Improving the Buffer Energy Absorption Characteristics of Movable Lander-Numerical and Experimental Studies
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[1] D. R. Marble,et al. Possible materials needs for energy absorption in space-vehicle landings , 1964 .
[2] R. J. Black,et al. Quadrupedal landing gear systems for spacecraft , 1964 .
[3] M. Mantus,et al. Landing dynamics of the lunar excursion module. , 1966 .
[4] B. J. Durling,et al. A procedure for computing the motion of a lunar-landing vehicle during the landing impact , 1967 .
[5] H. W. Leonard,et al. Dynamic model investigation of touchdown stability of lunar-landing vehicles , 1967 .
[6] R. H. Jones,et al. Some basic guidelines for establishing structural design parameters for the landing gear of stable, soft landing spacecraft. , 1968 .
[7] U. J. Blanchard. Full-scale dynamic landing-impact investigation of a prototype lunar module landing gear , 1969 .
[8] Yoshiaki Yasui,et al. Dynamic axial crushing of multi-layer honeycomb panels and impact tensile behavior of the component members , 2000 .
[9] Heung-Soo Kim,et al. New extruded multi-cell aluminum profile for maximum crash energy absorption and weight efficiency , 2002 .
[10] Tongxi Yu,et al. In-plane dynamic crushing of honeycombs : a finite element study , 2003 .
[11] Jilin Yu,et al. Dynamic crushing of 2 D cellular structures : A finite element study , 2005 .
[12] Zhijun Zheng,et al. Dynamic crushing of 2D cellular structures: A finite element study , 2005 .
[13] Tau Tyan,et al. Quasi-static crush behavior of aluminum honeycomb specimens under compression dominant combined loads , 2006 .
[14] Xin-Lin Gao,et al. Dynamic crushing behavior of honeycomb structures with irregular cell shapes and non-uniform cell wall thickness , 2007 .
[15] Zhang Weihong,et al. Mean out-of-plane dynamic plateau stresses of hexagonal honeycomb cores under impact loadings , 2010 .
[16] Changjie Luo. Average Compressive Stress Constitutive Equation of Honeycomb Metal under Out-of-plane Compression , 2010 .
[17] Zongquan Deng,et al. Crashworthiness design optimisation of metal honeycomb energy absorber used in lunar lander , 2011 .
[18] Chen Tianzhi. Overview of Lunar Lander Soft Landing Dynamic Modeling and Analysis , 2011 .
[19] Masatsugu Otsuki,et al. Fundamental Study of Momentum-Exchange-Impact- Damper-Based Robust Landing Gear , 2012 .
[20] Luo Songbai,et al. Dynamic analysis and simulation of soft-landing for lunar lander , 2012 .
[21] Ali R. Yildiz,et al. A comparative study of population-based optimization algorithms for turning operations , 2012, Inf. Sci..
[22] M. K. Khan,et al. Experimental investigation of in-plane and out-of-plane crushing of aluminum honeycomb , 2012 .
[23] Huang We. Apollo Lunar Module Landing Gear Subsystem , 2013 .
[24] Rongqiang Liu,et al. Optimizing crashworthiness design of square honeycomb structure , 2014 .
[25] Dong Wei-l. Analysis on Soft-Landing Dynamics and Influence Factors of Lunar Lander , 2014 .
[26] Qilong Zhao,et al. Impact Analysis of Lunar Lander Soft Landing Performance Caused by the Body Gravity Centerline Shift , 2015 .
[27] Reza Serajian,et al. Effects of the change in auto coupler parameters on in-train longitudinal forces during brake application , 2015 .
[28] M. Golombek,et al. TOUCHDOWN DYNAMICS AND THE PROBABILITY OF TERRAIN RELATED FAILURE OF PLANETARY LANDING SYSTEMS , 2015 .
[29] Guangyong Sun,et al. Out-of-plane crashworthiness of bio-inspired self-similar regular hierarchical honeycombs , 2016 .
[30] Pan Cao,et al. Research for a modeling method of mars flexible airbag based on discrete element theory , 2017, 2017 2nd International Conference on Advanced Robotics and Mechatronics (ICARM).
[31] Ming Li,et al. Landing stability analysis for lunar landers using computer simulation experiments , 2017 .
[32] Heow Pueh Lee,et al. Dynamic analysis of lunar lander during soft landing using explicit finite element method , 2018, Acta Astronautica.
[33] Min Luo,et al. Parametric design and analysis on the landing gear of a planet lander using the response surface method , 2018, Acta Astronautica.
[34] A. Mugan,et al. Design and analysis of a hydraulic–elastic railcar buffer , 2018 .
[35] Tao Wang,et al. Crashworthiness analysis and multi-objective optimization of a commercial vehicle frame: A mixed meta-modeling-based method , 2018 .
[36] G. Petrone,et al. A numerical study on the impact behaviour of natural fibres made honeycomb cores , 2018, Composite Structures.
[37] Yong Zhang,et al. Enhance crashworthiness of composite structures using gradient honeycomb material , 2018 .
[38] Jean-Claude Grandidier,et al. Discrete modelling of low-velocity impact on Nomex® honeycomb sandwich structures with CFRP skins , 2019, Composite Structures.
[39] F. Lu,et al. Numerical Simulation on In-plane Deformation Characteristics of Lightweight Aluminum Honeycomb under Direct and Indirect Explosion , 2019, Materials.
[40] Jinhua Zhou,et al. Optimal time-jerk trajectory planning for the landing and walking integration mechanism using adaptive genetic algorithm method. , 2020, The Review of scientific instruments.
[41] Kai-Ten Feng,et al. A Multi-Objective Model Checking for Transmission Policy Optimization in Hybrid Powered Small Cell Networks , 2020, IEEE Access.
[42] Zongwen Li,et al. Experimental Study on Mechanical Properties of the Sandwich Composite Structure Reinforced by Basalt Fiber and Nomex Honeycomb , 2020, Materials.
[43] Zhongfang Li,et al. Simulation and application of Bi-directional corrugated honeycomb aluminum as filling material for impact limiter of nuclear spent fuel transport cask , 2020 .