A new detection method of fluid pulsation inside the oscillation cavity of a self-resonating water jet nozzle
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摘要: 為了獲取噴嘴振蕩腔內的壓力脈動信號,提出一種新的檢測方法.首先分析自振射流的特性,設計了產生自振射流的噴嘴結構;結合計算流體動力學分析噴嘴腔內動壓分布,確定測壓點位置;運用流體網絡理論分析自振射流的頻率特性,在此基礎上確定用于實驗的微型高響應壓力傳感器;考慮到腔內振蕩信號的非平穩性,采用希爾伯特-黃變換(HHT)信號分析方法.實驗結果表明,腔內振蕩信號主要集中于40~60 Hz、110~150 Hz和200~310 Hz三個頻帶,且組成頻率成分所對應的幅值差異明顯;距離噴嘴出口較近處,自振信號振幅較大,頻帶窄.Abstract: To obtain characteristic pressure signals in the cavity of a self-resonating water jet nozzle, a detection system was built by using micro high-responsive pressure sensors. The characteristics of self-resonating water jet were studied and the nozzle's structure was designed. The sensors' layout was determined based on computational fluid dynamics (CFD) simulation results, and the respon-sive frequency of the sensors was determined according to theoretical calculations of the nozzle's self-excited oscillation frequency. The Hilbert-Huang transform was used due to the nonstationarity of pressure signals in the cavity. It is found that the pressure oscillation signals are focused on the frequency band of 40-60 Hz, 110-150 Hz and 200-310 Hz, and each frequency has different fluctuation am-plitudes. Pressure signals near the water outlet reach larger amplitudes with narrow bandwidth.
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Key words:
- water jet /
- nozzles /
- oscillation cavity /
- vorticity /
- disturbance /
- signal analysis
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