Validation of RELAP5/MOD3.4 for Flashing-Induced Instabilities in a Natural Circulation Loop

Yifan Xu, M. Peng, G. Xia, Yanan Zhao
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Abstract

This paper aims to validate the effectiveness of the widely used Relap5 code in simulating two-phase natural circulation, and its capability to predict flashing-induced instabilities. The RELAP5 code is validated against experimental data from the NMR test facility, which was designed to investigate the flow instability for a BWR-type novel modular reactor (NMR). The simulations by RELAP5/MOD3.4 code had been performed under various conditions by changing system pressure, core inlet subcooling, core inlet flow resistance, and core heat power etc. The flow stability for a certain operating condition could be determined from the time trace profile of the loop natural circulation flow rate. The results showed that the simulated mass flow rate increased with increasing core inlet temperature, reproducing the experimental trend. And the maximum error between the experimental data and the calculated results is within 10%. The predicted natural circulation dimensionless numbers, the phase change number and inlet subcooling number, also had a good agreement with the experimental data. In general, the RELAP5 code is able to simulate flashing-induced instability and density wave oscillations, which occurred in the natural circulation test facility at low pressures. However, flashing tends to be suppressed at a higher pressure (400kPa). And the enlargement of core inlet resistance coefficient can also have a positive impact on natural circulation system stability.
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RELAP5/MOD3.4对自然循环回路闪变不稳定性的验证
本文旨在验证广泛使用的Relap5代码在模拟两相自然循环中的有效性,以及其预测闪蒸引起的不稳定性的能力。RELAP5代码通过NMR测试设备的实验数据进行了验证,该设备旨在研究bwr型新型模块化反应堆(NMR)的流动不稳定性。利用RELAP5/MOD3.4软件对系统压力、堆芯入口过冷度、堆芯入口流动阻力、堆芯热功率等不同工况进行了模拟。根据回路自然循环流量的时间轨迹曲线可以确定一定工况下的流动稳定性。结果表明,随着堆芯入口温度的升高,模拟质量流量增大,与实验趋势一致。实验数据与计算结果的最大误差在10%以内。预测的自然循环无因次数、相变数和进口过冷数也与实验数据吻合较好。一般来说,RELAP5代码能够模拟在低压下自然循环测试设施中发生的闪变不稳定和密度波振荡。然而,在较高的压力(400kPa)下,闪蒸倾向于被抑制。同时,岩心入口阻力系数的增大也会对自然循环系统的稳定性产生积极影响。
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