郑平, 吴明. 考虑水分迁移的埋地管道温度场数值模拟[J]. 油气储运, 2010, 29(6): 419-422. DOI: 10.6047/j.issn.1000-8241.2010.06.005
引用本文: 郑平, 吴明. 考虑水分迁移的埋地管道温度场数值模拟[J]. 油气储运, 2010, 29(6): 419-422. DOI: 10.6047/j.issn.1000-8241.2010.06.005
Zheng Ping, Wu Ming. Numerical Simulation for Soil Temperature Field of Buried Oil Pipeline Considering Effects of Moisture[J]. Oil & Gas Storage and Transportation, 2010, 29(6): 419-422. DOI: 10.6047/j.issn.1000-8241.2010.06.005
Citation: Zheng Ping, Wu Ming. Numerical Simulation for Soil Temperature Field of Buried Oil Pipeline Considering Effects of Moisture[J]. Oil & Gas Storage and Transportation, 2010, 29(6): 419-422. DOI: 10.6047/j.issn.1000-8241.2010.06.005

考虑水分迁移的埋地管道温度场数值模拟

Numerical Simulation for Soil Temperature Field of Buried Oil Pipeline Considering Effects of Moisture

  • 摘要: 基于水热耦合方程提出了埋地管道周围土壤温度场的数学模型及其控制方程,利用有限元法对考虑水分影响的土壤传热问题进行了数值模拟和分析。通过与不考虑土壤含水情况的计算结果进行对比,发现靠近埋地管道区域的土壤温度梯度较大,湿土的导热系数大于干土的导热系数;土壤导热系数先随含水量的增加而增大;当达到一定含水量后,导热系数随含水量的增加而不断减小。

     

    Abstract: According to coupled moisture and heat model, mathematical model and its control equation for soil temperature field of buried oil pipeline are put forward.Numerical simulation and analysis on soil heat transfer considering moisture impact is carried out with finite element method.Through comparison on calculation results without considering soil moisture, it is found out that temperature gradient of soil around the buried pipeline is greater, thermal conductivity of wet soil is higher than that of dry soil.First, soil thermal conductivity is increased with the increase of initial moisture, and then soil thermal conductivity is continuously decreased with the increase of the soil thermal conductivity when initial moisture is maximized

     

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