毫米波波段印刷电路板材料在宽温度范围内的复介电常数测量

Kazuki Takahashi, Shunichi Kikuchi, Akiko Matsui, Mitsunori Abe, Kouhei Chouraku
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引用次数: 3

摘要

讨论了印制电路板用介电材料在毫米波波段复介电常数的温度依赖性及其传输损耗效应。在新开发的平衡型圆盘谐振器结构中,夹在薄圆形铜盘上的两个介电材料样品可以在温度变化的均匀压力下膨胀和收缩,这意味着在-30°C至130°C的温度范围内可以稳定地测量10 GHz至95 GHz复介电常数的频率相关性。为了验证测量值的有效性,制作了带有微带结构传输线的印刷电路板,并在室温下测量了传输损耗。然后,取出介质材料和铜箔,测量其频率依赖性,利用测量值利用三维电磁场分析求解器(HFSS)计算传输线的传输损耗。在该模型中,使用实测值计算的传输损耗值比使用目录值计算的传输损耗值接近实测值10%,几乎96%的实测值可以拟合。在-30°C, 25°C和130°C的温度下,其他介电材料的频率依赖性在10 GHz和95 GHz之间。在25°C温度下,由目录值10 GHz的复介电常数计算的传输损耗与实测值计算的传输损耗相差达0.57 dB/cm,证实了复介电常数的温度依赖性的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Complex Permittivity Measurements in a Wide Temperature Range for Printed Circuit Board Material Used in Millimeter Wave Band
This paper discusses the temperature dependence of the complex permittivity in the millimeter-wave band of dielectric materials used in printed circuit boards and its transmission loss effect. In the structure of a newly developed balanced-type circular disk resonator, two dielectric material samples sandwiching a thin circular copper disk can expand and contract under uniform pressure against temperature changes, which means the frequency dependence of the complex permittivity between 10 GHz and 95 GHz can be stably measured in a temperature range from -30°C to 130°C. To confirm the validity of measured values, a printed circuit board having a transmission line with a microstrip structure was fabricated, and transmission loss was measured at room temperature. Then, the dielectric material and the copper foil were taken out, the frequency dependence was measured, and the transmission loss of the transmission line was calculated by HFSS (three-dimensional electromagnetic field analysis solver) using these measured values. In the present model, transmission loss value calculated using the measured value is 10% closer to the measured value than that using the catalog value, and almost 96% of the measured values could be fitted. The frequency dependence of other dielectric materials was measured between 10 GHz and 95 GHz at temperatures of -30°C, 25°C, and 130°C. A difference of up to 0.57 dB/cm was obtained between the transmission loss calculated from the complex permittivity of the catalog value for 10 GHz at the temperature of 25°C and the transmission loss calculated from the measured value, confirming the effect of the temperature dependence of complex permittivity.
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