Numerical Study on Aerodynamic Performance of Mars Parachute Models with Geometric Porosities

Author:

Jiang Lulu12,Jia He34,Xu Xin1,Rong Wei4,Jiang Wei4,Wang Qi4,Chen Gang2,Xue Xiaopeng1

Affiliation:

1. Central South University, Changsha 410083, China

2. Xi’an Jiaotong University, Xi’an 710049, China

3. Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China

4. Beijing Institute of Space Mechanics & Electricity, Beijing 100076, China

Abstract

The supersonic flows around rigid parachute-like two-body configurations are numerically simulated at Mach number of 1.978 by solving three-dimensional compressible Navier-Stokes equations, where the two-body model consists of a capsule and a canopy, and a geometric structure (i.e., gap) is located on the canopy surface. The objective of this study is to investigate the effects of gaps with different porosities and positions on the aerodynamic performance of supersonic parachute. The complicated periodic aerodynamic interactions between the capsule wake and canopy shock occur around these two-body models. From the formation of canopy shock and drag coefficient variation, the cycled flow structures can be divided into three types:(1) narrow wake period, (2) open wake period, and (3) middle wake period. In addition, it was found that the geometric gaps have no obvious influences on the flow modes. However, compared with models with different gap positions, the two-body model with an upper gap (gap is close to the canopy vent, UG model) has a smaller drag coefficient fluctuation and better lateral stability. On the other side, the increase of porosity has a more significant impact on UG models.

Funder

Laboratory of Aerospace Entry, Descent and Landing Technology

Natural Science Foundation of Hunan Province

National Natural Science Foundation of China

Publisher

American Association for the Advancement of Science (AAAS)

Subject

General Medicine

Reference25 articles.

1. Review of unsteady aerodynamics of supersonic parachutes;Xue X. P.;Progress in Aerospace Sciences,2021

2. J. Lingard and M. Darley Simulation of parachute fluid structure interaction in supersonic flow AIAA Paper 2005

3. Aerodynamics of decelerators at supersonic speeds;Maynard J.;AIAA Proc. Recovery Space Vehicles Symp.,1960

4. J. Maynard “Aerodynamic characteristics of parachute at Mach numbers from 1.6 to 3 ” Technical Report TN-D-752 NASA 1961

5. Supersonic performance of Disk-Gap-Band parachutes constrained to a 0-degree trim angle;Sengupta A.;Journal of Spacecraft and Rockets.,2009

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