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Optical properties of deep ice at the South Pole: Absorption

机译:南极深冰的光学性质:吸收

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摘要

We discuss recent measurements of the wavelength-dependent absorption coefficients in deep South Pole ice. The method uses transit-time distributions of pulses from a variable-frequency laser sent between emitters and receivers embedded in the ice. At depths of 800-1000 m scattering is dominated by residual air bubbles, whereas absorption occurs both in ice itself and in insoluble impurities. The absorption coefficient increases approximately exponentially with wavelength in the measured interval 410-610 nm. At the shortest wavelength our value is approximately a factor 20 below previous values obtained for laboratory ice and lake ice; with increasing wavelength the discrepancy with previous measurements decreases. At ~415 to ~500 nm the experimental uncertainties are small enough for us to resolve an extrinsic contribution to absorption in ice: submicrometer dust particles contribute by an amount that increases with depth and corresponds well with the expected increase seen near the Last Glacial Maximum in Vostok and Dome C ice cores. The laser pulse method allows remote mapping of gross structure in dust concentration as a function of depth in glacial ice.
机译:我们讨论了南极深冰中与波长有关的吸收系数的最新测量。该方法使用了来自变频激光器的脉冲的传播时间分布,该脉冲是在嵌入冰中的发射器和接收器之间发送的。在800-1000 m的深度,散射主要是残留的气泡,而吸收既发生在冰本身中,也发生在不溶性杂质中。吸收系数随所测间隔410-610 nm中的波长呈指数增长。在最短波长下,我们的值比实验室冰和湖冰的先前值低约20倍;随着波长的增加,与先前测量的差异减小。在〜415至〜500 nm范围内,实验的不确定性很小,足以解决外部因素对冰吸收的影响:亚微米级尘埃颗粒的贡献量随深度增加而增加,并与预期的冰河末期最大冰川增加量相吻合。 Vostok和Dome C冰芯。激光脉冲法可以根据冰川冰层的深度来远程绘制尘埃浓度的总体结构。

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