主办:陕西省汽车工程学会
ISSN 1671-7988  CN 61-1394/TH
创刊:1976年

汽车实用技术 ›› 2026, Vol. 51 ›› Issue (12): 63-67,120.DOI: 10.16638/j.cnki.1671-7988.2026.012.012

• 测试试验 • 上一篇    

试验场载荷谱采集与处理方法研究

刘志雷 1,杜建 2*   

  1. 1.河北工业职业技术大学 汽车工程学院; 2.广西柳工机械股份有限公司 华东研究院
  • 发布日期:2026-06-23
  • 通讯作者: 杜建
  • 作者简介:刘志雷(1990-),男,硕士,讲师,研究方向为车辆结构强度与轻量化设计 通信作者:杜建(1989-),男,硕士,工程师,研究方向为车辆动力学数值仿真与整车耐久性能分析
  • 基金资助:
    河北省教育厅科学研究项目(ZC2025146)

Research on the Acquisition and Processing Method of Proving Ground Load Spectra

LIU Zhilei1 , DU Jian2*   

  1. 1.School of Automotive Engineering, Hebei Vocational University of Industry and Technology; 2.East China Research Institute, Guangxi Liugong Machinery Company Limited,
  • Published:2026-06-23
  • Contact: DU Jian

摘要: 为提高汽车零部件疲劳耐久性仿真的精度与效率,需获取高保真的载荷边界条件,文 章以某运动型多用途汽车为对象,在疲劳试验场强化路面上进行了多通道载荷谱采集。针对 采集信号中存在的基线漂移、奇异点及无效小载荷循环,提出了一套系统性的预处理流程: 首先采用三阶多项式拟合消除趋势项,继而基于莱茵达准则(3σ)识别并插值修补奇异点, 最后依据疲劳损伤等效原则(阈值 k=10%)删除无效小载荷。为验证所处理载荷谱的保真度, 将其作为输入驱动多体动力学模型进行仿真。结果表明,仿真输出的轮心 Z 向加速度、转向 横拉杆力及弹簧位移与台架试验结果的峰值误差均不超过 8%,相关系数(CC)均在 0.95 以 上。研究形成了一套标准化的载荷谱处理流程,可为疲劳耐久性仿真提供可靠的载荷输入, 对缩短研发周期具有明确的工程价值。

关键词: 载荷谱采集;强化路面;信号处理;载荷谱处理

Abstract: To improve the accuracy and efficiency of fatigue durability simulation for automotive components, it is necessary to obtain high-fidelity load boundary conditions. This study takes an sport utility vehicle as the object and conducts multi-channel load spectrum acquisition on the reinforced pavement of a fatigue test site. Aiming at the baseline drift, singular points, and invalid small load cycles existing in the acquired signals, a systematic preprocessing procedure is proposed: first, a third-order polynomial fitting is employed to eliminate the trend term; then, singular points are identified and repaired by interpolation based on the Pauta criterion (3σ); finally, invalid small load cycles are removed according to the principle of fatigue damage equivalence (with a threshold value of k=10%). To verify the fidelity of the processed load spectrum, it is used as input to drive a multi-body dynamic model for simulation. The results show that the peak errors between the simulated outputs (including wheel center Z-direction acceleration, tie rod force, and spring displacement) and the bench test results are all less than 8%, and the correlation coefficients (CC) are all above 0.95. This study establishes a standardized load spectrum processing procedure, which can provide reliable load input for fatigue durability simulation and has clear engineering value for shortening the research and development cycle.

Key words: load spectrum acquisition; reinforced pavement; signal processing; load spectrum processing