The impacts of CO2 capture on transboundary air pollution in the Netherlands

被引:9
|
作者
Koornneef, J. [1 ]
van Harmelen, T. [2 ]
van Horssen, A. [2 ]
van Gijlswijk, R. [2 ]
Ramirez, A. [1 ]
Faaij, A. [1 ]
Turkenburg, W. [1 ]
机构
[1] Univ Utrecht, Grp Sci Technol & Soc, Copernicus Inst Sustainable Dev & Innovat, NL-3584 CS Utrecht, Netherlands
[2] TNO, Sect Environm Hlth & Safety, NL-3584 CB Utrecht, Netherlands
来源
关键词
CO2 capture and storage; air quality; National Emission Ceiling; criteria pollutants; FUEL POWER-PLANTS; CARBON CAPTURE; STORAGE; PERFORMANCE;
D O I
10.1016/j.egypro.2009.02.179
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The focus of this research is to develop a first assessment of the impacts of the implementation of CO2 capture technologies in the Dutch power sector on the transboundary air pollution (SO2, NOX, NH3, NMVOC, PM10 and PM2.5) levels in 2020. Results show that for the power sector SO2 emissions will be very low for scenarios that include large scale implementation of Carbon Capture and Storage (CCS). The annual emissions of NOx are estimated to be lower in all scenarios with greenhouse gas reductions. However, applying the post-combustion technology on existing power plants may result in higher NOx emissions per kWh. Both SO2 and NOx emissions from the power sector are a substantial part of the current national total. Large scale implementation of the post-combustion CO2 capture technology may result in more than 5 times higher NH3 emissions compared to scenarios without CCS and to other capture options (i.e. pre-combustion and oxyfuel combustion). Particulate Matter (PM) emissions are lower in the scenarios with CO2 reduction. A scenario with large scale implementation of the oxyfuel technology shows the lowest emissions of PM. In the scenarios with post-combustion capture Non Methane Volatile Organic Compounds emissions may increase due to the emission of solvents used in the capture process. The main conclusion is that climate policy and air quality policy are entwined and may result in synergies and trade-offs. Quantification of these synergies and trade-offs however encompasses inaccuracies due to data uncertainty and knowledge gaps. (C) 2008 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3787 / 3794
页数:8
相关论文
共 50 条
  • [1] Air pollution impacts of amine scrubbing for CO2 capture
    Rochelle, Gary T.
    CARBON CAPTURE SCIENCE & TECHNOLOGY, 2024, 11
  • [2] Hope for CO2 air capture
    Lackner, Klaus S.
    PHYSICS TODAY, 2023, 76 (09) : 12 - 12
  • [3] CO2 capture for atmosphere pollution reduction
    Chavez, Rosa-Hilda
    Guadarrama, Javier de J.
    Klapp, Jaime
    TOWARDS A CLEANER PLANT: ENERGY FOR THE FUTURE, 2007, : 99 - +
  • [4] CO2 Capture from Air (Direct Air Capture: DAC)
    Journal of the Institute of Electrical Engineers of Japan, 2023, 143 (02): : 94 - 97
  • [5] Ecoedaphic conditions of transboundary forest ecosystems and the impacts of air pollution
    Kodrik, M
    Bublinec, E
    BIODIVERSITY CONSERVATION IN TRANSBOUNDARY PROTECTED AREAS, 1996, : 245 - 247
  • [6] Pollution impacts from CO2 plans
    Cooney, Catherine M.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2007, 41 (02) : 352 - 352
  • [7] Transboundary air pollution
    不详
    INTERNATIONAL JOURNAL OF ENVIRONMENT AND POLLUTION, 1996, 6 (2-3) : 338 - 339
  • [8] Pricing CO2 Direct Air Capture
    Sutherland, Brandon R.
    JOULE, 2019, 3 (07) : 1571 - 1573
  • [9] CO2 air-capture costs
    Tanner, John
    PHYSICS TODAY, 2023, 76 (02) : 12 - 12
  • [10] Transboundary health impacts of transported global air pollution and international trade
    Qiang Zhang
    Xujia Jiang
    Dan Tong
    Steven J. Davis
    Hongyan Zhao
    Guannan Geng
    Tong Feng
    Bo Zheng
    Zifeng Lu
    David G. Streets
    Ruijing Ni
    Michael Brauer
    Aaron van Donkelaar
    Randall V. Martin
    Hong Huo
    Zhu Liu
    Da Pan
    Haidong Kan
    Yingying Yan
    Jintai Lin
    Kebin He
    Dabo Guan
    Nature, 2017, 543 : 705 - 709