现代高频放大管对短波导纳增大的原因

M. Strutt, A. van der Ziel
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引用次数: 10

摘要

通过最近对高达300兆周的现代高频放大管(五极管)的输入损耗、输出损耗和反馈电容的测量,这些值在短波范围内的显著增加已经变得明显。与最近几篇出版物发表的观点相反,对许多类型的阀门来说,这种增加的主要原因不应在电子跃迁时间效应中寻找,而应在管电极及其内外引线的电容、互感和自感的作用中寻找。提出了四极体、五极体、六极体等用作高频放大器时,这些量对输入导纳、输出导纳、反馈导纳和互导纳影响的一般理论。通过三个系列的测量表明,现代欧洲标准尺寸高频阀在短波上的输入阻尼约有三分之一至三分之二必须归因于感应效应,而不是传输时间。对过渡时间效应的几个测量进行了描述,表明与阴极和输入网格之间的过渡时间相比,输入网格和屏幕网格之间的过渡时间不可忽视。关于感应效应的理论公式得到了很好的检验,而关于瞬变时间效应的理论公式则没有得到很好的检验。给出了后一种偏差的原因。输出导纳和反馈导纳几乎完全是由于短波区的感应效应,如所述的几次测量所示。
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The Causes for the Increase of the Admittances of Modern High-Frequency Amplifier Tubes on Short Waves
By recent measurements of input loss, output loss, and feed-back capacitance of modern high-frequency amplifier tubes (pentodes) up to 300 megacycles, a considerable increase of these values in the short-wave range has become manifest. Contrary to the opinion, expressed in several recent publications, for many types of valves the main cause of this increase must not be sought in electron-transit-time effects, but in the action of capacitances, mutual inductances, and self-inductances of the tube electrodes and of their leads within and without the tubes. A general theory of the effect of these quantities on input admittance, output admittance, feedback admittance, and mutual admittance is put forward for tetrodes, pentodes, hexodes, etc., used as high-frequency amplifiers. By three series of measurements it is shown, that about one to two thirds of the input damping of modern European high-frequency valves of normal dimensions on short waves must be ascribed to inductive effects and not to transit times. Several measurements on transit-time effects are described, showing that the transit time between the input grid and the screen grid may not be neglected as compared with the transit time between the cathode and the input grid. Theoretical formulas for inductive effects are well checked and those for transit-time effects are not so well checked by measurements. Causes for the latter deviations are given. Output admittance and feed-back admittance are almost wholly due to inductive effects in the short-wave region, as shown by several measurements described.
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