Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Evert A. Bouman is active.

Publication


Featured researches published by Evert A. Bouman.


Proceedings of the National Academy of Sciences of the United States of America | 2015

Integrated life-cycle assessment of electricity-supply scenarios confirms global environmental benefit of low-carbon technologies

Edgar G. Hertwich; Thomas Gibon; Evert A. Bouman; Anders Arvesen; Sangwon Suh; Garvin Heath; Joseph D. Bergesen; Andrea Ramírez; Mabel Vega; Lei Shi

Significance Life-cycle assessments commonly used to analyze the environmental costs and benefits of climate-mitigation options are usually static in nature and address individual power plants. Our paper presents, to our knowledge, the first life-cycle assessment of the large-scale implementation of climate-mitigation technologies, addressing the feedback of the electricity system onto itself and using scenario-consistent assumptions of technical improvements in key energy and material production technologies. Decarbonization of electricity generation can support climate-change mitigation and presents an opportunity to address pollution resulting from fossil-fuel combustion. Generally, renewable technologies require higher initial investments in infrastructure than fossil-based power systems. To assess the tradeoffs of increased up-front emissions and reduced operational emissions, we present, to our knowledge, the first global, integrated life-cycle assessment (LCA) of long-term, wide-scale implementation of electricity generation from renewable sources (i.e., photovoltaic and solar thermal, wind, and hydropower) and of carbon dioxide capture and storage for fossil power generation. We compare emissions causing particulate matter exposure, freshwater ecotoxicity, freshwater eutrophication, and climate change for the climate-change-mitigation (BLUE Map) and business-as-usual (Baseline) scenarios of the International Energy Agency up to 2050. We use a vintage stock model to conduct an LCA of newly installed capacity year-by-year for each region, thus accounting for changes in the energy mix used to manufacture future power plants. Under the Baseline scenario, emissions of air and water pollutants more than double whereas the low-carbon technologies introduced in the BLUE Map scenario allow a doubling of electricity supply while stabilizing or even reducing pollution. Material requirements per unit generation for low-carbon technologies can be higher than for conventional fossil generation: 11–40 times more copper for photovoltaic systems and 6–14 times more iron for wind power plants. However, only two years of current global copper and one year of iron production will suffice to build a low-carbon energy system capable of supplying the worlds electricity needs in 2050.


Energy | 2016

Environmental impacts of balancing offshore wind power with compressed air energy storage (CAES)

Evert A. Bouman; Martha M. Øberg; Edgar G. Hertwich


Transportation Research Part D-transport and Environment | 2017

State-of-the-art technologies, measures, and potential for reducing GHG emissions from shipping – A review

Evert A. Bouman; Elizabeth Lindstad; Agathe Isabelle Rialland; Anders Hammer Strømman


International Journal of Greenhouse Gas Control | 2015

Multiregional environmental comparison of fossil fuel power generation-Assessment of the contribution of fugitive emissions from conventional and unconventional fossil resources

Evert A. Bouman; Andrea Ramírez; Edgar G. Hertwich


Resources Conservation and Recycling | 2015

Material use for electricity generation with carbon dioxide capture and storage: Extending life cycle analysis indices for material accounting

Bhawna Singh; Evert A. Bouman; Anders Hammer Strømman; Edgar G. Hertwich


International Journal of Hydrogen Energy | 2015

The hydrogen permeability of Pd–Cu based thin film membranes in relation to their structure: A combinatorial approach

R.J. Westerwaal; Evert A. Bouman; W.G. Haije; H. Schreuders; S. Dutta; M.Y. Wu; Christiaan Boelsma; Peter Ngene; S. Basak; Bernard Dam


Archive | 2016

Green Energy Choices: The benefits, risks, and trade-offs of low-carbon technologies for electricity production

Edgar G. Hertwich; J.A. de Larderel; Anders Arvesen; P. Bayer; Joseph D. Bergesen; Evert A. Bouman; Thomas Gibon; Garvin Heath; C. Peña; Pallav Purohit; Andrea Ramírez; Sangwon Suh


Archive | 2015

Prospective Environmental Impacts of Selected Low-Carbon Electricity Technologies

Evert A. Bouman


Green Energy Choices | 2016

Matching supply and demand: grid and storage

Edgar G. Hertwich; Jan Weinzettel; Evert A. Bouman; Thomas Gibon; Anders Arvesen; Jaroslav Knápek


LCM 2013 | 2013

LIFE CYCLE ASSESSMENT OF COMPRESSED AIR ENERGY STORAGE (CAES)

Evert A. Bouman; Martha M. Øberg; Edgar G. Hertwich

Collaboration


Dive into the Evert A. Bouman's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar

Anders Arvesen

Norwegian University of Science and Technology

View shared research outputs
Top Co-Authors

Avatar

Thomas Gibon

Norwegian University of Science and Technology

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Anders Hammer Strømman

Norwegian University of Science and Technology

View shared research outputs
Top Co-Authors

Avatar

Martha M. Øberg

Norwegian University of Science and Technology

View shared research outputs
Top Co-Authors

Avatar

Garvin Heath

National Renewable Energy Laboratory

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Sangwon Suh

University of California

View shared research outputs
Researchain Logo
Decentralizing Knowledge