Challenges and countermeasures of urban water systems against climate change: a perspective from China
Yisheng Shao, Yijian Xu
Challenges and countermeasures of urban water systems against climate change: a perspective from China
● Urban water systems are challenged by climate change.
● Proactive adaptation and positive mitigation were proposed as the coping strategies.
● Proactive adaptation is to enhance the resilience of urban water systems.
● Positive mitigation is to strengthen the energy conservation and carbon reduction.
Urban water systems are facing various challenges against climate change, impacting cities’ security and their sustainable development. Specifically, there are three major challenges: submersion risk of coastal cities as glaciers melt and sea level rises, more and severe urban flooding caused by extreme weather like intensified storm surge and heavy precipitation, and regional water resource patterns challenged by alteration of spatial distribution of precipitation. Regarding this, two strategies including proactive adaptation and positive mitigation were proposed in this article to realize the reconstruction and optimization of urban water systems, to enhance their resilience, and eventually increase their adaptability and coping ability to climate change. The proactive adaptation strategy consists of 1) construction of sponge cities to accommodate the increased regular rainfall and to balance the alterations of spatial redistribution of precipitation; 2) reconstruction of excess stormwater discharge and detention system to increase capability for extreme precipitation events based on flood risk assessment under future climate change; 3) deployment of forward-looking, ecological, and integrated measures to improve coastal protection capability against inundation risks caused by climate change and sea level rise. The positive mitigation strategy is to employ the systematic concept in planning and design and to adopt advanced applicable energy-saving technologies, processes, and management practices, aiming at reduction in flux of urban water systems, reinforcement in energy conservation and carbon reduction in both water supply systems and wastewater treatment systems, and thus a reduction of greenhouse gas emission from urban water systems.
Climate change / Urban water system / Resilience / Adaptation / Mitigation
[1] |
BlakelyE, Carbonell A (2012). Resilient Coastal City Regions: Planning for Climate Change in the United States and Australia. Cambridge: Lincoln Institute of Land Policy
|
[2] |
BloombergM R (2013). A Stronger, More Resilient New York. PlaNYC Report. New York: City of New York
|
[3] |
Caldera U, Bogdanov D, Afanasyeva S, Breyer C. (2018). Role of seawater desalination in the management of an integrated water and 100% renewable energy based power sector in Saudi Arabia. Water (Basel), 10(1): 3
CrossRef
Google scholar
|
[4] |
DingY, Du X (2016). Special Report of the Third National Climate Assessment of China: Impact of Climate Change on Major Projects in China and Countermeasures. Beijing: Science Press (in Chinese)
|
[5] |
DingY, Mu M, LinE (2012). Impact and vulnerability. In: Qin D, eds. Climate Change and Environment Evolution in China 2012. Beijing: China Meteorological Press (in Chinese)
|
[6] |
DuX, DingY (2021). Impact of Climate Change on Projects in Coastal Cities in China and Adaptation Strategies. Beijing: China Meteorological Press (in Chinese)
|
[7] |
Fletcher T D, Shuster W, Hunt W F, Ashley R, Butler D, Arthur S, Trowsdale S, Barraud S, Semadeni-Davies A, Bertrand-Krajewski J L.
CrossRef
Google scholar
|
[8] |
Hou F, Zhang T, Peng Y, Cao X, Pang H, Shao Y, Lu X, Yuan J, Chen X, Zhang J. (2022). Partial anammox achieved in full scale biofilm process for typical domestic wastewater treatment. Frontiers of Environmental Science & Engineering, 16(3): 33
CrossRef
Google scholar
|
[9] |
IPCC (2014). Climate Change 2014: Impacts, Adaptation, and Vulnerability. Cambridge: Cambridge University Press
|
[10] |
IPCC (2022). Climate Change 2022: Impacts, Adaptation, and Vulnerability. Cambridge: Cambridge University Press
|
[11] |
KongY, Xu Y, XuL, Zhou G, Tang L, Zhou F (2020). Planning Method for Urban Water Pollution Control. Beijing: China Academy of Urban Planning & Design (in Chinese)
|
[12] |
Lee Y. (2014). Coastal planning strategies for adaptation to sea level rise: a case study of Mokpo, Korea. Journal of Building Construction and Planning Research, 2(1): 74–81
CrossRef
Google scholar
|
[13] |
LiW, ZuoC, WangH, Dong J, GaoT, PanS, JinB (2019). Salt tide intrusion characteristics in main estuaries of China. Marine Science Bulletin, 38(6): 650–655 (in Chinese)
|
[14] |
Luo S, Peng Y, Liu Y, Peng Y. (2022). Research progress and prospects of complete ammonia oxidizing bacteria in wastewater treatment. Frontiers of Environmental Science & Engineering, 16(9): 123
CrossRef
Google scholar
|
[15] |
National Climate Center of China Meteorological Administration (2021). Blue Book on Climate Change in China. Beijing: Science Press (in Chinese)
|
[16] |
Qadir M, Quillérou E, Nangia V, Murtaza G, Singh M, Thomas R J, Drechsel P, Noble A D. (2014). Economics of salt-induced land degradation and restoration. Natural Resources Forum, 38(4): 282–295
CrossRef
Google scholar
|
[17] |
Qu J, Ren H, Wang H, Wang K, Yu G, Ke B, Yu H Q, Zheng X, Li J. (2022). China launched the first wastewater resource recovery factory in Yixing. Frontiers of Environmental Science & Engineering, 16(1): 13
CrossRef
Google scholar
|
[18] |
Rotterdam Climate Initiative (2013). Rotterdam Climate Change Adaptation Strategy. Rotterdam: Rotterdam Climate Initiative
|
[19] |
Salgot M, Folch M. (2018). Wastewater treatment and water reuse. Current Opinion in Environmental Science & Health, 2: 64–74
CrossRef
Google scholar
|
[20] |
San Francisco Department of the Environment (2013). San Francisco Climate Action Strategy. San Francisco: San Francisco Department of the Environment
|
[21] |
ShiY, ZhuJ, XieZ, JiZ, JiangZ, Yang G (2000). Sea level rise prediction of the Yangtz River Delta and its adjacent areas and the control countermeasures. Science in China. Series D, Earth Sciences, 30(03): 225–232 (in Chinese)
|
[22] |
STOWA (2010). News: the Dutch roadmap for the WWTP of 2030. Available online at the website of stowa.nl (accessed January 18, 2023)
|
[23] |
TamuraM, Kumano N, YotsukuriM, YokokiH (2019). Global assessment of the effectiveness of adaptation in 56 coastal areas based on RCP/SSP scenarios. Climatic Change, 152(3–4): 363–377
CrossRef
Google scholar
|
[24] |
Wilder M O, Aguilar-Barajas I, Pineda-Pablos N, Varady R G, Megdal S B, McEvoy J, Merideth R, Zúñiga-Terán A A, Scott C A. (2016). Desalination and water security in the US–Mexico border region: assessing the social, environmental and political impacts. Water International, 41(5): 756–775
CrossRef
Google scholar
|
[25] |
World Meteorological Organization (2021). State of the global climate 2020. No. 1264. Available online at the website of library.wmo.int (accessed January 18, 2023)
|
[26] |
XuY (2020). Development strategy of China’s coastal cities for addressing climate change. Advances in Climate Change Research, 16 (1): 88–98 (in Chinese)
|
[27] |
XuY, LiuX, YangY, Yuan F, Gong D, Mo L, Chen J, Xu T (2021). Research on urban water system security technology in Xiong’an New Area under uncertainty. Water & Wastewater Engineering, 47(11): 82–87, 102 (in Chinese)
|
[28] |
YangG (2000). Historical change and future trends of storm surge disaster in China’s coastal area. Journal of Natural Disasters, 9(3): 23–30 (in Chinese)
|
[29] |
ZhangJ, Xiao K, LiangS, HuangX (2022). Membrane technologies for municipal wastewater treatment and reclamation in China: application and challenges. Environmental Engineering, 40(03): 1–6, 153 (in Chinese)
|
/
〈 | 〉 |