Modeling and Simulation of Lunar Lander Soft-Landing Using Transient Dynamics Approach

Author(s):  
Junlin Wan ◽  
Hong Nie ◽  
Jinbao Chen ◽  
Qing Lin
2020 ◽  
Vol 24 ◽  
pp. 1235-1243 ◽  
Author(s):  
G. Aravind ◽  
S. Vishnu ◽  
K.V. Amarnath ◽  
U. Hithesh ◽  
P. Harikrishnan ◽  
...  

2019 ◽  
Vol 2019 ◽  
pp. 1-10
Author(s):  
SongTao Han ◽  
ZhongKai Zhang ◽  
Jing Sun ◽  
JianFeng Cao ◽  
Lue Chen ◽  
...  

China Chang’E-3 performed soft landing at the plains of Sinus Iridum on lunar surface on December 14th 2013 successfully; it opened a new window for observing lunar surface with radiometric tracking which many lunar scientific researchers always pursue for. Since July 2014, OCEL (Observing Chang’E-3 Lander with VLBI) project has been conducted jointly by IVS (International VLBI Service of Geodesy and Astrometry) and BACC (Beijing Aerospace Control Center), a global IVS R&D network augmented with two China Deep Space Stations configured for OCEL. This paper presents the current status and preliminary result of the OCEL and mainly focuses on determination of the lander position, which is about 7 meter in height and 14 meter in plane of lunar surface with respect to LRO (Lunar Reconnaissance Orbiter). Based on accuracy analysis, further optimized OCEL sessions will make use of this target-of-opportunity, the Chang’E-3 lunar lander, as long as it is working. With higher accurate radiometric observables, more prospective contribution to earth and lunar science is expected by combining with LLR.


2015 ◽  
Vol 28 (4) ◽  
pp. 04014104 ◽  
Author(s):  
Qing Lin ◽  
Zhiyu Kang ◽  
Jie Ren ◽  
Qilong Zhao ◽  
Hong Nie

2020 ◽  
Vol 10 (24) ◽  
pp. 8862
Author(s):  
Matteo Caruso ◽  
Lorenzo Scalera ◽  
Paolo Gallina ◽  
Stefano Seriani

Soft-landing on planetary surfaces is the main challenge in most space exploration missions. In this work, the dynamic modeling and simulation of a three-legged robotic lander based on variable radius drums are presented. In particular, the proposed robotic system consists of a non-reversible mechanism that allows a landing object to constant decelerate in the phase of impact with ground. The mechanism is based on variable radius drums, which are used to shape the elastic response of a spring to produce a specific behavior. A dynamic model of the proposed robotic lander is first presented. Then, its behavior is evaluated through numerical multibody simulations. Results show the feasibility of the proposed design and applicability of the mechanism in landing operations.


2014 ◽  
Vol 101 ◽  
pp. 55-66 ◽  
Author(s):  
Xiaohui Wei ◽  
Qing Lin ◽  
Hong Nie ◽  
Ming Zhang ◽  
Jie Ren
Keyword(s):  

Materials ◽  
2021 ◽  
Vol 14 (20) ◽  
pp. 6202
Author(s):  
Qi Yuan ◽  
Heng Chen ◽  
Hong Nie ◽  
Guang Zheng ◽  
Chen Wang ◽  
...  

With the rapid development of the aerospace field, traditional energy absorption materials are becoming more and more inadequate and cannot meet the requirements of having a light weight, high energy absorption efficiency, and high energy absorption density. Since existing studies have shown that carbon nanotube (CNT) buckypaper is a promising candidate for energy absorption, owing to its extremely high energy absorption efficiency and remarkable mass density of energy absorption, this study explores the application of buckypaper as the landing buffer material in a manned lunar lander. Firstly, coarse-grained molecular dynamics simulations were implemented to investigate the compression stress-strain relationships of buckypapers with different densities and the effect of the compression rate within the range of the landing velocity. Then, based on a self-designed manned lunar lander, buckypapers of appropriate densities were selected to be the energy absorption materials within the landing mechanisms of the lander. For comparison, suitable aluminum honeycomb materials, the most common energy absorption materials in lunar landers, were determined for the same landing mechanisms. Afterwards, the two soft-landing multibody dynamic models are established, respectively, and their soft-landing performances under three severe landing cases are analyzed, respectively. The results depicted that the landers, respectively, adopting the two energy absorption materials well, satisfy the soft-landing performance requirements in all the cases. It is worth mentioning that the lander employing the buckypaper is proved to demonstrate a better soft-landing performance, mainly reflected in reducing the mass of the energy absorption element by 8.14 kg and lowing the maximum center-of-mass overload of the lander by 0.54 g.


Sign in / Sign up

Export Citation Format

Share Document