Investigations of the working performance for small-scale cruciform parachuteOA
The growth of the low-altitude economy has led to an increase in the number of small aircraft and aviation equipment,thereby intensifying the demand for small-scale parachutes.Considering the limited attention to small parachutes in existing research,this paper explores specialized parachutes with practical application value in framework of low-altitude economy.The Arbitrary Lagrangian–Eulerian(ALE)method was employed to analyze fluid-structure interaction(FSI)between parachute canopy and the surrounding air.The dynamic load curves demonstrate that at an inflow velocity of 10 m/s,the dynamic load peaks rapidly in less than 0.1 s during parachute opening,whereas at 50 m/s and 100 m/s,the time to peak is less than 0.03 s.The high-tension regions on the canopy''s central surface exhibit an“X”-shaped distribution,with their area influenced by inflow velocity and inflation time,which informs the targeted reinforcement design for cruciform parachutes created by the simulation results in this study.A parachute airdrop test was conducted,and a combination of simplified model and drag coefficient correction is proposed to simulate the steady descent lift force.The relative error between simulation results of drag coefficient and the test data was found to be 4.49%.Simulation results show that the small-scale cruciform parachute in this study can carry an object with a mass of up to 10.18 kg,provided that the descent velocity is less than or equal to 10 m/s.The findings of this paper can provide a reference for the design and optimization of small-scale parachutes and help to assess their potential application in areas such as low-altitude economy.
Qianqian Wang;Changyue Xu;Zhi Sun;Jianhong Sun;Conglei Wang;Daren Zheng
Key Laboratory of Aircraft Environment Control and Life Support,MIIT,Nanjing University of Aeronautics and Astronautics,Nanjing 210016,ChinaKey Laboratory of Aircraft Environment Control and Life Support,MIIT,Nanjing University of Aeronautics and Astronautics,Nanjing 210016,China Key Laboratory of Civil Aviation Emergency Science and Technology,CAAC,Nanjing University of Aeronautics and Astronautics,Nanjing 211106,ChinaKey Laboratory of Aircraft Environment Control and Life Support,MIIT,Nanjing University of Aeronautics and Astronautics,Nanjing 210016,China Key Laboratory of Civil Aviation Emergency Science and Technology,CAAC,Nanjing University of Aeronautics and Astronautics,Nanjing 211106,ChinaKey Laboratory of Aircraft Environment Control and Life Support,MIIT,Nanjing University of Aeronautics and Astronautics,Nanjing 210016,China Key Laboratory of Civil Aviation Emergency Science and Technology,CAAC,Nanjing University of Aeronautics and Astronautics,Nanjing 211106,ChinaAviation Industry Hongguang Airborne Equipment Co.,Ltd,Nanjing 210016,ChinaKey Laboratory of Aircraft Environment Control and Life Support,MIIT,Nanjing University of Aeronautics and Astronautics,Nanjing 210016,China
航空航天
Cruciform parachuteFluid-Structure InteractionALE methodInflation processNumerical simulation
《Aerospace Traffic and Safety》 2025 (2)
P.85-96,12
supported by Shanghai Central Government Leading Local Science and Technology Development Funds(No.YDZX20233100004008).
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