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Electromagnetic Wave Absorbers (Detailed Theories and Applications) || Autonomous Controllable‐Type Absorber

DOI:10.1002/9781119564430.ch10 出版年份:2019 更新时间:2025-09-19 17:13:59
摘要: The rapid progress of artificial intelligence (AI) technology is remarkable. With its rapid progress, it seems that development of whole technological fields needs to be considered into while facilitating their association with AI technologies in their thinking about development hereafter. Chapter 9 described how to construct electromagnetic (EM)-wave absorbers on the basis of the equivalent transformation method of material constants (ETMMC) idea as a new absorber configuration concept. This chapter introduces a new concept of “autonomous controllable metamaterial” (ACMM) that can be assimilated with AI technology and various characteristics when applying a part of this material as an EM-wave absorber. This absorber can correspond not only to both TE-wave and TM-wave polarization problems but also to electrical controllable EM-wave absorbers that can satisfy all the conditions needed in an EM-wave absorber. Section 10.1 describes the necessity of this new metamaterial, its proposal background, and its configuration method. In Section 10.2, the implementation methods of ACMM-type absorbers are described. In Section 10.3, the conditions that an absorber should have are summarized, and the methods of realizing these absorbing conditions are investigated from every angle. It is important to know the EM-wave absorber behaviors in an ACMM-type absorber. For this purpose, input impedance investigations are conducted in Section 10.4.
作者: Youji Kotsuka
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Investigating the implementation and characteristics of an autonomous controllable metamaterial (ACMM) as an EM-wave absorber that can be assimilated with AI technology and address both TE-wave and TM-wave polarization problems.

The ACMM-type absorber can be configured to satisfy all the conditions that must be provided in an EM-wave absorber. It has a great feature since it can be configured with a relatively large unit cell in a frequently used microwave band, and this is also preferable from the viewpoint of easily designing the absorber. The configuration of the present absorber in the high-frequency range is also made possible by the introduction of integrated circuit technology.

The complexity of wiring and the need for precise control of the bias voltage in the active element are technical constraints. The stability of the EM-wave absorption characteristics when incident waves come from arbitrary directions to the absorber needs further examination.

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