NET ZERO EMISSIONS OF GREENHOUSE GASES BY 2050: ACHIEVABLE AND AT WHAT COST?

被引:9
作者
Morris, Jennifer [1 ]
Chen, Y. -h. Henry [1 ]
Gurgel, Angelo [1 ]
Reilly, John [1 ]
Sokolov, Andrei [1 ]
机构
[1] MIT, Cambridge, MA 02139 USA
关键词
Net zero; emissions; policy costs; energy; climate; trading; CO2; EMISSIONS; CLIMATE; TARGET;
D O I
10.1142/S201000782340002X
中图分类号
F [经济];
学科分类号
02 ;
摘要
About 140 countries have announced or are considering net zero targets. To explore the implications of such targets, we apply an integrated earth system-economic model to investigate illustrative net zero emissions scenarios. Given the technologies as characterized in our modeling framework, we find that with net zero targets afforestation in earlier years and biomass energy with carbon capture and storage (BECCS) technology in later years are important negative emissions technologies, allowing continued emissions from hard-to-reduce sectors and sources. With the entire world achieving net zero by 2050 a very rapid scale-up of BECCS is required, increasing mitigation costs through mid-century substantially, compared with a scenario where some countries achieve net zero by 2050 while others continue some emissions in the latter half of the century. The scenarios slightly overshoot 1.5(& LCIRC;)C at mid-century but are at or below 1.5(& LCIRC;)C by 2100 with median climate response. Accounting for climate uncertainty, global achievement of net zero by 2050 essentially guarantees that the 1.5(& LCIRC;)C target will be achieved, compared to having a 50-50 chance in the scenario without net zero. This indicates a tradeoff between policy costs and likelihood of achieving 1.5(& LCIRC;)C.
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页数:28
相关论文
共 41 条
[1]   Net-zero emissions energy systems: What we know and do not know [J].
Azevedo, Ines ;
Bataille, Christopher ;
Bistline, John ;
Clarke, Leon ;
Davis, Steven .
ENERGY AND CLIMATE CHANGE, 2021, 2
[2]   The role of the power sector in net-zero energy systems [J].
Bistline, John E. T. ;
Blanford, Geoffrey J. .
ENERGY AND CLIMATE CHANGE, 2021, 2
[3]  
Chen H., 2022, Low Carbon Econ., V13, P70, DOI [10.4236/lce.2022.132005, DOI 10.4236/LCE.2022.132005]
[4]   Long-term economic modeling for climate change assessment [J].
Chen, Y. -H. Henry ;
Paltsev, Sergey ;
Reilly, John M. ;
Morris, Jennifer F. ;
Babiker, Mustafa H. .
ECONOMIC MODELLING, 2016, 52 :867-883
[5]  
Climate Action Tracker, 2022, CAT Net Zero Target Evaluations
[6]   Insights into perovskite-catalyzed peroxymonosulfate activation: Maneuverable cobalt sites for promoted evolution of sulfate radicals [J].
Duan, Xiaoguang ;
Su, Chao ;
Miao, Jie ;
Zhong, Yijun ;
Shao, Zongping ;
Wang, Shaobin ;
Sun, Hongqi .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2018, 220 :626-634
[7]  
Esque A, 2022, Making Net Zero Aviation Possible
[8]   Fair-share carbon dioxide removal increases major emitter responsibility [J].
Fyson, Claire L. ;
Baur, Susanne ;
Gidden, Matthew ;
Schleussner, Carl-Friedrich .
NATURE CLIMATE CHANGE, 2020, 10 (09) :836-+
[9]  
Gerber PJ., 2013, Tackling climate change through livestock: a global assessment of emissions and mitigation opportunities
[10]  
Greenpeace International, 2021, NEW RES SHOWS 50 YEA