Calibration of the IceCube Neutrino Observatory

M. Rongen
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引用次数: 8

Abstract

The IceCube Neutrino Observatory instruments roughly one cubic kilometer of deep, glacial ice below the geographic South Pole with 5160 optical sensors to register the Cherenkov light of passing relativistic, charged particles. Since its construction was completed in 2010, a wide range of analyses has been performed. Those include, among others, the discovery of a high energetic astrophysical neutrino flux, competitive measurements of neutrino oscillation parameters and world-leading limits on dark matter detection. With ever-increasing statistics the influence of insufficiently known aspects of the detector performance start to limit the potential gain of future analyses. This thesis presents calibration studies on both the hardware characteristics as well as the optical properties of the instrumented ice. Improving the knowledge of the detector systematics and the methods to study them does not only aid IceCube but also inform the design of potential future IceCube extensions.
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冰立方中微子天文台的校正
冰立方中微子观测站(IceCube Neutrino Observatory)用5160个光学传感器在地理南极下大约一立方公里深的冰川冰上记录通过相对论性带电粒子的切伦科夫光。自2010年建成以来,进行了广泛的分析。其中包括高能天体物理中微子通量的发现,中微子振荡参数的竞争性测量以及暗物质探测的世界领先限制。随着统计数据的不断增加,探测器性能的未知方面的影响开始限制未来分析的潜在增益。本文对仪器冰的硬件特性和光学特性进行了标定研究。提高对探测器系统和研究方法的认识不仅有助于冰立方的研究,也为未来冰立方扩展的设计提供了信息。
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