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Coupling of a regional atmospheric model (RegCM3) and a regional oceanic model (FVCOM) over the maritime continent

机译:在海洋大陆上耦合区域大气模型(RegCm3)和区域海洋模型(FVCOm)

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摘要

Climatological high resolution coupled climate model simulations for the maritime continent have been carried out using the regional climate model (RegCM) version 3 and the finite volume coastal ocean model (FVCOM) specifically designed to resolve regions characterized by complex geometry and bathymetry. The RegCM3 boundary forcing is provided by the EMCWF-ERA40 re-analysis. FVCOM is embedded in the Global MITgcm which provides boundary forcing. The domain of the coupled regional model covers the entire South China Sea with its through-flow, the entire Indonesian archipelago with the Indonesian through-flow (ITF) and includes a large region in the western Pacific and eastern Indian oceans. The coupled model is able to provide stable and realistic climatological simulations for a specific decade of atmospheric–oceanic variables without flux correction. The major focus of this work is on oceanic properties. First, the coupled simulation is assessed against ocean-only simulations carried out under two different sets of air–sea heat fluxes. The first set, provided by the MITgcm, is proved to be grossly deficient as the heat fluxes are evaluated by a two-dimensional, zonally averaged atmosphere and the simulated SST have anomalous cold biases. Hence the MITgcm fluxes are discarded. The second set, the NCEP re-analysis heat fluxes, produces a climatological evolution of the SST with an average cold bias of ~−0.8 °C. The coupling eliminates the cold bias and the coupled SST evolution is in excellent agreement with the analogous evolution in the SODA re-analysis data. The detailed comparison of oceanic circulation properties with the International Nusantara Stratification and Transport observations shows that the coupled simulation produces the best estimate of the total ITF transport through the Makassar strait while the transports of three ocean-only simulations are all underestimated. The annual cycle of the transport is also very well reproduced. The coupling also considerably improves the vertical thermal structure of the Makassar cross section in the upper layer affected by the heat fluxes. On the other hand, the coupling is relatively ineffective in improving the precipitation fields even though the coupled simulation captures reasonably well the precipitation annual cycle at three land stations in different latitudes.
机译:使用区域气候模型(RegCM)第3版和有限体积沿海海洋模型(FVCOM),专门为解决以复杂的几何和测深为特征的区域而进行了海洋大陆的气候学高分辨率耦合气候模型模拟。 RegCM3边界强制由EMCWF-ERA40重新分析提供。 FVCOM嵌入在提供边界强制的全局MITgcm中。耦合区域模型的范围涵盖了整个南海及其通流,整个印尼群岛和印尼通流(ITF),并包括了西太平洋和印度洋东部的一个大区域。耦合模型能够在不进行通量校正的情况下,针对特定十年的大气-海洋变量提供稳定而逼真的气候模拟。这项工作的主要重点是海洋性质。首先,针对在两组不同的海气热通量下进行的仅海洋模拟,对耦合模拟进行了评估。由MITgcm提供的第一组被证明是严重不足的,因为通过二维区域平均大气来评估热通量,并且模拟的SST具有异常的冷偏差。因此,MITgcm通量被丢弃。第二组是NCEP重新分析热通量,它会产生SST的气候演变,平均冷偏为〜-0.8°C。耦合消除了冷偏差,并且耦合的SST演化与SODA再分析数据中的类似演化非常吻合。海洋环流特性与国际Nusantara分层和运输观测的详细比较表明,耦合模拟对通过望加锡海峡的ITF总运输量进行了最佳估计,而仅对三个海洋模拟的运输都被低估了。运输的年度周期也得到了很好的再现。该耦合还显着改善了受热通量影响的上层中望加锡横截面的垂直热结构。另一方面,即使耦合模拟较好地捕获了不同纬度的三个陆地站的降水年周期,耦合对改善降水场也相对无效。

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