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High temperature steam oxidation study on Zr-2.5%Nb pressure tube under simulated LOCA condition

机译:模拟LOCA条件下Zr-2.5%Nb压力管的高温蒸汽氧化研究

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Study of high temperature steam oxidation kinetics and microstructural evolution during the oxidation was carried out on the coupons of Zr-2.5%Nb pressure tube material of Indian Pressurized Heavy Water Reactors (PHWRs) in the temperature range 500-1050 °C. The oxidation kinetics derived from the weight gain measurements showed a parabolic rate law with the parabolic rate constant K_P expressed as an Arrhenius equation K_P = 10.12 × 10~8 × exp(-18664/T). Hydrogen pick up was less than 55 ppm in the samples oxidized at temperatures up to 850 °C but high (250-400 ppm) in the samples oxidized in the β phase region (900 °C and above). The microstructure of the samples oxidized above the α-Zr/β-Zr transition temperature showed from the surface inwards sequentially the presence of an oxide layer, an underlying oxygen stabilized α-Zr layer and a prior β-Zr phase containing hydride precipitates. An increase in the hardness was observed near the oxide-metal interface in the coupons oxidized above 900 °C, due to formation of oxygen stabilized α-Zr layer. Higher hardness was also observed in the base metal in the samples oxidized at 1000 °C and 1050 °C.
机译:对印度加压重水反应堆(PHWR)的Zr-2.5%Nb压力管材料的试样在500-1050°C的温度范围内进行了高温蒸汽氧化动力学和微观结构演变的研究。由重量增加测量得出的氧化动力学表现出抛物线速率定律,其抛物线速率常数K_P表示为Arrhenius方程K_P = 10.12×10〜8×exp(-18664 / T)。在高达850°C的温度下氧化的样品中氢的吸收率低于55 ppm,但在β相区域(900°C和以上)中氧化的样品中氢的吸收率较高(250-400 ppm)。在高于α-Zr/β-Zr转变温度的条件下氧化的样品的微观结构从表面向内依次显示存在氧化物层,下面的氧稳定的α-Zr层和先前的含有氢化物的β-Zr相沉淀。由于形成了氧稳定的α-Zr层,在900℃以上被氧化的试样中,在氧化物-金属界面附近观察到了硬度增加。在1000°C和1050°C氧化的样品中,贱金属中还观察到更高的硬度。

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