An active control method for reducing sonic boom of supersonic aircraft
Sonic boom reduction has been an urgent need to develop the future supersonic transport, because of the heavy damages of the noise pollution. This paper provides an active control method for the supersonic aircraft to reduce the sonic boom, wherein a suction slot near the leading edge and an injecti...
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The Northwestern Polytechnical University
2021-06-01
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doaj-8d1699dc3a964cbbbdce54ed5600ecbb2021-08-10T11:25:10ZzhoThe Northwestern Polytechnical UniversityXibei Gongye Daxue Xuebao1000-27582609-71252021-06-0139356657510.1051/jnwpu/20213930566jnwpu2021393p566An active control method for reducing sonic boom of supersonic aircraft012School of Aeronautics, Northwestern Polytechnical UniversitySchool of Aeronautics, Northwestern Polytechnical UniversitySchool of Aeronautics, Northwestern Polytechnical UniversitySonic boom reduction has been an urgent need to develop the future supersonic transport, because of the heavy damages of the noise pollution. This paper provides an active control method for the supersonic aircraft to reduce the sonic boom, wherein a suction slot near the leading edge and an injection slot near the trailing edge on the airfoil suction surface are opened, and the mass flow sucked in near the leading edge is equal to the mass flow injected near the trailing edge. The diamond and 566 airfoils are adopted as the baseline airfoil to verify the capability of the active control method, and the effects of the suction and injection location, the mass flow rate and the attack angle on the ground boom signature, the maximum overpressure, the drag coefficients and the ratio of lift to drag are studied in detail. The results show that the proposed active control method can significantly reduce the sonic boom, and the reduction of the sonic boom intensity is more sensitive to the injection near the trailing edge than the suction near the leading edge. Applying this active control method to the diamond (NACA0008) airfoil, when the mass flow rate is 6.5 kg/s(7.5 kg/s), the value of maximum positive overpressure is decreased by 12.87%(12.85%), the value of maximum negative overpressure is decreased by 33.83%(56.77%) and the drag coefficient is decreased by 9.50%(10.96%). It can be seen that the method proposed in this paper has great benefits in the reduction of sonic boom and provides a useful reference for designing a new generation of lower sonic boom supersonic aircraft.https://www.jnwpu.org/articles/jnwpu/full_html/2021/03/jnwpu2021393p566/jnwpu2021393p566.htmlsupersonic aircraftsonic boomshock wavesuction injectionnoise reduction |
collection |
DOAJ |
language |
zho |
format |
Article |
sources |
DOAJ |
title |
An active control method for reducing sonic boom of supersonic aircraft |
spellingShingle |
An active control method for reducing sonic boom of supersonic aircraft Xibei Gongye Daxue Xuebao supersonic aircraft sonic boom shock wave suction injection noise reduction |
title_short |
An active control method for reducing sonic boom of supersonic aircraft |
title_full |
An active control method for reducing sonic boom of supersonic aircraft |
title_fullStr |
An active control method for reducing sonic boom of supersonic aircraft |
title_full_unstemmed |
An active control method for reducing sonic boom of supersonic aircraft |
title_sort |
active control method for reducing sonic boom of supersonic aircraft |
publisher |
The Northwestern Polytechnical University |
series |
Xibei Gongye Daxue Xuebao |
issn |
1000-2758 2609-7125 |
publishDate |
2021-06-01 |
description |
Sonic boom reduction has been an urgent need to develop the future supersonic transport, because of the heavy damages of the noise pollution. This paper provides an active control method for the supersonic aircraft to reduce the sonic boom, wherein a suction slot near the leading edge and an injection slot near the trailing edge on the airfoil suction surface are opened, and the mass flow sucked in near the leading edge is equal to the mass flow injected near the trailing edge. The diamond and 566 airfoils are adopted as the baseline airfoil to verify the capability of the active control method, and the effects of the suction and injection location, the mass flow rate and the attack angle on the ground boom signature, the maximum overpressure, the drag coefficients and the ratio of lift to drag are studied in detail. The results show that the proposed active control method can significantly reduce the sonic boom, and the reduction of the sonic boom intensity is more sensitive to the injection near the trailing edge than the suction near the leading edge. Applying this active control method to the diamond (NACA0008) airfoil, when the mass flow rate is 6.5 kg/s(7.5 kg/s), the value of maximum positive overpressure is decreased by 12.87%(12.85%), the value of maximum negative overpressure is decreased by 33.83%(56.77%) and the drag coefficient is decreased by 9.50%(10.96%). It can be seen that the method proposed in this paper has great benefits in the reduction of sonic boom and provides a useful reference for designing a new generation of lower sonic boom supersonic aircraft. |
topic |
supersonic aircraft sonic boom shock wave suction injection noise reduction |
url |
https://www.jnwpu.org/articles/jnwpu/full_html/2021/03/jnwpu2021393p566/jnwpu2021393p566.html |
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1721212181713780736 |