Crashworthy design and energy absorption mechanisms for helicopter structures: A systematic literature review
Tài liệu tham khảo
Prouty, 1995
Johnson, 2012
Rao, 2018, High risk occurrence chains in helicopter accidents, Reliab. Eng. Syst. Saf., 170, 83, 10.1016/j.ress.2017.10.014
Filho, 2019, An analysis of helicopter accident reports in Brazil from a human factors perspective, Reliab. Eng. Syst. Saf., 183, 39, 10.1016/j.ress.2018.11.003
Churchwell, 2018, Epidemiology of helicopter accidents: trends, rates, and covariates, Reliab. Eng. Syst. Saf., 180, 373, 10.1016/j.ress.2018.08.007
Good, 1997, U.S. Army contributions in crashworthiness, SAFE J., 27, 138
Hasbrook, 1951
Turnbow, 1967
Pinkel, 1953, Mechanism of start and development of aircraft crash fires, 1133
Reed, 1966
Reed, 1965
Bigham, 1964, Theoretical determination of crash loads for a Lockheed 1649 aircraft in a crash test program, 15
Thornson, 1980, NASA/FAA general aviation crash dynamics program-A status report, J. Aircraft, 17, 584, 10.2514/3.57943
1993
Deletombe, 2000, Improvement of numerical methods for crash analysis in future composite aircraft design, Aero. Sci. Technol., 4, 189, 10.1016/S1270-9638(00)00126-7
Hughes, 2008, Application of the finite element method to predict the crashworthy response of a metallic helicopter under floor structure onto water, Int. J. Impact Eng., 35, 347, 10.1016/j.ijimpeng.2007.03.009
Shoji, 2007, Crashworthiness research on cabin structure at JAXA
Shoji, 2010, Improvements on impact energy absorbing ability of open section short columns, 2894
Ren, 2011, The crashworthiness of civil aircraft using different quadrangular tubes as cabin-floor struts, Int. J. Crashworthiness, 16, 253, 10.1080/13588265.2011.554204
Zheng, 2011, Crashworthiness design of transport aircraft subfloor using polymer foams, Int. J. Crashworthiness, 16, 375, 10.1080/13588265.2011.593979
Liu, 2015, Drop test and crash simulation of a civil airplane fuselage section, Chin. J. Aeronaut., 28, 447, 10.1016/j.cja.2015.01.007
Pei, 2008, Several key techniques for civil helicopter crashworthiness safety design and simulation, 1308
Gupta, 2005, Study of lateral compression of round metallic tubes, Thin-Walled Struct., 43, 895, 10.1016/j.tws.2004.12.002
Bao, 2015, Impact and rebound of an elastic-plastic ring on a rigid target, Int. J. Mech. Sci., 91, 55, 10.1016/j.ijmecsci.2014.03.031
Wang, 2018, Dynamic behavior of circular ring impinging on ideal elastic wall: analytical model and experimental validation, Int. J. Impact Eng., 122, 148, 10.1016/j.ijimpeng.2018.07.009
Wang, 2016, Lateral crushing of circular rings under wedge impact, Int. J. Appl. Mech., 8, 1650031, 10.1142/S1758825116500319
DeRuntz, 1963, Crushing of a tube between rigid plates, J. Appl. Mech., 30, 391, 10.1115/1.3636567
Burton, 1963
Redwood, 1964, Discussion of the paper by JA DeRuntz and PG Hodge, 1963, J. Appl. Mech. ASME, 31, 357, 10.1115/1.3629622
Reid, 1978, Effect of strain hardening on the lateral compression of tubes between rigid plates, Int. J. Solid Struct., 14, 213, 10.1016/0020-7683(78)90026-4
Liu, 2015, Theoretical analysis on quasi-static lateral compression of elliptical tube between two rigid plates, Appl. Math. Mech., 36, 1005, 10.1007/s10483-015-1962-7
B Wang, 2016, Theoretical model for elliptical tube laterally impacted by two parallel rigid plates, Appl. Math. Mech., 37, 227, 10.1007/s10483-016-2027-8
Baroutaji, 2016, Quasi-static, impact and energy absorption of internally nested tubes subjected to lateral loading, Thin-Walled Struct., 98, 337, 10.1016/j.tws.2015.10.001
Yella Reddy, 1979, Lateral compression of tubes and tube-systems with side constraints, Int. J. Mech. Sci., 21, 187, 10.1016/0020-7403(79)90023-7
Hall, 2002, Transverse and longitudinal crushing of aluminum-foam filled tubes, Scripta Mater., 46, 513, 10.1016/S1359-6462(02)00024-6
Fan, 2013, Dynamic lateral crushing of empty and sandwich tubes, Int. J. Impact Eng., 53, 3, 10.1016/j.ijimpeng.2012.09.006
Baroutaji, 2015, Analysis and optimization of sandwich tubes energy absorbers under lateral loading, Int. J. Impact Eng., 82, 74, 10.1016/j.ijimpeng.2015.01.005
Morris, 2006, Analysis of nested tube type energy absorbers with different indenters and exterior constraints, Thin-Walled Struct., 44, 872, 10.1016/j.tws.2006.08.014
Wang, 2015, Internally nested circular tube system subjected to lateral impact loading, Thin-Walled Struct., 91, 72, 10.1016/j.tws.2015.02.014
Niknejad, 2016, A novel nested system of tubes with special cross-section as the energy absorber, Thin-Walled Struct., 100, 113, 10.1016/j.tws.2015.12.009
Olabi, 2008, Optimised design of nested circular tube energy absorbers under lateral impact loading, Int. J. Mech. Sci., 50, 104, 10.1016/j.ijmecsci.2007.04.005
Olabi, 2008, Optimised design of nested oblong tube energy absorbers under lateral impact loading, Int. J. Impact Eng., 35, 10, 10.1016/j.ijimpeng.2006.11.007
Yang, 2019, An internally nested circular-elliptical tube system for energy absorption, Thin-Walled Struct., 139, 281, 10.1016/j.tws.2019.03.012
Liu, 2005, Dynamic behavior of ring systems subjected to pulse loading, Int. J. Impact Eng., 31, 1209, 10.1016/j.ijimpeng.2004.08.005
Kim, 2018, Demonstration of dispersive rarefaction shocks in hollow elliptical cylinder chains, Phys. Rev. Lett., 120, 194101, 10.1103/PhysRevLett.120.194101
Qiu, 2012, Some topics in recent advances and applications of structural impact dynamics, Appl. Mech. Rev., 64
Baroutaji, 2017, On the crashworthiness performance of thin-walled energy absorbers: recent advances and future developments, Thin-Walled Struct., 118, 137, 10.1016/j.tws.2017.05.018
Guillow, 2001, Quasi-static axial compression of thin-walled circular aluminium tubes, Int. J. Mech. Sci., 43, 2103, 10.1016/S0020-7403(01)00031-5
Karagiozova, 2004, Transition from progressive buckling to global bending of circular shells under axial impact-Part II: theoretical analysis, Int. J. Solid Struct., 41, 1581, 10.1016/j.ijsolstr.2003.10.006
Karagiozova, 2004, Transition from progressive buckling to global bending of circular shells under axial impact-Part I: experimental and numerical observations, Int. J. Solid Struct., 41, 1565, 10.1016/j.ijsolstr.2003.10.005
Jones, 2011
Hong, 2013, Quasi-static axial compression of triangular steel tubes, Thin-Walled Struct., 62, 10, 10.1016/j.tws.2012.08.004
Hong, 2016, Frusta structure designing to improve quasi-static axial crushing performances of triangular tubes, Int. J. Steel Struct., 16, 257, 10.1007/s13296-016-3019-7
Sun, 2017, Inward-contracted folding element for thin-walled triangular tubes, J. Constr. Steel Res., 130, 131, 10.1016/j.jcsr.2016.12.009
Fan, 2013, Axial crushing of triangular tubes, Int. J. Appl. Mech., 5, 1350008, 10.1142/S1758825113500087
Sun, 2010, Crashworthiness design for functionally graded foam-filled thin-walled structures, Mater. Sci. Eng. A, 527, 1911, 10.1016/j.msea.2009.11.022
Li, 2013, Crashworthiness of foam-filled thin-walled circular tubes under dynamic bending, Mater. Des., 52, 1058, 10.1016/j.matdes.2013.06.067
Mohsenizadeh, 2015, Crashworthiness assessment of auxetic foam-filled tube under quasi-static axial loading, Mater. Des., 88, 258, 10.1016/j.matdes.2015.08.152
Chen, 2016, A novel self-locked energy absorbing system, J. Mech. Phys. Solid., 87, 130, 10.1016/j.jmps.2015.11.008
Yang, 2018, Dynamic response of self-locked energy absorption system under impact loadings, Int. J. Impact Eng., 122, 209, 10.1016/j.ijimpeng.2018.08.011
Yang, 2017, Design of dimpled tubular structures for energy absorption, Thin-Walled Struct., 112, 31, 10.1016/j.tws.2016.12.003
Colokoglu, 1996, Strain rate and inertial effects in free external inversion of tubes, Int. J. Crashworthiness, 1, 93, 10.1533/cras.1996.0007
Rosa, 2004, An investigation on the external inversion of thin-walled tubes using a die, Int. J. Plast., 20, 1931, 10.1016/j.ijplas.2004.01.001
Niknejad, 2012, Theoretical and experimental studies of the external inversion process in the circular metal tubes, Mater. Des., 40, 324, 10.1016/j.matdes.2012.04.005
Yu, 2015, Analysis of the free external inversion of circular tubes based on deformation theory, Int. J. Mech. Sci., 100, 262, 10.1016/j.ijmecsci.2015.06.017
Li, 2018, Experimental and numerical investigations on the energy absorption of shrink circular tube under quasi-static loading, Int. J. Mech. Sci., 137, 284, 10.1016/j.ijmecsci.2018.01.019
Liu, 2018, A theoretical model of the inversion tube over a conical die, Thin-Walled Struct., 127, 31, 10.1016/j.tws.2018.01.035
Liu, 2017, An improved two-arcs deformational theoretical model of the expansion tubes, Int. J. Mech. Sci., 133, 240, 10.1016/j.ijmecsci.2017.08.036
Li, 2016, Study on the energy absorption of the expanding–splitting circular tube by experimental investigations and numerical simulations, Thin-Walled Struct., 103, 105, 10.1016/j.tws.2016.01.031
Huang, 2002, On the axial splitting and curling of circular metal tubes, Int. J. Mech. Sci., 44, 2369, 10.1016/S0020-7403(02)00191-1
Hussein, 2018, An analytical model of square CFRP tubes subjected to axial compression, Compos. Sci. Technol., 168, 170, 10.1016/j.compscitech.2018.09.019
Jiang, 2017, Design of novel plug-type triggers for composite square tubes: enhancement of energy-absorption capacity and inducing failure mechanisms, Int. J. Mech. Sci., 131–132, 113, 10.1016/j.ijmecsci.2017.06.050
Hu, 2010, Experimental study on crushing characteristics of brittle fibre/epoxy hybrid composite tubes, Int. J. Crashworthiness, 15, 401, 10.1080/13588261003647402
Hussein, 2017, Cutting and crushing of square aluminium/CFRP tubes, Compos. Struct., 171, 403, 10.1016/j.compstruct.2017.03.043
Hussein, 2018, An energy dissipating mechanism for crushing square aluminium/CFRP tubes, Compos. Struct., 183, 643, 10.1016/j.compstruct.2017.08.033
Sun, 2018, Experimental investigation of the quasi-static axial crushing behavior of filament-wound CFRP and aluminum/CFRP hybrid tubes, Compos. Struct., 194, 208, 10.1016/j.compstruct.2018.02.005
Tong, 2016, Energy absorption capability of carbon fiber reinforced plastic tubes with semi-circle grooved external trigger, J. Reinforc. Plast. Compos., 35, 1460, 10.1177/0731684416654579
Tong, 2018, Improvement of crash energy absorption of 2D braided composite tubes through an innovative chamfer external triggers, Int. J. Impact Eng., 111, 11, 10.1016/j.ijimpeng.2017.08.002
Heimbs, 2011, Integration of a composite crash absorber in aircraft fuselage vertical struts, Int. J. Veh. Struct. Syst., 3, 87
Zhang, 2015, Bioinspired engineering of honeycomb structure-Using nature to inspire human innovation, Prog. Mater. Sci., 74, 332, 10.1016/j.pmatsci.2015.05.001
Hohe, 1999, Effective elastic properties of triangular grid structures, Compos. Struct., 45, 131, 10.1016/S0263-8223(99)00016-1
Xue, 2006, Crush dynamics of square honeycomb sandwich cores, Int. J. Numer. Methods Eng., 65, 2221, 10.1002/nme.1535
D'Mello, 2013, Inplane crush response and energy absorption of circular cell honeycomb filled with elastomer, Compos. Struct., 106, 491, 10.1016/j.compstruct.2013.05.054
Zhang, 2013, Theoretical and numerical investigation on the crush resistance of rhombic and kagome honeycombs, Compos. Struct., 96, 143, 10.1016/j.compstruct.2012.09.028
Yang, 2018, Out-of-plane crashworthiness analysis of bio-inspired aluminum honeycomb patterned with horseshoe mesostructure, Thin-Walled Struct., 125, 1, 10.1016/j.tws.2018.01.014
He, 2018, Mechanical properties of spider-web hierarchical honeycombs subjected to out-of-plane impact loading, J. Sandw. Struct. Mater., 22, 771, 10.1177/1099636218772295
Xiang, 2017, Energy absorption characteristics of bio-inspired honeycomb structure under axial impact loading, Mater. Sci. Eng. A, 696, 283, 10.1016/j.msea.2017.04.044
Yang, 2019, In-plane dynamic crushing of a novel circular-celled honeycomb nested with petal-shaped mesostructure, Compos. Struct., 226, 111219, 10.1016/j.compstruct.2019.111219
Zhang, 2017, In–plane dynamic crushing behavior and energy absorption of honeycombs with a novel type of multi-cells, Thin-Walled Struct., 117, 199, 10.1016/j.tws.2017.03.028
Mousanezhad, 2015, Hierarchical honeycomb auxetic metamaterials, Sci. Rep., 5, 18306, 10.1038/srep18306
Haghpanah, 2013, Self-similar hierarchical honeycombs, Proc. Math. Phys. Eng. Sci., 469, 20130022, 10.1098/rspa.2013.0022
Combescure, 2017, Hierarchical honeycomb material design and optimization: beyond linearized behavior, Int. J. Solid Struct., 115–116, 161, 10.1016/j.ijsolstr.2017.03.011
Sun, 2016, Crashworthiness of vertex based hierarchical honeycombs in out-of-plane impact, Mater. Des., 110, 705, 10.1016/j.matdes.2016.08.032
Zhang, 2016, Out-of-plane crashworthiness of bio-inspired self-similar regular hierarchical honeycombs, Compos. Struct., 144, 1, 10.1016/j.compstruct.2016.02.014
Taylor, 2012, Functional grading in hierarchical honeycombs: density specific elastic performance, Compos. Struct., 94, 2296, 10.1016/j.compstruct.2012.01.021
Chen, 2012, In-plane elastic buckling of hierarchical honeycomb materials, Eur. J. Mech. Solid., 34, 120, 10.1016/j.euromechsol.2011.12.003
Sun, 2013, In plane stiffness of multifunctional hierarchical honeycombs with negative Poisson's ratio sub-structures, Compos. Struct., 106, 681, 10.1016/j.compstruct.2013.05.008
Yin, 2018, In-plane crashworthiness of bio-inspired hierarchical honeycombs, Compos. Struct., 192, 516, 10.1016/j.compstruct.2018.03.050
Qiao, 2016, In-plane crushing of a hierarchical honeycomb, Int. J. Solid Struct., 85–86, 57, 10.1016/j.ijsolstr.2016.02.003
Photiou, 2016, On the conical indentation response of elastic auxetic materials: effects of Poisson's ratio, contact friction and cone angle, Int. J. Solid Struct., 81, 33, 10.1016/j.ijsolstr.2015.10.020
Qi, 2017, Impact and close-in blast response of auxetic honeycomb-cored sandwich panels: experimental tests and numerical simulations, Compos. Struct., 180, 161, 10.1016/j.compstruct.2017.08.020
Hu, 2019, Dynamic indentation of auxetic and non-auxetic honeycombs under large deformation, Compos. Struct., 207, 323, 10.1016/j.compstruct.2018.09.066
Xiao, 2019, Compression behavior of the graded metallic auxetic reentrant honeycomb: experiment and finite element analysis, Mater. Sci. Eng. A, 758, 163, 10.1016/j.msea.2019.04.116
Imbalzano, 2015, Three-dimensional modelling of auxetic sandwich panels for localised impact resistance, J. Sandw. Struct. Mater., 19, 291, 10.1177/1099636215618539
Imbalzano, 2018, Blast resistance of auxetic and honeycomb sandwich panels: comparisons and parametric designs, Compos. Struct., 183, 242, 10.1016/j.compstruct.2017.03.018
Yang, 2013, A comparative study of ballistic resistance of sandwich panels with aluminum foam and auxetic honeycomb cores, Adv. Mech. Eng., 5, 589216, 10.1155/2013/589216
Zarei, 2008, Optimum honeycomb filled crash absorber design, Mater. Des., 29, 193, 10.1016/j.matdes.2006.10.013
Hussein, 2016, Axial crushing behaviour of honeycomb-filled square carbon fibre reinforced plastic (CFRP) tubes, Compos. Struct., 140, 166, 10.1016/j.compstruct.2015.12.064
Wang, 2016, Matching effect of honeycomb-filled thin-walled square tube-Experiment and simulation, Compos. Struct., 157, 494, 10.1016/j.compstruct.2016.03.045
Han, 2016, Honeycomb–corrugation hybrid as a novel sandwich core for significantly enhanced compressive performance, Mater. Des., 93, 271, 10.1016/j.matdes.2015.12.158
Zhang, 2019, Dynamic impact response of aluminum honeycombs filled with Expanded Polypropylene foam, Compos. B Eng., 156, 17, 10.1016/j.compositesb.2018.08.043
Wang, 2018, Mechanical performance of honeycomb filled with circular CFRP tubes, Compos. B Eng., 135, 232, 10.1016/j.compositesb.2017.09.048
Farley, 1987, Crash energy absorbing subfloor beam structure, J. Am. Helicopter Soc., 32, 28, 10.4050/JAHS.32.28
Farley, 1989, A method of predicting the energy absorption capability of composite subfloor beams, J. Am. Helicopter Soc., 34, 63
Mahé, 2001, Composite fuselage crash FE modelling dedicated to enhance the design in correlation with full scale drop test, Mec. Ind., 2, 5
Hanagud, 1989, Energy absorption behavior of graphite epoxy composite sine webs, J. Compos. Mater., 23, 448, 10.1177/002199838902300502
Feraboli, 2008, Development of a corrugated test specimen for composite materials energy absorption, J. Compos. Mater., 42, 229, 10.1177/0021998307086202
Sokolinsky, 2011, Numerical simulation of the crushing process of a corrugated composite plate, Compos. Appl. Sci. Manuf., 42, 1119, 10.1016/j.compositesa.2011.04.017
Jiang, 2017, Numerical investigation on links between the stacking sequence and energy absorption characteristics of fabric and unidirectional composite sinusoidal plate, Compos. Struct., 171, 382, 10.1016/j.compstruct.2017.03.047
Duan, 2014, Investigation on structure optimization of crashworthiness of fiber reinforced polymers materials, Compos. B Eng., 60, 471, 10.1016/j.compositesb.2013.12.062
Tan, 2016, Modelling the crush behaviour of thermoplastic composites, Compos. Sci. Technol., 134, 57, 10.1016/j.compscitech.2016.07.015
Kermanidis, 1970, 35
Jiang, 2009, Energy-absorption behavior of a metallic double-sine-wave beam under axial crushing, Thin-Walled Struct., 47, 1168, 10.1016/j.tws.2009.04.006
Hou, 2015, Energy absorption behavior of metallic staggered double-sine-wave tubes under axial crushing, J. Mech. Sci. Technol., 29, 2439, 10.1007/s12206-015-0538-7
Silverberg, 2014, Using origami design principles to fold reprogrammable mechanical metamaterials, Science, 345, 647, 10.1126/science.1252876
Li, 2019, Open-section origami beams for energy absorption, Int. J. Mech. Sci., 157–158, 741, 10.1016/j.ijmecsci.2019.05.006
Song, 2012, Axial crushing of thin-walled structures with origami patterns, Thin-Walled Struct., 54, 65, 10.1016/j.tws.2012.02.007
Ma, 2013, Energy absorption of thin-walled square tubes with a prefolded origami pattern-Part I: geometry and numerical simulation, J. Appl. Mech., 81
Li, 2019, Origami concave tubes for energy absorption, Int. J. Solid Struct., 169, 21, 10.1016/j.ijsolstr.2019.03.026
Chen, 2018, Ron Resch origami pattern inspired energy absorption structures, J. Appl. Mech., 86
Kellas, 2010, Deployable system for crash-load attenuation, J. Am. Helicopter Soc., 55, 10.4050/JAHS.55.042001
Hu, 2014, Numerical investigation of the energy absorption characteristics of a fan-shaped deployable energy absorber, Int. J. Crashworthiness, 19, 126, 10.1080/13588265.2013.876147
Xing, 2015, Effects of hinges and deployment angle on the energy absorption characteristics of a single cell in a deployable energy absorber, Thin-Walled Struct., 94, 107, 10.1016/j.tws.2015.04.015
Ye, 2019, Energy absorption behaviors of pre-folded composite tubes with the full-diamond origami patterns, Compos. Struct., 221, 110904, 10.1016/j.compstruct.2019.110904
Zhang, 2019, Quasi-static large deformation compressive behaviour of origami-based metamaterials, Int. J. Mech. Sci., 153–154, 194, 10.1016/j.ijmecsci.2019.01.044
Shan, 2015, Multistable Architected materials for trapping elastic strain energy, Adv. Mater., 27, 4296, 10.1002/adma.201501708
Frenzel, 2016, Tailored buckling microlattices as reusable light-weight shock absorbers, Adv. Mater., 28, 5865, 10.1002/adma.201600610
Correa Dixon, 2015, Negative stiffness honeycombs for recoverable shock isolation, Rapid Prototyp. J., 21, 193, 10.1108/RPJ-12-2014-0182
Fu, 2019, Programmable granular metamaterials for reusable energy absorption, Adv. Funct. Mater., 29, 1901258, 10.1002/adfm.201901258
Kim, 2017, Design and testing of a crashworthy landing gear, ASCE-ASME J. Risk Uncertain. Eng. Syst. Part B Mech. Eng., 3
Batterbee, 2007, Magnetorheological landing gear: 1. A design methodology, Smart Mater. Struct., 16, 2429, 10.1088/0964-1726/16/6/046
Batterbee, 2007, Magnetorheological landing gear: 2. Validation using experimental data, Smart Mater. Struct., 16, 2441, 10.1088/0964-1726/16/6/047
Choi, 2016, Analysis and control of a magnetorheological landing gear system for a helicopter, J. Am. Helicopter Soc., 61, 1, 10.4050/JAHS.61.032006
Saleh, 2017, Crashworthiness study of helicopter skid landing gear system equipped with a magnetorheological energy absorber
Yang, 2002, Energy absorbing capability of kneeling landing gear for new type armed helicopters during crash process(II): theoretical model analysis, Acta Aeronautica Astronautica Sinica, 23, 28
Yang, 2002, Energy absorbing capability of kneeling landing gear for new type armed helicopters during crash process(I): numerical simulation, Acta Aeronautica Astronautica Sinica, 23, 23
Crist, 1981
Airoldi, 2005, A design solution for a crashworthy landing gear with a new triggering mechanism for the plastic collapse of metallic tubes, Aero. Sci. Technol., 9, 445, 10.1016/j.ast.2005.04.001
Kim, 2014, Crashworthy landing gear design using a composite tube by extra energy absorber
Guida, 2014, Innovative anti crash absorber for a crashworthy landing gear, Appl. Compos. Mater., 21, 483, 10.1007/s10443-013-9351-6
Krstic, 2016, Investigation into recurring military helicopter landing gear failure, Eng. Fail. Anal., 63, 121, 10.1016/j.engfailanal.2016.02.018
Kumar, 2014, Design and structural analysis of skid landing gear
Airoldi, 2005, Multi-objective genetic optimization for helicopter skid landing gears
Tho, 2004, Efficient helicopter skid landing gear dynamic drop simulation using LS-DYNA, J. Am. Helicopter Soc., 49, 483, 10.4050/JAHS.49.483
Dayananda, 2007, Shape memory alloy based smart landing gear for an airship, J. Aircraft, 44, 1469, 10.2514/1.26811
Kiefer, 2016, Rotorcraft hard landing mitigation using robotic landing gear, J. Dyn. Syst. Meas. Contr., 138, 10.1115/1.4032286
Kindervater, 1999, Composite vehicle structural crashworthiness -A status of design methodology and numerical simulation techniques, Int. J. Crashworthiness, 4, 213, 10.1533/cras.1999.0101
Bisagni, 2002, Crashworthiness of helicopter subfloor structures, Int. J. Impact Eng., 27, 1067, 10.1016/S0734-743X(02)00015-5
Kindervater, 1988, Crashworthy design of aircraft subfloor structural components
Kindervater, 1993, Composite strength and energy absorption as an aspect of structural crash resistance, 189
Bisagni, 1999, Crashworthiness of helicopter subfloor structural components, Aircraft Eng. Aero. Technol., 71, 6, 10.1108/00022669910252088
Subbaramaiah, 2012, A fea-sibility study for multi-material retrofittable energy absorb-ing structure for aged helicopter subfloor, 23
Zhou, 2017, Application of foldcore sandwich structures in helicopter subfloor energy absorption structure
Johnson, 1996, Crash resistant composite subfloor structures for helicopters
McCarthy, 2001, Numerical investigation of a crash test of a composite helicopter subfloor structure, Compos. Struct., 51, 345, 10.1016/S0263-8223(00)00150-1
Joosten, 2012, Improved design methods for crashworthy composite helicopter structures
Hughes, 2007, Experimental observations of an 8 m/s drop test of a metallic helicopter underfloor structure onto a hard surface: part 1, Proceedings of the Institution of Mechanical Engineers, Part G: J. Aero. Eng., 221, 661
Bisagni, 2002, Optimization of helicopter subfloor components under crashworthiness requirements using neural networks, J. Aircraft, 39, 296, 10.2514/2.2927
Lanzi, 2004, Crashworthiness optimization of helicopter subfloor based on decomposition and global approximation, Struct. Multidiscip. Optim., 27, 401, 10.1007/s00158-004-0394-z
Perschbacher, 1996
Littell, 2011, Full-scale crash test of an MD-500 helicopter, 1
Littell, 2011, A comparative analysis of two full-scale MD-500 helicopter crash tests, vol. 6, 495
Lützenburger, 2008, Improved occupant crash safety in helicopters
Votaw, 1984, A system approach for designing a crashworthy helicopter using program KRASH
Winter, 1980, Crash simulation of composite and aluminum helicopter fuselages using a finite element program, J. Aircraft, 17, 591, 10.2514/3.57944
Yang, 2003, Simplified Mechanical model of Helicopter crashworthiness design, Chin. J. Mech. Eng., 39, 109, 10.3901/JME.2003.12.109
Lyle, 2000, Development of an ACAP helicopter finite element impact model, J. Am. Helicopter Soc., 45, 137, 10.4050/JAHS.45.137
Fasanella, 2001, Full-scale crash test and simulation of a composite helicopter, Int. J. Crashworthiness, 6, 485, 10.1533/cras.2001.0192
Mikhailov, 2003, Finte element simulation of a helicopter crash impact
Fasanella, 2013, Simulating the response of a composite honeycomb energy absorber. II: full-scale impact testing, J. Aero. Eng., 27, 437, 10.1061/(ASCE)AS.1943-5525.0000358
Annett, 2010
Desjardins, 2006, The evolution of energy absorption systems for crashworthy helicopter seats, J. Am. Helicopter Soc., 51, 150, 10.4050/JAHS.51.150
Cacchione, 2010
Özturk, 2018, Energy absorption mechanisms and crash analysis of helicopter seats
Coltman, 1983
Hu, 2009, Full-scale vertical drop test and numerical simulation of a crashworthy helicopter seat/occupant system, Int. J. Crashworthiness, 14, 565, 10.1080/13588260902896433
Beheshti, 2006, A simplified test methodology for crashworthiness evaluation of aircraft seat cushions, Int. J. Crashworthiness, 11, 27, 10.1533/ijcr.2005.0381
Beheshti, 2010, An investigation in crashworthiness evaluation of aircraft seat cushions at extreme ranges of temperature, J. Mech. Sci. Technol., 24, 1105, 10.1007/s12206-010-0316-5
Cacchione, 2011, Numerical investigation on carbon foam-based dampers for helicopter seats, Int. J. Crashworthiness, 16, 511, 10.1080/13588265.2011.611396
Galehdari, 2016, Design and analysis of a graded honeycomb shock absorber for a helicopter seat during a crash condition, Int. J. Crashworthiness, 21, 231, 10.1080/13588265.2016.1165440
Lee, 2009, A study on the modeling and analysis of a helicopter's occupant seat belt for crashworthiness, J. Mech. Sci. Technol., 23, 1027, 10.1007/s12206-009-0334-3
Lanzi, 2012, Direct search of feasible region and application to a crashworthy helicopter seat, Struct. Multidiscip. Optim., 45, 875, 10.1007/s00158-011-0727-7
Labun, 2009
Wolfe, 2019, Crash-resistant fuel system, Rotor Wing Int., 53, 20
Army, 2007
Souli, 2016, Arbitrary Lagrangian eulerian formulation for sloshing tank analysis in nuclear engineering, Nucl. Sci. Eng., 183, 126, 10.13182/NSE15-63
Nitikitpaiboon, 1993, An arbitrary Lagrangian-eulerian velocity potential formulation for fluid-structure interaction, Comput. Struct., 47, 871, 10.1016/0045-7949(93)90364-J
Souli, 2000, ALE formulation for fluid–structure interaction problems, Comput. Methods Appl. Mech. Eng., 190, 659, 10.1016/S0045-7825(99)00432-6
Monaghan, 1992, Smoothed particle hydrodynamics, Annu. Rev. Astron. Astrophys., 30, 543, 10.1146/annurev.aa.30.090192.002551
Liu, 2010, Smoothed particle hydrodynamics (SPH): an overview and recent developments, Arch. Comput. Methods Eng., 17, 25, 10.1007/s11831-010-9040-7
Anghileri, 1998, Crash behavior of helicopter fuel tank structures
Invernizzi, 2006
Luo, 2007, Simulation and analysis of crashworthiness of fuel tank for helicopters, Chin. J. Aeronaut., 20, 230, 10.1016/S1000-9361(07)60037-5
Li, 2007, The simulation of dual layer fuel tank during the impact with the ground based on parallel computing, J. Comput. Nonlinear Dynam., 2, 366, 10.1115/1.2756078
Kim, 2014, Numerical simulation of crash impact test for fuel cell group of rotorcraft, Int. J. Crashworthiness, 19, 639, 10.1080/13588265.2014.940130
Kim, 2019, ALE numerical simulation of the crash impact test of an external auxiliary fuel tank, Int. J. Crashworthiness, 24, 593, 10.1080/13588265.2018.1495594
Yang, 2016, Fluid-structure interaction analysis of the drop impact test for helicopter fuel tank, SpringerPlus, 5, 1573, 10.1186/s40064-016-3040-5
Prus, 2017, Impact simulation and optimisation of elastic fuel tanks reinforced with exoskeleton for aerospace applications, Int. J. Crashworthiness, 22, 271, 10.1080/13588265.2016.1248806
Anghileri, 2005, Fluid-structure interaction of water filled tanks during the impact with the ground, Int. J. Impact Eng., 31, 235, 10.1016/j.ijimpeng.2003.12.005
Kim, 2019, Numerical analysis of drop impact-induced damage of a composite fuel tank assembly on a helicopter considering liquid sloshing, Compos. Struct., 229, 111438, 10.1016/j.compstruct.2019.111438
Varas, 2009, Numerical modelling of the hydrodynamic ram phenomenon, Int. J. Impact Eng., 36, 363, 10.1016/j.ijimpeng.2008.07.020
Ball, 2003
Fry, 1976
Anderson, 1999, Simulation and analysis of a 23-mm HEI projectile hydrodynamic ram experiment, Int. J. Impact Eng., 22, 981, 10.1016/S0734-743X(99)00046-9
Varas, 2012, Numerical analysis of the hydrodynamic ram phenomenon in aircraft fuel tanks, AIAA J., 50, 1621, 10.2514/1.J051613
Kwon, 2016, Modeling and simulation of high-velocity projectile impact on storage tank, J. Pressure Vessel Technol., 138, 10.1115/1.4032447
Disimile, 2011, Mitigation of shock waves within a liquid filled tank, Int. J. Impact Eng., 38, 61, 10.1016/j.ijimpeng.2010.10.006
Artero-Guerrero, 2018, Experimental analysis of an attenuation method for Hydrodynamic Ram effects, Mater. Des., 155, 451, 10.1016/j.matdes.2018.06.020
Pascal, 2017, Study of medium velocity impacts on the lower surface of helicopter blades, 159
Morozov, 2003, Impact damage tolerance of laminated composite helicopter blades, Compos. Struct., 62, 367, 10.1016/j.compstruct.2003.09.034
Rasuo, 2007, An experimental methodology for evaluating survivability of an aeronautical construction from composite materials: an overview, Int. J. Crashworthiness, 12, 9, 10.1533/ijcr.2006.0135
Kumar, 2011, Dynamic modeling and analysis of composite rotor blades under low velocity impact loads
Tawk, 2012, Study of impact on helicopter blade, Eng. Fail. Anal., 24, 38, 10.1016/j.engfailanal.2012.03.005
Navarro, 2012, Semi-continuous approach for the modeling of thin woven composite panels applied to oblique impacts on helicopter blades, Compos. Appl. Sci. Manuf., 43, 871, 10.1016/j.compositesa.2012.01.020
Heimbs, 2011, Computational methods for bird strike simulations: a review, Comput. Struct., 89, 2093, 10.1016/j.compstruc.2011.08.007
Hedayati, 2014, Bird strike analysis on a typical helicopter windshield with different lay-ups, J. Mech. Sci. Technol., 28, 1381, 10.1007/s12206-014-0125-3
Wilbeck, 1977
Hu, 2016, Experiment and numerical simulation of a full-scale helicopter composite cockpit structure subject to a bird strike, Compos. Struct., 149, 385, 10.1016/j.compstruct.2016.04.035
Eren, 2017, Modeling of bird strike on a composite helicopter rotor blade
Chandra Naik, 2018, Helicopter main rotor blade root end under high velocity bird impact, Mater. Today: Proc., 5, 4653, 10.1016/j.matpr.2017.12.037
Heimbs, 2017, Numerical analysis of bird strike resistance of helicopter searchlight, Procedia Struct. Integr., 5, 689, 10.1016/j.prostr.2017.07.044
Jang, 2019, Bird-strike damage analysis and preliminary design of composite radome structure using smoothed particle hydrodynamics, Appl. Compos. Mater., 26, 763, 10.1007/s10443-018-9750-9
Kim, 2019, A numerical study on the influence of the amount of internal fuel in a bird strike test for the external auxiliary fuel tank of rotorcraft, Int. J. Crashworthiness, 24, 137, 10.1080/13588265.2017.1410339
Kim, 2019, Evaluation of bird strike-induced damages of helicopter composite fuel tank assembly based on fluid-structure interaction analysis, Compos. Struct., 210, 676, 10.1016/j.compstruct.2018.11.086
Kim, 2019, Numerical investigation of impact-induced damage of auxiliary composite fuel tanks on Korean Utility Helicopter, Compos. B Eng., 165, 301, 10.1016/j.compositesb.2018.11.117
Brooks, 2014, Helicopter crashes into water: warning time, final position, and other factors affecting survival, Aviat Space Environ. Med., 85, 440, 10.3357/ASEM.3478.2014
Von Karman, 1929, The impact on seaplane floats during landing, NACA Tech. Note, 321
Chen, 1993
Muller, 1993
Seddon, 2006, Review of water entry with applications to aerospace structures, Int. J. Impact Eng., 32, 1045, 10.1016/j.ijimpeng.2004.09.002
Hughes, 2008, A chronological review of research related to water impact from 1982 to 2006, J. Am. Helicopter Soc., 53, 429, 10.4050/JAHS.53.429
Vignjevic, 2001, Simulation of helicopter under-floor structure impact on water, Int. J. Crashworthiness, 6, 425, 10.1533/cras.2001.0188
Thuis, 1994, A tensor-skin concept for crashworthiness of helicopters in case of water impact, 547
Vignjevic, 2002, A new concept for a helicopter sub-floor structure crashworthy in impacts on water and rigid surfaces, Int. J. Crashworthiness, 7, 321
Taber, 2013, Crash attenuating seats: effects on helicopter underwater escape performance, Saf. Sci., 57, 179, 10.1016/j.ssci.2013.02.007
Anghileri, 2004, Water impact of a filled tank
Pentecôte, 2003, Crashworthiness of helicopters on water: test and simulation of a full-scale WG30 impacting on water, Int. J. Crashworthiness, 8, 559, 10.1533/ijcr.2003.0259
Randhawa, 2003, Finite element analysis of impacts on water and its application to helicopter water landing and occupant safety, Int. J. Crashworthiness, 8, 189, 10.1533/ijcr.2003.0229
Ghaffari, 1990, Analytical method for the ditching analysis of an airborne vehicle, J. Aircraft, 27, 312, 10.2514/3.25274
Xiao, 2017, Development of a smoothed particle hydrodynamics method and its application to aircraft ditching simulations, Aero. Sci. Technol., 66, 28, 10.1016/j.ast.2017.02.022
Woodgate, 2019, Simulation of helicopter ditching using smoothed particle hydrodynamics, Aero. Sci. Technol., 85, 277, 10.1016/j.ast.2018.12.016
Lu, 2019
Jackson, 2004, Occupant responses in a full-scale crash test of the Sikorsky ACAP helicopter, J. Am. Helicopter Soc., 49, 127, 10.4050/JAHS.49.127
Vadlamudi, 2011, A multi-body systems approach to simulate helicopter occupant protection systems, Int. J. Crashworthiness, 16, 207, 10.1080/13588265.2011.554203
Cheng, 2001, Optimal control of helicopter seat cushions for the reduction of spinal injuries, Int. J. Crashworthiness, 6, 321, 10.1533/cras.2001.0181
Astori, 2013, Crash response optimisation of helicopter seat and subfloor, Int. J. Crashworthiness, 18, 570, 10.1080/13588265.2013.815602
Aggromito, 2014, Effects of body-borne equipment on occupant forces during a simulated helicopter crash, Int. J. Ind. Ergon., 44, 561, 10.1016/j.ergon.2014.03.002
Aggromito, 2015, Effect of body-borne equipment on injury of military pilots and aircrew during a simulated helicopter crash, Int. J. Ind. Ergon., 50, 130, 10.1016/j.ergon.2015.07.001
Choi, 2005, Biodynamic response mitigation to shock loads using magnetorheological helicopter crew seat suspensions, J. Aircraft, 42, 1288, 10.2514/1.6839
Singh, 2014, Influence of occupant compliance on a vertically stroking helicopter crew seat suspension, J. Aircraft, 52, 1286, 10.2514/1.C032910
1988
Coltman, 1988