The synergistic effects of ocean acidification and organic metabolism on calcium carbonate (CaCO3) dissolution in coral reef sediments

被引:42
作者
Cyronak, Tyler [1 ]
Eyre, Bradley D. [1 ]
机构
[1] Southern Cross Univ, Ctr Coastal Biogeochem, POB 157, Lismore, NSW 2481, Australia
关键词
Calcium carbonate sediment; Dissolution; Ocean acidification; Porewater advection; GREAT-BARRIER-REEF; CALCIFICATION; SEAWATER; RESPIRATION; SURFACE; PHOTOSYNTHESIS; DISSOCIATION; VARIABILITY; CHEMISTRY; CONSTANTS;
D O I
10.1016/j.marchem.2016.05.001
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Ocean acidification (OA) is expected to reduce the net ecosystem calcification (NEC) rates and overall accretion of coral reef ecosystems. However, despite the fact that sediments are the most abundant form of calcium carbonate (CaCO3) in coral reef ecosystems and their dissolution may be more sensitive to OA than biogenic calcification, the impacts of OA induced sediment dissolution on coral reef NEC rates and CaCO3 accretion are poorly constrained. Carbon dioxide addition and light attenuation experiments were performed at Heron Island, Australia in an attempt to tease apart the influence of OA and organic metabolism (e.g. respiratory CO2 production) on CaCO3 dissolution. Overall, CaCO3 dissolution rates were an order of magnitude more sensitive to elevated CO2 and decreasing seawater aragonite saturation state (Omega(Ar); 300-420% increase in dissolution per unit decrease in Omega(Ar)) than published reductions in biologically mediated calcification due to OA. Light attenuation experiments led to a 70% reduction in net primary production (NPP), which subsequently induced an increase in daytime (similar to 115%) and net diel (similar to 375%) CaCO3 dissolution rates. High CO2 and low light acted in synergy to drive a similar to 575% increase in net diel dissolution rates. Importantly, disruptions to the balance of photosynthesis and respiration (P/R) had a significant effect on daytime CaCO3 dissolution, while average water column SLAT was the main driver of nighttime dissolution rates. A simple model of platform-integrated dissolution rates was developed demonstrating that seasonal changes in photosynthetically active radiation (PAR) can have an important effect on platform integrated CaCO3 sediment dissolution rates. The considerable response of CaCO3 sediment dissolution to elevated CO2 means that much of the response of coral reef communities and ecosystems to OA could be due to increases in CaCO3 sediment and framework dissolution, and not decreases in biogenic calcification. (C) 2016 Elsevier B.V. All rights reserved.
引用
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页码:1 / 12
页数:12
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