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Numerical and experimental investigations on the temperature field in local post weld heat treatment of 9 % Cr heat resistant steel welded pipes

机译:9%Cr耐热钢焊接管局部焊接热处理温度场的数值和实验研究

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Local post weld heat treatment (PWHT) is usually employed in the field fabrication of large-sized 9% Cr heat resistant steel welded components, such as power plant boilers. Temperature field in local PWHT plays critical roles in both achieving PWHT purposes and avoiding detrimental effects of local heating. The objective of this research is to quantify the effects of local PWHT parameters and pipe dimensions on the temperature field in local PWHT of 9% Cr heat resistant steel pipes and finding the optimal process window to engineer desired weld properties. Finite element (FE) models were developed to simulate the temperature field of local PWHT and carefully verified by eight experiments using four 9% Cr heat resistant steel pipes with typical dimensions employed in ultra-supercritical (USC) boilers. The results show that the through-thickness temperature gradient is severely aggravated with the increase of pipe diameter and wall thickness, which will lead to inadequate tempering in the weld metal close to the inside surface of the pipe. To enlarge heated band (HB) width is an efficient way to mitigate the through-thickness temperature gradient, and the axial temperature gradient can be effectively relieved by augmenting gradient control band (GCB) width. The through-thickness temperature gradient is the major factor in implementing successful local PWHT for 9% Cr heat resistant steel pipes. A much smaller process window is found in 9% Cr heat resistant steel pipes due to their higher PWHT temperatures and narrower range of permissible PWHT temperatures.
机译:局部焊后热处理(PWHT)通常用于电厂锅炉等大型9%Cr耐热钢焊接部件的现场制造。局部焊后热处理中的温度场在实现焊后热处理目的和避免局部加热的有害影响方面起着关键作用。本研究的目的是量化局部焊后热处理参数和管道尺寸对9%Cr耐热钢管局部焊后热处理温度场的影响,并找到最佳工艺窗口来设计所需的焊接性能。开发了有限元(FE)模型来模拟局部焊后热处理(PWHT)的温度场,并通过八个实验进行了仔细验证,这些实验使用了超超临界(USC)锅炉中使用的四根典型尺寸的9%Cr耐热钢管。结果表明,随着管道直径和壁厚的增加,贯穿厚度的温度梯度严重加剧,这将导致靠近管道内表面的焊缝金属回火不足。增大加热带(HB)宽度是减小贯穿厚度温度梯度的有效方法,增大梯度控制带(GCB)宽度可以有效地减小轴向温度梯度。对于9%Cr耐热钢管,贯穿厚度的温度梯度是成功实施局部焊后热处理的主要因素。在9%Cr耐热钢管中,由于其较高的焊后热处理温度和较窄的允许焊后热处理温度范围,其工艺窗口小得多。

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