Spatial and Temporal Changes in Soil Freeze-Thaw State and Freezing Depth of Northeast China and Their Driving Factors

It is necessary to further investigate the spatial considerations, temporal characteristics, and drivers of change affecting the beginning and end of soil freezing and thawing, including the maximum depth of the seasonal freezing (MDSF) and the active layer thickness (ALT) in Northeast China. Hourly...

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出版年:Land
主要な著者: Jiangtao Yu, Hangnan Yu, Lan Li, Weihong Zhu
フォーマット: 論文
言語:英語
出版事項: MDPI AG 2024-03-01
主題:
オンライン・アクセス:https://www.mdpi.com/2073-445X/13/3/368
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author Jiangtao Yu
Hangnan Yu
Lan Li
Weihong Zhu
author_facet Jiangtao Yu
Hangnan Yu
Lan Li
Weihong Zhu
author_sort Jiangtao Yu
collection DOAJ
container_title Land
description It is necessary to further investigate the spatial considerations, temporal characteristics, and drivers of change affecting the beginning and end of soil freezing and thawing, including the maximum depth of the seasonal freezing (MDSF) and the active layer thickness (ALT) in Northeast China. Hourly soil temperature, among other data, from 1983–2022 were investigated, showing a delay of about 6 days in freezing. In contrast, thawing and complete thawing advanced by about 26 and 20 d, respectively. The freezing period and total freeze-thaw days decreased by about 29 and 23 days, respectively. The number of complete thawing period days increased by about 22 days, while the MDSF decreased by about 25 cm. The ALT increased by about 22 cm. Land Surface Temperature (LST) is the main factor influencing the beginning and end of soil freezing and thawing, MDSF and ALT changes in Northeast China; air temperature, surface net solar radiation, and volumetric soil water content followed. The influence of the interacting factors was greater than the single factors, and the interactive explanatory power of the LST and surface net solar radiation was highest when the soil started to freeze (0.858). The effect of the LST and the air temperature was highest when the soil was completely thawed (0.795). LST and the volumetric soil water content interacted to have the first explanatory power for MDSF (0.866) and ALT (0.85). The results of this study can provide scientific reference for fields such as permafrost degradation, cold zone ecological environments, and agricultural production in Northeast China.
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spelling doaj-art-760849f56a2e4e1cae7d8a15962b7f2e2025-08-20T01:02:22ZengMDPI AGLand2073-445X2024-03-0113336810.3390/land13030368Spatial and Temporal Changes in Soil Freeze-Thaw State and Freezing Depth of Northeast China and Their Driving FactorsJiangtao Yu0Hangnan Yu1Lan Li2Weihong Zhu3College of Geography and Ocean Sciences, Yanbian University, Yanji 133000, ChinaCollege of Geography and Ocean Sciences, Yanbian University, Yanji 133000, ChinaCollege of Geography and Ocean Sciences, Yanbian University, Yanji 133000, ChinaCollege of Geography and Ocean Sciences, Yanbian University, Yanji 133000, ChinaIt is necessary to further investigate the spatial considerations, temporal characteristics, and drivers of change affecting the beginning and end of soil freezing and thawing, including the maximum depth of the seasonal freezing (MDSF) and the active layer thickness (ALT) in Northeast China. Hourly soil temperature, among other data, from 1983–2022 were investigated, showing a delay of about 6 days in freezing. In contrast, thawing and complete thawing advanced by about 26 and 20 d, respectively. The freezing period and total freeze-thaw days decreased by about 29 and 23 days, respectively. The number of complete thawing period days increased by about 22 days, while the MDSF decreased by about 25 cm. The ALT increased by about 22 cm. Land Surface Temperature (LST) is the main factor influencing the beginning and end of soil freezing and thawing, MDSF and ALT changes in Northeast China; air temperature, surface net solar radiation, and volumetric soil water content followed. The influence of the interacting factors was greater than the single factors, and the interactive explanatory power of the LST and surface net solar radiation was highest when the soil started to freeze (0.858). The effect of the LST and the air temperature was highest when the soil was completely thawed (0.795). LST and the volumetric soil water content interacted to have the first explanatory power for MDSF (0.866) and ALT (0.85). The results of this study can provide scientific reference for fields such as permafrost degradation, cold zone ecological environments, and agricultural production in Northeast China.https://www.mdpi.com/2073-445X/13/3/368ERA5-LANDsoil freeze-thaw stategeographical detectorNortheast China
spellingShingle Jiangtao Yu
Hangnan Yu
Lan Li
Weihong Zhu
Spatial and Temporal Changes in Soil Freeze-Thaw State and Freezing Depth of Northeast China and Their Driving Factors
ERA5-LAND
soil freeze-thaw state
geographical detector
Northeast China
title Spatial and Temporal Changes in Soil Freeze-Thaw State and Freezing Depth of Northeast China and Their Driving Factors
title_full Spatial and Temporal Changes in Soil Freeze-Thaw State and Freezing Depth of Northeast China and Their Driving Factors
title_fullStr Spatial and Temporal Changes in Soil Freeze-Thaw State and Freezing Depth of Northeast China and Their Driving Factors
title_full_unstemmed Spatial and Temporal Changes in Soil Freeze-Thaw State and Freezing Depth of Northeast China and Their Driving Factors
title_short Spatial and Temporal Changes in Soil Freeze-Thaw State and Freezing Depth of Northeast China and Their Driving Factors
title_sort spatial and temporal changes in soil freeze thaw state and freezing depth of northeast china and their driving factors
topic ERA5-LAND
soil freeze-thaw state
geographical detector
Northeast China
url https://www.mdpi.com/2073-445X/13/3/368
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