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Numerical simulation for the coupled thermo-mechanical performance of a lined rock cavern for underground compressed air energy storage

机译:用于地下压缩空气储能的衬里岩洞耦合热电机械性能的数值模拟

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Compressed air energy storage (CAES) is a technology that uses compressed air to store surplus electricity generated from low power consumption time for use at peak times. This paper presents a thermo-mechanical modeling for the thermodynamic and mechanical responses of a lined rock cavern used for CAES. The simulation was accomplished in COMSOL Multiphysics and comparisons of the numerical simulation and some analytical solutions validated the thermo-mechanical modeling. Air pressure and temperatures in the sealing layer and concrete lining exhibited a similar trend of 'up-down-down-up' in one cycle. Significant temperature fluctuation occurred only in the concrete lining and sealing layer, and no strong fluctuation was observed in the host rock. In the case of steel sealing, principal stresses in the sealing layer were larger than those in the concrete and host rock. The maximum compressive stresses of the three layers and the displacement on the cavern surface increased with the increase of cycle number. However, the maximum tensile stresses exhibited the opposite trend. Polymer sealing achieved a relatively larger air temperature and pressure compared with steel and air-tight concrete sealing. For concrete layer thicknesses of 0 and 0.1 m and an initial air pressure of 4.5 MPa, the maximum rock temperature could reach 135 degrees C and 123 degrees C respectively in a 30 day simulation.
机译:压缩空气储能(CAES)是一种技术,它使用压缩空气来存储从低功耗时间产生的剩余电力在高峰时段使用。本文介绍了用于CAES的衬里岩石洞穴的热力学和机械响应的热机械型。在COMSOL多发性和数值模拟的比较中完成了模拟,并且一些分析解决方案验证了热机械建模。密封层和混凝土衬里中的气压和温度在一个循环中表现出类似的“上下下降”的相似趋势。仅在混凝土衬里和密封层中发生显着的温度波动,并且在主岩中没有观察到强烈的波动。在钢封的情况下,密封层中的主应力大于混凝土和主体岩石中的主应力。随着循环数的增加,三层的最大压缩应力和洞穴表面上的位移增加。然而,最大拉伸应力表现出相反的趋势。与钢和气密混凝土密封相比,聚合物密封达到相对较大的空气温度和压力。对于0和0.1μm的混凝土层厚度和4.5MPa的初始空气压力,在30天的模拟中,最大岩石温度分别可以达到135℃和123摄氏度。

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