References
- A. Alhamzah, C.M. Fellows, Apparent inhibition of thermal
decomposition of hydrogen carbonate ion by poly(acrylic
acid). The effect of molar mass and end-group functionality,
Desalination, 332 (2014) 33–43.
- J.M. Buth, Ocean acidification: investigation and presentation
for the effects of elevated carbon dioxide levels on seawater
chemistry and calcareous organisms, J. Chem. Educ., 93 (2016)
718–721.
- ASTM D3875-15, Standard Test Method for Alkalinity in
Brackish Water, Seawater, and Brines, ASTM International,
West Conshocken, PA, 2015. Available at: www.astm.org
- F.J. Millero, T.B. Graham, F. Huang, H. Bustos-Serrano,
D. Pierrot, Dissociation constants of carbonic acid in seawater
as a function of salinity and temperature, Mar. Chem.,
100 (2006) 80–94.
- J.M. Hernández-Ayón, S.L. Belli, A. Zirino, pH, alkalinity and
total CO2 in coastal seawater by potentiometric titration with
a difference derivative readout, Anal. Chem. Acta, 294 (1999)
101–108.
- J.J. Middelburg, K. Soetaert, M. Hagens, Ocean alkalinity,
buffering and biogeochemical processes, 58 (2020)
e2019RG000681, doi: 10.1029/2019RG000681.
- R.E. Zeebe, A. Sanyal, J.D. Ortiz, D.A. Wolf-Gladrow, A
theoretical study of the kinetics of the boric acid–borate
equilibrium in seawater, Mar. Chem., 73 (2001) 113–124.
- A.G. Dickson, Thermodynamics of the dissociation of boric acid
in synthetic seawater from 273.15 to 318.15 K, Deep Sea Res.
Part A, 37 (1990) 755–766.
- Metrohm AG, Titration Application Note T-172, Determination
of the Alkalinity in Brackish Water, Seawater and Brines
According to ASTM D3875, metrohm.com/en/applications/AN-T-172, Downloaded August 2nd 2021.