根据单轴及多轴实验数据,运用ANSYS有限元方法,对高温P91钢蠕变进行研究。基于用户可编程特性,将含有损伤-硬化蠕变模型的程序写入ANSYS,该模型对含有第三区蠕变的模拟取得较好的效果。研究了在高温下金属材料多轴蠕变的骨点应力(Skelet...根据单轴及多轴实验数据,运用ANSYS有限元方法,对高温P91钢蠕变进行研究。基于用户可编程特性,将含有损伤-硬化蠕变模型的程序写入ANSYS,该模型对含有第三区蠕变的模拟取得较好的效果。研究了在高温下金属材料多轴蠕变的骨点应力(Skeletal Point Stress)以及断裂时间与单轴蠕变的关系。对高温高压状态下弯头发生蠕变效应进行分析,指出蠕变效应对弯头部位应力变化的影响,通过对骨点应力的分析,得出弯头部件蠕变损耗的变化情况。研究结果为正确预测高温高压弯头部件的剩余寿命提供了理论依据。展开更多
Using age adjusted effective modulus(AAEM)method,creep of concrete filled steel tube(CFST)member was formulated considering of creep coefficient and aging coefficient.Ten CFST specimens were tested including eight for...Using age adjusted effective modulus(AAEM)method,creep of concrete filled steel tube(CFST)member was formulated considering of creep coefficient and aging coefficient.Ten CFST specimens were tested including eight for creep and two for shrinkage.The experimental result was compared with the computed result using AAEM in which the creep coefficient was taken from calibration of ACI model based on experimental result on sealed concrete,and aging coefficient was supplied from relaxation test on sealed concrete specimen.Furthermore,the creep of CFST member was analyzed using author's own subroutine to input concrete properties through user programmable feature(UPF)in ANSYS software.Comparison was made on authors' own experimental database,some existing experimental results,and results from AAEM and numerical analysis.Finally,the conditions of applicability of AAEM method are put forward,and numerical approach to compute creep of CFST specimen is delineated.展开更多
文摘根据单轴及多轴实验数据,运用ANSYS有限元方法,对高温P91钢蠕变进行研究。基于用户可编程特性,将含有损伤-硬化蠕变模型的程序写入ANSYS,该模型对含有第三区蠕变的模拟取得较好的效果。研究了在高温下金属材料多轴蠕变的骨点应力(Skeletal Point Stress)以及断裂时间与单轴蠕变的关系。对高温高压状态下弯头发生蠕变效应进行分析,指出蠕变效应对弯头部位应力变化的影响,通过对骨点应力的分析,得出弯头部件蠕变损耗的变化情况。研究结果为正确预测高温高压弯头部件的剩余寿命提供了理论依据。
文摘Using age adjusted effective modulus(AAEM)method,creep of concrete filled steel tube(CFST)member was formulated considering of creep coefficient and aging coefficient.Ten CFST specimens were tested including eight for creep and two for shrinkage.The experimental result was compared with the computed result using AAEM in which the creep coefficient was taken from calibration of ACI model based on experimental result on sealed concrete,and aging coefficient was supplied from relaxation test on sealed concrete specimen.Furthermore,the creep of CFST member was analyzed using author's own subroutine to input concrete properties through user programmable feature(UPF)in ANSYS software.Comparison was made on authors' own experimental database,some existing experimental results,and results from AAEM and numerical analysis.Finally,the conditions of applicability of AAEM method are put forward,and numerical approach to compute creep of CFST specimen is delineated.