Establishing a Modeling System in 3-km Horizontal Resolution for Global Atmospheric Circulation triggered by Submarine Volcanic Eruptions with 400 Billion Smoothed Particle Hydrodynamics

Shenghong Huang, Junshi Chen, Ziyu Zhang, Xiaoyu Hao, Jun Gu, Hong An, Chun Zhao, Yan Hu, Zhanming Wang, Longkui Chen, Yifan Luo, Jineng Yao, Yi Zhang, Yang Zhao, Zhihao Wang, Dongning Jia, Zhao Jin, Changming Song, Xisheng Luo, Xiaobin He, Dexun Chen
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Abstract

People are increasingly concerned about how tectonic processes affect climate and vice versa. We establish a cross-sphere modeling system for volcanic eruptions and atmosphere circulation on a new Sunway supercomputer with a spatial resolution from 10m locally to 3km globally, using an improved multimedium and multiphase smoothed particle hydrodynamics (SPH) combined with a fully coupled meteorology-chemistry global atmospheric modeling scheme. We achieve 400 billion particles and 80% parallel efficiency using 39,000,000 processor cores. The simulation captures the whole dynamic process of the Tonga eruption from shock waves, earthquakes, tsunamis, mushroom clouds to the following 6--7 days of transport and diffusion of ash and water vapor, and preliminarily obtains the influence effect of full coupling of volcano, earthquake, ocean and atmosphere. This work is of great significance for deeply understanding the interaction between tectonic processes and climate change, and establishing an early warning simulation system for similar global hazard events.
利用 4000 亿平滑粒子流体力学建立 3 千米水平分辨率的海底火山爆发引发的全球大气环流建模系统
人们越来越关注构造过程如何影响气候,反之亦然。我们利用改进的多介质和多相平滑粒子流体力学(SPH),结合完全耦合的气象-化学全球大气建模方案,在新威超级计算机上建立了火山爆发和大气环流的跨球建模系统,空间分辨率从局部 10 米到全球 3 公里。我们利用 39,000,000 个处理器内核实现了 4000 亿个粒子和 80% 的并行效率。模拟捕捉了汤加火山爆发从冲击波、地震、海啸、蘑菇云到随后 6-7 天火山灰和水汽的输送和扩散的整个动态过程,初步获得了火山、地震、海洋和大气全面耦合的影响效应。这项工作对于深入理解构造过程与气候变化之间的相互作用,建立类似全球灾害事件的预警模拟系统具有重要意义。
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