CO2 capture by pumping surface acidity to the deep ocean

被引:25
|
作者
Tyka, Michael D. [1 ]
Van Arsdale, Christopher [1 ]
Platt, John C. [1 ]
机构
[1] Google Inc, 601 N 34th St, Seattle, WA 98103 USA
关键词
NEUTRALIZATION; DISSOLUTION; CLIMATE; ALKALINIZATION; SEQUESTRATION; ACIDIFICATION; CARBONATE; REMOVAL; STORAGE; COST;
D O I
10.1039/d1ee01532j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
To remain below 2 degrees C of warming, most IPCC pathways call for active CO2 removal (CDR). On geological timescales, ocean uptake regulates atmospheric CO2 concentration, with two homeostats driving CO2 uptake: dissolution of deep ocean carbonate deposits (1 ka timescales) and terrestrial weathering of silicate rocks (100 ka timescales). Many current ocean-based CDR proposals effectively act to accelerate the latter. Here we present a method which relies purely on the redistribution and dilution of acidity from a thin layer of the surface ocean to a thicker layer of deep ocean, in order to reduce surface acidification and accelerate carbonate homeostasis. This downward transport could be seen analogous to the action of the natural biological carbon pump. The method offers advantages over other ocean alkalinity and CO2-stripping methods: the conveyance of mass is minimized (acidity is pumped in situ to depth), and expensive mining, grinding and distribution of alkaline material is eliminated. No dilute substance needs to be concentrated, reducing the quantity of seawater to be processed. Finally, no terrestrial material is added to the ocean, avoiding significant alteration of seawater ion concentrations or issues with heavy metal toxicity (encountered in mineral-based alkalinity schemes). The artificial transport of acidity accelerates the natural deep ocean compensation by calcium carbonate. It has been estimated that the total compensation capacity of the ocean is on the order of 1500 GtC. We show through simulation that pumping of ocean acidity could remove up to 150 GtC from the atmosphere by 2100 without excessive increase of local pH. The permanence of the CO2 storage depends on the depth of acid pumping. At >3000 m, similar to 85% is retained for at least 300 years, and >50% for at least 2000 years. Shallow pumping (<2000 m) offers more of a stop-gap deferral of emissions for a few hundred years. Uptake efficiency and residence time also vary with the location of acidity pumping. Requiring only local resources (ocean water and energy), this method could be uniquely suited to utilize otherwise-unusable open ocean energy sources at scale. We present a brief techno-economic estimate of 130-250$ per tCO(2) at current prices and as low as 93$ per tCO(2) under modest learning-curve assumptions.
引用
收藏
页码:786 / 798
页数:13
相关论文
共 50 条
  • [41] The urgency of the development of CO2 capture from ambient air
    Lackner, Klaus S.
    Brennan, Sarah
    Matter, Juerg M.
    Park, A. -H. Alissa
    Wright, Allen
    van der Zwaan, Bob
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (33) : 13156 - 13162
  • [42] Scaling CO2 Capture With Downstream Flow CO2 Conversion to Ethanol
    Pace, Grant
    Sheehan, Stafford W.
    FRONTIERS IN CLIMATE, 2021, 3
  • [43] Deep Ocean Storage of Heat and CO2 in the Fram Strait, Arctic Ocean During the Last Glacial Period
    Ezat, Mohamed M.
    Rasmussen, Tine L.
    Hain, Mathis P.
    Greaves, Mervyn
    Rae, James W. B.
    Zamelczyk, Katarzyna
    Marchitto, Thomas M.
    Szidat, Soenke
    Skinner, Luke C.
    PALEOCEANOGRAPHY AND PALEOCLIMATOLOGY, 2021, 36 (08)
  • [44] Deep ocean carbonate ion increase during mid Miocene CO2 decline
    Kender, Sev
    Yu, Jimin
    Peck, Victoria L.
    SCIENTIFIC REPORTS, 2014, 4
  • [45] Extra CO2 capture and storage by carbonation of biomass ashes
    Vassilev, Stanislav V.
    Vassileva, Christina G.
    ENERGY CONVERSION AND MANAGEMENT, 2020, 204
  • [46] Drivers of Surface Ocean Acidity Extremes in an Earth System Model
    Burger, Friedrich A.
    Frolicher, Thomas L.
    GLOBAL BIOGEOCHEMICAL CYCLES, 2023, 37 (09)
  • [47] Current Status and Reflections on Ocean CO2 Sequestration: A Review
    Zhang, Shanling
    Jiang, Sheng
    Li, Hongda
    Li, Peiran
    Zhong, Xiuping
    Chen, Chen
    Tu, Guigang
    Liu, Xiang
    Xu, Zhenhua
    ENERGIES, 2025, 18 (04)
  • [48] Surface Gravity Response of CO2 Storage in the Johansen Deep Reservoir
    Milano, Maurizio
    Fedi, Maurizio
    IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2023, 61 : 1 - 14
  • [49] Dissolution behavior and hydrate effect on CO2 ocean sequestration
    Kim, N
    Kim, C
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2005, 19 (05) : 1216 - 1225
  • [50] Dissolution behavior and hydrate effect on CO2 ocean sequestration
    Kim Namjin
    Kim Chongbo
    Journal of Mechanical Science and Technology, 2005, 19 (5) : 1216 - 1225