Comparison between averaged and localised subsidence measurements for coastal floods projection in 2050 Semarang, Indonesia

Urban Climate - Tập 35 - Trang 100760 - 2021
Amir M. Irawan1, Muh A. Marfai2, Munawar1, Imma R. Nugraheni3, Sandy T. Gustono4, Hasti A. Rejeki3, Anton Widodo5, Rikha R. Mahmudiah1, Maritsa Faridatunnisa6
1Department of Climatology, School of Meteorology Climatology and Geophysics (STMKG), Jakarta 15221, Indonesia
2Department of Environmental Geography, Faculty of Geography, Universitas Gadjah Mada, Indonesia
3Department of Meteorology, School of Meteorology Climatology and Geophysics (STMKG), Jakarta 15221, Indonesia
4Department of Geophysics, School of Meteorology Climatology and Geophysics (STMKG), Jakarta 15221, Indonesia
5Instrumentation Department of Meteorology Climatology and Geophysics, School of Meteorology Climatology and Geophysics (STMKG), Jakarta 15221, Indonesia
6Geodetic Engineering Department, Universitas Gadjah Mada, Indonesia

Tài liệu tham khảo

Aerts, 2013, Low-probability flood risk modeling for New York City, Risk Anal., 10.1111/risa.12008 Ahmad, 2018, Vulnerability assessment of mangrove habitat to the variables of the oceanography using CVI method (Coastal Vulnerability Index) in Trimulyo Mangrove Area, Genuk District, Semarang Al Dianty, 2020, The linkage of effect climate change for determining design flood of Tenggang River, Geogr. Tech. Andreas, 2019, On the acceleration of land subsidence rate in Semarang City as detected from GPS surveys, E3S Web of Conferences, 10.1051/e3sconf/20199404002 Barry, 2001, The soft soils of Semarang Bates, 2000, A simple raster-based model for flood inundation simulation, J. Hydrol., 10.1016/S0022-1694(00)00278-X Bates, 2005, Simplified two-dimensional numerical modelling of coastal flooding and example applications, Coast. Eng., 10.1016/j.coastaleng.2005.06.001 Buchori, 2018, Adaptation to coastal flooding and inundation: mitigations and migration pattern in Semarang City, Indonesia, Ocean Coast. Manag., 10.1016/j.ocecoaman.2018.07.017 Cannon, 2020, The climate change double whammy: flood damage and the determinants of flood insurance coverage, the case of post-Katrina New Orleans, Clim. Risk Manag., 10.1016/j.crm.2019.100210 Chu, 2020, An ANN-based emulation modelling framework for flood inundation modelling: application, challenges and future directions, Environ. Model. Softw., 10.1016/j.envsoft.2019.104587 Coles, 2001 Cornell, 1968, Engineering seismic risk analysis, Bull. Seismol. Soc. Am., 10.1785/BSSA0580051583 Dalinta, 2010 Dawson, 2005, Quantified analysis of the probability of flooding in the Thames estuary under imaginable worst-case Sea Level Rise scenarios, Int. J. Water Resour. Dev., 10.1080/07900620500258380 Esteban, 2020, Adaptation to sea level rise: learning from present examples of land subsidence, Ocean Coast. Manag., 10.1016/j.ocecoaman.2019.104852 Faridatunnisa, 2018, Study of sea level rise using tide gauge data year 1996 to 2015 at Semarang and Prigi Stations Findayani, 2019 Geological Research and Development Centre (GRDC), 1996 Grounds, 2018, Expressing flood likelihood: return period versus probability, Weather. Clim. Soc., 10.1175/WCAS-D-16-0107.1 Gumbel, 1958 Haigh, 2010, A comparison of the main methods for estimating probabilities of extreme still water levels, Coast. Eng., 10.1016/j.coastaleng.2010.04.002 Handayani, 2014, Dynamics of urban growth in semarang metropolitan – central Java: an examination based on built-up area and population change, J. Geogr. Geol., 10.5539/jgg.v6n4p80 Hoch, 2017, A first computational framework for integrated hydrologic-hydrodynamic inundation modelling, 7390 Idier, 2020, Coastal flood: a composite method for past events characterisation providing insights in past, present and future hazards—joining historical, statistical and modelling approaches, Nat. Hazards Irawan, 2016 Jenkinson, 1955, The frequency distribution of the annual maximum (or minimum) of meteorological elements, Q. J. R. Meteorol. Soc., 81, 158, 10.1002/qj.49708134804 Kekeh, 2020, Sea level rise and coastal communities Kirkpatrick, 2020, Modelling the effects of climate change on urban coastal-fluvial flooding, J. Water Clim. Chang., 10.2166/wcc.2020.166 Koch, 2020, Intergrading earth & disaster science to enable sustainable adaptation & mitigation Kurniawati, 2020, Spatial expression of Malay Kampung Semarang in facing flood disaster Lewis, 2011, Quantifying the uncertainty in future coastal flood risk estimates for the U.K, J. Coast. Res., 10.2112/JCOASTRES-D-10-00147.1 Lewis, 2013, A storm surge inundation model of the northern Bay of Bengal using publicly available data, Q. J. R. Meteorol. Soc., 10.1002/qj.2040 Marfai, 2008, The impact of tidal flooding on a coastal community in Semarang, Indonesia, Environmentalist, 10.1007/s10669-007-9134-4 McMillan, 2011, Coastal flood boundary conditions for UK mainland and islands Neal, 2011, Evaluating a new LISFLOOD-FP formulation with data from the summer 2007 floods in Tewkesbury, UK, J. Flood Risk Manag., 10.1111/j.1753-318X.2011.01093.x Okezone Paulik, 2020, National-scale built-environment exposure to 100-year extreme sea levels and sea-level rise, Sustainability, 10.3390/su12041513 Peterse, 2016 Prakash, 2020, An evidence based approach to evaluating flood adaptation effectiveness including climate change considerations for coastal cities: city of Port Phillip, Victoria, Australia, J. Flood Risk Manag., 10.1111/jfr3.12556 Pratiwo, 2004 Prime, 2015, Physical and economic impacts of sea-level rise and low probability flooding events on coastal communities, PLoS One, 10.1371/journal.pone.0117030 Public Work Department of Semarang (PWD), 2000 Purvis, 2008, A probabilistic methodology to estimate future coastal flood risk due to sea level rise, Coast. Eng., 10.1016/j.coastaleng.2008.04.008 Seenath, 2015, Modelling coastal flood vulnerability: does spatially-distributed friction improve the prediction of flood extent?, Appl. Geogr., 10.1016/j.apgeog.2015.09.010 Seenath, 2016, Hydrodynamic versus GIS modelling for coastal flood vulnerability assessment: which is better for guiding coastal management?, Ocean Coast. Manag., 10.1016/j.ocecoaman.2015.11.019 Semarang Regional Disaster Management Agency (BPBD) Siegel, 2020 Stephens, 2020, Spatial and temporal analysis of extreme storm-tide and skew-surge events around the coastline of New Zealand, Nat. Hazards Earth Syst. Sci., 10.5194/nhess-20-783-2020 Sukhyar, 2003, 335 Surendran, 2006 Takagi, 2016, Projection of coastal floods in 2050 Jakarta, Urban Clim., 10.1016/j.uclim.2016.05.003 van de Haterd, 2020, Environmental change and health risks in coastal Semarang, Indonesia: importance of local indigenous knowledge for strengthening adaptation policies, Cities Heal., 10.1080/23748834.2020.1729451 Verrest, 2020, Keeping the business going: SMEs and urban floods in Asian megacities, Int. Dev. Plan. Rev., 10.3828/idpr.2020.3 Wadey, 2013, 235pp Werner, 2001, Impact of grid size in GIS based flood extent mapping using a 1D flow model, Phys. Chem. Earth B, 10.1016/S1464-1909(01)00043-0 Willis, 2019, Systematic analysis of uncertainty in 2D flood inundation models, Environ. Model. Softw., 10.1016/j.envsoft.2019.104520 Zou, 2009, Modelling water from clouds to coast, Planet Earth., 22