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High-Resolution Source Estimation of Volcanic Sulfur Dioxide Emissions Using Large-Scale Transport Simulations

机译:使用大规模运输模拟的高分辨率估算火山二氧化硫排放量

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High-resolution reconstruction of emission rates from different sources is essential to achieve accurate simulations of atmospheric transport processes. How to achieve real-time forecasts of atmospheric transport is still a great challenge, in particular due to the large computational demands of this problem. Considering a case study of volcanic sulfur dioxide emissions, the codes of the Lagrangian particle dispersion model MPTRAC and an inversion algorithm for emission rate estimation based on sequential importance resampling are deployed on the Tianhe-2 supercomputer. The high-throughput based parallel computing strategy shows excellent scalability and computational efficiency. Therefore, the spatial-temporal resolution of the emission reconstruction can be improved by increasing the parallel scale. In our study, the largest parallel scale is up to 1.446 million compute processes, which allows us to obtain emission rates with a resolution of 30 min in time and 100 m in altitude. By applying massive-parallel computing systems such as Tianhe-2, real-time source estimation and forecasts of atmospheric transport are becoming feasible.
机译:高分辨率重构不同来源的排放速率对于实现对大气传输过程的精确模拟至关重要。尤其是由于该问题的大量计算需求,如何实现对大气传输的实时预测仍然是一个巨大的挑战。考虑到火山二氧化硫排放的案例研究,在天河2号超级计算机上部署了拉格朗日粒子分散模型MPTRAC的代码和基于顺序重要性重采样的排放速率估算反演算法。基于高吞吐量的并行计算策略显示了出色的可伸缩性和计算效率。因此,可以通过增加并行比例来改善发射重建的时空分辨率。在我们的研究中,最大的并行规模是多达144.6万个计算过程,这使我们能够获得时间分辨率为30分钟,高度为100 m的发射率。通过应用大规模并行计算系统(如天河2号),实时源估计和大气传输预报已变得可行。

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