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Orbital tuning, eccentricity, and the frequency modulation of climatic precession

机译:轨道调谐,离心率和气候进动的频率调制

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The accuracy of geologic chronologies can, in principle, be improved through orbital tuning, the systematic adjustment of a chronology to bring the associated record into greater alignment with an orbitally derived signal. It would be useful to have a general test for the success of orbital tuning, and one proposal has been that eccentricity ought to covary with the amplitude envelope associated with precession variability recorded in tuned geologic records. A common procedure is to filter a tuned geologic record so as to pass precession period variability and compare the amplitude modulation of the resulting signal against eccentricity. There is a reasonable expectation for such a relationship to be found in paleoclimate records because the amplitude of precession forcing depends upon eccentricity. However, there also exists a relationship between eccentricity and the frequency of precession such that orbital tuning generates eccentricity-like amplitude modulation in filtered signals, regardless of the accuracy of the chronology or the actual presence of precession. This relationship results from the celestial mechanics governing eccentricity and precession and from the interaction between frequency modulation and amplitude modulation caused by filtering. When the eccentricity of Earth's orbit is small, the frequency of climatic precession undergoes large variations and less precession energy is passed through a narrow-band filter. Furthermore, eccentricity-like amplitude modulation is routinely obtained from pure noise records that are orbitally tuned to precession and then filtered. We conclude that the presence of eccentricity-like amplitude modulation in precession-filtered records does not support the accuracy of orbitally tuned time scales.
机译:原则上,可以通过轨道调整,对系统进行系统地调整以使相关记录与轨道导出的信号更好地对齐来提高地质年代学的准确性。对轨道调谐的成功进行一般测试将是有用的,并且有人提出偏心率应与调谐地质记录中记录的旋进变化相关的振幅包络平移。常见的程序是过滤已调谐的地质记录,以便通过进动周期的可变性,并将结果信号的幅度调制与偏心率进行比较。人们对在古气候记录中发现这种关系有合理的期望,因为旋进强迫的幅度取决于偏心率。但是,偏心率与进动频率之间也存在关系,因此轨道调谐会在滤波后的信号中生成类似于偏心率的幅度调制,而与时间顺序的准确性或进动的实际存在无关。这种关系是由控制偏心率和进动的天体力学以及由滤波引起的调频和调幅之间的相互作用引起的。当地球轨道的离心率较小时,气候进动的频率会发生较大的变化,而进动能量较少会通过窄带滤波器。此外,通常从纯噪声记录中获得类似偏心率的振幅调制,这些噪声记录在轨道上被调谐到进动然后进行滤波。我们得出的结论是,进动滤波后的记录中存在类似偏心率的幅度调制,这不支持轨道调谐时标的准确性。

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