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AGCM Biases in Evaporation Regime: Impacts on Soil Moisture Memory and Land-Atmosphere Feedback

机译:蒸发条件下的AGCM偏差:对土壤水分记忆和陆地-大气反馈的影响

摘要

Because precipitation and net radiation in an atmospheric general circulation model (AGCM) are typically biased relative to observations, the simulated evaporative regime of a region may be biased, with consequent negative effects on the AGCM s ability to translate an initialized soil moisture anomaly into an improved seasonal prediction. These potential problems are investigated through extensive offline analyses with the Mosaic land surface model (LSM). We first forced the LSM globally with a 15-year observations-based dataset. We then repeated the simulation after imposing a representative set of GCM climate biases onto the forcings - the observational forcings were scaled so that their mean seasonal cycles matched those simulated by the NSIPP-1 (NASA Global Modeling and Assimilation Office) AGCM over the same period-The AGCM s climate biases do indeed lead to significant biases in evaporative regime in certain regions, with the expected impacts on soil moisture memory timescales. Furthermore, the offline simulations suggest that the biased forcing in the AGCM should contribute to overestimated feedback in certain parts of North America - parts already identified in previous studies as having excessive feedback. The present study thus supports the notion that the reduction of climate biases in the AGCM will lead to more appropriate translations of soil moisture initialization into seasonal prediction skill.
机译:由于大气总循环模型(AGCM)中的降水和净辐射通常相对于观测值有偏差,因此某个区域的模拟蒸发状态可能有偏差,从而对AGCM将初始化的土壤水分异常转化为土壤水分的能力产生负面影响。改进了季节性预测。通过使用Mosaic地表模型(LSM)进行广泛的离线分析来研究这些潜在问题。我们首先通过一个基于观测的15年数据集在全球范围内强制实施LSM。然后,我们在强迫上施加了一组代表性的GCM气候偏差之后,重复了模拟-调整了观测强迫,以使其平均季节周期与NSIPP-1(NASA全球建模和同化办公室)AGCM在同一时期模拟的周期相匹配-AGCM的气候偏向确实确实导致某些地区的蒸发状况有明显偏向,并有望对土壤水分存储时间尺度产生影响。此外,离线模拟表明,AGCM中的偏向强迫应会导致北美某些地区的反馈过高,而在先前的研究中已经确定这些部分具有过多的反馈。因此,本研究支持以下观点:AGCM中气候偏差的减少将导致土壤湿度初始化更恰当地转化为季节预测技能。

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