測風激光雷達遠距離測量技術及應用
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國家重點研發計劃課題“森林草原火災救援現場三維風場探測及預警技術與關鍵裝備研究”(2021YFC3001902)資助


Long-Range Measurement Technology and Application of Doppler Wind Lidar for Wind Field Detection for Forest Fires
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    摘要:

    測風激光雷達具備高時空分辨率和非接觸式測量的能力,對于森林火災的防控和救援具有重要意義。然而,現有測風激光雷達探測距離難以滿足森林草原火災現場對遠距離風場監測的需求。為此,本文從大功率激光發射技術與晴空弱信號算法兩個方面展開研究,提出了大功率激光發射與噪聲抑制技術,開發了基于激光雷達頻譜信號的弱信號風速精度優化算法,從硬件技術與數據處理兩方面實現了探測距離的綜合提升。研究結果表明,采用上述技術和算法后測風激光雷達可以實現15 km的大范圍風場測量,在12600 m處的數據獲取率超過90%;與測風塔進行對比,探測精度具有很好的一致性,水平風速和風向的決定系數均在0.99以上,風速平均偏差在0.05 m/s以下,風向平均偏差在2°以下。

    Abstract:

    Global climate warming leads to an increase in the frequency and intensity of forest and grassland fires. During the rescue process of forest and grassland fires, wind is the most important meteorological factor affecting the spread of the fire. It determines not only the speed of the fire’s spread but also the area and direction of the fire’s spread. Moreover, the changeable wind field information under complex terrain conditions further increases the risks for firefighting efforts and the safety guarantee of rescue workers. The wind lidar, which has the capabilities of high spatial and temporal resolution and non-contact measurement, is of great significance for the prevention and control of forest fires and the on-site rescue command. However, the detection range of the existing wind lidar is difficult to meet the demand for long-distance wind field monitoring at the forest and grassland fire site, which restricts the precise monitoring and early warning of secondary disasters at the forest fire rescue site. Therefore, The study conducts research from two aspects: high-power laser emission technology and clear-sky weak signal algorithm, and comprehensively improves the detection range from both hardware technology and data processing aspects. The high-power laser emission technology mainly includes low-noise narrow linewidth technology, multi-stage pump source amplification technology, and Brillouin scattering suppression technology, so as to achieve high-power output as a whole and ensure the measurement accuracy, sensitivity, and reliability of the lidar system. In terms of data processing, the maximum likelihood discrete spectrum peak estimation algorithm and the optimised power spectrum frequency shift estimation algorithm are used to improve the detection ability of the lidar for weak signals. The research results show that after adopting the above technologies and algorithms, the wind lidar achieves large-scale wind field measurement over a range of 15 km. The data acquisition rate exceeds 90% at 12,600 metres, reaches more than 80% at 14,400 metres, and is above 75% at 15,000 metres, with a significant improvement in detection ability. In terms of detection accuracy, there is a high degree of consistency when compared with the data from the wind measurement tower. The determination coefficients of the horizontal wind speed and wind direction at the two heights of 77 metres and 103 metres between the wind lidar and the wind measurement tower are all above 0.99, the deviation of the linear regression fitting degree is all below 0.005, the average deviation of the wind speed is below 0.05 m/s, and the average deviation of the wind direction is below 2 degrees.

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王改利,楊亮亮,陳沛,范夢奇,馬麗,郝勇,秦勝光,王琪超.測風激光雷達遠距離測量技術及應用[J].氣象科技,2025,53(4):457~467

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  • 收稿日期:2024-11-17
  • 定稿日期:2025-05-12
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  • 在線發布日期: 2025-08-27
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