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Development Of Gamma Code As An Integrated Code Analyzing A Coupled Very High Temperature Gas-cooled Reactor And Hydrogen Production Plant

机译:伽马码开发,作为分析超高温气冷堆和制氢设备的综合代码

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The very high temperature gas-cooled reactor (VHTR) is envisioned as a single- or dual-purpose reactor for electricity and hydrogen generation. The concept has average coolant temperatures above 1173 K (900℃) and operational fuel temperatures above 1523 K (1250℃). The concept provides the potential for increased energy conversion efficiency and for high-temperature process heat application in addition to power generation. While all the high-temperature gas-cooled reactor concepts have sufficiently high temperatures to support process heat applications, such as hydrogen production, tar sands, oil shale, desalination, or cogenerative processes, the VHTR's higher temperatures can be detrimental to safety if a loss-of-coolant accident occurs and causes the mechanical strength degradation of the supporting graphite in the lower plenum. Following the loss of coolant through the break and coolant depressurization, air will enter the core through the break by molecular diffusion or density-gradient-driven stratified flow phenomena and ultimately by natural convection, leading to oxidation of the in-core graphite structure and fuel. The oxidation will accelerate heatup of the reactor core and the release of toxic gases (CO and CO_2) and fission products. Thus, without any effective countermeasures, a pipe break may lead to significant fuel damage and fission product release. Therefore, there was a need to develop a computer code that can be used for VHTR air ingress-related graphite oxidation analyses. Prior to the start of the Republic of Korea/United States International Nuclear Energy Research Initiative collaboration, no computer codes were available that had been sufficiently developed and validated to reliably simulate an air ingress phenomenon in the VHTR. Therefore, we have worked for the past 3 yr on developing and validating advanced computational methods for simulating air ingress in the VHTR. The Idaho National Laboratory is developing a system integration model of VHTR and hydrogen production plant. GAMMA code is being considered to be an integrated computer tool to analyze the thermal hydraulics of the coupled plant. Computer models for a high-temperature steam electrolysis (HTSE) process were developed and were implemented in an overall system process optimization code, HYSYS. The HTSE model will be implemented into GAMMA code as the integrated computer tool.rnThis paper describes the governing equations and numerical methods used in GAMMA code and presents a portion of verification of the GAMMA code along with turbomachinery models and HTSE models that will be linked to GAMMA code.
机译:极高温气冷堆(VHTR)被设想为用于发电和制氢的单用途或两用反应堆。该概念的平均冷却液温度高于1173 K(900℃),而工作燃料温度高于1523 K(1250℃)。除了发电以外,该概念还提供了提高能量转换效率和高温过程热应用的潜力。尽管所有高温气冷反应堆概念都具有足够高的温度以支持过程热应用,例如制氢,焦油砂,油页岩,脱盐或热电联产过程,但如果损失,VHTR的较高温度会对安全性造成不利影响发生冷却剂意外事故,并导致下气室中支撑石墨的机械强度降低。在冷却液通过断裂而损失并降低冷却液压力之后,空气将通过断裂通过分子扩散或密度梯度驱动的分层流动现象并最​​终通过自然对流进入断裂核心,从而导致核内石墨结构和燃料氧化。氧化将加速反应堆堆芯的升温,并释放有毒气体(CO和CO_2)和裂变产物。因此,在没有任何有效对策的情况下,管道破裂可能导致严重的燃料损坏和裂变产物释放。因此,需要开发一种可用于VHTR进气相关的石墨氧化分析的计算机代码。在大韩民国/美国国际核能研究计划合作开始之前,没有可用的计算机代码经过充分开发和验证,可以可靠地模拟VHTR中的进气现象。因此,在过去的三年中,我们一直致力于开发和验证用于模拟VHTR中空气进入的高级计算方法。爱达荷州国家实验室正在开发VHTR和制氢厂的系统集成模型。 GAMMA代码被认为是分析耦合工厂的水力热力学的集成计算机工具。开发了高温蒸汽电解(HTSE)过程的计算机模型,并在整个系统过程优化代码HYSYS中进行了实现。 HTSE模型将作为集成的计算机工具实现到GAMMA代码中。rn本文介绍了GAMMA代码中使用的控制方程和数值方法,并提供了一部分GAMMA代码验证以及与之关联的涡轮机械模型和HTSE模型的信息。 GAMMA代码。

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