期刊文献+
共找到3篇文章
< 1 >
每页显示 20 50 100
轨道刚度不平顺对高速车-轨-桥系统振动的影响 被引量:3
1
作者 陈兆玮 《哈尔滨工业大学学报》 EI CAS CSCD 北大核心 2021年第9期126-134,共9页
轨道刚度不平顺从轨面上难以区分,当列车通过时则会产生巨大的轮轨冲击或轨道变形,严重影响系统的安全平稳运营。针对该问题,首先解析推导了轨道刚度不平顺的数学表达式,并基于列车-轨道-桥梁动力相互作用理论建立了高速列车-板式轨道-... 轨道刚度不平顺从轨面上难以区分,当列车通过时则会产生巨大的轮轨冲击或轨道变形,严重影响系统的安全平稳运营。针对该问题,首先解析推导了轨道刚度不平顺的数学表达式,并基于列车-轨道-桥梁动力相互作用理论建立了高速列车-板式轨道-轨桥耦合动力学模型;在此基础上从时域和频域角度研究了常规型轨道刚度不平顺对系统的影响;并以扣件失效为例,研究了缺陷型轨道刚度不平顺对系统动态特性的影响规律。结果表明:轨道刚度不平顺对系统振动有明显影响;轮轨力、轮对加速度及构架沉浮加速度等列车振动响应明显,表现出扣件间距及轨道板长度的周期性影响;在所考察的指标中,构架点头加速度对轨道刚度不平顺最为敏感;当考虑结构弹性后,轨道板边缘位置处的振动较板中位置处的振动大,两位置处钢轨加速度幅值比为1.17,而轨道板的加速度比值则达到了2.2;常规型轨道刚度不平顺主要引起结构周期振动,可能导致系统共振,加速结构损伤;缺陷型轨道刚度不平顺会造成轮轨冲击,严重时导致轮轨垂向力和轮重减载率超标,威胁行车安全;列车在250~350 km/h之间速度运行时,失效扣件的数量最多为1个。 展开更多
关键词 列车-轨道-桥梁动力相互作用 轨道刚度不平顺 自由梁 扣件失效 结构弹性
下载PDF
板式无砟轨道扣件缓冲层刚度衰减评估及现场施工控制技术
2
作者 杨江峰 《建筑机械》 2024年第1期43-48,共6页
基于列车-轨道-路基全比尺三维有限元模型,模拟了高速行驶条件下扣件刚度衰减或增大时车-轨系统的动力响应,评估了行车安全性和舒适性以及扣件服役状态。最后,基于数值分析结果优化了新建西宁至成都铁路轨道施工及控制指标。研究表明:... 基于列车-轨道-路基全比尺三维有限元模型,模拟了高速行驶条件下扣件刚度衰减或增大时车-轨系统的动力响应,评估了行车安全性和舒适性以及扣件服役状态。最后,基于数值分析结果优化了新建西宁至成都铁路轨道施工及控制指标。研究表明:扣件刚度相对大小影响轮轨力波动方向,单点扣件不平顺和双侧扣件不平顺对轮轨力影响基本一致;提出了相对刚度离散系数,单点扣件完全失效不会造成显著的脱轨风险,刚度超286kN/mm时容易造成脱轨风险;单点扣件支撑不平顺引起的振动可几乎被完全过滤吸收,几乎不会引起乘车舒适性下降;扣件刚度不平顺容易引起周围扣件反力显著增加,增加线路长期的维修和养护成本。 展开更多
关键词 扣件系统 刚度不平顺 相对刚度离散系数 施工工艺优化
下载PDF
Effects of fundamental factors on coupled vibration of wind-rail vehicle-bridge system for long-span cable-stayed bridge 被引量:10
3
作者 张明金 李永乐 汪斌 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第5期1264-1272,共9页
In a wind-vehicle-bridge(WVB) system,there are various interactions among wind,vehicle and bridge.The mechanism for coupling vibration of wind-vehicle-bridge systems is explored to demonstrate the effects of fundament... In a wind-vehicle-bridge(WVB) system,there are various interactions among wind,vehicle and bridge.The mechanism for coupling vibration of wind-vehicle-bridge systems is explored to demonstrate the effects of fundamental factors,such as mean wind,fluctuating wind,buffeting,rail irregularities,light rail vehicle vibration and bridge stiffness.A long cable-stayed bridge which carries light rail traffic is regarded as a numerical example.Firstly,a finite element model is built for the long cable-stayed bridge.The deck can generally be idealized as three-dimensional spine beam while cables are modeled as truss elements.Vehicles are modeled as mass-spring-damper systems.Rail irregularities and wind fluctuation are simulated in time domain by spectrum representation method.Then,aerodynamic loads on vehicle and bridge deck are measured by section model wind tunnel tests.Eight vertical and torsional flutter derivatives of bridge deck are identified by weighting ensemble least-square method.Finally,dynamic responses of the WVB system are analyzed in a series of cases.The results show that the accelerations of the vehicle are excited by the fluctuating wind and the track irregularity to a great extent.The transverse forces of wheel axles mainly depend on the track irregularity.The displacements of the bridge are predominantly determined by the mean wind and restricted by its stiffness.And the accelerations of the bridge are enlarged after adding the fluctuating wind. 展开更多
关键词 wind-vehicle-bridge system coupled vibration long-span cable-stayed bridge fundamental factors
下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部