消声室:建在工业室内的消声室

A. Aksenov, Kaluga Russian Federation Typhoon Jsc, A. Larin, N. Samburov
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引用次数: 0

摘要

研究了埋设在工业场所的某型天线测量用消声室的设计问题。这种房间的优点是具有积极的经济效果,既可以减少建筑工程的费用,又可以在操作过程中联合使用辅助房间系统。已知的天线测量室的设计方法要么是基于确保最小的美学水平,要么是最小的整体尺寸。在这种情况下,有必要在消声稳定性参数和总体尺寸之间做出妥协,同时确保房间整个可用区域的技术可达性。的目标。这项工作的目的是证明腔室的形式和几何尺寸。研究方法。在研究过程中运用了几何光学的方法。在证明室的形式合理时,考虑到实际方面,即工业房地和车间的共同形式,以及有效使用共同的无线电吸收材料从内部覆盖室的可能性。在寻找最优有效几何尺寸的过程中,假设质量泛函为回声参数和尺寸参数。结果。矩形梯形形式的腔室最适合嵌入工业场所。得到了保证工作区域内不存在一阶和二阶反射的腔室几何尺寸表达式。找出了消声室后壁偏转角的最佳值。结论。在此基础上,实现了一个小范围的天线测量消声室。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
AN ANECHOIC CHAMBER BUILT INTO INDUSTRIAL ROOMS
The issues of designing anechoic chambers for antenna measurements of a certain type – em-bedded in the premises of industrial purpose are considered. The advantage of such chambers is a positive economic effect associated with both the reduction of costs for construction work, and with the possibility of joint use of auxiliary room systems in the process of operation. Known ap-proaches to the design of chambers for antenna measurements are based either on ensuring a min-imum level of aesthetics, or minimum overall dimensions. In this case, it is necessary to provide a compromise between the parameters of anechoic stability and overall dimensions while ensuring the technological accessibility of the entire usable area of the room. Aim. The aim of the work is to justify the form and geometric dimensions of the chamber. Research Methods. In the process of re-search used the methods of geometric optics. When justifying the form of the chamber, practical aspects were taken into account, namely, the common form of industrial premises and workshops, as well as the possibility of effective use of common radio-absorbing materials to cover the cham-ber from the inside. In the process of finding the optimal effective geometric dimensions, the quality functionals were assumed to be aechoic and dimensional parameters. Results. A chamber in the form of a rectangular trapezoid is optimal for embedding in industrial premises. The expressions for the geometric dimensions of the chamber, ensuring the absence of first- and second-order reflections in the working area, have been found. The optimum value of the deflection angle of the back wall of the anechoic chamber was found. Conclusion. Based on the above technique, an anechoic chamber of a compact range for antenna measurements has been realized.
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