基于一维程序的空冷自然循环特性研究

Study on Characteristics of Air-cooled Natural Circulation Based on One-dimensional Program

  • 摘要: 空冷余热排出系统以空气为最终热阱,具有系统设备简单、长期运行可靠等优点。部分核电机组利用空冷余热排出系统将热量导出,实现在冷却剂丧失事故及停堆后衰变热排出等工况下堆芯温度控制。为研究空冷余热排出系统自然循环的耦合换热特性和不同保温层结构特性对余热排出系统流动换热能力的影响,本文提出了采用双层保温结构卧式压力容器的空冷余热排出系统,基于矢量法判断辐射换热的遮蔽效应,实现辐射换热与导热、对流换热以及换热与流动之间的耦合,开发了一维分析程序,并借助实验数据进行了验证。研究结果表明,适当提高压力容器外壁面温度、保温层发射率和环腔宽度以及降低保温层等效热阻,均有助于提高系统余热排出能力,同时系统余热排出能力随环境温度的升高而减弱。

     

    Abstract: Air-cooled microreactor is a highly integrated system with the advantages of easy transportation and reliable operation, which can meet the demand for energy in remote areas. The heat removal capacity of the non-energetic air-cooled waste heat removal system is an important indicator for evaluating the performance and safety of air-cooled microreactors. It uses air as the final heat trap and has the advantages of simple system equipment and reliable long-term operation. Some nuclear power units utilize the air-cooled waste heat removal system to export heat and control the core temperature under the conditions of coolant loss accident and decay heat removal after reactor shutdown. The purpose of this paper is to study the coupled heat transfer characteristics of the natural cycle of the air-cooled waste heat removal system and the influence of different insulation layer structural characteristics on the flow heat transfer capacity of the waste removal system, and to propose an air-cooled waste heat removal system using a horizontal pressure vessel with a double-layer thermal insulation structure, analyze the heat-carrying process of the waste heat removal system, put forward the corresponding assumptions in order to simplify the solving region and the physical model, and determine the masking effect of the radiant heat transfer based on the vectorial method, supplemented by reasonable constitutive equations and mathematical models. The coupling between radiative heat transfer and thermal conductivity, convective heat transfer and heat transfer and flow of the waste heat removal system was realized by supplementing the reasonable constitutive equations and mathematical model to complete the closure of the control equations, and a one-dimensional analysis program was developed to simulate the flow and heat transfer characteristics of the waste heat removal system, and the accuracy of the model was verified by using the experimental data, and based on the program, the outer flow channel closure (thermal insulation) and opening (insulation boundary condition) and the outer flow channel closure (insulation boundary condition) and opening (insulation boundary condition) of the waste heat removal system were discussed in the boundary condition of the fixed-wall temperature of the pressure vessel. Based on this program, the effects of closed (insulation boundary conditions) and open (insulation non-insulation boundary conditions) outer flow channel on the accuracy of the model calculation were discussed, and the relationship between the natural circulation characteristics and the change of the outer wall temperature of the pressure vessel, the emissivity, the width of the annular cavity, the ambient temperature, and the equivalent thermal resistance of the insulation layer were calculated. The results of the study show that appropriately increasing the outer wall temperature of the pressure vessel, the emissivity of the insulation layer and the width of the annular cavity, and appropriately decreasing the equivalent thermal resistance of the insulation layer can help to improve the system’s waste heat removal capacity, and the system’s waste heat removal capacity decreases with the increase in ambient temperature.

     

/

返回文章
返回