Physics of Absorption and generation of Electromagnetic Radiation

Sukhmander Singh, Ashish Tyagi, Bhavna Vidhani
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引用次数: 1

Abstract

The chapter is divided into two parts. In the first part, the chapter discusses the theory of propagation of electromagnetic waves in different media with the help of Maxwell’s equations of electromagnetic fields. The electromagnetic waves with low frequency are suitable for the communication in sea water and are illustrated with numerical examples. The underwater communication have been used for the oil (gas) field monitoring, underwater vehicles, coastline protection, oceanographic data collection, etc. The mathematical expression of penetration depth of electromagnetic waves is derived. The significance of penetration depth (skin depth) and loss angle are clarified with numerical examples. The interaction of electromagnetic waves with human tissue is also discussed. When an electric field is applied to a dielectric, the material takes a finite amount of time to polarize. The imaginary part of the permittivity is corresponds to the absorption length of radiation inside biological tissue. In the second part of the chapter, it has been shown that a high frequency wave can be generated through plasma under the presence of electron beam. The electron beam affects the oscillations of plasma and triggers the instability called as electron beam instability. In this section, we use magnetohydrodynamics theory to obtain the modified dispersion relation under the presence of electron beam with the help of the Poisson’s equation. The high frequency instability in plasma grow with the magnetic field, wave length, collision frequency and the beam density. The growth rate linearly increases with collision frequency of electrons but it is decreases with the drift velocity of electrons. The real frequency of the instability increases with magnetic field, azimuthal wave number and beam density. The real frequency is almost independent with the collision frequency of the electrons.
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电磁辐射吸收与产生的物理学
本章分为两部分。第一部分利用麦克斯韦电磁场方程讨论了电磁波在不同介质中的传播理论。低频电磁波适合在海水中进行通信,并通过数值算例进行了说明。水下通信已广泛应用于油(气)场监测、水下航行器、海岸线保护、海洋数据采集等领域。推导了电磁波穿透深度的数学表达式。通过数值算例阐明了侵彻深度(集肤深度)和损失角的意义。讨论了电磁波与人体组织的相互作用。当电场作用于电介质时,材料需要有限的时间才能极化。介电常数的虚部对应于生物组织内辐射的吸收长度。本章第二部分证明了在电子束作用下等离子体可以产生高频波。电子束对等离子体的振荡产生影响,从而引发电子束不稳定性。在本节中,我们利用磁流体力学理论,借助泊松方程,得到了电子束存在下的修正色散关系。等离子体的高频不稳定性随磁场、波长、碰撞频率和束流密度的增大而增大。随电子碰撞频率的增加,其增长率呈线性增加,随电子漂移速度的增加而减小。不稳定性的实际频率随磁场、方位角波数和波束密度的增大而增大。实际频率几乎与电子的碰撞频率无关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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