吉林大学学报(工学版) ›› 2025, Vol. 55 ›› Issue (8): 2501-2510.doi: 10.13229/j.cnki.jdxbgxb.20231260

• 车辆工程·机械工程 • 上一篇    

多支点测力平台维间耦合误差建模与精度分配

张军1(),王郁赫1,姜楠2,蔡佳乐1,滕玄德1,张鹏1   

  1. 1.大连理工大学 高性能精密制造全国重点实验室,辽宁 大连 116024
    2.沈阳飞机设计研究所,沈阳 110035
  • 收稿日期:2023-11-15 出版日期:2025-08-01 发布日期:2025-11-14
  • 作者简介:张军(1969-),男,教授,博士. 研究方向:航空航天矢量力测量及精密仪器研制. E-mail: zhangj@dlut.edu.cn
  • 基金资助:
    国家自然科学基金项目(52075097);国家自然科学基金项目(5217052316);国家科技重大专项项目(J2019-V-0011-0106)

Modeling and accuracy allocation of inter-dimensional coupling errors in multi pivot force measurement platforms

Jun ZHANG1(),Yu-he WANG1,Nan JIANG2,Jia-le CAI1,Xuan-de TENG1,Peng ZHANG1   

  1. 1.State Key Laboratory of High-Performance Precision Manufacturing,Dalian University of Technology,Dalian 116024,China
    2.Shenyang Aircraft Design & Research Institute,Shenyang 110035,China
  • Received:2023-11-15 Online:2025-08-01 Published:2025-11-14

摘要:

针对多传感器布置的测力平台耦合误差成因不明、难以削减的问题,以压电式六维测力平台为研究对象,从传感器耦合、装配误差、标定装置全环节分析耦合成因。基于测量原理,建立包含34个影响因素的维间耦合模型,采用敏感性算法筛选并量化各因素影响程度,以耦合误差≤5%量程为目标进行精度容差分配。采样仿真结果表明,分配后各项耦合误差的99%置信上限均满足要求。实验表明,满足容差下平台力输出耦合误差≤3.64%量程,力矩输出耦合误差≤4.80%量程,验证了精度范围的有效性和在耦合误差控制上的实用性。

关键词: 精密仪器及机械, 维间耦合, 测量误差, 大量程六维力, 敏感性分析

Abstract:

In response to the causes of unclear and difficult reduction of coupling errors in force measurement platforms arranged with multiple sensors, this article takes the piezoelectric six axis force measurement platform as the research object, analyzes the coupling causes from the entire process of sensor coupling, assembly error and calibration device. Based on measurement principles, establish an inter dimensional coupling model containing 34 influencing factors, use sensitivity algorithms to screen and quantify the degree of influence of each factor, and accuracy tolerance allocate is performed with a coupling error ≤ 5% of the range as the target. The sampling simulation shows that the 99% confidence upper limit of each coupling error after allocation meets the requirements. Experiment shows that the coupling error of platform force output is ≤ 3.64% of the range under tolerance, and the coupling error of torque output is ≤ 4.80% of the range, which verify the effectiveness of the accuracy range and their applicability in coupling error control.

Key words: precision instrument and machinery, inter-dimensional coupling, measurement error, large range six-axis force, sensitivity analysis

中图分类号: 

  • TH823

图1

四点式六维测力平台结构"

图2

六维力测量原理"

图3

维间耦合影响与传递"

表1

因素正态分布表"

误差因素项σ/rad
r1, r2, r3, r40.005 8
θxyθxzθyxθyzθzxθzy0.011 6
kxy1~4, kxz1~4, kyx1~4, kyz1~4, kzx1~4, kzy1~40.016 7

图4

维间耦合Morris分析图"

表2

Fx 作用下耦合因素筛选结果"

耦合方向影响因素
Fyr1~4θyxkxy1~4kzy1~4
Fzθzxkxz1~4
Mxr1~4θyxkxy1~4kxz1~4kzy1~4
Mykxz1~4kzx1~4
Mzr1~4,θyzkxy1~4,kzx1~4,kzy1~4

图5

维间耦合Sobol分析图"

表3

Fx 作用下Fy 耦合因素半带宽分配"

耦合因素数值耦合因素数值
r10.007 9kxy30.015 6
r20.007 9kxy40.015 6
r30.007 9kzy10.012 5
r40.007 9kzy20.012 5
θyx0.020 0kzy30.012 5
kxy10.015 6kzy40.012 5
kxy20.015 6

表4

Fx 作用下Mx 耦合因素半带宽分配"

耦合因素数值耦合因素数值
r10.011 7kxz10.029 2
r20.011 7kxz20.029 2
r30.011 7kxz30.029 2
r40.011 7kxz40.029 2
θyx0.030 2kzy10.019 0
kxy10.023 6kzy20.049 4
kxy20.023 6kzy30.019 0
kxy30.023 6kzy40.049 4
kxy40.023 6

图6

维间耦合蒙特卡洛模拟图"

表5

维间耦合99%置信区间"

项目Fx 耦合输出Fy 耦合输出Fz 耦合输出Mx 耦合输出My 耦合输出Mz 耦合输出
Fx 加载[-136.79,139.02][-222.41,215.41][-9.33,9.49][-7.69.7.18][-7.41,6.56]
Fy 加载[-136.97,141.55][-215.35.231.32][-7.37,7.58][-9.66,10.19][-7.31,6.76]
Fz 加载[-182.68,199.72][-192.10,194.09][-8.91,9.06][-8.59,9.39][-8.78,9.08]
Mx 加载[-42.01,40.72][-43.63,41.72][-0.79,0.75][-1.97,1.92][-11.30,10.48]
My 加载[-39.99,41.91][-41.55,44.15][-0.73,0.79][-1.93,1.96][-10.32,10.93]
Mz 加载[-32.02,33.56][-40.00,34.31][-67.47,68.52][-11.87,12.68][-13.06,12.64]

表6

传感器耦合系数"

编号kyxkzxkzykxykxzkyz
10.010 4-0.000 4-0.004 50.012 6-0.014 70.019 2
20.014 9-0.004 30.001 9-0.009 3-0.018 2-0.011 6
3-0.008 1-0.003 20.002 00.010 40.011 20.014 7
40.002 70.003 50.002 6-0.006 40.014 10.005 4

图7

标定装置角度误差测量"

表7

装置角度误差测量结果"

项目θxyθxzθyxθyzθzxθzy
Fx /Fy /Fz0.017 20-0.020 6-0.014 00.008 70.006 1
Mx-0.003 40.014 8
My /Mz-0.003 40.014 8

图8

平台力与力矩加载标定"

图9

每维力单独加载下其他维间耦合"

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