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Finite Element Analysis of Thermal Mechanical Coupling for Buried ThermalPipeline under Earthquake Action

机译:地震作用下埋藏热纤维纤维纤维纤维纤维纤维的有限元分析

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Because the temperature of heat medium in the thermal pipeline is very high, which affects the pipe wall distortion and stress distribution, it is very important to analyze the thermal mechanical coupling in thermal pipeline. Numerical simulation of buried thermal pipeline damage under the earthquake action is analyzed by finite element method as basis of ADINA. Three-dimensional finite element modeling of buried thermal pipeline damage affected by site condition is investigated; geometry model is constructed with native and parasolid method in ADINA. The pipeline is modeled by native method and site is modeled by parasolid method, pipeline and soil are subtracted and merged by Boolean Operation. Gravity and earthquake force loads are defined in structure model, and temperature load in thermal model. In the structural model, pipeline is treated as thermoplastic material, and soil is treated as hot isotropic material. In thermal model, all materials are treated as heat conduction material. Thermal-mechanical coupling is calculated with the thermo-mechanical coupled analysis solver ADINA-TMC in ADINA. According to the calculating results of thermal-mechanical coupling, the damage of buried thermal pipeline is analyzed. Influence of single temperature load on the stress and strain of buried thermal pipeline is very small, but the stress and circumferential strain increase rapidly under earthquake action, especially, the axial strain is very complex. Under gravity and earthquake load, the temperature load mainly affects axial strain; the increasing temperature enables to reduce axial strain, which makes axial destruction reduced. Finally, some advice is proposed.
机译:由于热管道中的热介质温度非常高,这影响管壁失真和应力分布,因此分析热管道中的热机械耦合非常重要。通过有限元法作为Adina的基础,分析了地震作用下埋地热管道损伤的数值模拟。研究了掩埋热管线损伤的三维有限元建模;在Adina中具有天然和遮阳伞方法的几何模型。管道由本机方法建模,并且现场由遮阳伞方法建模,管道和土壤通过布尔操作进行减去和合并。重力和地震力负载在结构模型中定义,热模型中的温度负荷。在结构模型中,管道被视为热塑性材料,土壤被视为热各向同性材料。在热模型中,所有材料都被视为导热材料。热机械耦合用Adina的热机械耦合分析求解器Adina-TMC计算。根据热机械耦合的计算结果,分析了掩埋热管道的损坏。单温载荷对掩埋热管道应力和应变的影响非常小,但在地震作用下应力和周向应变迅速增加,特别是,轴向应变非常复杂。在重力和地震载荷下,温度负荷主要影响轴向应变;越来越大的温度使得能够减少轴向菌株,这使得轴向破坏降低。最后,提出了一些建议。

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