Theoretical analysis of the mechanical response of a lined canal induced by soil frost heave behavior based on improved foundation beam models

IF 3.8 2区 工程技术 Q1 ENGINEERING, CIVIL Cold Regions Science and Technology Pub Date : 2024-06-22 DOI:10.1016/j.coldregions.2024.104252
Haoyuan Jiang , Mingyi Zhang , Zhengzhong Wang , Jiawei Gong , Xinjian Sun
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Abstract

Lined canals in cold regions often experience severe frost damage, posing a significant threat to the water supply safety. This paper proposes a modified analytical solution for the response of canal lining under soil frost heave, which is based on a Timoshenko beam on a Pasternak foundation considering tangential contact between the lining and frozen soil. This analytical solution can provide any solution using Timoshenko or Euler–Bernoulli beams on Pasternak or Winkler foundations with or without tangential contact. Then, the modified analytical solution, along with the traditional analytical solutions using Euler–Bernoulli beams on Winkle foundations, is compared against both model test and numerical simulation results. The modified analytical solution performs better than the traditional solution. Finally, the effects of foundation model, beam model, and tangential contact in simulating canal frost heave were discussed, and some measures to mitigate canal frost heave are proposed. The results show that solutions based on Winkler foundation overestimate frost heaves and tensile stresses of canal linings, and solutions without considering tangential contact only obtains overestimated frost heave. In addition, solutions based on Euler–Bernoulli beams underestimate frost heaves slightly and overestimate tensile stresses slightly. Therefore, the Pasternak foundation, Euler–Bernoulli beam, and tangential contact model can be used to simulate canal frost heave. The modified analytical solution directly uses field measurements of soil free frost heave to calculate canal frost heave, thereby enhancing result reliability. This analytical solution provides a simple method for canal frost heave design, and can be applied to frost heave analyses of flat and inclined structures.

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基于改进的地基梁模型,对土壤冻胀行为诱发的衬砌运河力学响应进行理论分析
寒冷地区有衬砌的运河经常会遭受严重的冻害,对供水安全构成重大威胁。本文提出了一种运河衬砌在土壤冻胀下响应的修正分析方案,该方案基于帕斯捷尔纳克地基上的季莫申科梁,考虑了衬砌与冻土之间的切向接触。无论是否存在切向接触,该分析解决方案都能提供在帕斯捷尔纳克地基或温克勒地基上使用季莫申科梁或欧拉-伯努利梁的任何解决方案。然后,将修改后的分析解决方案与温克尔地基上使用欧拉-伯努利梁的传统分析解决方案,与模型试验和数值模拟结果进行比较。修改后的分析方案比传统方案表现更好。最后,讨论了地基模型、梁模型和切向接触对模拟运河冻浪的影响,并提出了一些缓解运河冻浪的措施。结果表明,基于温克勒地基的方案高估了冻胀和运河衬砌的拉应力,而不考虑切向接触的方案仅高估了冻胀。此外,基于 Euler-Bernoulli 梁的解决方案略微低估了冻胀,略微高估了拉应力。因此,帕斯捷尔纳克地基、欧拉-伯努利梁和切向接触模型可用于模拟运河冻胀。修改后的分析方案直接使用土壤自由冻浪的实地测量结果来计算运河冻浪,从而提高了结果的可靠性。该分析方案为运河冻浪设计提供了一种简单的方法,并可应用于平面和倾斜结构的冻浪分析。
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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.
期刊最新文献
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