首页> 外文会议>International conference on structural mechanics in reactor technology;SMiRT 19 >Innovative Design and Analysis of Support Arrangement for Double Walled Tank Containing Primary Sodium
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Innovative Design and Analysis of Support Arrangement for Double Walled Tank Containing Primary Sodium

机译:含钠的双壁储罐支撑布置的创新设计与分析。

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In Prototype Fast Breeder Reactor, an on line purification circuit for primary sodium is provided. The purification circuit comprises an electromagnetic pump, priming tank, economizer and cold traps. The priming tank of purification circuit is located in the down streamside of its electro magnetic pump. Since it contains radioactive primary sodium, it is not freely accessible. Priming tank is a vertical tank with torispherical dished ends on both top and bottom. The total weight of priming tank, including the sodium in it is 1.6 t. It is provided with double envelope to avoid release of radioactive sodium in reactor control building in case of leak in tank. Nitrogen is filled in annular space to provide an inert atmosphere. The material of the priming tank and the double envelope is SS 304 LN. The normal operating temperature of the priming tank is 400° C. During SGDHR the temperature rises to 540° C and reduces to 200° C during fuel handling condition. The tank is insulated to reduce the heat loss to surroundings. This paper aims at arriving at a support arrangement for the tank with the features (i) weight shall be transferred to support from main shell (ii) main shell shall be covered fully by double envelope, (iii) split flange with a conical shell in between the double envelope and support flange from thermal stress consideration, (iv) temperature at bolt location is less than 70° C and (v) easy manufacturing.To meet the above features, a conical support shell is designed to support the priming tank. The conical support shell is attached to the priming tank through a ring. The double envelope is also attached to the ring. Inside diameter and shell thickness of the tank main shell are 750 mm and 8 mm respectively. Based on parametric study, the height of the cone and height of insulated portion of cone from the junction are arrived at. This supporting arrangement is analysed for dead load and thermal loads during normal operation, fuel handling condition and SGDHR condition. Design check for the tank is carried out as per RCC-MR 2002 procedure for class-1 component. Two governing events namely loss of steam water system occurring 47 times in design life and the offsite power failure occurring 160 times in design life are considered for the analysis. The operating time for the tank at 540° C during SGDHR (corresponding to the two events) is ~1480 h. Since this exceed the creep cross over curve limit of RCC-MR, the hot junction between the cone and cylinder is analysed for creep fatigue damage.Parametric study is carried out using finite element model with axi-symmetric thin shell element in CAST-3M FE software. The cylindrical shell of priming tank, along with the double envelope and support shell and flange are modeled. After finalizing the height of the cone and insulation height, detailed analysis using 8 noded axi-symmetric solid elements is carried out to get the peak stresses at the junctions needed for creep-fatigue damage evaluation. The fatigue damage is found to be negligible. The creep damage at the junction of conical support shell to ring attached to main tank is found to be 0.074, which is acceptable. The structural integrity of proposed configuration is thus confirmed by analysis.
机译:在原型快速繁殖反应堆中,提供了用于初级钠的在线纯化电路。净化回路包括电磁泵,注油箱,省煤器和冷阱。净化回路的注油箱位于其电磁泵的下游。由于它含有放射性伯钠,因此不能自由获取。底漆罐是一种立式罐,其顶部和底部均具有球形的碟形末端。灌注罐的总重量(包括其中的钠)为1.6吨。它配备有双层外壳,以防在罐泄漏的情况下避免在反应堆控制建筑物内释放放射性钠。氮气填充在环形空间中,以提供惰性气氛。灌注箱和双层外壳的材料为SS 304 LN。灌注箱的正常工作温度为400°C。在SGDHR期间,温度升高到540°C,在燃油处理条件下降低到200°C。储罐是隔热的,以减少对周围环境的热量散失。本文旨在达到一种具有以下特征的储罐支撑布置:(i)将重量从主壳体转移到支撑上;(ii)主壳体应完全被双包壳覆盖;(iii)带有锥形壳体的剖分式法兰。考虑到热应力,在双包络线和支撑法兰之间的位置;(iv)螺栓位置的温度低于70°C;并且(v)易于制造。 为了满足上述特征,设计了一个圆锥形的支撑壳来支撑注油箱。圆锥形支撑壳通过一个环连接到注油箱。双信封也附在戒指上。储罐主壳体的内径和壳体厚度分别为750毫米和8毫米。根据参数研究,得出圆锥体的高度和圆锥体离结点的绝缘部分的高度。分析该支撑装置的正常运行期间的静载荷和热载荷,燃料处理状况和SGDHR状况。储罐的设计检查是根据RCC-MR 2002程序对1级组件进行的。分析中考虑了两个主要事件,即设计寿命中发生47次的蒸汽水系统损失和设计寿命中发生160次的异地停电。在SGDHR期间(对应于两个事件),油箱在540°C下的工作时间约为1480小时。由于这超出了RCC-MR的蠕变交叉曲线极限,因此将分析圆锥体和圆柱体之间的热连接处是否存在蠕变疲劳损伤。 在CAST-3M FE软件中使用带有轴对称薄壳单元的有限元模型进行参数研究。灌注箱的圆柱壳,双层外壳,支撑壳和法兰均已建模。在确定了锥体的高度和绝缘高度之后,使用8个节点的轴对称固体元素进行了详细分析,以获取蠕变疲劳损伤评估所需的接合处的峰值应力。发现疲劳损伤可以忽略不计。发现圆锥形支撑壳与连接到主油箱的环的连接处的蠕变损伤为0.074,这是可以接受的。因此,通过分析确认了所提出构型的结构完整性。

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