从振动模式的频率限制LIGO测试质量内部的温度分布

C. Blair, Y. Levin, E. Thrane
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引用次数: 1

摘要

测试质量的热畸变,以及它们的振动模式频率的热漂移,是Advanced LIGO和Advanced VIRGO干涉仪运行的主要挑战,降低了光学效率,限制了灵敏度,并可能导致不稳定,从而降低了占空比。在本文中,我们证明了测试质量振动模态频率数据可以用来克服这些困难。首先,我们推导出模态频率变化作为测试质量内部温度分布函数的一般表达式。然后,我们展示了如何利用模态频率对温度分布的依赖来识别观测到的振动模态的波函数。然后,我们展示了如何监测多种振动模式的频率,从而使测试质量内部的温度分布受到强烈约束。最后,我们通过模拟证明了改进测试质量热模型的潜力,提供了对重要参数(如涂层吸收系数和点吸收器位置)的独立和改进的估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Constraining temperature distribution inside LIGO test masses from frequencies of their vibrational modes
Thermal distortion of test masses, as well as thermal drift of their vibrational mode frequencies, present a major challenge for operation of the Advanced LIGO and Advanced VIRGO interferometers, reducing optical efficiency, which limits sensitivity and potentially causing instabilities which reduce duty-cycle. In this paper, we demonstrate that test-mass vibrational mode frequency data can be used to overcome some of these difficulties. First, we derive a general expression for the change in a mode frequency as a function of temperature distribution inside the test mass. Then we show how the mode frequency dependence on temperature distribution can be used to identify the wavefunction of observed vibrational modes. We then show how monitoring the frequencies of multiple vibrational modes allows the temperature distribution inside the test mass to be strongly constrained. Finally, we demonstrate using simulations, the potential to improve the thermal model of the test mass, providing independent and improved estimates of important parameters such as the coating absorption coefficient and the location of point absorbers.
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