Environ. Res. Lett. 10 (2015) 064011
I Takayabu et al
Figure 6. Maximum water surface elevation predicted by using the SuWAT model (domain D3). Results of experiment m02 (1001) in
(a) ALL and (b) NAT. The coloured dots around the coastline show inundation data obtained by a field survey.
difference in the cyclone intensity. The difference of
maximum surge height between NAT and ALL is
0.47 m and amplification of surge height is much
larger than surface wind amplification due to nonlinear characteristics of momentum transfer between
atmospheric and ocean interface.
4. Influence of extreme sea level change
within these 150 years
There are many studies of historical sea level rise
(IPCC-AR5, WGI, chapter 13). For example, Church
and White (2011) investigate sea level change from the
late 19th to the early 21st century. Although there were
only a few tide gauges that operated in the middle 19th
century, their papers figure 7 shows some sea level
change records estimation from several data sources.
7
From their figure, c.a. 0.25–0.30 m sea level rise is
found and other studies also show similar value
around this area if we exclude local land subsidence.
Wind driven circulation or ENSO signal may also
produce sea level change locally, but as shown in
Woodworth et al (2008), the time scale caused by such
ocean circulation is much shorter than 150 years. The
IPCC Fifth Assessment Report also discusses the
vulnerability of coastal regions to other physical
processes, such as storm surges at extreme sea level.
Changes in the severity of storm surges are some of the
examples of how climate change affects coastal
regions, but it is difficult to make an impact assessment
at particular regions quantitatively. In our paper, the
storm surge height increases at most 0.50 m between
NAT and ALL experiments, caused by the intensification of the typhoon which is larger than historical sea
level rise (estimated as 0.25–0.30 m).