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RELAP5-3D Thermal Hydraulics Computer Program Analysis Coupled with DAKOTA and STAR-CCM+ Codes

机译:RELAP5-3D热力学计算机程序分析,结合DAKOTA和STAR-CCM +代码

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摘要

RELAP5-3D has been coupled with both DAKOTA and STAR-CCM+ in order to expand the capability of the thermal-hydraulic code and facilitate complex studies of desired systems. In the first study, RELAP5-3D was coupled with DAKOTA to perform a sensitivity study of the South Texas Project (STP) power plant during steady-state and transient scenarios. The coupled software was validated by analyzing the simulation results with respect of the physical expectations and behavior of the power plant, and thermal-hydraulic parameters which caused greatest sensitivity where identified: inlet core temperature and reactor thermal power. These variables, along with break size and discharge coefficients, were used for further investigation of the sensitivity of the RELAP5-3D LOCA transient simulation under three difference cases: two inch break, six inch break, and guillotine break. Reactor thermal power, core inlet temperature, and break size were identified as producing the greatest sensitivity; therefore, future research would include uncertainty quantification for these parameters. In the second study, a small scale experimental facility, designed to study the thermal hydraulic phenomena of the Reactor Cavity Cooling System (RCCS) for a Very High Temperature Reactor (VHTR), was used as a model to test the capabilities of coupling Star-CCM+ and RELAP5-3D. This chapter discusses the capabilities and limitations of the STAR-CCM+/RELAP5-3D coupling, and a simulation, on the RCCS facility, was performed using STAR-CCM+ to study the flow patterns where expected complex flow phenomena occur and RELAP5-3D for the complete system. The code showed inability to perform flow coupling simulations and it is unable, at this time, to handle closed loop systems. The thermal coupling simulation was successful and showed congruent qualitative results to physical expectations. The locations of large fluid vortices were located specifically in the pipes closest to the inlet of the bottom manifold. In conclusion, simulations using coupled codes were presented which greatly improved the capabilities of RELAP5-3D stand-alone and computational time required to perform complex thermal-hydraulic studies. These improvements show greatly benefit for industrial applications in order to perform large scale thermal-hydraulic systems studies with greater accuracy while minimizing simulation time.
机译:RELAP5-3D已与DAKOTA和STAR-CCM +结合使用,以扩展热工液压代码的功能并促进所需系统的复杂研究。在第一项研究中,RELAP5-3D与DAKOTA结合使用,对稳态和瞬态情况下的南德克萨斯项目(STP)电厂进行了敏感性研究。通过分析仿真结果对耦合软件的有效性进行了验证,这些仿真结果涉及电厂的物理期望和性能以及识别时引起最大灵敏度的热工参数(进口堆芯温度和反应堆热功率)。这些变量以及断裂尺寸和放电系数被用于进一步研究RELAP5-3D LOCA瞬态仿真在三种不同情况下的敏感性:两英寸断裂,六英寸断裂和断头台断裂。反应堆的热功率,堆芯入口温度和破碎尺寸被确定为产生最大的灵敏度。因此,未来的研究将包括这些参数的不确定性量化。在第二项研究中,设计了一个小型实验设施,用于研究超高温反应堆(VHTR)的反应堆腔冷却系统(RCCS)的热水力现象,以此为模型来测试Star- CCM +和RELAP5-3D。本章讨论STAR-CCM + / RELAP5-3D联轴器的功能和局限性,并使用STAR-CCM +在RCCS设施上进行了仿真,以研究预期的复杂流动现象发生的流型和RELAP5-3D完整的系统。该代码显示无法执行流耦合仿真,并且目前无法处理闭环系统。热耦合模拟是成功的,并显示出与物理预期一致的定性结果。大型流体涡旋的位置专门位于最靠近底部歧管入口的管道中。总之,提出了使用耦合代码进行的仿真,该仿真极大地提高了RELAP5-3D独立的功能以及执行复杂的热工液压研究所需的计算时间。这些改进为工业应用提供了极大的好处,以便能够以更高的精度执行大规模的热工液压系统研究,同时最大程度地缩短仿真时间。

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    Rodriguez Oscar;

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  • 年度 2013
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