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Socket Weld Integrity in Nuclear Piping Under Fatigue Loading Condition

机译:疲劳负载条件下的核管道焊接焊接完整性

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The purpose of this paper is to evaluate the integrity of socket weld in nuclear piping under the fatigue loading. The integrity of socket weld is regarded as a safety concern in nuclear power plants because many failures have been world-widely reported in the socket weld. Recently, socket weld failures in the chemical and volume control system (CVCS) and the primary sampling system (PSS) were reported in Korean nuclear power plants. The root causes of socket weld failures were known as the fatigue due to the pressure and/or temperature loading transients and the vibration during the plant operation. The ASME Boiler and Pressure Vessel (B & PV) Code Sec. III requires 1/16 inch gap between the pipe and fitting in the socket weld with the weld leg size of 1.09t_1, where t_1 is the pipe wall thickness. Many failure cases, however, showed that the gap requirement was not satisfied. In this paper, the socket weld integrity under the fatigue loading was evaluated using three-dimensional finite element analysis considering the requirements in the ASME Code. Three types of loading conditions such as the deflection due to vibration, the pressure transient ranging from P=0 to 15.51 MPa, and the thermal transient ranging from T=25 °C to 288 °C were considered. The results are as follows; (1) The socket weld is susceptible to the vibration where the vibration levels exceed the requirement in the ASME Operation and Maintenance (OM) Code [9]. (2) The effect of pressure or temperature transient load on socket weld in CVCS and PSS is not significant owing to the low frequency of transient during plant operation. (3) 'No gap' is very risky to the socket weld integrity for the systems having the vibration condition to exceed the requirement specified in the ASME OM Code and/or the transient loading condition from P=0 and T=25 °C to P=15.51 MPa and T=288 °C.
机译:本文的目的是评估疲劳负荷下核管道中插座焊缝的完整性。插座焊缝的完整性被认为是核电站的安全问题,因为许多故障都是在插座焊缝中广泛报道的。最近,在韩国核电站报道了化学和音量控制系统(CVC)和主要采样系统(PSS)中的插座焊接故障。插座焊接故障的根本原因被称为由于压力和/或温度负载瞬变和植物操作期间的振动引起的疲劳。 ASME锅炉和压力容器(B&PV)代码秒。 iii需要在管道之间的1/16英寸间隙,并在插座焊接中配合,焊接腿尺寸为1.09t_1,其中t_1是管壁厚度。然而,许多故障情况表明,不满足差距要求。在本文中,考虑到ASME代码中的要求,使用三维有限元分析评估疲劳负荷下的插座焊接完整性。三种类型的装载条件,例如由于振动引起的偏转,从P = 0到15.51MPa的压力瞬变,并且考虑了从T = 25℃的热瞬态范围到288℃。结果如下; (1)插座焊缝易受振动的影响,其中振动水平超过ASME操作和维护(OM)代码[9]。 (2)由于工厂运行期间,由于工厂操作期间的瞬态频率低,压力或温度瞬态载荷对插座焊接的影响并不显着。 (3)'没有间隙'对于具有振动条件的系统的套接字焊接完整性,以超过ASME OM代码中指定的要求和/或来自P = 0的瞬态加载条件和T = 25°C至P = 15.51 MPa和T = 288°C。

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