大气与环境光学学报 ›› 2026, Vol. 21 ›› Issue (4): 523-537.doi: 10.3969/j.issn.1673-6141.2026.04.001

• 大气光学 • 上一篇    

基于1.5微米波长单光子激光雷达的2023年济南大气边界层高度特征研究

孙翔宇 1, 王冲 1,2*, 薛向辉 1,2,3,4, 周后福5, 贾铭蛟6   

  1. 1 中国科学技术大学地球和空间科学学院, 安徽 合肥 230026; 2 合肥国家实验室, 安徽 合肥 230088; 3 中国科学技术大学微尺度实验室, 安徽 合肥 230026; 4 中国科学技术大学蒙城地球物理国家野外科学观测研究站, 安徽 合肥 230026; 5 寿县国家气候观象台, 安徽 淮南 232200; 6 山东国耀量子雷达科技有限公司, 山东 济南 250102
  • 收稿日期:2024-03-20 修回日期:2024-08-12 接受日期:2024-08-20 出版日期:2026-07-28 发布日期:2026-07-28
  • 通讯作者: E-mail: wclhy50@ustc.edu.cn E-mail:wclhy50@ustc.edu.cn
  • 作者简介:孙翔宇 (1997- ), 山西忻州人, 硕士, 主要从事激光雷达反演大气边界层高度方面的研究。E-mail: sxyfly@mail.ustc.edu.cn
  • 基金资助:
    广东省重点领域研发计划资助 (2020B0303020001), 国家自然科学基金 (42125402, 42188101, 42304165), 科技创新2030“量子通信与量 子计算机”重大项目 (2021ZD0300302)

Study of the atmospheric boundary layer height of Jinan in 2023 based on 1.5 μm single-photon lidar

SUN Xiangyu1, WANG Chong1,2*, XUE Xianghui1,2,3,4, ZHOU Houfu5, JIA Mingjiao6   

  1. 1 School of Earth and Space Sciences, University of Science and Technology of China, Hefei 230026, China; 2 Hefei National Laboratory, University of Science and Technology of China, Hefei 230088, China; 3 Hefei National Laboratory for the Physical Sciences at the Microscale, University of Science and Technology of China, Hefei 230026, China; 4 National Field Observation and Research Station (Anhui Mengcheng) for Geophysics, University of Science and Technology of China, Hefei 230026, China; 5 Shouxian National Climatology Observatory, Huainan 232200, China; 6 Shandong Guoyao Quantum Lidar Technology Co. Ltd., Jinan 250102, China
  • Received:2024-03-20 Revised:2024-08-12 Accepted:2024-08-20 Online:2026-07-28 Published:2026-07-28
  • Contact: Chong Wang E-mail:wclhy50@ustc.edu.cn

摘要: 2023 年济南全年气温异常偏高, 成为目前为止该地历史最暖年份。该年初春沙尘天气频发, 夏季高温屡破纪 录, 秋冬季节出现极端冷暖转换事件。基于1.5 微米红外波长的单光子激光雷达和一套边界层高度反演方案, 获取了 济南2023 年大气边界层高度的分钟级观测数据。经数据筛选获得232 天的有效观测结果, 进而基于此统计分析了该 地2023 年边界层高度的月平均变化、季节平均变化、日最大边界层高度及其概率分布特征。结果显示: 济南2023 年大 气边界层季节平均高度分别为春季1078 m、夏季1411 m、秋季1202 m、冬季1010 m; 边界层高度各项特征在7 月达到峰 值, 均值达1742 m; 全年大气边界层高度集中在600~1500 m区间的概率为62.0%, 2100 m以上的概率为12.1%。济南 市大气扩散条件总体较差。秋季静稳天气条件下污染物的累积与消散过程表明: 规划城市通风廊道, 将新风引入大 气扩散条件较差的区域, 可缓解由工业布局和地理环境等因素共同导致的重污染状况。

关键词: 大气边界层, 济南, 单光子激光雷达, 异常高温年

Abstract: Objective The atmospheric boundary layer (ABL) governs the vertical transport of pollutants, heat, and moisture, with its height (ABLH) being a critical parameter for air quality management and climate research. Jinan, the capital of Shandong Province, features complex terrain with mountains to the east and south and frequent local industrial emissions, yet longterm, high-resolution ABLH observations in this region remain limited. 2023 is the hottest year on record globally. Especially for Jinan, this year is marked by frequent spring dust storms, record-breaking summer heatwaves, and abrupt autumn-winter temperature fluctuations, which provides a unique opportunity to investigate the ABLH characteristics under extreme climatic conditions. This study aims to develop an optimized lidar retrieval framework for ABLH under complex atmospheric scenarios to quantify the seasonal, monthly, and diurnal variations of ABLH in Jinan throughout 2023, and explore the linkages between ABLH dynamics, extreme weather events, and local pollutant accumulation, ultimately providing scientific evidence for urban ventilation corridor planning and air pollution control strategies. Methods A 1.5 μm (1550 nm) single-photon lidar was deployed at the Jinan Institute of Quantum Technology (117° 7′48″E、36°40′48″N) in 2023 for a year of continuous unattended observations. The key parameters of the lidar include a single pulse energy of 70 μJ, pulse width of 100 ns, vertical resolution of 30 m, and temporal resolution of 1 s. A total of 232 days of valid minute-level observational data were obtained. A comprehensive retrieval workflow was established to address the issues of low-cloud interference and multi-layer aerosol complexities, where a differential enhancement algorithm was first used to identify cloud base height as the upper limit for ABLH retrieval, and two core algorithms, wavelet transform and two-dimensional matrix methods, were then applied in parallel below the cloud base, while the gradient method was only served as an auxiliary reference due to its instability in complex conditions. Clear divergence rules guided the determination of results. If the retrieved ABLH values of the two core methods differed by ≤ 90 m, the matrix result was adopted; for differences of 90–180 m, the arithmetic mean of the two methods was used; and for differences > 180 m, manual judgment with reference to L-band radiosonde data and ERA5 reanalysis data was triggered. The retrieved ABLH data were validated against radiosonde observations from Zhangqiu National Basic Weather Station (36 km away) using the critical Richardson number (Ri = 0.26). Results and Discussion The optimized retrieval framework combining cloud base exclusion and dual core algorithms exhibited high stability and accuracy, with validation errors between lidar and radiosonde results ranging from 1.76% to 3.66%. The ABLH in Jinan displayed a consistent diurnal pattern throughout the four seasons. It rose rapidly 2–3 hours after sunrise, peaked at 14:00–15:00, and then declined sharply, with minor nighttime fluctuations. The seasonal average ABLH ranked highest in summer (1.411 km), followed by autumn (1.202 km), spring (1.078 km), and winter (1.010 km), while the peak monthly average ABLH of July was 1.742 km, driven by record high temperatures. Statistically, 62.0% of ABLH values concentrated in the range of 600–1500 m, and only 12.1% exceeded 2.100 km. Extreme weather events strongly modulated ABLH. Specifically, spring drought fostered deep nocturnal ABLs and enhanced the dispersion of pollutants, whereas stable autumn conditions (low wind, high humidity) suppressed the development of ABL and exacerbated the accumulation of pollutants. These findings further revealed that the complex terrain and weak dispersion capacity of Jinan exacerbated pollution episodes, highlighting the necessity of targeted urban planning interventions. Conclusion This study developed a robust lidar retrieval method for ABLH in complex atmospheric environments, filling the gap of continuous minute-level ABLH observations in Jinan in 2023. The dual-algorithm framework with low-cloud exclusion significantly improved retrieval accuracy, which was validated by consistent agreement with radiosonde data. The systematic analysis revealed distinct seasonal, monthly, and diurnal ABLH variations closely related to extreme climate events in 2023. The identified relationships between ABLH dynamics and pollutant behavior confirm that the atmospheric dispersion capacity of Jinan is inherently limited, especially in autumn. The findings provide critical observational evidence for designing urban ventilation corridors to channel clean air from southern mountains to mitigate urban heat islands and air pollution. Additionally, the high-resolution ABLH dataset offers valuable insights for assessing the long-term climate impacts on atmospheric stability and environmental carrying capacity in northern China.

Key words: atmosphere boundary layer, Jinan, single-photon lidar, exceptionally warm year

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