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Investigation Of Temperature And Stress Fields In Laser Cladded Coatings

机译:激光熔覆涂层的温度和应力场研究

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Temporal and spatial distributions of temperature and strain-stress have been modelled and investigated experimentally for the laser cladding process. The model corresponded to experimental conditions where the multilayer protective coatings were prepared by direct laser cladding of stellite SF6 powder on X10Cr13 chromium steel by means of a 1.2 kW CO_2 laser. For calculations the effect of base preheating, temperature dependent material properties, and also influence of time-break between cladding of the consecutive layers were taken into account. The calculated temperature fields indicated good bonding of the substrate and coating, which was in agreement with the micro-analytical test results. A decrease of the number of microcracks in the coating with an increase of substrate preheating temperature was concluded from stress calculations and confirmed in the experiment. Moreover, an increase of the cracking susceptibility with an increase of the time delay between cladding of the consecutive layers was evidenced by modelling. The best technological results were obtained for the case of single-layer coatings prepared on a preheated substrate and for higher coating thickness required the processing of consecutive layers with a possibly short time delay is advisable due to effective usage of laser beam energy for preheating and lower temperature gradients.
机译:温度和应变应力的时间和空间分布已被建模和实验研究激光熔覆过程。该模型对应于实验条件,在该条件下,通过用1.2 kW CO_2激光在X10Cr13铬钢上直接熔覆司太立SF6粉末形成多层保护涂层。为了进行计算,考虑了基础预热的影响,与温度相关的材料特性以及连续层的包层之间的时间间隔的影响。计算出的温度场表明基材和涂层之间的良好粘合,这与微分析测试结果一致。从应力计算得出结论,随着基材预热温度的升高,涂层中微裂纹数量的减少,并在实验中得到证实。而且,通过建模证明了裂纹敏感性随着连续层的包覆之间的时间延迟的增加而增加。对于在预热的基材上制备单层涂层的情况,以及对于要求更高涂层厚度的情况,获得最佳技术效果是可取的,因为有效利用激光束能量进行预热,并且较低的延迟时间,建议对连续的层进行处理(可能会有较短的时间延迟)温度梯度。

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