TY - JOUR
T1 - Aeroelastic deformation measurement of Martian airplane for high-altitude flight experiment using stereophotogrammetry
AU - Hiramatsu, Shuichi
AU - Anyoji, Masayuki
AU - Fujita, Koji
AU - Nagai, Hiroki
AU - Oyama, Akira
AU - Kato, Hiroyuki
N1 - Funding Information:
This work was supported by a Grant-in-Aid from the advisory committee for space engineering in ISAS/JAXA. The series of experiments in this study was carried out at the 6.5 m×5.5 m low-speed wind tunnel at JAXA Chofu Aerospace Center. Thus, the authors would like to express their sincerest gratitude to all staffs of the Aeronautical Technology Directorate of JAXA, and to Kazuyuki Nakakita of the same agency, for the generous support and helpful advice he extended to the team for the completion of this study.
Publisher Copyright:
© 2021 IOP Publishing Ltd.
PY - 2021/3
Y1 - 2021/3
N2 - Afixed-wing aircraft called Mars Airplane Balloon Experiment-2 (MABE2) developed by the authors was the subject of high-altitude flight demonstration test in this paper, which can simulate the nearactual environment of a Martian atmospheric flight. Although the flight condition is in the low- Reynolds-number region due to low density at high altitude, the wing suffers from aeroelastic deformation given the relatively high dynamic pressure load in the pull-up phase. Stereophotogrammetry was applied in the 6.5m × 5.5m low-speed wind tunnel at the Japan Aerospace Exploration Agency (JAXA), aiming to optically measure MABE2's aeroelastic deformation under dynamic pressure loads equivalent to high-altitude flight test, with the MABE2's reinforced structural strength. The results of the accuracy test indicated that stereophotogrammetry measures aeroelastic deformation at high accuracy of ± 0.1mm around the image center and ± 0.3mm around the edge. A slight deflection of up to 4mmwas observed on the main wing, whereas both the main and tail wings were hardly twisted. Compared with flight-simulation-assumed errors, these deformations are extremely small and have a negligible effect on the high-altitude flight test. The study results confirmed the practicality and efficiency of this optical measurement technique in aeroelastic deformation measurement for a real light aircraft.
AB - Afixed-wing aircraft called Mars Airplane Balloon Experiment-2 (MABE2) developed by the authors was the subject of high-altitude flight demonstration test in this paper, which can simulate the nearactual environment of a Martian atmospheric flight. Although the flight condition is in the low- Reynolds-number region due to low density at high altitude, the wing suffers from aeroelastic deformation given the relatively high dynamic pressure load in the pull-up phase. Stereophotogrammetry was applied in the 6.5m × 5.5m low-speed wind tunnel at the Japan Aerospace Exploration Agency (JAXA), aiming to optically measure MABE2's aeroelastic deformation under dynamic pressure loads equivalent to high-altitude flight test, with the MABE2's reinforced structural strength. The results of the accuracy test indicated that stereophotogrammetry measures aeroelastic deformation at high accuracy of ± 0.1mm around the image center and ± 0.3mm around the edge. A slight deflection of up to 4mmwas observed on the main wing, whereas both the main and tail wings were hardly twisted. Compared with flight-simulation-assumed errors, these deformations are extremely small and have a negligible effect on the high-altitude flight test. The study results confirmed the practicality and efficiency of this optical measurement technique in aeroelastic deformation measurement for a real light aircraft.
KW - Aeroelastic deformation
KW - Low Reynolds number
KW - Mars airplane
KW - Stereophotogrammetry
KW - Wind tunnel
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U2 - 10.1088/2631-8695/abe920
DO - 10.1088/2631-8695/abe920
M3 - Article
AN - SCOPUS:85103572895
SN - 2631-8695
VL - 3
JO - Engineering Research Express
JF - Engineering Research Express
IS - 1
M1 - 015035
ER -