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Energy and material flows of megacities

  • Christopher A. Kennedy*
  • , Iain Stewart
  • , Angelo Facchini
  • , Igor Cersosimo
  • , Renata Mele
  • , Bin Chen
  • , Mariko Uda
  • , Arun Kansal
  • , Anthony Chiu
  • , Kwi Gon Kim
  • , Carolina Dubeux
  • , Emilio Lebre La Rovere
  • , Bruno Cunha
  • , Stephanie Pincetl
  • , James Keirstead
  • , Sabine Barles
  • , Semerdanta Pusaka
  • , Juniati Gunawan
  • , Michael Adegbile
  • , Mehrdad Nazariha
  • Shamsul Hoque, Peter J. Marcotullio, Florencia González Otharán, Tarek Genena, Nadine Ibrahim, Rizwan Farooqui, Gemma Cervantes, Ahmet Duran Sahin
*Bu çalışma için yazışmadan sorumlu yazar
  • University of Toronto
  • Enel
  • Beijing Normal University
  • The Energy and Resources Institute India
  • De La Salle University-Manila
  • Seoul National University
  • Universidade Federal do Rio de Janeiro
  • University of California at Los Angeles
  • Imperial College London
  • Université Paris Cité
  • Trisakti University
  • University of Lagos
  • University of Tehran
  • Bangladesh University of Engineering and Technology
  • City University of New York
  • Government of Buenos Aires City
  • EcoConServ Environmental Solutions
  • NED University of Engineering and Technology
  • Universidad de Guanajuato

Araştırma çıktısı: Dergi yayınıMakaleHakemli

382 Atıf (Scopus)

Özet

Understanding the drivers of energy and material flows of cities is important for addressing global environmental challenges. Accessing, sharing, and managing energy and material resources is particularly critical for megacities, which face enormous social stresses because of their sheer size and complexity. Here we quantify the energy and material flows through the world's 27 megacities with populations greater than 10 million people as of 2010. Collectively the resource flows through megacities are largely consistent with scaling laws established in the emerging science of cities. Correlations are established for electricity consumption, heating and industrial fuel use, ground transportation energy use, water consumption, waste generation, and steel production in terms of heating-degree-days, urban form, economic activity, and population growth. The results help identify megacities exhibiting high and low levels of consumption and those making efficient use of resources. The correlation between per capita electricity use and urbanized area per capita is shown to be a consequence of gross building floor area per capita, which is found to increase for lower-density cities. Many of the megacities are growing rapidly in population but are growing even faster in terms of gross domestic product (GDP) and energy use. In the decade from 2001-2011, electricity use and ground transportation fuel use in megacities grew at approximately half the rate of GDP growth.

Orijinal dilİngilizce
Sayfa (başlangıç-bitiş)5985-5990
Sayfa sayısı6
DergiProceedings of the National Academy of Sciences of the United States of America
Hacim112
Basın numarası19
DOI'lar
Yayın durumuYayınlandı - 12 May 2015

Finansman

FinansörlerFinansör numarası
National Science Foundation1229429

    BM SKH

    Bu sonuç, aşağıdaki Sürdürülebilir Kalkınma Hedefine/Hedeflerine katkıda bulunur

    1. SKH 9 - Sanayi, Yenilikçilik ve Altyapı
      SKH 9 Sanayi, Yenilikçilik ve Altyapı
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      SKH 11 Sürdürülebilir Şehirler ve Topluluklar
    3. SKH 12 - Sorumlu Üretim ve Tüketim
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