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PRESSURE VARIATION IN LOW PRESSURE SIDE OF SHELL AND TUBE HEAT EXCHANGER AFTER TUBE RUPTURE

机译:管破裂后壳和管换热器低压侧的压力变化

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This paper presents an analytical algorithm to determine the pressure variation on the Low Pressure side of a Shell and Tube Heat Exchanger (STHE) after a tube rupture and its validation using CFD simulation. STHEs are often used for exchanging heat between high-pressure (HP) and low-pressure (LP) fluids in the chemical process industry. In case tube rupture occurs in a STHE having a large pressure difference between HP and LP side, there is a risk of release of significant quantity of fluid from the HP side to the LP side. The consequent pressure build-up can lead to the failure of LP side pressure envelope. Generally, design pressure of the LP side is about 10-20% higher than the operating pressure of the LP side fluid, but well below the operating pressure on the HP side. There is no well-established methodology to design the LP side to withstand sudden release of high pressure fluid following a tube rupture. Three dimensional analyses were carried out using Computational Fluid Dynamics to study the pressure variation in LP side (shell side) of a Gas Cooler and to validate the results obtained from the analytical algorithm. It has been observed that the pressure on the LP side exceeds the design pressure instantaneously due to generation of a pressure pulse after tube rupture. This may lead to damage of LP envelope (shell) and internal structure of STHE.
机译:本文提出了一种解析算法,用于确定管破裂后壳管式热交换器(STHE)低压侧的压力变化,并使用CFD仿真进行验证。在化学加工行业中,STHE通常用于在高压(HP)和低压(LP)流体之间进行热交换。如果HP与LP侧之间的压力差较大的STHE中发生管破裂,则存在从HP侧向LP侧释放大量流体的风险。随之而来的压力积累会导致LP侧压力包络失效。通常,LP侧的设计压力比LP侧流体的工作压力高约10-20%,但远低于HP侧的工作压力。没有成熟的方法来设计LP侧以承受管破裂后高压流体的突然释放。使用计算流体动力学进行了三维分析,以研究气体冷却器低压侧(壳侧)的压力变化并验证从分析算法获得的结果。已经观察到,由于管破裂后产生压力脉冲,LP侧的压力瞬时超过设计压力。这可能会损坏LP外壳(外壳)和STHE的内部结构。

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