Physical and virtual carbon metabolism of global cities

Shaoqing Chen, Bin Chen, Kuishuang Feng, Zhu Liu, Neil A. Fromer, Xianchun Tan, Ahmed Alsaedi, Tasawar Hayat, Helga Weisz, Hans Joachim Schellnhuber,

Nature Communications · 2020 · 127 citations · 55 references

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TL;DR

Urban activities profoundly affect the global carbon balance. The study develops a consistent metabolic approach that combines physical carbon balance and fossil fuel‑derived gaseous carbon footprint to track carbon flows in cities. This approach integrates two complementary carbon accounts to monitor carbon entering, accumulating in urban stocks, and exiting the city. Over 88 % of physical carbon in 16 global cities is imported, with virtual emissions contributing 33–68 % of total inflows; 13–33 % of appropriated carbon is combusted, 8–24 % stored in durable goods or urban stocks, underscoring the importance of inventorying consumed and stored carbon for climate stabilization.

Abstract

Abstract Urban activities have profound and lasting effects on the global carbon balance. Here we develop a consistent metabolic approach that combines two complementary carbon accounts, the physical carbon balance and the fossil fuel-derived gaseous carbon footprint, to track carbon coming into, being added to urban stocks, and eventually leaving the city. We find that over 88% of the physical carbon in 16 global cities is imported from outside their urban boundaries, and this outsourcing of carbon is notably amplified by virtual emissions from upstream activities that contribute 33–68% to their total carbon inflows. While 13–33% of the carbon appropriated by cities is immediately combusted and released as CO 2 , between 8 and 24% is stored in durable household goods or becomes part of other urban stocks. Inventorying carbon consumed and stored for urban metabolism should be given more credit for the role it can play in stabilizing future global climate.

References

55