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雷电基底电流Heidler模型频谱函数高阶高精度逼近方法 被引量:8
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作者 朱崇铭 张鹏飞 邹军 《电网技术》 EI CSCD 北大核心 2019年第12期4591-4596,共6页
雷电通道基底电流函数的频谱是众多雷电相关电磁兼容问题的基础。对雷电流Heidler模型的频谱函数分区间高阶逼近,分别采用推导的矩函数和指数积分表示频谱函数,从而可以计算任意阶数的Heidler模型对应的频谱函数值。由于该方法避免了数... 雷电通道基底电流函数的频谱是众多雷电相关电磁兼容问题的基础。对雷电流Heidler模型的频谱函数分区间高阶逼近,分别采用推导的矩函数和指数积分表示频谱函数,从而可以计算任意阶数的Heidler模型对应的频谱函数值。由于该方法避免了数值傅立叶变换过程,计算速度快,且计算结果精度较高。研究结果可在雷电流涉及的众多电磁兼容问题中获得应用。该方法具有一般性,在其他涉及数值傅立叶变换的场合也可应用。 展开更多
关键词 雷电流 Heidler模型 数值傅立叶变换
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Pressure fluctuation and its influencing factors in circulating water pump 被引量:12
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作者 代翠 孔繁余 董亮 《Journal of Central South University》 SCIE EI CAS 2013年第1期149-155,共7页
In order to investigate the effect of sampling frequency and time on pressure fluctuations, the three-dimensional unsteady numerical simulations were conducted in a circulating water pump. Through comparison of turbul... In order to investigate the effect of sampling frequency and time on pressure fluctuations, the three-dimensional unsteady numerical simulations were conducted in a circulating water pump. Through comparison of turbulence models with hydraulic performance experiment, SST k-co model was confirmed to study the rational determination of sampling frequency and time better. The Fast Fourier Transform (FFT) technology was then adopted to process those fluctuating pressure signals obtained. On these bases, the characteristics of pressure fluctuations acting on the tongue were discussed. It is found that aliasing errors decrease at higher sampling frequency of 17 640 Hz, but not at a lower sampling frequency of 1 764 Hz. Correspondingly, an output frequency range ten-times wider is obtained at 17 640 Hz. Compared with 8R, when the sampling time is shorter, the amplitudes may be overvalued, and the frequencies and amplitudes of low-frequency fluctuations can not be well predicted. The frequencies at the tongue are in good agreement with the values calculated by formula and the frequency compositions less than the blade passing frequency are accurately predicted. 展开更多
关键词 circulating water pump turbulence model sampling frequency sampling time pressure fluctuation
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