Literature DB >> 26308384

A Methodology for Integrated, Multiregional Life Cycle Assessment Scenarios under Large-Scale Technological Change.

Thomas Gibon1, Richard Wood1, Anders Arvesen1, Joseph D Bergesen2, Sangwon Suh2, Edgar G Hertwich1.   

Abstract

Climate change mitigation demands large-scale technological change on a global level and, if successfully implemented, will significantly affect how products and services are produced and consumed. In order to anticipate the life cycle environmental impacts of products under climate mitigation scenarios, we present the modeling framework of an integrated hybrid life cycle assessment model covering nine world regions. Life cycle assessment databases and multiregional input-output tables are adapted using forecasted changes in technology and resources up to 2050 under a 2 °C scenario. We call the result of this modeling "technology hybridized environmental-economic model with integrated scenarios" (THEMIS). As a case study, we apply THEMIS in an integrated environmental assessment of concentrating solar power. Life-cycle greenhouse gas emissions for this plant range from 33 to 95 g CO2 eq./kWh across different world regions in 2010, falling to 30-87 g CO2 eq./kWh in 2050. Using regional life cycle data yields insightful results. More generally, these results also highlight the need for systematic life cycle frameworks that capture the actual consequences and feedback effects of large-scale policies in the long term.

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Year:  2015        PMID: 26308384     DOI: 10.1021/acs.est.5b01558

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  4 in total

1.  Net emission reductions from electric cars and heat pumps in 59 world regions over time.

Authors:  Florian Knobloch; Steef Hanssen; Aileen Lam; Hector Pollitt; Pablo Salas; Unnada Chewpreecha; Mark A J Huijbregts; Jean-Francois Mercure
Journal:  Nat Sustain       Date:  2020-03-23

2.  Environmental co-benefits and adverse side-effects of alternative power sector decarbonization strategies.

Authors:  Gunnar Luderer; Michaja Pehl; Anders Arvesen; Thomas Gibon; Benjamin L Bodirsky; Harmen Sytze de Boer; Oliver Fricko; Mohamad Hejazi; Florian Humpenöder; Gokul Iyer; Silvana Mima; Ioanna Mouratiadou; Robert C Pietzcker; Alexander Popp; Maarten van den Berg; Detlef van Vuuren; Edgar G Hertwich
Journal:  Nat Commun       Date:  2019-11-19       Impact factor: 14.919

3.  Cooling aerosols and changes in albedo counteract warming from CO2 and black carbon from forest bioenergy in Norway.

Authors:  Anders Arvesen; Francesco Cherubini; Gonzalo Del Alamo Serrano; Rasmus Astrup; Michael Becidan; Helmer Belbo; Franziska Goile; Tuva Grytli; Geoffrey Guest; Carine Lausselet; Per Kristian Rørstad; Line Rydså; Morten Seljeskog; Øyvind Skreiberg; Sajith Vezhapparambu; Anders Hammer Strømman
Journal:  Sci Rep       Date:  2018-02-19       Impact factor: 4.379

4.  Contribution of forest wood products to negative emissions: historical comparative analysis from 1960 to 2015 in Norway, Sweden and Finland.

Authors:  Cristina-Maria Iordan; Xiangping Hu; Anders Arvesen; Pekka Kauppi; Francesco Cherubini
Journal:  Carbon Balance Manag       Date:  2018-09-04
  4 in total

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