24
T.A. Cinco et al. / Atmospheric Research 145–146 (2014) 12–26
Table 3
Extreme rainfall event frequency and intensity values for synoptic weather
stations in the Philippines.
indicate, as our results have, that Baguio is likely becoming
wetter.
Interestingly Iloilo and Tacloban are two of the few
stations to show a significant increase in both intensity and
frequency of extreme rainfall events in this study and both
these stations were also found by Lyon and Camargo (2008)
to have above average seasonal rainfall signals during El Niño
development phases, maintaining higher levels of precipitation at a time of generally decreasing trends. Another station
is at Infanta and similarly to Tacloban this is located on the
eastern seaboard of the Philippines which Chang et al. (2005)
found to be affected by heavy rain brought by strong onshore
winds of the northeast monsoon, perhaps explaining this
observation.
It is worth noting however that the earlier studies discussed
above use slightly different datasets to those used in this study
and investigate seasonal variations as opposed to long term
trends so direct comparisons are not wholly appropriate but
this does provide some indication of the level of national and
sub-national consistency of the results of this study.
5. Conclusion
This paper has presented temperature indicators which
suggest that the climate in the Philippines, like much of the
rest of the region and the globe, is warming. Across a range of
climatic indicators presented and discussed here (e.g. Tmean,
Tmax and Tmin), an increasing trend of anomalous temperatures versus the 30 year normal period of 1961–1990 can be
observed. In addition, daily temperature extremes reveal
more hot days and fewer cooler nights versus the mean from
the normal period of 1961–1990 for much of the Philippines,
with the majority of these results statistically significant.
These trends, derived from directly observed data, contribute
to a body of evidence which is consistent with a global
climate which is warming above any normal variation we
might expect to see since the mid-20th century. Less clearcut is the apparent trend in extreme rainfall events across the
country with only a handful of synoptic stations recording a
statistically significant increase in intensity and frequency of
extreme rainfall events.
Little discernible spatial coherence at the sub national level
for any of the temperature or rainfall indicators was found
which points to the heterogeneous nature of the climate
system in the Philippines. Whilst orographic effects appear to
be minimal (see stations at Baguio and Malaybalay), the effects
of monsoon moisture laden winds may account for extreme
rainfall indicators on the Pacific coast showing as significantly
positive, and the effects of passing tropical cyclones cannot be
ruled out. Stations which showed an increase in both frequency
and intensity of rainfall extremes are located in the typhoon
belt of the Philippines and the investigation of any correlation
between extreme indices and tropical cyclone activity could be
a useful future research direction.
If the temperature in the Philippines continues with the
upward trend seen here, notwithstanding continued inter
annual variability, there may be serious implications for the
economic and social development of this archipelagic
nation. If, according to Griffiths et al. (2005) increasing
temperature trends can be an indicator of the probability of
more frequent extreme weather events, then this could
suggest that the Philippines should be prepared for
additional climate change impacts. Continued and increased exposure to the effects of a warming climate –
disrupted growing seasons, changes in the occurrence of
vector borne diseases and the threat of severe weather
events (the impacts of which were painfully revealed
following Typhoon Haiyan) – continues to pose a real
development challenge in the Philippines. It is hoped that
this study and others like it can form an evidence base for
appropriate action to address and prepare for some of these
impacts so as to avoid the worst of the damage to its
emerging economy and the communities who will bear the
brunt. This study builds on earlier efforts to provide a basis
for the on-going monitoring of climatic trends and extremes and should be considered a reference point for
future analysis of precipitation and temperature trends in
the Philippines.
Acknowledgements
The data used in this research was gathered from PAGASA's
historical records and analysed, in part with the support
of the Government of the Philippines and the Millennium
Development Goal Fund (MDGF) 1656 “Strengthening the
Philippines Institutional Capacity to Adapt to Climate Change”,
a three-year programme funded by the Government of Spain
through the United Nations Development Program (UNDP)
Philippines and other UN agencies (UNEP, FAO, WHO, UN
Habitat). The authors also wish to acknowledge the support of
the Oscar M. Lopez Center for Climate Change Adaptation and
Disaster Risk Management Foundation.