Improvements to Calibration Modeling of a Tri-Axial Accelerometer Using Response Surface Methods

被引:0
|
作者
Toro, Kenneth G. [1 ]
Ponder, Jonathon D. [2 ]
Parker, Peter A. [1 ]
机构
[1] NASA, Langley Res Ctr, Adv Measurements & Data Syst, Hampton, VA 23665 USA
[2] NASA, Glenn Res Ctr, Wind Tunnel Test Branch, Cleveland, OH USA
关键词
Accelerometers; Attitude Measurement; Temperature Calibration; Response Surface Methods;
D O I
10.1109/INERTIAL60399.2024.10502042
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Aerodynamic ground test facilities require precision attitude measurements to support fundamental research and aerodynamic vehicle characterization. Accelerometers are used as one solution for measuring test article attitude. Several wind-tunnel facilities experience elevated temperatures during sustained testing of approximately 38 degrees C (100 degrees F) and extremes up to 149 degrees C (300 degrees F). Accelerometer thermal corrections are required to maintain attitude measurement accuracy during elevated temperature tunnel conditions. This manuscript details characterization of non-linear and thermal effects of the Mini/MEMs Tri-Axis Sensor System (MTASS) developed at NASA. Non-linear effects are characterized using a two-axis index head, and temperature effects are characterized using a metallic cube in a thermal chamber. The results show a significant decrease in back-computed residuals for room temperature and elevated temperatures experiments.
引用
收藏
页数:4
相关论文
共 50 条
  • [31] Calibration of Tri-axial Magnetometer in Magnetic Compass Using Vector Observations
    Li, Xiang
    Wang, Yongjun
    Li, Zhi
    2015 IEEE 28TH CANADIAN CONFERENCE ON ELECTRICAL AND COMPUTER ENGINEERING (CCECE), 2015, : 123 - 127
  • [32] The effect of shoe type on tri-axial accelerometer output.
    McCrady, SK
    Lanningham-Foster, LM
    Krizan, A
    Kane, P
    Levine, JA
    FASEB JOURNAL, 2003, 17 (04): : A328 - A328
  • [33] Tri-axial optical MEMS accelerometer enables monolithic fabrication
    Abozyd, Samir
    Toraya, Abdelrahman
    Gaber, Noha
    MOEMS AND MINIATURIZED SYSTEMS XXI, 2022, 12013
  • [34] Usefulness of the tri-axial accelerometer for assessing balance function in children
    Eguchi, Ryota
    Takada, Satoshi
    PEDIATRICS INTERNATIONAL, 2014, 56 (05) : 753 - 758
  • [35] Application of a tri-axial accelerometer to estimate jump frequency in volleyball
    Jarning, Jon M.
    Mok, Kam-Ming
    Hansen, Bjorge H.
    Bahr, Roald
    SPORTS BIOMECHANICS, 2015, 14 (01) : 95 - 105
  • [36] Fall Detection Based on the Fusion of Vision and Tri-axial Accelerometer
    Liao, Hsien-chou
    Chen, Yu-ming
    Cheng, Wen-chang
    Jhang, Jia-yu
    Shin, Jung-pil
    INTERNATIONAL CONFERENCE ON ADVANCED COMPUTER SCIENCE AND ENGINEERING (ACSE 2014), 2014, : 236 - 242
  • [37] Sleep Monitoring Based on a Tri-Axial Accelerometer and a Pressure Sensor
    Nam, Yunyoung
    Kim, Yeesock
    Lee, Jinseok
    SENSORS, 2016, 16 (05)
  • [38] A Novel Tri-Axial Piezoelectric MEMS Accelerometer with Folded Beams
    Liu, Yan
    Hu, Bohao
    Cai, Yao
    Liu, Wenjuan
    Tovstopyat, Alexander
    Sun, Chengliang
    SENSORS, 2021, 21 (02)
  • [39] MODIFIED SENSOR ERROR MODEL FOR STATIC CALIBRATION OF A LOW-COST TRI-AXIAL MEMS ACCELEROMETER
    Uzair, Muhammad
    Khan, Ali F.
    Khurshid, Khawar
    Jeon, Byeungwoo
    INTERNATIONAL JOURNAL OF ROBOTICS & AUTOMATION, 2018, 33 (03): : 233 - 238
  • [40] Calibration of Tri-Axial Sensor Coil for Magnetic Tracking
    Shankar, R. Abhishek
    Jung, Byunghoo
    IEEE SENSORS JOURNAL, 2024, 24 (04) : 4365 - 4372