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A comparison of L-band helix TWT experiments with CHRISTINE, a 1-D multifrequency helix TWT code

机译:L波段螺旋TWT实验与CHRISTINE(一维多频螺旋TWT代码)的比较

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Extensive experimental measurements were carried out to test the accuracy of the parametric helix traveling-wave tube (TWT) code, CHRISTINE. The model is one-dimensional, with beam electrons represented as rigid disks. Multifrequency interactions are supported and the RF circuit can be optionally represented with cold-test data, a sheath helix model, or a recently implemented tape helix model. Simulations using the tape helix model are shown to be in good agreement with experimental measurements of an L-band TWT over a broad (250-MHz) frequency range. In the intermediate and saturated power regimes, the modeled and measured TWT gain versus frequency agree to better than 0.4 dB, with deviations explained by strong reflections at the output window that are not accounted for in the code. Single-tone experimental and simulated drive curves agree to better than 1 dB in the small- and large-signal regimes; relative phase shift simulations agree to within experimental measurement accuracy in the small-signal regime and to within 75% in the large-signal regime. Two-tone experimental and modeled data exhibit similarly good agreement, with CHRISTINE accurately predicting the effect of frequency-dependent gain variations on the TWT output response and third- and fifth-order intermodulation products.
机译:进行了广泛的实验测量,以测试参数螺旋行波管(TWT)代码CHRISTINE的准确性。该模型是一维的,束电子表示为刚性盘。支持多频交互,并且可以选择使用冷测试数据,鞘螺旋模型或最近实现的带螺旋模型来表示RF电路。结果表明,使用磁带螺旋模型进行的仿真与在较宽的频率范围(250 MHz)上对L波段TWT的实验测量非常吻合。在中功率和饱和功率范围内,建模和测量的TWT增益与频率的一致性优于0.4 dB,其偏差由输出窗口处的强反射解释,而代码中未考虑这些偏差。在小信号和大信号状态下,单音实验和模拟驱动曲线均优于1 dB。相对相移模拟在小信号状态下的实验测量精度范围内,在大信号状态下的75%以内。两音调的实验数据和建模数据表现出相似的良好一致性,其中克里斯汀精确地预测了频率相关增益变化对TWT输出响应以及三阶和五阶互调产物的影响。

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