首页> 外文会议>International Symposium on Computer-Aided Welding Engineering(CAWE 2006) vol.1; 20061019-22; Jinan(CN) >Numerical Simulation of Carbide NbC Liquating Behavior in Heat-Affected-Zone during Welding of Superalloy
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Numerical Simulation of Carbide NbC Liquating Behavior in Heat-Affected-Zone during Welding of Superalloy

机译:高温合金焊接过程中热影响区碳化物NbC液化行为的数值模拟

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摘要

To predict the propensity of superalloy to heat-affected-zone (HAZ) liquation cracking, FORTRAN procedures were developed based on heat transfer and mass diffusion model and the constitutional liquation of precipitate (NbC) at grain boundaries was simulated numerically. The results show that with the increase of the rate of welding thermal cycle, the dissolution of precipitate prior to liquation decreases and the thickness of liquid film caused by constitutional liquation increases. Higher heating rate inhibits the further melting of adjacent matrix and the subsequent solidification of liquid by liquid-to-γ mode, then creates a liquid film of greater thickness when temperature is down to the eutectic point, which will promote HAZ micro-fissuring. Finally the conclusions drawn from simulation were verified indirectly by hot ductility tests on a low-expansion superalloy.
机译:为了预测高温合金热影响区(HAZ)液化开裂的倾向,基于传热和质量扩散模型开发了FORTRAN程序,并数值模拟了晶界处的析出物(NbC)的组成液化。结果表明,随着焊接热循环速率的增加,液化前析出物的溶解减少,结构液化引起的液膜厚度增加。较高的加热速率会抑制相邻基质的进一步熔化,并阻止随后的液-液-γ模式固化,然后在温度降至共晶点时形成较大厚度的液膜,这将促进热影响区的微裂变。最后,通过对低膨胀高温合金的热延展性试验间接验证了从模拟得出的结论。

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