Environ. Res. Lett. 10 (2015) 064011
I Takayabu et al
We also examined the influence of SLR of 0.30 m,
on the storm surge level with higher mean sea level
condition. However, the maximum sea surface level
considering a higher mean sea level condition didn’t
give significant changes in the storm surge height.
Theoretically, the storm surge height is inversely proportional to the depth of the bay. Since the water depth
near Tacloban in Leyte Gulf has depth of approximately 10 m, 0.30 m mean sea level rise almost cancels
out the change of total surge height, although there
remain some dependencies on characteristics of the
bay and cyclones. The combination of a storm surge
and sea level rise is nonlinear, thus it is important to
know how sea level rise and dynamic effects, wind and
pressure surges, will change in the future.
5. Conclusion
Typhoon Haiyan (local name Yolanda), the most
catastrophic tropical cyclone ever to land in the
western North Pacific Ocean, struck the Philippines
on 8 November 2013. The typhoon and especially the
storm surge in the Leyte Gulf that accompanied it
killed more than 6000 people in Tacloban (Schiermeier 2013). We conducted ensemble simulations with
very high resolution regional climate models and a
surge model, and reproduced well the pressure depression, wind speed and surge level of Typhoon Haiyan,
as an example of a worst case scenario. Furthermore,
we compared these results with the results of ensemble
simulations of a hypothetical natural event, one without human influences, and found that the simulated
worst case typhoon and the accompanying storm
surge in the real condition became worse than those in
the hypothetical natural climate without anthropogenic forcing. In 15 of 16 ensemble simulations, the
typhoon became stronger than it did in the hypothetical natural cases, and the height of the storm surge
around Tacloban increased by around 20%.
When we made the NAT external condition, we
omitted anthropogenic warming in air temperature
difference as well as that in SST. It is well known that
vertical wind shear and mid-level entropy deficit are
important in determining the intensity of tropical
cyclone (Gray (1975), Tang and Emanuel
(2010, 2012)). Although previous studies have suggested the weakening of Pacific Walker circulation
(reductions of wind shear in the western Pacific
region), and anthropogenic contributions to this
observed trend, there are substantial uncertainties in
observations and biases in model simulations (Tokinaga et al 2012, DiNezio et al 2013). Supplementary
figure S3 shows the histograms of vertical wind shear
in the 100-member ensembles of ALL-gcm and NATgcm runs of MIROC5-AGCM (Shiogama et al 2014).
Although anthropogenic factors weaken the vertical
wind shear in the ensemble mean (which would
8
increase the Typhoon intensity (Tang and Emanuel, 2010, 2012)), the variances due to internal variability are large. Because of the poor signal-to-noise
ratio, we have not subtracted these differences in wind
shear from the NAT conditions of RCM runs. It might
cause our estimates of anthropogenic influence on the
Typhoon intensity to become more conservative.
We should also note here, that upper-ocean mixing is not accounted for because we do not have a
sound assumption for prescribing the upper-ocean
structure in natural climate conditions. Vincent et al
(2014) insisted that the mixing has a negative feedback
on TC intensity for very strong storms, but the influence of such a mechanism is not accounted in our
study.
As we introduced in section 1, to assess the disaster
risk reduction caused by the climate change, we had
quite a different approach, rather than considering the
disaster mitigation as we discussed in the paper. This is
to consider the disaster prevention. For this purpose,
we should estimate changes in the frequency of event
occurrence. However, Hansen et al (2014) suggests
that it is difficult to estimate the change of likelihood
with a high confidence level when the sample numbers
are not high enough, especially for extreme events. To
increase the sample number efficiently in cases where
we are not able to conduct sufficient ensemble experiments, we have another option of introducing a stochastic hurricane model of the type used in Lin et al
(2012). This method imposes a stronger limitation of
the assumed hurricane structure and intensity than a
dynamically downscaling approach. Thus, it is indispensable to carry out both types of approach jointly, to
clarify the disaster risk of extreme events as a whole.
There are uncertainties associated with estimations of the effects of anthropogenic signals on SST
(Christidis and Stott 2014, Shiogama et al 2014) and
attribution analysis results may also be sensitive to
models used. We showed here that very high resolution regional climate models are necessary to simulate
a category 5 typhoon. It should be kept in mind that
more accurate representation of the typhoon with
higher spatial resolution does not necessary ensure
more reliable estimates of the anthropogenic contribution. Inter-comparison studies of very high resolution regional climate models should be carried out
in which different estimates of anthropogenic signals
are used.
Acknowledgments
This work was supported by the SOUSEI programmes
of the Ministry of Education, Culture, Sports, Science
and Technology (MEXT) of Japan. The Guiuan radar
data were supplied by PAGASA, the Philippines, and
Dr Kubota of Japan Agency for Marine-Earth Science
and Technology (JAMSTEC) helped us to read the