A numerical study of process complexity in permafrost dominated regions

IF 3.8 2区 工程技术 Q1 ENGINEERING, CIVIL Cold Regions Science and Technology Pub Date : 2025-03-01 Epub Date: 2024-12-14 DOI:10.1016/j.coldregions.2024.104399
Radhakrishna Bangalore Lakshmiprasad , Fan Zhang , Ethan T. Coon , Thomas Graf
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Abstract

Numerical modeling of permafrost dynamics requires adequate representation of atmospheric and surface processes, a reasonable parameter estimation strategy, and site-specific model development. The three main research objectives of the study are: (i) to propose a novel methodology that determines the required level of surface process complexity of permafrost models by conducting parameter sensitivity and calibration, (ii) to design and compare three numerical models of increasing surface process complexity, and (iii) to calibrate and validate the numerical models at the Yakou catchment on the Qinghai-Tibet Plateau as an exemplary study site. The calibration was carried out by coupling the Advanced Terrestrial Simulator (numerical model) and PEST (calibration tool). Simulation results showed that (i) A simple numerical model that considers only subsurface processes can simulate active layer development with the same accuracy as other more complex models that include surface processes. (ii) Peat and mineral soil layer permeability, Van Genuchten alpha, and porosity are highly sensitive. (iii) Liquid precipitation aids in increasing the rate of permafrost degradation. (iv) Deposition of snow insulated the subsurface during the thaw initiation period. We have developed and released an integrated code that couples the numerical software ATS to the calibration software PEST. The numerical model can be further used to determine the impacts of climate change on permafrost degradation.

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多年冻土区过程复杂性的数值研究
多年冻土动力学的数值模拟需要充分反映大气和地表过程、合理的参数估计策略和特定地点的模型开发。本研究的三个主要研究目标是:(1)提出一种新的方法,通过参数敏感性和校准来确定多年冻土模型所需的地表过程复杂性水平;(2)设计和比较地表过程复杂性增加的三个数值模型;(3)在青藏高原雅口流域作为示范研究点对数值模型进行校准和验证。采用先进地面模拟器(数值模型)和PEST(标定工具)耦合进行标定。模拟结果表明:(1)仅考虑地下过程的简单数值模型可以模拟活动层发育,其精度与其他包括地表过程的更复杂模型相同。(ii)泥炭和矿质土层渗透率、Van Genuchten alpha和孔隙度高度敏感。(三)液体降水有助于增加永久冻土退化的速度。(iv)在解冻开始期间,积雪的沉积使地下隔绝。我们开发并发布了一个集成代码,将数值软件ATS与校准软件PEST耦合在一起。该数值模型可进一步用于确定气候变化对冻土退化的影响。
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来源期刊
Cold Regions Science and Technology
Cold Regions Science and Technology 工程技术-地球科学综合
CiteScore
7.40
自引率
12.20%
发文量
209
审稿时长
4.9 months
期刊介绍: Cold Regions Science and Technology is an international journal dealing with the science and technical problems of cold environments in both the polar regions and more temperate locations. It includes fundamental aspects of cryospheric sciences which have applications for cold regions problems as well as engineering topics which relate to the cryosphere. Emphasis is given to applied science with broad coverage of the physical and mechanical aspects of ice (including glaciers and sea ice), snow and snow avalanches, ice-water systems, ice-bonded soils and permafrost. Relevant aspects of Earth science, materials science, offshore and river ice engineering are also of primary interest. These include icing of ships and structures as well as trafficability in cold environments. Technological advances for cold regions in research, development, and engineering practice are relevant to the journal. Theoretical papers must include a detailed discussion of the potential application of the theory to address cold regions problems. The journal serves a wide range of specialists, providing a medium for interdisciplinary communication and a convenient source of reference.
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