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Analysis of compressed air storage caverns in rock salt considering thermo-mechanical cyclic loading

机译:考虑热力循环荷载作用的岩盐压缩空气储气穴分析

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Exploring the material response of rock salt subjected to the variable thermo-mechanical loading is essential for engineering design of compressed air energy storage (CAES) caverns. Accurate design of salt caverns requires adequate numerical simulations which take into account the most important processes affecting the development of stresses and strains. To fulfill this objective, this paper presents a two-step simulation to analyze the thermo-mechanical behavior of rock salt in the vicinity of CAES caverns. In the first step, the changes in air temperature and pressure resulted from injection and withdrawal processes are estimated using an analytical thermodynamic model. Then, in the second step, the temperature and pressure variations obtained from the analytical model are utilized as the boundary condition for a finite element model of CAES cavern. An elasto-viscoplastic creep model is employed to describe the material behavior of rock salt. In the numerical section, a computational model to simulate the thermo-mechanical behavior of rock salt around the cavern is presented. Finally, the stability and long-term serviceability of the simulated cavern are evaluated considering two extreme loading scenarios: (1) low-pressure working condition and (2) high-temperature operation. Obtained results show that both stability and serviceability of the cavern are highly affected by the internal operating pressure. Dilatancy, damage propagation, tensile failure and increasing the rate of cavern closure are the unfavorable consequences of low-pressure working condition. Similarly, the increased creep rate due to the elevated temperature accelerates the volume convergence and subsequently endangers the serviceability of the system.
机译:探索承受可变热机械载荷的岩盐的材料响应对于压缩空气储能(CAES)洞穴的工程设计至关重要。盐洞的准确设计需要适当的数值模拟,其中要考虑到影响应力和应变发展的最重要过程。为了实现这一目标,本文提出了一个两步模拟,以分析CAES洞穴附近岩盐的热机械行为。第一步,使用解析热力学模型估算由注射和抽出过程导致的空气温度和压力变化。然后,在第二步中,将从分析模型获得的温度和压力变化用作CAES洞穴有限元模型的边界条件。弹黏塑性蠕变模型用于描述岩盐的材料行为。在数值部分中,提出了一个计算模型,用于模拟洞穴周围岩盐的热机械行为。最后,在考虑两种极端载荷情况下评估了模拟洞穴的稳定性和长期可使用性:(1)低压工作条件和(2)高温运行。所得结果表明,洞穴的稳定性和可使用性都受到内部工作压力的极大影响。膨胀状态,损伤传播,拉伸破坏和洞穴闭合率的增加是低压工作条件的不利后果。同样,由于温度升高而引起的蠕变速率增加,会加速体积收敛,并随后危及系统的可维护性。

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