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室内环境下UHPC非线性徐变特性研究
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作者 刘刚亮 刘志峰 +2 位作者 张光辉 张子飏 严猛 《世界桥梁》 北大核心 2023年第6期84-90,共7页
为研究超高性能混凝土(UHPC)非线性徐变阈值与特性,对不同初始龄期加载与应力比的圆柱体UHPC试件开展室内环境下徐变试验,测试试件在加载100 d期间的轴向与环向应变。根据试验结果,计算UHPC在不同应力比下的徐变系数、非线性徐变放大系... 为研究超高性能混凝土(UHPC)非线性徐变阈值与特性,对不同初始龄期加载与应力比的圆柱体UHPC试件开展室内环境下徐变试验,测试试件在加载100 d期间的轴向与环向应变。根据试验结果,计算UHPC在不同应力比下的徐变系数、非线性徐变放大系数与名义泊松比,分析普通混凝土非线性徐变放大系数模型对UHPC的适用性,得到适用于UHPC的非线性徐变放大系数模型。结果表明:UHPC的徐变类似于普通混凝土,但UHPC的非线性徐变特性更显著,其非线性徐变阈值为0.3 f_(c)(f_(c)为混凝土抗压强度);传统的普通混凝土徐变模型高估了UHPC的非线性徐变阈值且低估了非线性徐变放大系数;UHPC的名义泊松比在加载后增长显著,表明非线性徐变与试件内微裂缝扩展有关;本文模型计算结果与试验结果吻合较好,最大相对残差仅9.9%,可用于UHPC非线性徐变计算。 展开更多
关键词 桥梁工程 超高性能混凝土 室内环境 徐变试验 非线性徐变阈值 非线性徐变特性 放大系数模型
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Distribution of acceleration and empirical formula for calculating maximum acceleration of rockfill dams
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作者 周晖 李俊杰 康飞 《Journal of Central South University》 SCIE EI CAS 2010年第3期642-647,共6页
To find the distribution patterns of dynamic amplification coefficients for dams subjected to earthquake, 3D seismic responses of concrete-faced rockfill dams with different heights and different shapes of river valle... To find the distribution patterns of dynamic amplification coefficients for dams subjected to earthquake, 3D seismic responses of concrete-faced rockfill dams with different heights and different shapes of river valley were analyzed by using the equivalent-linear model. Statistical analysis was also made to the seismic coefficient, and an empirical formula for calculating the maximum acceleration was provided. The results indicate that under the condition of the same dam height and the same base acceleration excitations, with the increase of the river valley width, the position of the maximum acceleration on the axis of the top of the dam moves from the center to the riversides symmetrically. For the narrow valleys, the maximum acceleration occurs in the middle of the axis at the top of the dam; for wide valleys the maximum acceleration appears near the riversides. The result negates the application of 2D dynamical computation for wide valleys, and shows that for the seismic response of high concrete-faced rockfill dams, the seismic coefficient along the axis should be given, except for that along the dam height. Seismic stability analysis of rockfill dams using pseudo-static method can be modified according to the formula. 展开更多
关键词 concrete-faced rockfill dam 3D dynamical response analysis equivalent-linear method ACCELERATION seismic coefficient statistical analysis
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Dynamic behaviors of pretensioned cable AERORail structure
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作者 李方元 吴培峰 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第6期2267-2276,共10页
The AERORail, a new aerial transport platform, was chosen as the object of this work. Following a review of the literature on static behaviors, model tests on the basic dynamic mechanical characteristics were conducte... The AERORail, a new aerial transport platform, was chosen as the object of this work. Following a review of the literature on static behaviors, model tests on the basic dynamic mechanical characteristics were conducted. A series of 90 tests were completed with different factors, including tension force, vehicle load and vehicle speed. With regard to the proper tension and vehicle load, at a certain speed range, the tension increments of the rail's cable were proved relatively small. It can be assumed that the change of tension is small and can be reasonably ignored when the tension of an entire span is under a dynamic load. When the tension reaches a certain range, the calculation of the cable track structure using classical cable theory is acceptable. The tests prove that the average maximum dynamic amplification factor of the deflection is small, generally no more than 1.2. However, when the vehicle speed reaches a certain value, the amplified factor will reach 2.0. If the moving loads increase, the dynamic amplification factor of dynamic deflection will also increase. The tension will change the rigidity of the structure and the vibration frequency; furthermore, the resonance speed will change at a certain tension. The vibration is noticeable when vehicles pass through at the resonance speed, and this negative impact on driving comfort requires the right velocity to avoid the resonance. The results demonstrate that more design details are required for the AERORail structure. 展开更多
关键词 pretensioned cable AERORail structure dynamic bchavior model test vibration characteristic dynamic amplification factor influence line
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