Japan Geoscience Union Meeting 2018

Presentation information

[EJ] Oral

A (Atmospheric and Hydrospheric Sciences) » A-CG Complex & General

[A-CG39] Multi-scale ocean-atmosphere interaction in the tropical Indo-Pacific region

Mon. May 21, 2018 9:00 AM - 10:30 AM 201B (2F International Conference Hall, Makuhari Messe)

convener:Yukiko Imada(Meteorological Research Institute, Japan Meteorological Agency), Tomoki Tozuka(Department of Earth and Planetary Science, Graduate School of Science, The University of Tokyo), Hiroki Tokinaga(京都大学防災研究所, 共同), Yu Kosaka(Research Center for Advanced Science and Technology, University of Tokyo), Chairperson:Tozuka Tomoki, Kosaka Yu(東京大学先端研究所)

10:15 AM - 10:30 AM

[ACG39-06] Relationship between rainfall at Cherrapunji, northeast India and anomalous anticyclonic circulation over western North Pacific

*Fumie Murata1, Toru Terao2, Hatsuki Fujinami3, Taiichi Hayashi4, Haruhisa Asada5, Jun Matsumoto6, Hiambok Jones Syiemlieh7 (1.Faculty of Science and Technology, Kochi University, 2.Faculty of Education, Kagawa University, 3.Institute for Space-Earth Environmental Research, Nagoya University, 4.Center for Southeast Asian Studies, Kyoto University, 5.Faculty of Letters, Nara Women's University, 6.Tokyo Metropolitan University, 7.North Eastern Hill University)

Keywords:Indian monsoon, intraseasonal variation, orographic precipitation

The characteristics of active rainfall spells (ARSs) at Cherrapunji, northeast India, where extreme high rainfall is experienced, and their relationships with large-scale dynamics were studied using daily rainfall data association with ARSs. The extremely large amounts of rainfall in the monsoon season are determined by the cumulative rainfall during ARSs. ARSs start when anomalous anticyclonic circulation (AAC) at 850-hPa propagates farther westward and suppresses convection over central India during ARSs at Cherrapunji, and continues for 3 to 14 days. Consequently, a northward shift of the monsoon trough during the 'break' in the Indian core region occcurs. The westerly wind, which prevails in the northern portion of the AAC, transports moisture toward northeast India and enhances moisture convergence over northeast India with southerly moisture transport from the Bay of Bengal, and greatly intensifies the orographic rainfall. In the upper troposphere, the Tibetan high tends to extend southward with the onset of ARSs. A linear relationship can be seen between the length and total rainfall of an ARS. Longer ARSs tend to result in greater total rainfall. AACs with a greater zonal-scale tend to produce longer and more intense ARSs. This study provides evidence for the effect of western North Pacific AACs on the Indian summer monsoon.