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NONLINEAR ANALYSIS METHOD RESEARCH OF MULTI-BOLT CONNECTION STRUCTURE OF PRIMARY EQUIPMENT SUPPORT

机译:主设备支持的多螺栓连接结构的非线性分析方法研究

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The main equipments of the reactor coolant system include the steam generator, the reactor coolant pump, the pressurizer and the reactor coolant loop. The reactor coolant system is equipped with a steam generator for each of the two loops, and pressurizer is connected with the hot leg of loop 1 using the surge line. The main loop support system design of AP series greatly simplifies the RCS loop support system. Pressurizer supports consist of columns, lower lateral supports, upper lateral support and ring girder, and the steam generator supports consist of columns, lower lateral supports, upper lateral supports and intermediate lateral supports. Ring Girder of pressurizer consists of two semi-circular girders, vertical supports and splice connection of girder and the two half-ring girders are connected with splice connection using 11 bolts. The steam generator upper lateral support is mainly composed of bracket, snubber, pin and ubar and the ubar and the steam generator is connected via 16 bolts in the initial design. These bolts are to ensure the support junction can withstand the force and torque of various conditions of the reactor coolant system, which are important components of the main equipment support. There are large numbers of bolts in the splice connection of ring girder and ubar of upper lateral support of steam generator, and the bolts load was calculated using the uniform method in the general engineering design and analysis. During the design review it was found that the bolts load was uneven and in order to determine the non-uniformity of the bolts the finite element method was used to calculate the load on each bolt, and the resulting stress ratio was greater than 1 did not meet the requirements of the ASME Code. In this paper, the calculation method was studied and the design improvements for parts was made using the nonlinear analysis method to meet the requirements of ASME Code in the case of master supports of main equipment supports have been made good. At the same time the impact of bolts load because of gap was studied. It had very good economic benefits. The calculation and research of this paper show that the finite element method can calculate the force of bolts finely, and can get a more reasonable result than the empirical formula. It can be referred to when the multi-bolt connection structure needs to be refined, such as flange connection of important equipments and valves and flange and bolt design optimization.
机译:反应堆冷却剂系统的主要设备包括蒸汽发生器,反应堆冷却剂泵,增压器和反应堆冷却剂回路。反应堆冷却剂系统为两个回路的每一个都配备了一个蒸汽发生器,并且增压器通过喘振线与回路1的热管相连。 AP系列的主回路支持系统设计大大简化了RCS回路支持系统。增压器支撑包括柱,下部侧支撑,上部侧支撑和环形梁,而蒸汽发生器支撑由柱,下部侧支撑,上部侧支撑和中间侧支撑组成。增压器的环形大梁由两个半圆形大梁,垂直支撑和小梁的拼接连接组成,两个半环形大梁用11个螺栓通过拼接连接。蒸汽发生器的上侧支撑主要由支架,缓冲器,销和ubar组成,并且ubar,在初始设计中,蒸汽发生器通过16个螺栓连接。这些螺栓是为了确保支撑结能承受反应堆冷却剂系统各种条件下的力和扭矩,这是主要设备支撑的重要组成部分。环形梁与蒸汽发生器上侧支座的顶杆搭接处有大量的螺栓,在一般工程设计和分析中,采用统一的方法计算了螺栓的载荷。在设计审查期间,发现螺栓载荷是不均匀的,为了确定螺栓的不均匀性,使用了有限元方法来计算每个螺栓的载荷,并且所得应力比大于1时没有符合ASME规范的要求。本文研究了计算方法,并在主要设备支座的主支座已经做好的情况下,采用非线性分析方法对零件进行了设计改进,以满足ASME规范的要求。同时研究了间隙对螺栓载荷的影响。它具有很好的经济效益。算例研究表明,有限元方法可以较好地计算螺栓的受力,比经验公式可以获得更合理的结果。在需要完善多螺栓连接结构时可以参考,例如重要设备和阀门的法兰连接以及法兰和螺栓设计的优化。

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