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首页> 外文期刊>IEEE Transactions on Microwave Theory and Techniques >Miniaturized artificial-transmission-line monolithic millimeter-wave frequency doubler
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Miniaturized artificial-transmission-line monolithic millimeter-wave frequency doubler

机译:小型化人工传输线单片毫米波倍频器

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Millimeter-wave signals are typically generated by frequency multiplication in modern single-chip or multichip module (MCM) systems. Consequently, the multiplication efficiency, spurious rejection, and size of the frequency multiplier ultimately limit the integration level and cost of these systems. This paper points to the size reduction of millimeter-wave frequency doublers by evaluating artificial transmission lines (ATL's) as a means to minimize the size of the low-impedance shunt stubs. As a result, we developed a 40-GHz frequency doubler, which used only 0.6-mm/sup 2/ area on a monolithic microwave integrated circuit. Despite the area minimization, the doubler exhibited state-of-the-art conversion loss of 1 dB over 10% bandwidth and rejected the fundamental frequency signal by more than 20 dB over 25% bandwidth. Reported herein is the novel simulation of the frequency doubler with active harmonic loads. Included in this paper are theoretical evaluation and simulation of ATL's with models for lumped components and verification of the results by electromagnetic simulation. Due to the high efficiency, low area requirement, and over 20-dB rejection of the fundamental signal, this miniaturized ATL frequency doubler can be used as a building block in the generation of local-oscillator signals in single-chip and MCM millimeter-wave systems.
机译:毫米波信号通常是通过现代单芯片或多芯片模块(MCM)系统中的倍频产生的。因此,乘法效率,寄生抑制和倍频器的大小最终限制了这些系统的集成度和成本。本文指出,通过评估人工传输线(ATL)来减小毫米波倍频器的尺寸,以此来减小低阻抗并联支路的尺寸。结果,我们开发了40 GHz倍频器,在单片微波集成电路上仅使用0.6 mm / sup 2 /面积。尽管面积已最小化,但倍频器在10%的带宽上仍表现出1 dB的最新转换损耗,而在25%的带宽上却抑制了20 dB以上的基频信号。本文报道的是具有有源谐波负载的倍频器的新颖仿真。本文包括采用集总组件模型对ATL进行理论评估和仿真,并通过电磁仿真对结果进行验证。由于高效率,低面积要求和对基本信号的超过20 dB的抑制,这种小型化的ATL倍频器可以用作生成单芯片和MCM毫米波本地振荡器信号的基础系统。

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