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Application of Numerical Simulation on the Manufacturing Process Qualification of Nuclear Power Plant Steam Generator Tube-sheet

机译:数值模拟在核电站蒸汽发生器管板制造工艺鉴定中的应用

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摘要

Nuclear power plant key parts-steam generator (SG) tube sheet forging operate in harsh environment, so it has high requirements for internal quality. According to RCC-M specification requirements (take CPR1000 reactor type for example), the manufacturer should carry out workshop qualification and part process qualification before delivery product manufacturing. It is commonly used that centre compaction process and conical plate upsetting process regard as two kinds of large forging upsetting ways. The numerical analogue simulation has been carried out on nuclear power large tube sheet forgings using France Forge simulation software. The results show that: when the same pressure size, 3-direction compressive stress in the core of the billet always exist in the process of upsetting using centre pressing process, and the strain create in the central of the billet, but stagnant zone exist on the bottom and end plane; tensile stress in the core of the billet always exist in the process of upsetting using conical plate upsetting process, it will force the billet that contact with conical plate to deform, so eliminate stagnant zone, but effective deformation don’t produce in the central of the billet. The conical plate continue press for conical plate upsetting process, tensile stress in the core of the billet disappear, and then gradually change into pressure stress, then tensile stress is generated at the bottom, finally tensile stress disappear and 3-direction compressive stress exist in the core of the billet.
机译:核电厂的关键零件蒸汽发生器(SG)管板锻件在恶劣的环境中运行,因此对内部质量有很高的要求。根据RCC-M规范要求(例如CPR1000电抗器类型),制造商应在交付产品制造之前执行车间鉴定和零件工艺鉴定。中心压实工艺和锥形板up粗工艺通常被视为两种大型锻件up粗方式。使用France Forge仿真软件对核电大型管板锻件进行了数值模拟仿真。结果表明:当压力大小相同时,在中心压制过程中,setting坯的中心始终存在三向压缩应力,并在坯坯的中心产生应变,但在中心存在停滞区。底面和端面;锥形板up粗工艺在up粗过程中始终存在坯料芯中的拉应力,它将迫使与锥形板接触的坯料变形,从而消除了停滞区,但在铸坯中心未产生有效变形。钢坯。锥形板继续受压以进行锥形板up粗加工,坯料芯中的拉应力消失,然后逐渐转变为压力应力,然后在底部产生拉应力,最后拉应力消失,并存在三向压缩应力。钢坯的核心。

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