Langmuir Mixing Schemes Based on a Modified K-Profile Parameterization

IF 4.4 2区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
Peng Wang, James C. McWilliams, Jianguo Yuan, Jun-Hong Liang
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Abstract

Langmuir turbulence, a dominant process in the ocean surface boundary layer, drives substantial vertical mixing that influences temperature, salinity, mixed layer depth, and biogeochemical tracer distributions. While direct resolution of Langmuir turbulence in ocean and climate models remains computationally prohibitive, its effects are commonly parameterized, frequently within established turbulent mixing frameworks like the K-profile parameterization (KPP). This study utilizes a modified KPP that determines boundary layer depth through an integral criterion, diverging from the conventional KPP's dependence on the bulk Richardson number. The modified KPP demonstrates markedly lower sensitivity to model vertical resolution than its conventional counterpart. Building upon this modified KPP framework, we introduce an innovative parameterization scheme for Langmuir mixing effects. We evaluate the performance of this new scheme against existing approaches using a one-dimensional (1D) column model across four different scenarios, incorporating validation against both large eddy simulation (LES) results and field measurements. Our analysis reveals that the new Langmuir mixing scheme, explicitly designed for the modified KPP framework, performs competitively while maintaining reduced sensitivity to vertical resolution.

Abstract Image

基于改进k -剖面参数化的Langmuir混合方案
Langmuir湍流是海洋表面边界层的主要过程,它驱动大量的垂直混合,影响温度、盐度、混合层深度和生物地球化学示踪剂分布。虽然在海洋和气候模式中直接解析Langmuir湍流在计算上仍然是禁止的,但它的影响通常是参数化的,经常在已建立的湍流混合框架中,如k -廓线参数化(KPP)。本研究采用了一种改进的KPP,该KPP通过积分准则确定边界层深度,与传统的KPP依赖于体积理查德森数不同。改进的KPP对模型垂直分辨率的敏感性明显低于常规的KPP。在这个改进的KPP框架的基础上,我们引入了一种创新的Langmuir混合效应参数化方案。我们使用一维(1D)柱模型在四种不同的场景中评估了这种新方案与现有方法的性能,并结合了对大涡模拟(LES)结果和现场测量的验证。我们的分析表明,明确为改进的KPP框架设计的新的Langmuir混合方案在保持对垂直分辨率降低灵敏度的同时具有竞争力。
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来源期刊
Journal of Advances in Modeling Earth Systems
Journal of Advances in Modeling Earth Systems METEOROLOGY & ATMOSPHERIC SCIENCES-
CiteScore
11.40
自引率
11.80%
发文量
241
审稿时长
>12 weeks
期刊介绍: The Journal of Advances in Modeling Earth Systems (JAMES) is committed to advancing the science of Earth systems modeling by offering high-quality scientific research through online availability and open access licensing. JAMES invites authors and readers from the international Earth systems modeling community. Open access. Articles are available free of charge for everyone with Internet access to view and download. Formal peer review. Supplemental material, such as code samples, images, and visualizations, is published at no additional charge. No additional charge for color figures. Modest page charges to cover production costs. Articles published in high-quality full text PDF, HTML, and XML. Internal and external reference linking, DOI registration, and forward linking via CrossRef.
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