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Analysis of the Influence of Temperature Gradient on the Measurement Accuracy of Axial Force in Balance
Received date: 2023-01-14
Online published: 2024-12-28
As a measuring element in wind tunnel test, it is important to ensure the measurement accuracy of strain balance.However, in the continuous wind tunnel, due to the long running time of the wind tunnel and the continuous transformation of Mach number, the temperature distribution of the balance body will be uneven, resulting in temperature gradient.This temperature gradient has an obvious influence on the measurement accuracy of the axial force of the balance.In order to explore the influence of temperature gradient on the axial force and strain output of the balance in the continuous wind tunnel, three temperature loading conditions are summarized according to the actual working conditions, and the thermal-solid coupling analysis of the 80A balance is carried out by ANSYS Workbench.The results show that the higher the temperature of the base point of the temperature gradient, the faster the temperature input, the more uneven the temperature distribution of the balance, and the larger the temperature gradient, the larger the axial force and strain output. Considering the heat conduction of the back support rod, the temperature distribution of the balance body is relatively uniform, the temperature gradient is small, and the output of axial force and strain is small.
WANG Ben , YANG Xiaoqiang , LI Xiaogang , WANG Biling . Analysis of the Influence of Temperature Gradient on the Measurement Accuracy of Axial Force in Balance[J]. Journal of Projectiles, Rockets, Missiles and Guidance, 2024 , 44(2) : 7 -12 . DOI: 10.15892/j.cnki.djzdxb.2024.02.002
| [1] |
徐重玖. 风洞应变天平设计校准及灵敏度温度补偿[D]. 沈阳: 东北大学, 2015.
|
| [2] |
吴薇. 天平校准架复位控制系统设计[J]. 中国科技信息, 2013(9): 100-102.
|
| [3] |
王宁. 基于LabVIEW的虚拟风洞天平设计[J]. 科协论坛, 2010(3): 72-73.
|
| [4] |
|
| [5] |
|
| [6] |
闵夫, 杨彦广, 戴金雯, 等. 光纤珐珀应变计应力温度影响实验分析[J]. 仪表技术与传感器, 2019(7): 26-28.
|
| [7] |
黄军, 邱华诚, 刘施然, 等. 应用于激波风洞的半导体应变天平技术研究[J]. 实验流体力学, 2020, 34(6): 79-85.
|
| [8] |
|
| [9] |
李纯, 李琦, 姚程炜, 等. 应变天平零点温度漂移补偿研究[J]. 传感器世界, 2016, 22(7): 14-17.
|
| [10] |
杨洪胜, 米鹏, 向光伟. 基于深低温物理场下低温天平阻力元件热应变分析[J]. 中国科技信息, 2017(22): 89-93.
|
| [11] |
王艳阳, 李小刚, 张明龙, 等. 温度分布不均匀的天平阻力元零点温度效应补偿与修正技术研究[J]. 航空科学技术, 2020, 31(12): 26-32.
|
| [12] |
苗磊, 马涛, 徐志伟, 等. 热力耦合作用下的风洞应变天平校准技术[J]. 仪器仪表学报, 2022, 43(3): 153-162.
|
| [13] |
杨世铭, 陶文铨. 传热学[M]. 北京: 高等教育出版社, 1998: 5-20.
|
| [14] |
梁大珍. 基于Workbench热机耦合的连杆衬套过盈配合研究[D]. 太原: 中北大学, 2015.
|
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| 〈 |
|
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