首页> 外文期刊>Annales Geophysicae >OH-equivalent temperatures derived from ACE-FTS and SABER temperature profiles - a comparison with OH~*(3-1) temperatures from Maynooth (53.2° N, 6.4° W)
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OH-equivalent temperatures derived from ACE-FTS and SABER temperature profiles - a comparison with OH~*(3-1) temperatures from Maynooth (53.2° N, 6.4° W)

机译:由ACE-FTS和SABER温度曲线得出的OH当量温度-与Maynooth(53.2°N,6.4°W)的OH〜*(3-1)温度进行比较

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摘要

OH-equivalent temperatures were derived from all of the temperature profiles retrieved in 2004 and 2005 by the ACE-FTS instrument in a 5 degree band of latitude centred on a ground-based observing station at Maynooth. A globally averaged OH volume emission rate (VER) profile obtained from WINDII data was employed as a weighting function to compute the equivalent temperatures. The annual cycle of temperature thus produced was compared with the annual cycle of temperatures recorded at the ground-based station more than a decade earlier from the OH~*(3-1) Meinel band. Both data sets showed excellent agreement in the absolute value of the temperature minimum (~162K) and in its time of occurrence in the annual cycle at summer solstice. Away from mid-summer, however, the temperatures diverged and reach a maximum disagreement of more than 20 K in mid-winter. Comparison of the Maynooth ground-based data with the corresponding results from two nearby stations in the same time-period indicated that the Maynooth data are consistent with other ground stations. The temperature difference between the satellite and ground-based datasets in winter was reduced to 14-15 K by lowering the peak altitude of the weighting function to 84 km. An unrealistically low peak altitude would be required, however, to bring temperatures derived from the satellite into agreement with the ground-based data. OH equivalent temperatures derived from the SABER instrument using the same weighting function produced results that agreed well with ACE-FTS. When the OH 1.6 μm VER profile measured by SABER was used as the weighting function, the OH equivalent temperatures increased in winter as expected but the summer temperatures were reduced resulting in an approximately constant offset of 8.6±0.8 K between ground and satellite values with the ground values higher. Variability in both the altitude and width of the OH layer within a discernable seasonal variation were responsible for the changes introduced. The higher temperatures in winter were due to primarily to the lower altitude of the OH layer, while the colder summer temperatures were due to a thinner summer OH layer. We are not aware of previous reports of the effect of the layer width on ground-based temperatures. Comparison of OH-equivalent temperatures derived from ACE-FTS and SABER temperature profiles with OH~*(3-1) temperatures from Wuppertal at 51.3° N which were measured during the same period showed a similar pattern to the Maynooth data from a decade earlier, but the warm offset of the ground values was lower at 4.5±0.5 K. This discrepancy between temperatures derived from ground-based instruments recording hydroxyl spectra and satellite borne instruments has been observed by other observers. Further work will be required by both the satellite and ground-based communities to identify the exact cause of this difference.
机译:OH当量温度是从ACE-FTS仪器于2004年和2005年在以Maynooth地面观测站为中心的5度纬度带中检索到的所有温度曲线得出的。从WINDII数据获得的全球平均OH体积排放速率(VER)曲线被用作加权函数来计算等效温度。将由此产生的年温度周期与从OH〜*(3-1)Meinel波段早于十多年的地面站记录的年温度周期进行了比较。两组数据在最低温度的绝对值(〜162K)及其在夏至的年周期中的发生时间均显示出极好的一致性。但是,远离仲夏,温度差异很大,在仲冬时最大差异超过20K。将Maynooth地面数据与同一时间段内两个附近站点的相应结果进行比较,表明Maynooth数据与其他地面站点一致。通过将加权函数的峰值高度降低到84 km,冬季卫星和地面数据集之间的温度差降低到14-15K。但是,要使卫星得出的温度与地面数据一致,就需要一个不切实际的低峰值高度。使用相同的加权函数从SABER仪器得出的OH当量温度产生的结果与ACE-FTS很好地吻合。当使用SABER测得的OH 1.6μmVER曲线作为加权函数时,冬季的OH当量温度如预期的那样增加,但夏季的温度降低,导致地面和卫星值在8.6±0.8 K的恒定偏移,底值较高。在可辨别的季节变化内,OH层的高度和宽度的变化是造成变化的原因。冬季较高的温度主要是由于OH层的高度较低,而夏季较低的温度是由于夏季OH层较薄。我们以前没有关于层宽对地面温度的影响的报道。同期测得的ACE-FTS和SABER温度曲线的OH当量温度与伍珀塔尔在51.3°N的OH〜*(3-1)温度的比较显示出与十年前的梅努斯数据相似的模式,但地面值的温暖偏移在4.5±0.5 K处较低。其他观察者也观察到了源自记录羟基光谱的地面仪器和卫星仪器的温度之间的差异。卫星社区和地面社区都将需要进一步的工作,以查明造成这种差异的确切原因。

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