APPLICATION OF WEATHER MODIFICTION TECHNOLOGY FOR FLOOD PREVENTION IN JAKARTA 2013

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APPLICATION OF WEATHER MODIFICTION TECHNOLOGY FOR FLOOD PREVENTION IN JAKARTA 2013 Tri Handoko SETO and Heru WIDODO Weather Modification Technology Center, Agency for the Asessment and Application of Technology 2013 ACTS Second Workshop: Climate Extremes and Risk Managemenet, NCKU Taiwan 4-5 December 2013

Jakarta Floods Flood in Jakarta, January 2013 was caused by: Monsoon MJO Cold surge Daily rainfall on 17 January 2013 was >100 mm > 2,000 Milion USD 50 people died 50,000 people evacuated

Hyderabad 26.9.2010 Bay of Bengal 26.9.2010 Bay of Bengal 27.9.2010 Bareilly 23.9.2009 8 No Rain Rain Rosenfeld and Woodley, CAIPEEX-2 Final report to IITM.

Features of Maritime and continent aerosols and clouds (Khain et.al., 2005) Continent: Small aerosol(ccn) size but larger amount, Slow to rain, Large rainfall amount Maritime: Big aerosol(ccn) size but smaller amount, Quick to rain, Small rainfall amount

Weather Modification Technology for rain reduction Studies on rain intensity reduction has been done by many scientists both in the laboratory by using some models and also by field experimentations. Those studies are based on the relationship between aerosol, clouds microphysics and precipitation. Yin et al. (2000) states that based on numerical calculation of hygroscopic seeding impact on convective clouds, seeding agents with a size of less than 2 μm could decrease about 22 30 % of precipitation. Givati and Rosenfeld (2004) showed that urban air pollution in California and Israel may reduce about 15-25% of yearly rainfall. According to Khain et al. (2005), small cloud condensation nuclei CCN may produce small droplets, which have small collision efficiency, thereby causing deep convective clouds decreasing precipitation.

Introducing super fine hygroscopic seeding agent into the clouds would then initiate the formation of small droplets that will act as competitor to the existing cloud droplets in the water vapor absorption process within the cloud. This method may prevent development of cloud. The best example of competition mechanism is during forest fires events. There are too many aerosol present (~2000/ cm3), which have sizes less than 2 μm, produced by forest fires, cumulus clouds barely developed over the fires and vicinity areas. Central Borneo, 1 Oct 2011

Introducing giant hygroscopic seeding agents of about 10 100 µm into clouds to increase collision efficiency cause rain may occur shortly. It may bypass the CCN population action in determining the initial character of the cloud droplet population, and thus, jumpstart the coalescence process itself (Bruintjes et.al.,pc, 2004). This mechanism will then be applied to developing clouds in the upwind and posses the possibilities to produce rain over the entire target area. This jumping process mechanism may prevent rainfall at target.

Operation of Weather Modification for Flood Prevention in Jakarta Jumping Process Overseed POSKO Pondok Cabe dan Curug GBG Menara GBG Posmet

Instruments were used: 3 aircarfts 23 location of GBG 3 weather radars

-35% Period Averaged Rainfall By TRMM (mm) Predicted Rainfall by GFS (mm) Actual Rainfall by raingauge (mm) Actual Rainfall by TRMM (mm) 1-25 January (before WMT) 271.25 351.00 414.11 420.99 26 Jan 27 Feb (during WMT) 38,6 % 20,2 % 413.02 537.14 253.43 329.43 52,8 % 38,67 %

Summary In general, the implementation of the TMC which lasts for 33 days from January 26 until February 27, 2013 managed to reduce the intensity of rainfall and the risk of flooding in areas of Jakarta and its surroundings. During the implementation of the WMT in Jakarta, a total of 66 flight sorties have been carried out with 44 sorties using Hercules aircraft A-1323 and 22 sorties using CASA 212-200 U-616. Total seeding material NaCl powder was 201.8 tons, while the Ground-Base Generators have burned 486 flares in 14 locations, and GBG solution system has operated in 9 locations for 158 hours each. Based on historical rainfall data from TRMM, actual rainfall from raingauge and TRMM, and rainfall predictions obtained by the GFS, rainfall reduction during TMC operation was about 20-50%.

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