The effects of secular calcium and magnesium concentration changes on the thermodynamics of seawater acid/base chemistry: Implications for Eocene and Cretaceous ocean carbon chemistry and buffering. Issue 5 (4th May 2015)
- Record Type:
- Journal Article
- Title:
- The effects of secular calcium and magnesium concentration changes on the thermodynamics of seawater acid/base chemistry: Implications for Eocene and Cretaceous ocean carbon chemistry and buffering. Issue 5 (4th May 2015)
- Main Title:
- The effects of secular calcium and magnesium concentration changes on the thermodynamics of seawater acid/base chemistry: Implications for Eocene and Cretaceous ocean carbon chemistry and buffering
- Authors:
- Hain, Mathis P.
Sigman, Daniel M.
Higgins, John A.
Haug, Gerald H. - Abstract:
- <abstract abstract-type="main"> <title>Abstract</title> <p>Reconstructed changes in seawater calcium and magnesium concentration ([Ca<sup>2+</sup>], [Mg<sup>2+</sup>]) predictably affect the ocean's acid/base and carbon chemistry. Yet inaccurate formulations of chemical equilibrium "constants" are currently in use to account for these changes. Here we develop an efficient implementation of the MIAMI Ionic Interaction Model to predict all chemical equilibrium constants required for carbon chemistry calculations under variable [Ca<sup>2+</sup>] and [Mg<sup>2+</sup>]. We investigate the impact of [Ca<sup>2+</sup>] and [Mg<sup>2+</sup>] on the relationships among the ocean's pH, CO<sub>2</sub>, dissolved inorganic carbon (DIC), saturation state of CaCO<sub>3</sub> (Ω), and buffer capacity. Increasing [Ca<sup>2+</sup>] and/or [Mg<sup>2+</sup>] enhances "ion pairing, " which increases seawater buffering by increasing the concentration ratio of total to "free" (uncomplexed) carbonate ion. An increase in [Ca<sup>2+</sup>], however, also causes a decline in carbonate ion to maintain a given Ω, thereby overwhelming the ion pairing effect and decreasing seawater buffering. Given the reconstructions of Eocene [Ca<sup>2+</sup>] and [Mg<sup>2+</sup>] ([Ca<sup>2+</sup>]~20 mM; [Mg<sup>2+</sup>]~30 mM), Eocene seawater would have required essentially the same DIC as today to simultaneously explain a similar‐to‐modern Ω and the estimated Eocene atmospheric CO<sub>2</sub> of ~1000 ppm. During<abstract abstract-type="main"> <title>Abstract</title> <p>Reconstructed changes in seawater calcium and magnesium concentration ([Ca<sup>2+</sup>], [Mg<sup>2+</sup>]) predictably affect the ocean's acid/base and carbon chemistry. Yet inaccurate formulations of chemical equilibrium "constants" are currently in use to account for these changes. Here we develop an efficient implementation of the MIAMI Ionic Interaction Model to predict all chemical equilibrium constants required for carbon chemistry calculations under variable [Ca<sup>2+</sup>] and [Mg<sup>2+</sup>]. We investigate the impact of [Ca<sup>2+</sup>] and [Mg<sup>2+</sup>] on the relationships among the ocean's pH, CO<sub>2</sub>, dissolved inorganic carbon (DIC), saturation state of CaCO<sub>3</sub> (Ω), and buffer capacity. Increasing [Ca<sup>2+</sup>] and/or [Mg<sup>2+</sup>] enhances "ion pairing, " which increases seawater buffering by increasing the concentration ratio of total to "free" (uncomplexed) carbonate ion. An increase in [Ca<sup>2+</sup>], however, also causes a decline in carbonate ion to maintain a given Ω, thereby overwhelming the ion pairing effect and decreasing seawater buffering. Given the reconstructions of Eocene [Ca<sup>2+</sup>] and [Mg<sup>2+</sup>] ([Ca<sup>2+</sup>]~20 mM; [Mg<sup>2+</sup>]~30 mM), Eocene seawater would have required essentially the same DIC as today to simultaneously explain a similar‐to‐modern Ω and the estimated Eocene atmospheric CO<sub>2</sub> of ~1000 ppm. During the Cretaceous, at ~4 times modern [Ca<sup>2+</sup>], ocean buffering would have been at a minimum. Overall, during times of high seawater [Ca<sup>2+</sup>], CaCO<sub>3</sub> saturation, pH, and atmospheric CO<sub>2</sub> were more susceptible to perturbations of the global carbon cycle. For example, given both Eocene and Cretaceous seawater [Ca<sup>2+</sup>] and [Mg<sup>2+</sup>], a doubling of atmospheric CO<sub>2</sub> would require less carbon addition to the ocean/atmosphere system than under modern seawater composition. Moreover, increasing seawater buffering since the Cretaceous may have been a driver of evolution by raising energetic demands of biologically controlled calcification and CO<sub>2</sub> concentration mechanisms that aid photosynthesis.</p> </abstract> … (more)
- Is Part Of:
- Global biogeochemical cycles. Volume 29:Issue 5(2015:May)
- Journal:
- Global biogeochemical cycles
- Issue:
- Volume 29:Issue 5(2015:May)
- Issue Display:
- Volume 29, Issue 5 (2015)
- Year:
- 2015
- Volume:
- 29
- Issue:
- 5
- Issue Sort Value:
- 2015-0029-0005-0000
- Page Start:
- 517
- Page End:
- 533
- Publication Date:
- 2015-05-04
- Subjects:
- Biogeochemical cycles -- Periodicals
Electronic journals
577.1405 - Journal URLs:
- http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1944-9224 ↗
http://www.agu.org/journals/gb/ ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1002/2014GB004986 ↗
- Languages:
- English
- ISSNs:
- 0886-6236
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4195.352000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 4347.xml