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Radio detection of cosmic ray air showers in the digital era

机译:数字时代的宇宙射线风淋的无线电检测

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In 1965 it was discovered that cosmic ray air showers emit impulsive radio signals at frequencies below 100 MHz. After a period of intense research in the 1960s and 1970s, however, interest in the detection technique faded almost completely. With the availability of powerful digital signal processing techniques, new attempts at measuring cosmic ray air showers via their radio emission were started at the beginning of the new millennium. Starting with modest, small-scale digital prototype setups, the field has evolved, matured and grown very significantly in the past decade. Today's second-generation digital radio detection experiments consist of up to hundreds of radio antennas or cover areas of up to 17 km(2). We understand the physics of the radio emission in extensive air showers in detail and have developed analysis strategies to accurately derive from radio signals parameters which are related to the astrophysics of the primary cosmic ray particles, in particular their energy, arrival direction and estimators for their mass. In parallel to these successes, limitations inherent in the physics of the radio signals have also become increasingly clear. In this article, we review the progress of the past decade and the current state of the field, discuss the current paradigm of the radio emission physics and present the experimental evidence supporting it. Finally, we discuss the potential for future applications of the radio detection technique to advance the field of cosmic ray physics. (C) 2016 Elsevier B.V. All rights reserved.
机译:1965年,发现宇宙射线风淋以低于100 MHz的频率发射脉冲无线电信号。经过1960年代和1970年代的大量研究,对检测技术的兴趣几乎完全消失了。随着强大的数字信号处理技术的出现,在新千年之初就开始了通过无线电发射来测量宇宙射线风淋的新尝试。从适度的小型数字样机设置开始,在过去十年中,该领域已经发展,成熟和发展非常显着。今天的第二代数字无线电检测实验包括多达数百个无线电天线或覆盖范围达17 km(2)的区域。我们详细了解了宽泛的空气淋浴中无线电发射的物理原理,并且已经开发出分析策略,可以准确地从与原始宇宙射线粒子的天体物理学有关的无线电信号参数中得出参数,尤其是其能量,到达方向以及它们的估计量质量与这些成功并行的是,无线电信号物理学中固有的局限性也变得越来越明显。在本文中,我们回顾了过去十年的进展以及该领域的现状,讨论了无线电发射物理学的当前范例,并提供了支持它的实验证据。最后,我们讨论了无线电探测技术在未来推动宇宙射线物理学领域发展的潜力。 (C)2016 Elsevier B.V.保留所有权利。

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