03_114; IN2016-V03_115; IN2016-V03_118; IN2016-V03_119; IN2016-V03_12; IN2016-V03_121; IN2016-V03_122; IN2016-V03_124; IN2016-V03_125; IN2016-V03_126; IN2016-V03_128; IN2016-V03_129; IN2016-V03_13; IN2016-V03_131; IN2016-V03_132; IN2016-V03_134; IN2016-V03_136; IN2016-V03_139; IN2016-V03_140; IN2016-V03_15; IN2016-V03_17; IN2016-V03_19; IN2016-V03_2; IN2016-V03_20; IN2016-V03_21; IN2016-V03_23; IN2016-V03_24; IN2016-V03_26; IN2016-V03_27; IN2016-V03_29; IN2016-V03_3; IN2016-V03_30; IN2016-V03_31; IN2016-V03_33; IN2016-V03_34; IN2016-V03_36; IN2016-V03_37; IN2016-V03_38; IN2016-V03_39; IN2016-V03_40; IN2016-V03_41; IN2016-V03_43; IN2016-V03_44; IN2016-V03_47; IN2016-V03_49; IN2016-V03_5; IN2016-V03_50; IN2016-V03_52; IN2016-V03_53; IN2016-V03_54; IN2016-V03_56; IN2016-V03_57; IN2016-V03_59; IN2016-V03_6; IN2016-V03_60; IN2016-V03_62; IN2016-V03_64; IN2016-V03_65; IN2016-V03_66; IN2016-V03_67; IN2016-V03_69; IN2016-V03_70; IN2016-V03_71; IN2016-V03_73; IN2016-V03_74; IN2016-V03_76; IN2016-V03_77; IN2016-V03_78; IN2016-V03_8; IN2016-V03_80; IN2016-V03_81; IN2016-V03_84; IN2016-V03_86; IN2016-V03_88; IN2016-V03_89; IN2016-V03_9; IN2016-V03_90; IN2016-V03_92; IN2016-V03_93; IN2016-V03_94; IN2016-V03_95; IN2016-V03_96; IN2016-V03_98; IN2016-V03_99; Investigator (2014); LATITUDE; LONGITUDE; Mixed layer depth; Nitrate uptake rate; South Pacific Ocean; Water sample; WS
    Type: Dataset
    Format: text/tab-separated-values, 270 data points
    Location Call Number Limitation Availability
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  • 2
    Publication Date: 2024-01-02
    Description: Dissolved organic/inorganic carbon and oxygen fluxes from whole sediment core incubations subject to temperature and ocean acidification manipulations. Estuaries make a disproportionately large contribution of dissolved organic carbon (DOC) to the global carbon cycle, but it is unknown how this will change under a future climate. As such, the response of DOC fluxes from microbially dominated unvegetated sediments to individual and combined future climate stressors of warming (from Δ-3 °C to Δ+5 °C on ambient mean temperatures) and ocean acidification (OA, ~2 times the current partial pressure of CO2, pCO2) was investigated ex situ. Warming alone increased sediment heterotrophy, resulting in a proportional increase in sediment DOC uptake, with sediments becoming net sinks of DOC (3.5 to 8.8 mmol-C m-2 d-1) at warmer temperatures (Δ+3 °C and Δ+5 °C, respectively). This temperature response changed under OA conditions, with sediments becoming more autotrophic and a greater sink of DOC (1 to 4 times greater than under current-pCO2). This response was attributed to the stimulation of heterotrophic bacteria with the autochthonous production of labile organic matter by microphytobenthos. Extrapolating these results to the global area of unvegetated subtidal estuarine sediments, the future climate of warming (Δ+3 °C) and OA may decrease the estuarine export of DOC by ~80 % (~150 Tg-C yr-1) and have a disproportionately large impact on the global DOC budget.
    Keywords: AIRICA analyzer (Miranda); Australia; Carbon, inorganic, dissolved; Carbon, organic, dissolved; Clarence_Estuary; DEPTH, sediment/rock; DEPTH, water; estuaries; EXP; Experiment; LDO-probe; Ocean acidification; Oxygen saturation; pH; pH probe; Replicates; Salinity; SALINO; Salinometer; sediment; Surface area; Temperature, water; Temperature sensor; Time in minutes; Time point, descriptive; TOC analyser, Aurora 1030W; Treatment; Volume; warming
    Type: Dataset
    Format: text/tab-separated-values, 1053 data points
    Location Call Number Limitation Availability
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  • 3
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    Unknown
    PANGAEA
    In:  Supplement to: Trnovsky, Daniel; Stoltenberg, Laura; Cyronak, Tyler; Eyre, Bradley D (2016): Antagonistic Effects of Ocean Acidification and Rising Sea Surface Temperature on the Dissolution of Coral Reef Carbonate Sediments. Frontiers in Marine Science, 3, https://doi.org/10.3389/fmars.2016.00211
    Publication Date: 2024-03-15
    Description: Increasing atmospheric CO2 is raising sea surface temperature (SST) and increasing seawater CO2 concentrations, resulting in a lower oceanic pH (ocean acidification; OA), which is expected to reduce the accretion of coral reef ecosystems. Although sediments comprise most of the calcium carbonate (CaCO3) within coral reefs, no in situ studies have looked at the combined effects of increased SST and OA on the dissolution of coral reef CaCO3 sediments. In situ benthic chamber incubations were used to measure dissolution rates in permeable CaCO3 sands under future OA and SST scenarios in a coral reef lagoon on Australia's Great Barrier Reef (Heron Island). End of century (2100) simulations (temperature +2.7°C and pH -0.3) shifted carbonate sediments from net precipitating to net dissolving. Warming increased the rate of benthic respiration (R) by 29% per 1°C and lowered the ratio of productivity to respiration (P/R; delta P/R = -0.23), which increased the rate of CaCO3 sediment dissolution (average net increase of 18.9 mmol CaCO3/m**2/d for business as usual scenarios). This is most likely due to the influence of warming on benthic P/R which, in turn, was an important control on sediment dissolution through the respiratory production of CO2. The effect of increasing CO2 on CaCO3 sediment dissolution (average net increase of 6.5 mmol CaCO3/m**2/d for business as usual scenarios) was significantly less than the effect of warming. However, the combined effect of increasing both SST and pCO2 on CaCO3 sediment dissolution was non-additive (average net increase of 5.6 mmol CaCO3/m**2/d) due to the different responses of the benthic community. This study highlights that benthic biogeochemical processes such as metabolism and associated CaCO3 sediment dissolution respond rapidly to changes in SST and OA, and that the response to multiple environmental changes are not necessarily additive.
    Keywords: Alkalinity, total; Aragonite saturation state; Benthos; Bicarbonate ion; Bottles or small containers/Aquaria (〈20 L); Calcification/Dissolution; Calcite saturation state; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbonate ion; Carbonate system computation flag; Carbon dioxide; Coast and continental shelf; Dissolution rate; Entire community; EXP; Experiment; Field experiment; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Gross primary production/Respiration rate ratio; Gross primary production of oxygen; Heron_Island_GBR; Immunology/Self-protection; Net dissolution rate of calcium carbonate; OA-ICC; Ocean Acidification International Coordination Centre; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); pH; Primary production/Photosynthesis; Respiration; Respiration rate, community; Rocky-shore community; Salinity; South Pacific; Temperate; Temperature; Temperature, water; Treatment; Type
    Type: Dataset
    Format: text/tab-separated-values, 390 data points
    Location Call Number Limitation Availability
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