Tang Liying, Yang Zheyi, Cui Xionghua, Zhang Lei, Li Jiang
Xi'an Thermal Power Research Institute Co., Ltd., Xi'an 710054, China.
Materials (Basel). 2024 Oct 18;17(20):5092. doi: 10.3390/ma17205092.
To investigate the mechanical properties and microstructure evolution of P92 steel during long-term service, the operated P92 main steam pipes from the first ultra-supercritical units in China were sectioned into samples representing various service durations and stresses (0# (as-received state, 1# (82,000 h, 67.3 MPa), 2# (85,000 h, 78.0 MPa), and 3# (100,000 h, 80.3 MPa)). Thereafter, a comprehensive assessment of their mechanical properties, including tensile strength, impact, hardness, and creep resistance, as well as a detailed microstructure analysis, was carried out. The effect of stress on the aging of material properties during operation is discussed. The results show that the circumferential stress caused by the increase in the internal steam pressure can significantly promote the creep life consumption of P92 steel, resulting in the degradation of mechanical properties and the expedited aging of the microstructure. The and of the P92 main steam pipe at room temperature and 605 °C decreased with the service time increase, reflecting the influence of stress in operation, which is expected to be used for the residual life evaluation of P92 steel. The relationship between the impact absorption energy (FATT50), Brinell hardness, and the operating time of P92 operating pipes is non-monotonic, indicating that these parameters are not sensitive indicators of material aging due to stress. The evaluation of performance degradation in P92 operating pipes due to stress-induced aging is not reliably discernible through optical metallography alone. To achieve a thorough assessment, the use of transmission electron microscopy (TEM) is essential.
为研究P92钢在长期服役过程中的力学性能和微观结构演变,将我国首台超超临界机组中运行的P92主蒸汽管道切割成代表不同服役时间和应力的样本(0#(到货状态)、1#(82,000小时,67.3兆帕)、2#(85,000小时,78.0兆帕)和3#(100,000小时,80.3兆帕))。此后,对其力学性能进行了全面评估,包括拉伸强度、冲击性能、硬度和抗蠕变性,以及详细的微观结构分析。讨论了应力对运行过程中材料性能老化的影响。结果表明,内部蒸汽压力增加引起的周向应力可显著促进P92钢的蠕变寿命消耗,导致力学性能退化和微观结构加速老化。P92主蒸汽管道在室温及605℃下的 和 随服役时间增加而降低,反映了运行中应力的影响,有望用于P92钢的剩余寿命评估。P92运行管道的冲击吸收能量(FATT50)、布氏硬度与运行时间之间的关系是非单调的,表明这些参数不是应力导致材料老化的敏感指标。仅通过光学金相法无法可靠地辨别P92运行管道因应力诱导老化导致的性能退化。为进行全面评估,使用透射电子显微镜(TEM)至关重要。