首页> 外文会议>ASME Pressure Vessels and Piping conference >DEVELOPMENT OF A TWO-WAY FLUID STRUCTURE COUPLING FOR STUDYING POWER TRANSFORMERS SUBJECTED TO INTERNAL DYNAMIC OVERPRESSURES
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DEVELOPMENT OF A TWO-WAY FLUID STRUCTURE COUPLING FOR STUDYING POWER TRANSFORMERS SUBJECTED TO INTERNAL DYNAMIC OVERPRESSURES

机译:研究内部动态超压的电力变压器的双向流固耦合

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Within the highly competitive electricity market, companies often reduce costs by using aging equipment and by overloading their transformers. These conditions substantially increase the risk of transformer explosions. These incidents are caused by electrical arcs occurring within oil filled transformers. The arc, within milliseconds, vaporizes the surrounding oil and the generated gas is pressurized because the liquid inertia prevents its expansion. The pressure difference between the gas bubble and the surrounding liquid oil generates a dynamic pressure peak, which interacts with the transformer. The reflections generate pressure waves that lead to transformer rupture since transformers are not designed to withstand these pressures. This results in dangerous explosions, expensive damages and possible environmental pollution. Despite all these risks, and contrary to usual pressure vessels, no specific standard has been set to protect sealed transformer tanks subjected to large dynamic overpressures. In order to study transformer rupture and its prevention, experiments have been performed on transformers. However, safely carrying out live tests is difficult and expensive. In order to limit the costs, to reduce the risks and to gain insight on these phenomena numerical simulation tools are necessary. First a computational fluid dynamics solver was developed; it is based on an unsteady compressible two-phase flow model, the equations parameterizing the system are solved using a 3D finite volume method. Previous papers showed the ability of the hydrodynamic tool to study in detail ⑴ dynamic pressure wave propagation inside transformer oil that leads to transformer rupture and ⑵ depressurization induced by efficient protection means. Later, the hydrodynamic numerical tool has been one-way coupled with CodeASTER, a dynamic structural analysis package, to create a fluid structure interaction (FSI). Preliminary results were shown and this strategy has been applied to the study of more complex electrical equipment. The present paper's goal is to illustrate the development and application of a two-way coupling for the aforementioned fluid structure interaction strategy. The methodology for the enhanced coupling is explained and the simulation results about the structural behavior caused by these dynamic pressures are presented.
机译:在竞争激烈的电力市场中,公司经常通过使用老化的设备和使变压器过载来降低成本。这些条件大大增加了变压器爆炸的危险。这些事件是由充油变压器内产生的电弧引起的。电弧在几毫秒内蒸发了周围的油,产生的气体被加压,因为液体惯性阻止了它的膨胀。气泡和周围的液体油之间的压力差会产生一个动态压力峰值,该峰值会与变压器相互作用。反射会产生压力波,导致变压器破裂,因为变压器的设计不能承受这些压力。这会导致危险的爆炸,昂贵的损失以及可能的环境污染。尽管存在所有这些风险,并且与通常的压力容器相反,但没有设置特定的标准来保护承受较大动态超压的密封变压器油箱。为了研究变压器的破裂及其预防,已经对变压器进行了实验。但是,安全地进行实时测试是困难且昂贵的。为了限制成本,降低风险并获得对这些现象的了解,必须使用数值模拟工具。首先,开发了一种计算流体动力学求解器。它基于非定常可压缩两相流模型,使用3D有限体积法求解参数化系统的方程。先前的论文显示了流体动力学工具能够详细研究⑴动压波在变压器油中的传播,从而导致变压器破裂和⑵通过有效保护措施引起的降压。后来,将流体力学数值工具与动态结构分析软件包CodeASTER进行了单向耦合,以创建流体结构相互作用(FSI)。显示了初步结果,该策略已应用于更复杂的电气设备的研究。本文的目的是说明用于上述流体结构相互作用策略的双向耦合的开发和应用。解释了增强耦合的方法,并给出了由这些动压力引起的结构行为的仿真结果。

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