Application of a concrete thermal pile in cooling the warming permafrost under climate change

IF 6.4 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES Advances in Climate Change Research Pub Date : 2024-02-01 DOI:10.1016/j.accre.2023.09.002
Yun-Hu Shang , Fu-Jun Niu , Guo-Yu Li , Jian-Hong Fang , Ze-Yong Gao
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Abstract

Permafrost degradation caused by climate warming is posing a serious threat to the stability of cast-in-place pile foundations in warm permafrost regions. Ambient cold energy can be effectively utilized by two-phase closed thermosyphons (TPCTs) to cool the permafrost. Therefore, we installed TPCTs in a cast-in-place pile foundation to create a unique structure called a thermal pile, which effectively utilizes the TPCTs to regulate ground temperature. And we conducted a case study and numerical simulation to exhibit the cooling performance, and optimize the structure of the thermal pile. The purpose of this study is to promote the application of thermal piles in unstable permafrost regions. Based on the findings, the thermal pile operated for approximately 53% of the entire year and effectively reduced the deep ground temperature at a rate of at least −0.1 °C per year. Additionally, it successfully raised the permafrost table that is 0.35 m shallower than the natural ground level. These characteristics prove highly beneficial in mitigating the adverse effects of permafrost degradation and enhancing infrastructure safety. Expanding the length of the condenser section and the diameter of the TPCT in a suitable manner can effectively enhance the cooling capability of the thermal pile and ensure the long-term mechanical stability of the pile foundation even under climate warming.

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应用混凝土保温桩冷却气候变化下不断变暖的冻土层
气候变暖导致的冻土层退化正严重威胁着温暖冻土地区现浇桩基的稳定性。两相封闭式热吸水器(TPCTs)可有效利用环境冷能来冷却冻土。因此,我们在现浇桩基中安装了 TPCT,形成了一种称为热喷桩的独特结构,可有效利用 TPCT 调节地温。我们还进行了案例研究和数值模拟,以展示其降温性能,并优化导热桩的结构。这项研究的目的是促进热力堆在不稳定冻土地区的应用。根据研究结果,导热桩全年约有 53% 的时间在运行,并以每年至少-0.1 °C的速度有效降低了深层地温。此外,它还成功地提高了比自然地表浅 0.35 米的永久冻土层。事实证明,这些特性非常有利于减轻冻土层退化的不利影响,提高基础设施的安全性。以适当的方式扩大冷凝器部分的长度和 TPCT 的直径,可有效提高热喷桩的冷却能力,即使在气候变暖的情况下,也能确保桩基的长期机械稳定性。
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来源期刊
Advances in Climate Change Research
Advances in Climate Change Research Earth and Planetary Sciences-Atmospheric Science
CiteScore
9.80
自引率
4.10%
发文量
424
审稿时长
107 days
期刊介绍: Advances in Climate Change Research publishes scientific research and analyses on climate change and the interactions of climate change with society. This journal encompasses basic science and economic, social, and policy research, including studies on mitigation and adaptation to climate change. Advances in Climate Change Research attempts to promote research in climate change and provide an impetus for the application of research achievements in numerous aspects, such as socioeconomic sustainable development, responses to the adaptation and mitigation of climate change, diplomatic negotiations of climate and environment policies, and the protection and exploitation of natural resources.
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