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就地γ谱仪核素深度分布测量模式灵敏度研究
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作者 冯天成 贾明雁 +1 位作者 程建平 冯元举 《核电子学与探测技术》 CAS CSCD 北大核心 2010年第11期1434-1441,共8页
通过理论推导和数值计算,对"多能峰模式"、"峰谷比模式"和"准直器模式"三种就地γ谱仪核素深度分布测量模式灵敏度进行研究。"多能峰模式"采用152Eu 244、1 408 keVγ射线,"峰谷比模式"采用137Cs 662 keVγ射线,"准直器模式... 通过理论推导和数值计算,对"多能峰模式"、"峰谷比模式"和"准直器模式"三种就地γ谱仪核素深度分布测量模式灵敏度进行研究。"多能峰模式"采用152Eu 244、1 408 keVγ射线,"峰谷比模式"采用137Cs 662 keVγ射线,"准直器模式"采用137Cs 662 keVγ射线和就地计数系统(ISOCS)30°、90°~180°准直器。研究表明,总体上灵敏度大小依次为"峰谷比模式"〉"多能峰模式"〉〉"准直器模式"。 展开更多
关键词 就地Γ谱仪 多能峰模式 峰谷比模式 准直器模式 模式灵敏度
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Observation System Experiments for Typhoon Nida(2004)Using the CNOP Method and DOTSTAR Data 被引量:9
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作者 CHEN Bo-Yu 《Atmospheric and Oceanic Science Letters》 2011年第2期118-123,共6页
This study investigated the influence of dropwindsonde observations on typhoon forecasts. The study also evaluated the feasibility of the conditional nonlinear optimal perturbation (CNOP) method as a basis for sensiti... This study investigated the influence of dropwindsonde observations on typhoon forecasts. The study also evaluated the feasibility of the conditional nonlinear optimal perturbation (CNOP) method as a basis for sensitivity analysis of such forecasts. This sensitivity analysis could furnish guidance in the selection of targeted observations. The study was performed by conducting observation system experiments (OSEs). This research used the fifth-generation Mesoscale Model (MM5), the Weather Research and Forecasting (WRF) model, and dropsonde observations of Typhoon Nida at 1200 UTC 17 May 2004. The dropsondes were collected under the operational Dropsonde Observations for Typhoon Surveillance near the Taiwan Region (DOTSTAR) program. In this research, five kinds of experiments were designed and conducted:(1) no observations were assimilated; (2) all observations were assimilated;(3) observations in the sensitive area revealed by the CNOP method were assimilated;(4) the same as in (3), but for the region revealed by the first singular vector (FSV) method;and (5) observations within a randomly selected area were assimilated. The OSEs showed that (1) the DOTSTAR data had a positive impact on the forecast of Nida's track;(2) dropsondes in the sensitive areas identified by the MM5 CNOP and FSV remained effective for improving the track forecast for Nida on the WRF platform;and (3) the greatest improvement in the track forecast resulted from the CNOP-based (third) simulation, which indicated that the CNOP method would be useful in decision making about dropsonde deployments. 展开更多
关键词 targeted observations OSE CNOP sensitivearea
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