热带海洋学报

• • 上一篇    下一篇

水声反演悬沙浓度技术的研究进展与改进路径分析

王元叶,徐斌,曹杰

  

  1. 上海河口海岸科学研究中心,上海 201201



  • 收稿日期:2026-08-25 修回日期:2026-09-22 接受日期:2026-09-24
  • 通讯作者: 王元叶
  • 基金资助:
    国家重点研发计划项目(2024YFB2605900)

Research Progress and Improvement Pathways of Acoustic Inversion of Suspended Sediment Concentration

WANG Yuanye, XU Bin, CAO Jie   

  1. Shanghai Estuarine and Coastal Science Research Center, Shanghai 201201, China



  • Received:2026-08-25 Revised:2026-09-22 Accepted:2026-09-24
  • Supported by:

    Strategic  Supported by National Key R&D Program of China  (2024YFB2605900)

摘要: 悬沙浓度是河口海岸泥沙动力学与海洋水文观测的核心参数。利用声学多普勒流速剖面仪(Acoustic Doppler Current Profiler, ADCP)回波强度反演悬沙浓度,兼具非接触、高时空分辨率与流速—含沙量同步测量优势,已成为研究热点。本文在阐述海水声吸收、颗粒声散射与声衰减等物理基础及回波强度—悬沙浓度标定框架的基础上,系统梳理单频、多频与声衰减反演及反演算法的演进脉络并对比其优劣;重点剖析泥沙粒径与絮凝、声衰减与高浓度效应、气泡与温盐等环境干扰、设备标定及算法普适性等误差来源及其内在耦联;进而从多频协同反演、粒径修正与标定标准化、声—光互补观测、絮凝体声学机理及数据驱动反演等角度提出改进路径。分析表明,该技术在粒径相对稳定、声衰减可修正且现场标定充分的条件下可获得较高反演精度,多频与衰减——散射联合反演及机器学习等智能反演有望进一步拓展其适用范围;但单频系统在“浓度—粒径”耦合解耦、声衰减校正及标定普适化方面的不足,仍是制约其工程化应用的关键瓶颈。

关键词: 水声反演, 悬沙浓度, 声学多普勒流速剖面仪, 声学后向散射, 声衰减, 粒径修正

Abstract: Suspended sediment concentration (SSC) is a core parameter in estuarine and coastal sediment dynamics and marine hydrological observation. Using acoustic backscatter intensity from Acoustic Doppler Current Profilers (ADCP) to infer SSC has become a research hotspot owing to its advantages of non-contact operation, high spatiotemporal resolution, and simultaneous measurement of flow velocity and sediment concentration. On the basis of expounding the physical foundations, including seawater sound absorption, acoustic scattering and attenuation by suspended particles, and the backscatter-SSC calibration framework, this paper systematically reviews the evolution of single-frequency, multi-frequency, and acoustic attenuation inversion methods and their algorithms, and compares their advantages and limitations. The error sources in practical applications are analyzed in depth, covering sediment grain size and flocculation, sound attenuation and high-concentration effects, environmental interference from bubbles and temperature-salinity variations, instrument and calibration constraints, and insufficient algorithm universality. Improvement pathways are then proposed from the perspectives of multi-frequency collaborative inversion, grain-size correction and calibration standardization, acoustic-optical complementary observation, the acoustic mechanism of flocs, and data-driven inversion.. The analysis shows that acoustic SSC inversion can achieve high accuracy when the particle size is relatively stable, the attenuation is properly corrected, and in-situ calibration is adequate; multi-frequency and attenuation-scattering joint inversion as well as machine-learning-based intelligent inversion are expected to further broaden its applicability. Nevertheless,the deficiencies of single-frequency systems in decoupling the concentration-grain size coupling, correcting attenuation under high-concentration conditions, and generalizing calibration remain the key bottlenecks hindering its engineering application.

Key words: acoustic inversion, suspended sediment concentration, acoustic Doppler current profiler, acoustic backscatter, sound attenuation, grain size correction