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Idealized Experiments for Optimizing Model Parameters Using a 4D-Variational Method in an Intermediate Coupled Model of ENSO 被引量:5
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作者 Chuan GAO Rong-Hua ZHANG +1 位作者 Xinrong WU Jichang SUN 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2018年第4期410-422,共13页
Large biases exist in real-time ENSO prediction, which can be attributed to uncertainties in initial conditions and model parameters. Previously, a 4D variational (4D-Vat) data assimilation system was developed for ... Large biases exist in real-time ENSO prediction, which can be attributed to uncertainties in initial conditions and model parameters. Previously, a 4D variational (4D-Vat) data assimilation system was developed for an intermediate coupled model (ICM) and used to improve ENSO modeling through optimized initial conditions. In this paper, this system is further applied to optimize model parameters. In the ICM used, one important process for ENSO is related to the anomalous temperature of subsurface water entrained into the mixed layer (Te), which is empirically and explicitly related to sea level (SL) variation. The strength of the thermocline effect on SST (referred to simply as "the thermocline effect") is represented by an introduced parameter, (l'Te. A numerical procedure is developed to optimize this model parameter through the 4D-Var assimilation of SST data in a twin experiment context with an idealized setting. Experiments having their initial condition optimized only, and having their initial condition plus this additional model parameter optimized, are compared. It is shown that ENSO evolution can be more effectively recovered by including the additional optimization of this parameter in ENSO modeling. The demonstrated feasibility of optimizing model parameters and initial conditions together through the 4D-Var method provides a modeling platform for ENSO studies. Further applications of the 4D-Vat data assimilation system implemented in the ICM are also discussed. 展开更多
关键词 intermediate coupled model ENSO modeling 4D-Var data assimilation system optimization of model param- eter and initial condition
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Automated estimation of stellar fundamental parameters from low resolution spectra: the PLS method 被引量:1
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作者 Jian-Nan Zhang A-Li Luo Yong-Heng Zhao 《Research in Astronomy and Astrophysics》 SCIE CAS CSCD 2009年第6期712-724,共13页
PLS (Partial Least Squares regression) is introduced into an automatic estimation of fundamental stellar spectral parameters. It extracts the most correlative spectral component to the parameters (Teff, log g and [... PLS (Partial Least Squares regression) is introduced into an automatic estimation of fundamental stellar spectral parameters. It extracts the most correlative spectral component to the parameters (Teff, log g and [Fe/H]), and sets up a linear regression function from spectra to the corresponding parameters. Considering the properties of stellar spectra and the PLS algorithm, we present a piecewise PLS regression method for estimation of stellar parameters, which is composed of one PLS model for Teff, and seven PLS models for log g and [Fe/H] estimation. Its performance is investigated by large experiments on flux calibrated spectra and continuum normalized spectra at different signal-to-noise ratios (SNRs) and resolutions. The results show that the piecewise PLS method is robust for spectra at the medium resolution of 0.23 nm. For low resolution 0.5 nm and 1 nm spectra, it achieves competitive results at higher SNR. Experiments using ELODIE spectra of 0.23 nm resolution illustrate that our piecewise PLS models trained with MILES spectra are efficient for O ~ G stars: for flux calibrated spectra, the systematic offsets are 3.8%, 0.14 dex, and -0.09 dex for Teff, log g and [Fe/H], with error scatters of 5.2%, 0.44 dex and 0.38 dex, respectively; for continuum normalized spectra, the systematic offsets are 3.8%, 0.12dex, and -0.13 dex for Teff, log g and [Fe/H], with error scatters of 5.2%, 0.49 dex and 0.41 dex, respectively. The PLS method is rapid, easy to use and does not rely as strongly on the tightness of a parameter grid of templates to reach high precision as Artificial Neural Networks or minimum distance methods do. 展开更多
关键词 METHODS data analysis -- methods statistical -- stars fundamental param- eters (classification temperatures metallicity) -- techniques spectroscopic -- surveys
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静电悬浮加速度计敏感结构的热噪声分析 被引量:12
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作者 王佐磊 薛大同 唐富荣 《真空与低温》 2005年第2期83-89,共7页
分析了影响静电悬浮加速度计分辨率的辐射计效应、热辐射压力、气体黏滞阻力3种热加速度噪声的产生机理,定量分析了一定条件下3种热噪声的影响,提出了通过温控减小加速度计质量块周围的温度梯度,以及提高加速度计敏感结构内部真空度等措... 分析了影响静电悬浮加速度计分辨率的辐射计效应、热辐射压力、气体黏滞阻力3种热加速度噪声的产生机理,定量分析了一定条件下3种热噪声的影响,提出了通过温控减小加速度计质量块周围的温度梯度,以及提高加速度计敏感结构内部真空度等措施,以减小加速度计的热噪声。对用于低低卫-卫跟踪(SST-LL)重力测量的静电悬浮加速度计(其在10-4~10-1Hz的测量频带内精度为1×10-9m·s-2/Hz),如果加速度计敏感结构内部的真空度为5×10-4Pa,则敏感结构周围的温度噪声必须控制在0.25K/Hz以内。 展开更多
关键词 静电悬浮加速度计 热噪声 辐射计效应 热辐射压力 气体黏滞阻力
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船舶主机淡水预热系统研究
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作者 周跃华 黄剑斌 陈淼 《交通部上海船舶运输科学研究所学报》 2000年第1期52-56,共5页
改善主机启动时的工作状况及减少主机启动时低负荷运行所需的时间已经受到新建现代化船舶业主的重视。介绍船舶主机淡水预热系统的组成、热力参数的选择、装置的设计计算及自动控制原理等。采用该系统 ,可减少主机的磨损、油耗、排烟 。
关键词 船舶主机 启动 淡水预热装置 热力参数 结构设计
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