A novel determination method for thermal boundary conditions during permafrost simulation

IF 6.1 2区 工程技术 Q2 ENERGY & FUELS Applied Thermal Engineering Pub Date : 2024-11-28 DOI:10.1016/j.applthermaleng.2024.125080
Wen-zhen Tang, Xiao-kang Li, Xu Li
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Abstract

Boundary conditions are crucial for simulating the thermal status of permafrost soils, impacting the assessment of infrastructure stability and permafrost degradation. Field measurement and the boundary layer theory are two principal methods to determine the thermal boundary conditions, while parameters in these methods are empirical. This study proposed a novel method to determine the thermal boundary conditions, utilizing the known active layer thickness (ALT) and the depth of permafrost base. Firstly, the accuracy of equations for estimating ALT and the depth of permafrost base was validated using observed data. Next, a numerical model was built to investigate the impact of changes in ALT and the depth of permafrost on its thermal state. And then, the major influencing parameters of ALT and the depth of permafrost were determined. The results indicated that: (1) The maximum relative error between the observed and the estimated ALT is 15 %, and ALT can be reasonably estimated by the extended Stefan equation for multi-layered soils; (2) The maximum relative error between the observed and the estimated depth of permafrost is 4.9 %, and the depth of permafrost base can be estimated by the newly modified equation; (3) As two crucial indicators to judge the reliability of thermal boundary conditions, ALT and the depth of permafrost base needs to be appropriately set to avoid unacceptable deviations in numerical simulation. In this study, the relative error between the numerically inversed and the observed temperature was only 5.4 %, with an appropriate ALT of 2.5 m and a depth of 44.52 m for the permafrost base; (4) ALT is mainly governed by surface thawing index and water content, while the depth of permafrost base is mainly governed by geothermal gradient and mean annual ground temperature (MAGT). Based on the results, a method for determining the upper temperature and the lower heat flux boundary is proposed for permafrost simulation. The findings can guide the design and numerical simulation of geotechnical engineering in permafrost regions.
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冻土模拟中热边界条件的一种新的确定方法
边界条件是模拟冻土热状态的关键,影响基础设施稳定性和冻土退化的评估。现场测量和边界层理论是确定热边界条件的两种主要方法,而这两种方法中的参数都是经验的。本研究提出了一种利用已知活动层厚度(ALT)和多年冻土基底深度来确定热边界条件的新方法。首先,利用实测资料验证了ALT和冻土基础深度估算方程的准确性。在此基础上,建立了冻土带热态数值模型,研究了冻土带热态变化与冻土带深度变化的关系。在此基础上,确定了ALT和冻土深度的主要影响参数。结果表明:(1)观测值与估算值之间的最大相对误差为15%,采用扩展的Stefan方程可以合理地估算多层土壤的ALT;(2)多年冻土实测深度与估算深度的最大相对误差为4.9%,可以用修正后的方程估算多年冻土基底深度;(3) ALT和冻土基底深度作为判断热边界条件可靠性的两个关键指标,需要适当设置,避免数值模拟出现不可接受的偏差。在本研究中,数值反演结果与实测温度的相对误差仅为5.4%,多年冻土地基适宜的ALT为2.5 m,深度为44.52 m;(4) ALT主要受地表融化指数和含水率控制,而冻土基底深度主要受地温梯度和年平均地温(MAGT)控制。在此基础上,提出了一种确定冻土模拟温度上限和热通量下限的方法。研究结果对多年冻土区岩土工程的设计和数值模拟具有指导意义。
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来源期刊
Applied Thermal Engineering
Applied Thermal Engineering 工程技术-工程:机械
CiteScore
11.30
自引率
15.60%
发文量
1474
审稿时长
57 days
期刊介绍: Applied Thermal Engineering disseminates novel research related to the design, development and demonstration of components, devices, equipment, technologies and systems involving thermal processes for the production, storage, utilization and conservation of energy, with a focus on engineering application. The journal publishes high-quality and high-impact Original Research Articles, Review Articles, Short Communications and Letters to the Editor on cutting-edge innovations in research, and recent advances or issues of interest to the thermal engineering community.
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