欢迎登录材料期刊网

材料期刊网

高级检索

为了深入研究浇注式沥青混凝土沥青混合料在温度、应力耦合作用下的三轴蠕变特性,采用MTS815试验机开展了不同温度、不同应力水平和不同围压条件下的三轴蠕变试验,获取了相应的蠕变曲线,并将改进的Burgers模型推广到三维形式,用来描述浇注式沥青混凝土的蠕变本构关系。研究结果表明:浇注式沥青混凝土蠕变曲线的第一阶段不明显,这反映出其内部空隙率较低;蠕变变形值随温度升高和偏应力水平增大而明显增大,这反映出高温重载共同作用是浇注式沥青混凝土路面出现车辙的决定性因素;蠕变变形随围压增大略有减小,围压对蠕变变形有抑制作用,三轴蠕变试验获得的蠕变规律较之单轴蠕变试验更能反映实际受力过程中的变形规律,三维的改进Burgers模型能够准确反映热力耦合作用下浇注式沥青混凝土的蠕变特性。

In order to further research the triaxial creep properties of bituminous mixture of gussasphalt concrete under the effect of temperature and stress coupling , MTS815 testing machine was adopted to carry out triaxial creep test under circumstance of different temperatures , different stress levels and confining pressures , and the corresponding creep curves were obtained , and generalizes the modified Burgers model to three dimensional form in order to describe the creep constitutive relation of gussasphalt concrete .The results show that the first phase of creep curve of gussasphalt concrete is not obvious ,which reflects that the internal void ratio is lower .The creep deformation value sharply increases with the rise of temperature and the increase of deviatoric stress level , which reflects that the combined action of high temperature heavy load is a decisive factor of the rutting on asphalt concrete pavement .The creep deformation slightly decreases with the increase of confining pressure , and the confining pressure has inhibitory effect on creep deformation .The creep rule got from the triaxial creep test , compared with uniaxial creep test , is more able to reflect the deformation law in the process of actual load ,and three-dimensional and modified Burgers model can accurately reflect the creep properties of bituminous mixture of gussasphalt concrete under the effect of temperature and stress coupling .

参考文献

[1] 郝增恒;吴文军;盛兴跃;黄磊.基于不同超热温度的浇注式沥青混合料高温性能[J].公路交通科技,2013(1):17-21.
[2] 秦凯;马芹永;吴金荣.温度与腐蚀耦合作用下沥青混凝土性能的试验研究[J].硅酸盐通报,2013(5):952-956.
[3] 易富;金艳;高健;杨宇婷.耦合和非耦合效应下沥青路面受力对比分析研究[J].硅酸盐通报,2015(3):803-807.
[4] 赵国云;邵强;闫东波.钢桥面铺装浇注式沥青混合料级配性能[J].公路交通科技,2013(6):75-81.
[5] 张锐;黄晓明;赵永利.浇注式沥青混凝土级配设计[J].东南大学学报(自然科学版),2007(4):661-665.
[6] 张华;钱觉时;吴文军;郝增恒;王民.浇注式沥青混凝土疲劳损伤分析[J].建筑材料学报,2011(6):771-775.
[7] 杨军;潘友强;邓学钧.桥面铺装浇注式沥青混凝土性能[J].交通运输工程学报,2007(1):49-53.
[8] 樊叶华;黄卫;王敬民;陈雄飞.钢桥面浇注式沥青混合料铺装路用性能分析[J].公路交通科技,2007(4):21-24.
[9] 郑彧;钱振东;罗桑;王汇.基于贯入度试验的浇注式沥青混合料蠕变特征研究[J].石油沥青,2012(4):23-26.
[10] 李志强;张鸿儒;安明喆;侯永峰;白顺果.土石坝心墙沥青混凝土三轴蠕变试验研究[J].北京交通大学学报,2007(1):77-80.
[11] 朱晟;徐骞;王登银.沥青混凝土的增量蠕变模型研究[J].水利学报,2011(2):192-197.
[12] 沥青混合料疲劳-蠕变交互作用损伤模型[J].中国公路学报,2011(4):15-20.
[13] 程永春;郭庆林;谭国金.沥青混合料黏弹性参数的改进识别[J].吉林大学学报:工学版,2012(3):629-633.
[14] 易富;梁冰.沥青混凝土路面温度场和应力场耦合模型[J].应用基础与工程科学学报,2009(4):597-604.
[15] 齐亚静;姜清辉;王志俭;周创兵.改进西原模型的三维蠕变本构方程及其参数辨识[J].岩石力学与工程学报,2012(2):347-355.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%