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Opportunities and risks of implementing zero-carbon building policy for cities: Hong Kong case

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  • Pan, Wei
  • Pan, Mi

Abstract

There is a worldwide policy agenda of reducing buildings’ carbon emissions. Zero-carbon building has emerged as an advanced model with policy support, but high-rise remains a knowledge gap. This paper aims to contribute a better understanding of the opportunities and risks of formulating and implementing a zero-carbon building policy, and identify recommendations for maximising the opportunities and minimising the risks. Hong Kong as a typical high-rise high-density city was considered as the case for study. The research was conducted through the combination of a policy review, a questionnaire survey, interviews and focus group meetings with several hundred professionals and stakeholders carefully selected using stratified sampling. Wide opportunities were identified, with most important ones including raising public awareness of sustainable living, reducing buildings’ energy use and carbon emissions, and promoting strategic urban planning. However, risks were found to co-exist, with most significant ones including geographical obstacles to domestic renewable energy generation, heavy reliance on fossil fuels, and resistance of practitioners to the policy. Nevertheless, the opportunities were considered to outweigh the risks. Recommendations were identified to mitigate the risks, which are centred on policy guidance, business strategy, stakeholder partnership, and government and client leadership. The findings reveal the complex, interactive, interchangeable and context-specific features of the opportunities and risks, which alert to reconstruct a dialectical system framework of implementing zero-carbon building policy for Hong Kong. The yielding policy implications and recommendations should shape the reconstruction of that framework for high-rise high-density cities.

Suggested Citation

  • Pan, Wei & Pan, Mi, 2019. "Opportunities and risks of implementing zero-carbon building policy for cities: Hong Kong case," Applied Energy, Elsevier, vol. 256(C).
  • Handle: RePEc:eee:appene:v:256:y:2019:i:c:s0306261919315223
    DOI: 10.1016/j.apenergy.2019.113835
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    as
    1. Golubchikov, Oleg & Deda, Paola, 2012. "Governance, technology, and equity: An integrated policy framework for energy efficient housing," Energy Policy, Elsevier, vol. 41(C), pages 733-741.
    2. Pan, Wei & Garmston, Helen, 2012. "Building regulations in energy efficiency: Compliance in England and Wales," Energy Policy, Elsevier, vol. 45(C), pages 594-605.
    3. Coenen, Lars & Benneworth, Paul & Truffer, Bernhard, 2012. "Toward a spatial perspective on sustainability transitions," Research Policy, Elsevier, vol. 41(6), pages 968-979.
    4. Pukšec, Tomislav & Vad Mathiesen, Brian & Duić, Neven, 2013. "Potentials for energy savings and long term energy demand of Croatian households sector," Applied Energy, Elsevier, vol. 101(C), pages 15-25.
    5. Panagiotidou, Maria & Fuller, Robert J., 2013. "Progress in ZEBs—A review of definitions, policies and construction activity," Energy Policy, Elsevier, vol. 62(C), pages 196-206.
    6. Lee, P. & Lam, P.T.I. & Lee, W.L. & Chan, E.H.W., 2016. "Analysis of an air-cooled chiller replacement project using a probabilistic approach for energy performance contracts," Applied Energy, Elsevier, vol. 171(C), pages 415-428.
    7. Chan, Edwin H.W. & Qian, Queena K. & Lam, Patrick T.I., 2009. "The market for green building in developed Asian cities--the perspectives of building designers," Energy Policy, Elsevier, vol. 37(8), pages 3061-3070, August.
    8. Reda, Francesco & Fatima, Zarrin, 2019. "Northern European nearly zero energy building concepts for apartment buildings using integrated solar technologies and dynamic occupancy profile: Focus on Finland and other Northern European countries," Applied Energy, Elsevier, vol. 237(C), pages 598-617.
    9. Stern,Nicholas, 2007. "The Economics of Climate Change," Cambridge Books, Cambridge University Press, number 9780521700801.
    10. Wang, Huan & Chen, Wenying & Shi, Jingcheng, 2018. "Low carbon transition of global building sector under 2- and 1.5-degree targets," Applied Energy, Elsevier, vol. 222(C), pages 148-157.
    11. Lee Cronbach, 1951. "Coefficient alpha and the internal structure of tests," Psychometrika, Springer;The Psychometric Society, vol. 16(3), pages 297-334, September.
    12. Geels, Frank W., 2004. "From sectoral systems of innovation to socio-technical systems: Insights about dynamics and change from sociology and institutional theory," Research Policy, Elsevier, vol. 33(6-7), pages 897-920, September.
    13. Fong, K.F. & Lee, C.K., 2012. "Towards net zero energy design for low-rise residential buildings in subtropical Hong Kong," Applied Energy, Elsevier, vol. 93(C), pages 686-694.
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    8. Gonçalves, Juliana E. & van Hooff, Twan & Saelens, Dirk, 2021. "Simulating building integrated photovoltaic facades: Comparison to experimental data and evaluation of modelling complexity," Applied Energy, Elsevier, vol. 281(C).

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