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风和车流作用下悬索桥纵向减振及阻尼器参数优化 被引量:4
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作者 张少强 钱逸哲 +1 位作者 朱金 李永乐 《振动工程学报》 EI CSCD 北大核心 2022年第4期989-1000,共12页
为了对运营阶段风和车流作用下大跨公路悬索桥进行纵向减振并对阻尼器进行参数优化,通过在已有的风‑车‑桥耦合振动分析系统中引入液体黏滞阻尼器单元,建立了随机风‑车流‑悬索桥分析系统。以一座典型山区大跨悬索桥为工程背景,采用建立... 为了对运营阶段风和车流作用下大跨公路悬索桥进行纵向减振并对阻尼器进行参数优化,通过在已有的风‑车‑桥耦合振动分析系统中引入液体黏滞阻尼器单元,建立了随机风‑车流‑悬索桥分析系统。以一座典型山区大跨悬索桥为工程背景,采用建立的分析系统对比分析了布置阻尼器前后加劲梁在随机风和车流作用下纵向振动的时频特性。在此基础上,进行了阻尼器的参数敏感性分析,研究了阻尼器参数的不同取值对加劲梁位移和塔底内力的影响规律。以优化全桥结构受力、降低纵向振动响应为目标,采用响应面法对阻尼器的参数进行了优化分析。研究表明:对于风、车流荷载单独以及联合作用下的加劲梁纵向振动,阻尼器均能有效降低纵向振动的幅值;但能否降低纵向振动的频率取决于纵向振动中主频的成分。设置液体黏滞阻尼器后,风、车流荷载单独或者联合作用下,加劲梁纵向位移极值和纵向累积位移均随着阻尼系数的增大和速度指数的减小呈减小趋势。此外,不同荷载工况下液体黏滞阻尼器对塔底纵向弯矩的影响规律不同:在风荷载单独作用下,阻尼器会增加塔底纵向弯矩。优化后的液体黏滞阻尼器参数建议取值区间为:阻尼系数宜取500-700 kN/(m/s)^(α),速度指数宜取0.3-0.5。 展开更多
关键词 梁工程 风‑车‑桥耦合振动 加劲梁纵向减振 液体黏滞阻尼器 响应面法
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常导高速磁浮桥梁预拱度形式研究 被引量:5
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作者 陈绪黎 向活跃 +2 位作者 田祥富 李永乐 曾敏 《振动工程学报》 EI CSCD 北大核心 2023年第3期652-661,共10页
为研究常导高速磁浮桥梁的预拱度形式,计算了单跨轨道梁、双跨轨道梁和40+60+40 m连续梁在列车静活载、温度、收缩徐变作用下的变形,并将以上变形组合为12种预拱度曲线;采用车‑桥耦合振动分析方法,讨论了不同预拱度条件下车速、额定悬... 为研究常导高速磁浮桥梁的预拱度形式,计算了单跨轨道梁、双跨轨道梁和40+60+40 m连续梁在列车静活载、温度、收缩徐变作用下的变形,并将以上变形组合为12种预拱度曲线;采用车‑桥耦合振动分析方法,讨论了不同预拱度条件下车速、额定悬浮间隙、温度及收缩徐变、桥梁结构形式等因素对磁浮列车行车性能的影响;以行车安全性和乘坐舒适性为评判指标,分析常导高速磁浮桥梁的合理预拱度形式。结果表明,车速越小、额定悬浮间隙越大,列车荷载、温度荷载和收缩徐变作用下的桥梁变形与预拱度方向相反、大小接近时,高速磁浮列车在单跨轨道梁上的舒适性和安全性指标更优;各预拱度工况下,磁浮列车在双跨轨道梁上的行车性能最优,单跨轨道梁较40+60+40 m连续梁的舒适性更优,行车安全性更差;基于设置预拱度后的行车性能,建议双跨度轨道梁可不设置预拱度,单跨轨道梁和40+60+40 m连续梁桥可按0.5和1倍列车静活载设置预拱度。 展开更多
关键词 常导高速磁浮 车‑桥耦合振动 预拱度 收缩徐变 温度变形
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Dynamic effect of heavy-haul train on seismic response of railway cable-stayed bridge 被引量:7
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作者 ZHU Zhi-hui GONG Wei +3 位作者 WANG Kun LIU Yu DAVIDSON Michael T JIANG Li-zhong 《Journal of Central South University》 SCIE EI CAS CSCD 2020年第7期1939-1955,共17页
This paper focuses on understanding and evaluating the dynamic effect of the heavy-haul train system on the seismic performance of a long-span railway bridge. A systematic study on the effect of heavy-haul trains on b... This paper focuses on understanding and evaluating the dynamic effect of the heavy-haul train system on the seismic performance of a long-span railway bridge. A systematic study on the effect of heavy-haul trains on bridge seismic response has been conducted, considering the influence of vehicle modeling strategies and dynamic characteristics of the seismic waves. For this purpose, the performance of a long-span cable-stayed railway bridge is assessed with stationary trains atop it, where the heavy-haul vehicles are modeled in two different ways: the multi-rigid body model with suspension system and additional mass model. Comparison of the bridge response in the presence or absence of the train system has been conducted, and the vehicle loading situation, which includes full-load and no-load, is also discussed. The result shows that during the earthquake, the peak moment of the main girder and peak stress of stay cables increase by 80% and by 40% in the presence of fully loaded heavy-haul trains, respectively. At the same time, a considerable decrease appears in the peak acceleration of the main girder. This proves the existence of the damping effect of the heavy-haul train system, and this effect is more obvious for the fully loaded vehicles. Finally, this paper proposes an efficient vehicle modeling method with 2 degrees of freedom(DOF) for simplifying the treatment of the train system in bridge seismic checking. 展开更多
关键词 train-bridge interaction heavy-haul train cable-stayed bridge EARTHQUAKE live load
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Coupling vibration analysis of high-speed maglev train-viaduct systems with control loop failure 被引量:5
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作者 GUO Wei CHEN Xue-yuan +7 位作者 YE Yi-tao HU Yao LUO Yi-kai SHAO Ping HUANG Ren-qiang WANG Xu-yixin GUO Zhen TAN Sui 《Journal of Central South University》 SCIE EI CAS CSCD 2022年第8期2771-2790,共20页
The risk of failure of the control loop can occur when a high-speed maglev train runs on viaduct.Meanwhile,the failure of the levitation magnets which balances the gravity of the maglev train could cause the train col... The risk of failure of the control loop can occur when a high-speed maglev train runs on viaduct.Meanwhile,the failure of the levitation magnets which balances the gravity of the maglev train could cause the train collision with track.To study the dynamic response of the train and the viaduct when the levitation magnet control loop failure occurs,a high-speed maglev train-viaduct coupling model,which includes a maglev controller fitted by measured force-gap data and considers the actual structure of train and viaduct,is established.Then the accuracy and effectiveness of the established approach are validated by comparing the computed dynamic responses and frequencies with the measurement results.After that,the dynamic responses of maglev train and viaduct are discussed under normal operation and control loop failures,and the most disadvantageous combination of control loop failures is obtained.The results show that when a single control loop fails,it only has a great influence on the failed electromagnet,and the maglev response of adjacent electromagnets has no obvious change and no collision occurs.But there is a risk of rail collisions when the dual control loop fails. 展开更多
关键词 high-speed maglev train control loop failure coupling vibration maglev control
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A co-simulation method for the train-track-bridge interaction analysis under earthquake using Simpack and OpenSees 被引量:5
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作者 TANG Jian-yuan GUO Wei +2 位作者 WANG Yang LI Jun-long ZENG Zhe-feng 《Journal of Central South University》 SCIE EI CAS CSCD 2022年第8期2791-2806,共16页
Under high-level earthquakes,bridge piers and bearings are prone to be damaged and the elastoplastic state of bridge structural components is easily accessible in the train-track-bridge interaction(TTBI)system.Conside... Under high-level earthquakes,bridge piers and bearings are prone to be damaged and the elastoplastic state of bridge structural components is easily accessible in the train-track-bridge interaction(TTBI)system.Considering the complexity and structural non-linearity of the TTBI system under earthquakes,a single software is not adequate for the coupling analysis.Therefore,in this paper,an interactive method for the TTBI system is proposed by combining the multi-body dynamics software Simpack and the seismic simulation software OpenSees based on the Client-Server architecture,which takes full advantages of the powerful wheel-track contact analysis capabilities of Simpack and the sophisticated nonlinear analysis capabilities of OpenSees.Based on the proposed Simpack and OpenSees co-simulating train-track-bridge(SOTTB)method,a single-span bridge analysis under the earthquake was conducted and the accuracy of co-simulation method was verified by comparing it with results of the finite element model.Finally,the TTBI model is built utilizing the SOTTB method to further discuss the running safety of HST on multi-span simply supported bridges under earthquakes.The results show that the SOTTB method has the advantages of usability,high versatility and accuracy which can be further used to study the running safety of HST under earthquakes with high intensities. 展开更多
关键词 train-track-bridge system CO-SIMULATION SOTTB CLIENT-SERVER running safety
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Effects of fundamental factors on coupled vibration of wind-rail vehicle-bridge system for long-span cable-stayed bridge 被引量:11
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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
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Response of train-bridge system under intensive seismic excitation by random vibration method 被引量:4
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作者 WU Zhao-zhi ZHANG Nan 《Journal of Central South University》 SCIE EI CAS CSCD 2022年第8期2467-2484,共18页
Earthquake is a kind of sudden and destructive random excitation in nature.It is significant to determine the probability distribution characteristics of the corresponding dynamic indicators to ensure the safety and t... Earthquake is a kind of sudden and destructive random excitation in nature.It is significant to determine the probability distribution characteristics of the corresponding dynamic indicators to ensure the safety and the stability of structures when the intensive seismic excitation,the intensity of which is larger than 7,acts in train-bridge system.Firstly,the motion equations of a two-dimensional train-bridge system under the vertical random excitation of track irregularity and the vertical seismic acceleration are established,where the train subsystem is composed of 8 mutually independent vehicle elements with 48 degrees of freedom,while the single-span simple supported bridge subsystem is composed of 102D beam elements with 20 degrees of freedom on beam and 2 large mass degrees of freedom at the support.Secondly,Monte Carlo method and pseudo excitation method are adopted to analyze the statistical parameters of the system.The power spectrum density of random excitation is used to define a series of non-stationary pseudo excitation in pseudo excitation method and the trigonometric series of random vibration history samples in Monte Carlo method,respectively solved by precise integral method and Newmark-βmethod through the inter-system iterative procedure.Finally,the results are compared with the case under the weak seismic excitation,and show that the samples of vertical acceleration response of bridge and the offload factor of train obeys the normal distribution.In a high probability,the intensive earthquakes pose a greater threat to the safety and stability of bridges and trains than the weak ones. 展开更多
关键词 random vibration method intensive seismic excitation train-bridge system probability distribution inter system iteration precise integral method
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