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Advances in wind tunnel experimental investigations of train-bridge systems

机译:火车桥系统风隧道实验研究进展

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摘要

Wind tunnel tests have been widely applied in aerodynamic investigations owing to their unique advantages. However, it is difficult to theoretically establish a simplified symmetry or two-dimensional model because of the relative motion of the structures and proximity of the train to the ground/infrastructure. Additionally, railway related aerodynamic problems tend to be more challenging than those encountered in other engineering structures. Moreover, transient and crosswind effects, as well as complex operation environments, need to be considered, thereby making aerodynamic analyses of train-bridge systems challenging. Advanced manufacturing methodologies can reproduce realistic scenarios of high-speed train (HST) operations in a wind tunnel. The development of a controllable and affordable experimental method presents considerable research opportunities and challenges. There exists a strong correlation between wind tunnel experimental methods and the understanding of aerodynamic mechanisms, and some wind tunnel tests are dedicated to identifying the aerodynamic behavior using specific test systems. This study mainly describes the types of tests typically performed in a wind tunnel to analyze the aerodynamic issues of train-bridge systems under wind action. To identify and understand the individual role of the above mentioned-correlated systems, trains and bridges in wind tunnel tests are described separately. High-speed trains on bridges must be made safe and environmentally friendly, and a few cases are presented as indications to reconsider our aerodynamic research priorities. Thus, advanced experimental activities have been proposed in the Central South University (CSU) wind tunnel, representing helpful practices in defining the real-world aerodynamic behavior of wind-vehicle-bridge systems.
机译:由于其独特的优势,风洞试验已广泛应用于空气动力学调查。然而,由于火车的结构和接近地面/基础设施,因此难以理解地建立简化的对称或二维模型。此外,铁路相关的空气动力学问题往往比其他工程结构遇到的气动问题更具挑战性。此外,需要考虑瞬态和横向效应以及复杂的操作环境,从而使火车桥系统挑战的空气动力学分析。先进的制造方法可以在风隧道中重现高速列车(HST)操作的现实场景。可控和实惠的实验方法的发展具有相当大的研究机会和挑战。风隧道实验方法与对空气动力学机制的理解存在强烈的相关性,并且一些风洞测试专用于使用特定测试系统识别空气动力学行为。本研究主要描述通常在风洞中进行的测试类型,以分析风力动作下火车桥系统的空气动力学问题。为了识别和理解上述相关系统的个性作用,有隧道测试中的列车和桥梁进行了单独描述。桥梁上的高速列车必须安全,环保,少数案例作为迹象,以重新考虑我们的空气动力学研究优先事项。因此,中南大学(CSU)风洞提出了先进的实验活动,在定义风车 - 桥梁系统的真实空气动力学行为方面代表有用的做法。

著录项

  • 来源
    《Tunnelling and underground space technology 》 |2021年第12期| 104157.1-104157.18| 共18页
  • 作者

    He Xuhui; Zou Simin;

  • 作者单位

    Cent South Univ Sch Civil Engn Changsha 410075 Peoples R China|Natl Engn Lab High Speed Railway Construct Changsha 410075 Peoples R China|Joint Int Res Lab Key Technol Rail Traff Safety Changsha 410075 Peoples R China|Hunan Prov Key Lab Disaster Prevent & Mitigat Rai Changsha 410075 Peoples R China;

    Cent South Univ Sch Civil Engn Changsha 410075 Peoples R China|Natl Engn Lab High Speed Railway Construct Changsha 410075 Peoples R China|Joint Int Res Lab Key Technol Rail Traff Safety Changsha 410075 Peoples R China|Hunan Prov Key Lab Disaster Prevent & Mitigat Rai Changsha 410075 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    High-speed railway; Aerodynamic problems; Wind tunnel testing; Environment; Infrastructure scenario;

    机译:高速铁路;空气动力学问题;风洞测试;环境;基础设施场景;

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