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Design and cold test of period-tapered double-ridge-loaded folded waveguide slow wave structure for Ka band TWTs

机译:Ka波段TWT的周期锥双脊加载折叠波导慢波结构设计与冷试验

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A double-ridge-loaded folded waveguide (DRL-FW) travelling wave tube (TWT) based on period-tapered structure is proposed. Through analysing the dispersion characteristics of the DRL-FW slow wave structure (SWS), the physical mechanism of the band-edge oscillation is obtained. Period-tapered SWS is proposed and analysed for verifying the feasibility in suppressing upper-band-edge oscillation and increasing the output power. Then the electromagnetic characteristics and the beam-wave interaction of TWT based on the period-tapered DRL-FW SWS are investigated. The calculation results predict that it potentially could provide continuous wave power over 600W from 29 GHz to 32 GHz without upper-band-edge oscillation. The bandwidth expands from 29-31GHz to 29-32GHz and electron efficiency is increased from more than 8.3% to more than 11%, while the range of operating voltage expands from 22kV-22.5kV to 22kV-24kV. The corresponding saturated gain can reach over 36.8 dB. In addition, we have carried out experimental tests on the transmission characteristics of period-tapered DRL-FW SWS. The cold test results show that the voltage stand-wave ratio (VSWR) is below 1.8 in the range of 29-32GHz. Good transmission characteristics greatly reduce the risk of reflection wave oscillation, thus improving the stability of DRL-FW TWT.
机译:提出了一种基于周期锥形结构的双脊加载式折叠波导行波管(TWT)。通过分析DRL-FW慢波结构(SWS)的色散特性,获得了带边振荡的物理机制。提出并分析了周期锥形的SWS,以验证抑制高频带边缘振荡和增加输出功率的可行性。然后研究了基于周期锥形DRL-FW SWS的TWT的电磁特性和束波相互作用。计算结果预测,它有可能在29 GHz至32 GHz范围内提供600W以上的连续波功率,而不会出现高频带边缘振荡。带宽从29-31GHz扩展到29-32GHz,电子效率从8.3%以上提高到11%以上,而工作电压范围从22kV-22.5kV扩展到22kV-24kV。相应的饱和增益可以达到36.8 dB以上。此外,我们还对锥度DRL-FW SWS的传输特性进行了实验测试。冷测试结果表明,在29-32GHz范围内,电压驻波比(VSWR)低于1.8。良好的传输特性大大降低了反射波振荡的风险,从而提高了DRL-FW TWT的稳定性。

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