Effect of Pre-Heat Treatment on Hydrogen Concentration Behavior of y-Grooved Weld Joint Based on a Coupled Analysis of Heat Transfer-Thermal Stress-Hydrogen Diffusion

G. Ozeki, A. Yokobori, T. Ohmi, T. Kasuya, N. Ishikawa, S. Minamoto, M. Enoki
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Abstract

Hydrogen induced cracking occurs at the welded position of the structure due to concentration of hydrogen during cooling process of welding. In order to prevent the hydrogen induced cracking, Pre-Heat Treatment (PHT) is conducted. However, since PHT takes high cost, it is important to find out the suitable PHT condition based on computational mechanics. One of authors has been proposed α multiplication method which magnifies the hydrogen driving term in the diffusion equation to find out detailed behaviors of hydrogen concentration around a local stress field. In this study, in order to clarify the effect of PHT on hydrogen diffusion and concentration behaviors, a coupled analysis of heat transfer – thermal stress – hydrogen diffusion combining with α multiplication method was conducted for the model of y-grooved weld joint under various PHT conditions. This analytical method is as follows. At first, heat transfer analysis was conducted by finite difference method (FDM). And, temperature at each grid obtained by heat transfer analysis was interpolated to each node for thermal stress analysis by the finite element method (FEM). Then, thermal stress was calculated for each node using the interpolated temperature. After that, thermal stress obtained by this analysis was interpolated to each grid point for analysis of hydrogen diffusion by FDM. Using the interpolated thermal stress, stress driven hydrogen diffusion analysis was performed. By conducting sequentially these calculations mentioned above, hydrogen diffusion and concentration behaviors during cooling process were analyzed. The temperature of weld metal was 1500°C. And at initial state, hydrogen was introduced in weld metal. Thermal stress analysis was conducted under plane strain condition. As a result, hydrogen diffusion and concentration behaviour at weld joint during cooling process was found to be typical at the site of maximum hydrostatic stress and to be affected not only the gradient of hydrostatic stress but also the gradient of diffusion coefficient induced by temperature distribution.
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基于传热-热应力-氢扩散耦合分析的预处理对y型坡口焊缝氢浓度行为的影响
在焊接冷却过程中,由于氢气的富集,导致结构的焊接部位产生氢致开裂。为了防止氢致开裂,进行了预热处理。然而,由于PHT的成本较高,从计算力学角度确定合适的PHT条件非常重要。作者提出了放大扩散方程中氢驱动项的α乘法法,以求得局部应力场周围氢浓度的详细行为。为了明确PHT对氢气扩散和浓度行为的影响,本研究结合α乘法法对不同PHT条件下的y型坡口焊缝模型进行了传热-热应力-氢气扩散的耦合分析。这种分析方法如下。首先采用有限差分法(FDM)进行传热分析。并将传热分析得到的各网格温度插值到各节点,进行有限元热应力分析。然后,利用插值后的温度计算各节点的热应力。然后将分析得到的热应力插值到每个网格点上,进行FDM氢气扩散分析。利用插值热应力,进行了应力驱动氢扩散分析。依次进行上述计算,分析了冷却过程中氢的扩散和浓度行为。焊缝温度为1500℃。在初始状态下,焊缝金属中引入氢。进行了平面应变条件下的热应力分析。结果表明,焊接接头冷却过程中氢气的扩散和浓度行为在静水应力最大的位置是典型的,并且不仅受静水应力梯度的影响,还受温度分布引起的扩散系数梯度的影响。
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