高速动车组车体结构拓扑优化设计

Topology Optimization Design of High-Speed EMU Car Body Structure

  • 摘要:
    目的 车体结构是高速动车组的核心承载部件,其设计的合理性直接影响列车的运行安全性、运行效率及经济性等多方面性能指标,因此有必要研究高速动车组车体结构的拓扑优化设计。
    方法 以高速动车组铝合金车体为例,采用拓扑优化和参数优化的设计方法,以车体质量最小化、一阶整备模态最大化为目标,以满足相关标准的强度为约束,以铝合金型材断面为变量,重构车体结构拓扑设计域,以获得材料使用最少、结构较优的车体断面结构。采用仿真分析方法对优化后的铝合金车体结构开展强度、模态等计算分析,并通过样车试制和台架试验进一步验证优化后的车体结构性能。
    结果及结论 优化后的车体完全满足TB/T 3451—2016《动车组车体结构强度设计及试验》、TB/T 3548—2019《机车车辆强度设计及试验鉴定规范总则》等相关标准的要求,一阶整备模态频率均>10 Hz,车体结构的称重质量约为9 830 kg,能够满足减重10%和一阶整备模态大于10 Hz的设计目标。

     

    Abstract:
    Objective Car body structure is the core load-bearing component of a high-speed EMU (Electric Multiple Unit). The rationality of its design directly affects various performance indicators of the train, such as operational safety, operational efficiency, and economy. Therefore, it is necessary to study the topology optimization design for the high-speed EMU car body structure.
    Method Taking the aluminum alloy car body of high-speed EMU as an example, the design methods of topology optimization and parameter optimization are adopted. With the minimization of car body mass and maximization of the first-order ready-to-run mode as objectives, the strength meeting relevant standards as constraints, and the cross-sections of aluminum alloy profiles as variables, the topology design domain of the car body structure is reconstructed to obtain a car body cross-sectional structure with minimal material consumption and optimized structure. Simulation analysis methods are applied to conduct calculation and analysis on the strength, mode, and other properties of the optimized aluminum alloy car body structure, and the performance of the optimized car body structure is further verified through prototype trial production and bench tests.
    Result & Conclusion The optimized car body fully meets the requirements of relevant standards such as TB/T 3451—2016 Strength Design and Test of Body Structures of EMU/DMU and TB/T 3548—2019 Strength Design and Test Accreditation Specification for Rolling Stock-General. The first-order ready-to-run modal frequencies are all greater than 10 Hz, and the weighted mass of the car body structure is approximately 9830 kg, which can meet the design objectives of a 10% weight reduction and the first-order ready-to-run modal frequencies greater than 10 Hz.

     

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