Computational modeling of blast induced whole-body injury: a review
暂无分享,去创建一个
[1] R. Bauman,et al. Blast overpressure in rats: recreating a battlefield injury in the laboratory. , 2009, Journal of neurotrauma.
[2] Richard Bibb,et al. Design of human surrogates for the study of biomechanical injury: a review. , 2013, Critical reviews in biomedical engineering.
[3] S. G. Kulkarni,et al. Ballistic helmets - Their design, materials, and performance against traumatic brain injury , 2012 .
[4] J. Fowlkes,et al. Section 3‐‐selected biological properties of tissues: potential determinants of susceptibility to ultrasound‐induced bioeffects. American Institute of Ultrasound in Medicine. , 2000, Journal of ultrasound in medicine : official journal of the American Institute of Ultrasound in Medicine.
[5] Arnab Chanda,et al. Effect of blasts on subject-specific computational models of skin and bone sections at various locations on the human body , 2015 .
[6] C. Sun,et al. Testing and modeling high strain rate behavior of polymeric composites , 1998 .
[7] A Gefen,et al. Analysis of stress distribution in the alveolar septa of normal and simulated emphysematic lungs. , 1999, Journal of biomechanics.
[8] Rong Z. Gan,et al. Modeling of Sound Transmission from Ear Canal to Cochlea , 2007, Annals of Biomedical Engineering.
[9] Samit Roy,et al. Computational Modeling of the Female Pelvic Support Structures and Organs to Understand the Mechanism of Pelvic Organ Prolapse: A Review , 2015 .
[10] Z. Yang,et al. Biological effects of weak blast waves and safety limits for internal organ injury in the human body. , 1996, The Journal of trauma.
[11] A. Przekwas,et al. Mathematical Models of Blast-Induced TBI: Current Status, Challenges, and Prospects , 2013, Front. Neurol..
[12] E. G. Damon,et al. The Biodynamics of Air Blast , 1971 .
[13] H. Hamit. Primary blast injuries. , 1973, IMS, Industrial medicine and surgery.
[14] Shailesh Ganpule,et al. Evolution of blast wave profiles in simulated air blasts: experiment and computational modeling , 2012, Shock Waves.
[15] Masami Iwamoto,et al. DEVELOPMENT OF A FINITE ELEMENT MODEL OF THE TOTAL HUMAN MODEL FOR SAFETY (THUMS) AND APPLICATION TO INJURY RECONSTRUCTION , 2002 .
[16] J. Clasper,et al. Mortality and morbidity from combat neck injury , 2011, The journal of trauma and acute care surgery.
[17] Qunli Sun,et al. Acoustic-structural coupled finite element analysis for sound transmission in human ear--pressure distributions. , 2006, Medical engineering & physics.
[18] A. Berger,et al. Organotypical engineering of differentiated composite-skin equivalents of human keratinocytes in a collagen-GAG matrix (INTEGRA Artificial Skin) in a perfusion culture system , 2001, Langenbeck's Archives of Surgery.
[19] Y. Bhattacharjee. Shell Shock Revisited: Solving the Puzzle of Blast Trauma , 2008, Science.
[20] M. Quéré,et al. Ocular blast injuries. , 1969, American journal of ophthalmology.
[21] Robert M. Harris,et al. Blast Injury Research: Modeling Injury Effects of Landmines, Bullets, and Bombs , 2004, Clinical orthopaedics and related research.
[22] Kevin Williams,et al. Finite Element Modeling for the Prediction of Blast Trauma , 2005 .
[23] Ming Shen,et al. A comprehensive experimental study on material properties of human brain tissue. , 2013, Journal of biomechanics.
[24] N Bonora,et al. Modelling human eye under blast loading , 2015, Computer methods in biomechanics and biomedical engineering.
[25] G. Unnikrishnan. Computational modeling of biological cells and soft tissues , 2008 .
[26] A. Chanda,et al. PATIENT-SPECIFIC BIOFIDELIC HUMAN CORONARY ARTERY SURROGATES , 2018, Journal of Mechanics in Medicine and Biology.
[27] C. Born. Blast Trauma: The Fourth Weapon of Mass Destruction , 2005, Scandinavian journal of surgery : SJS : official organ for the Finnish Surgical Society and the Scandinavian Surgical Society.
[28] J J Rosowski,et al. Middle-ear function with tympanic-membrane perforations. I. Measurements and mechanisms. , 2001, The Journal of the Acoustical Society of America.
[29] D. R. Hooker,et al. PHYSIOLOGICAL EFFECTS OF AIR CONCUSSION , 1924 .
[30] A. King,et al. Comparison of brain responses between frontal and lateral impacts by finite element modeling. , 2001, Journal of neurotrauma.
[31] L. Lv,et al. Transverse Impact Damage and Energy Absorption of Three-Dimensional Orthogonal Hybrid Woven Composite: Experimental and FEM Simulation , 2008 .
[32] J H Stuhmiller,et al. Computer modeling of thoracic response to blast. , 1988, The Journal of trauma.
[33] P J Prendergast,et al. The Effect of Prosthesis Design on Vibration of the Reconstructed Ossicular Chain: A Comparative Finite Element Analysis of Four Prostheses , 2003, Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology.
[34] Cynthia Bir,et al. Measuring Blast-Related Intracranial Pressure Within the Human Head , 2011 .
[35] Arun Shukla,et al. Shock loading of three-dimensional woven composite materials , 2007 .
[36] Arun Shukla,et al. Performance of sandwich composites subjected to sequential impact and air blast loading , 2011 .
[37] D. Meaney,et al. A Multiscale Approach to Blast Neurotrauma Modeling: Part II: Methodology for Inducing Blast Injury to in vitro Models , 2012, Front. Neur..
[38] A. Kemper,et al. Injury Biomechanics of the Human Eye During Blunt and Blast Loading , 2012 .
[39] David Atkinson,et al. On modelling of anisotropic viscoelasticity for soft tissue simulation: Numerical solution and GPU execution , 2009, Medical Image Anal..
[40] T. Nguyen,et al. Effectiveness of eye armor during blast loading , 2015, Biomechanics and modeling in mechanobiology.
[41] R Abbotts,et al. Primary Blast Injuries to the Eye: A Review of the Evidence , 2007, Journal of the Royal Army Medical Corps.
[42] T Pandelani,et al. Evaluation of the South African surrogate leg for landmine protection injury measurements , 2010 .
[43] A. Ommaya,et al. Head injury mechanisms and the concept of preventive management: a review and critical synthesis. , 1995, Journal of neurotrauma.
[44] J Wismans,et al. MADYMO-CRASH VICTIM SIMULATIONS, A COMPUTERISED RESEARCH AND DESIGN TOOL , 1980 .
[45] Zeeshan-ul-hassan Usmani,et al. Modeling and Simulation of Explosion Effectiveness as a Function of Blast and Crowd Characteristics , 2009 .
[46] C A Laszlo,et al. Modeling of the cat eardrum as a thin shell using the finite-element method. , 1978, The Journal of the Acoustical Society of America.
[47] J J Rosowski,et al. How do tympanic-membrane perforations affect human middle-ear sound transmission? , 2001, Acta oto-laryngologica.
[48] Michael S. Xydakis,et al. Analysis of Battlefield Head and Neck Injuries in Iraq and Afghanistan , 2004, Otolaryngology--head and neck surgery : official journal of American Academy of Otolaryngology-Head and Neck Surgery.
[49] K. T. Dodd,et al. Maximal exercise performance-impairing effects of simulated blast overpressure in sheep. , 1997, Toxicology.
[50] H Axelsson,et al. Chest wall velocity as a predictor of nonauditory blast injury in a complex wave environment. , 1996, The Journal of trauma.
[51] Multiscale Computational Analysis of Biomechanical Systems , 2010 .
[52] J. Phillips,et al. A shock‐tube investigation of the dynamics of gas‐particle mixtures: Implications for explosive volcanic eruptions , 2006 .
[53] A Gefen,et al. Analysis of mechanical stresses within the alveolar septa leading to pulmonary edema. , 2001, Technology and health care : official journal of the European Society for Engineering and Medicine.
[54] J. Wismans,et al. MADYMO Pedestrian Simulations , 1983 .
[55] Takuji Koike,et al. Modeling of the human middle ear using the finite-element method. , 2002, The Journal of the Acoustical Society of America.
[56] Kunio Yamazaki,et al. First Results from the JAMA Human Body Model Project , 2005 .
[57] Nicola Bonora,et al. Primary blast injury to the eye and orbit: finite element modeling. , 2012, Investigative ophthalmology & visual science.
[58] Joel D. Stitzel,et al. Computational Simulations of Ocular Blast Loading and Prediction of Eye Injury Risk , 2012 .
[59] M. Reiter,et al. Protecting military convoys in Iraq: an examination of battle injuries sustained by a mechanized battalion during Operation Iraqi Freedom II. , 2005, Military medicine.
[60] ウォルディーン、 エイ. シュルツ、,et al. Hybrid 3d probe tracked by multiple sensors , 1999 .
[61] Shailesh Ganpule,et al. Blast wave loading pathways in heterogeneous material systems-experimental and numerical approaches. , 2013, Journal of biomechanical engineering.
[62] Linxia Gu,et al. DYNAMIC RESPONSE OF BRAIN SUBJECTED TO BLAST LOADINGS: INFLUENCE OF FREQUENCY RANGES , 2011 .
[63] C. Bir,et al. Lower extremity injury criteria for evaluating military vehicle occupant injury in underbelly blast events. , 2009, Stapp car crash journal.
[64] Ala Tabiei,et al. Computational Assessment of Occupant Injury Caused by Mine Blasts underneath Infantry Vehicles , 2009 .
[65] Yoshimitsu Kuroyanagi,et al. Design of artificial skin , 1996 .
[66] Z. Yang,et al. Development of serial bio-shock tubes and their application. , 1998, Chinese medical journal.
[67] Dexter V. Reneer,et al. A multi-mode shock tube for investigation of blast-induced traumatic brain injury. , 2011, Journal of neurotrauma.
[68] V. Unnikrishnan,et al. Biofidelic human brain tissue surrogates , 2018 .
[69] George Alexander Christou,et al. Development of a helmet liner for protection against blast induced trauma , 2010 .
[70] Richard Bibb,et al. The evaluation of new multi-material human soft tissue simulants for sports impact surrogates. , 2015, Journal of the mechanical behavior of biomedical materials.
[71] K. Chinzei,et al. Mechanical properties of brain tissue in tension. , 2002, Journal of biomechanics.
[72] A I King,et al. A MADYMO model of near-side human occupants in side impacts. , 1994, Journal of biomechanical engineering.
[73] King H. Yang,et al. A proposed injury threshold for mild traumatic brain injury. , 2004, Journal of biomechanical engineering.
[74] Yubo Fan,et al. Mechanism of traumatic retinal detachment in blunt impact: a finite element study. , 2013, Journal of biomechanics.
[75] M. Atlas,et al. Chronic tympanic membrane perforation: a better animal model is needed , 2007, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[76] Henning E. von Gierke. Biodynamic models and their applications. , 1971 .
[77] Alexander Greer,et al. Numerical Modeling for the Prediction of Primary Blast Injury to the Lung , 2007 .
[78] Shailesh Ganpule,et al. Mechanics of Interaction of Blast Waves on Surrogate Head: Effect of Head Orientation , 2013 .
[79] J. Hull,et al. Traumatic amputation by explosive blast: Pattern of injury in survivors , 1992, The British journal of surgery.
[80] Amy C Courtney,et al. Oxy-acetylene driven laboratory scale shock tubes for studying blast wave effects. , 2012, The Review of scientific instruments.
[81] Matthew B. Panzer,et al. Primary blast survival and injury risk assessment for repeated blast exposures , 2012, The journal of trauma and acute care surgery.
[82] Kobi Peleg,et al. Blast injuries. , 2005, The New England journal of medicine.
[83] Ray W. Ogden,et al. Nonlinear Elasticity, Anisotropy, Material Stability and Residual Stresses in Soft Tissue , 2003 .
[84] Fan Yang,et al. Finite element modeling of sound transmission with perforations of tympanic membrane. , 2009, The Journal of the Acoustical Society of America.
[85] S. Robin,et al. HUMOS: HUMAN MODEL FOR SAFETY - A JOINT EFFORT TOWARDS THE DEVELOPMENT OF REFINED HUMAN-LIKE CAR OCCUPANT MODELS , 2001 .
[86] D. Ignjatovic,et al. Blast injury from explosive munitions. , 1999, The Journal of trauma.
[87] Reuben H. Kraft,et al. Computational Failure Modeling of Lower Extremities , 2012 .
[88] Arun Shukla,et al. Shock loading response of sandwich panels with 3-D woven E-glass composite skins and stitched foam core , 2009 .
[89] Michael S Sacks,et al. Design and analysis of tissue engineering scaffolds that mimic soft tissue mechanical anisotropy. , 2006, Biomaterials.
[90] Clayton S. White. TENTATIVE BIOLOGICAL CRITERIA FOR ASSESSING POTENTIAL HAZARDS FROM NUCLEAR EXPLOSIONS , 1963 .
[91] G. O. Thomas,et al. Some observations of the jet initiation of detonation , 2000 .
[92] J H Stuhmiller,et al. Biological response to blast overpressure: a summary of modeling. , 1996, Toxicology.
[93] Vikas Gupta,et al. Development of MADYMO Models of Passenger Vehicles for Simulating Side Impact Crashes , 1999 .
[94] Y. Phillips,et al. THE MANAGEMENT OF PRIMARY BLAST INJURY , 2019 .
[95] J. Stuhmiller,et al. THE PHYSICS AND MECHANISMS OF PRIMARY BLAST INJURY , 2022 .
[96] A. Courtney,et al. Shock tube design for high intensity blast waves for laboratory testing of armor and combat materiel , 2014, 1501.07813.
[97] E. Weichel,et al. Combat ocular trauma and systemic injury , 2008, Current opinion in ophthalmology.
[98] T M Taylor,et al. Human head-neck computational model for assessing blast injury. , 2012, Journal of biomechanics.
[99] Lorne H Blackbourne,et al. Selective nonoperative management of penetrating torso injury from combat fragmentation wounds. , 2008, The Journal of trauma.
[100] Oliver A. Shergold,et al. The uniaxial stress versus strain response of pig skin and silicone rubber at low and high strain rates , 2006 .
[101] S. Horne,et al. Ultrasound triage of ocular blast injury in the military emergency department. , 2012, Military medicine.
[102] Feng Zhu,et al. FINITE ELEMENT EVALUATION OF HUMAN BODY RESPONSE TO VERTICAL , 2012 .
[103] Vinu Unnikrishnan,et al. Energy dissipation of nanocomposite based helmets for blast-induced traumatic brain injury mitigation , 2015 .
[104] Hervé Delingette,et al. Non-linear anisotropic elasticity for real-time surgery simulation , 2003, Graph. Model..
[105] Nathan Ida,et al. Introduction to the Finite Element Method , 1997 .
[106] B.c. Geigl,et al. Validation of the Coupled PC-CRASH - MADYMO Occupant Simulation Model , 2000 .
[107] K. Chung,et al. Mechanical analysis of woven composites at high strain rates and its application to predicting impact behavior , 2008 .
[108] H Wada,et al. Analysis of dynamic behavior of human middle ear using a finite-element method. , 1992, The Journal of the Acoustical Society of America.
[109] Sahar Ahmad,et al. Hearing loss in perforations of the tympanic membrane , 1979, The Journal of Laryngology & Otology.
[110] Lakiesha N. Williams,et al. DEVELOPMENT OF A LOWER EXTREMITY MODEL FOR FINITE ELEMENT ANALYSIS AT BLAST CONDITION , 2011 .
[111] F. Velardi,et al. Anisotropic constitutive equations and experimental tensile behavior of brain tissue , 2006, Biomechanics and modeling in mechanobiology.
[112] D. R. Richmond,et al. ESTIMATE OF MAN'S TOLERANCE TO THE DIRECT EFFECTS OF AIR BLAST , 1968 .
[113] K Storey,et al. THE APPLICATION OF MADYMO IN SIDE AIRBAG DEVELOPMENT , 1994 .
[114] M. Krausz,et al. Primary Blast Injury After a Bomb Explosion in a Civilian Bus , 1989, Annals of surgery.
[115] Hervé Delingette,et al. Nonlinear and anisotropic elastic soft tissue models for medical simulation , 2001, Proceedings 2001 ICRA. IEEE International Conference on Robotics and Automation (Cat. No.01CH37164).
[116] J. Saunders,et al. The Effect of Tympanic Membrane Perforation Size on Umbo Velocity in the Rat , 1996, The Laryngoscope.
[117] R. M. Natal Jorge,et al. A Comparative Study of Several Material Models for Prediction of Hyperelastic Properties: Application to Silicone‐Rubber and Soft Tissues , 2006 .
[118] S. Sharma,et al. Prediction of intracranial responses from blast induced neurotrauma using a validated finite element model of human head , 2011 .
[119] N. Chandra,et al. The effect of shock wave on a human head , 2009 .
[120] Celina Imielinska,et al. Multi-scale Modeling of Trauma Injury , 2006, International Conference on Computational Science.
[121] S. E. Voss,et al. Non-ossicular signal transmission in human middle ears: Experimental assessment of the "acoustic route" with perforated tympanic membranes. , 2007, The Journal of the Acoustical Society of America.
[122] S. Ganpule. Mechanics of blast loading on post-mortem human and surrogate heads in the study of traumatic brain injury (TBI) using experimental and computational approaches , 2013 .
[123] E. Chaloner. Blast injury in enclosed spaces , 2005, BMJ : British Medical Journal.
[124] Andrew C. Merkle,et al. Modeling Articulated Human Body Dynamics Under a Representative Blast Loading , 2011 .
[125] N. Chandra,et al. Role of helmet in the mechanics of shock wave propagation under blast loading conditions , 2012, Computer methods in biomechanics and biomedical engineering.
[126] B. Song,et al. Split Hopkinson (Kolsky) Bar: Design, Testing and Applications , 2010 .
[127] Hany Ghoneim,et al. Pumping potential of a two-layer left-ventricle-like flexible-matrix-composite structure , 2015 .
[128] G. Desmoulin,et al. Blast-induced neurotrauma: surrogate use, loading mechanisms, and cellular responses. , 2009, The Journal of trauma.
[129] J. Reddy,et al. Biomechanics of breast tumor: effect of collagen and tissue density , 2012 .
[130] X. Luo,et al. A nonlinear anisotropic model for porcine aortic heart valves. , 2001, Journal of biomechanics.
[131] Biodynamic models and their applications. , 1971, The Journal of the Acoustical Society of America.
[132] H. A. Lupker,et al. Advances in MADYMO Crash Simulations , 1991 .
[133] J. Wismans,et al. MADYMO 3D Simulations of Hybrid III Dummy Sled Tests , 1988 .
[134] A. Holmberg. Development and Characterization of Shock Tubes for Laboratory Scale Blast Wave Simulation , 2010 .
[135] A. Ibrahimbegovic. Nonlinear Solid Mechanics , 2009 .
[136] P. Qiao,et al. Impact Mechanics and High-Energy Absorbing Materials: Review , 2008 .
[137] Manuel O Lagravère,et al. Three-dimensional accuracy of measurements made with software on cone-beam computed tomography images. , 2008, American journal of orthodontics and dentofacial orthopedics : official publication of the American Association of Orthodontists, its constituent societies, and the American Board of Orthodontics.
[138] M. Mayorga,et al. A model of blast overpressure injury to the lung. , 1996, Journal of biomechanics.
[139] J. Melvin,et al. Dynamic mechanical properties of human brain tissue. , 1969, Journal of biomechanics.
[140] C. Dunning,et al. Injury tolerance criteria for short-duration axial impulse loading of the isolated tibia. , 2011, The Journal of trauma.
[141] A. Rezaei,et al. A computational study on brain tissue under blast: primary and tertiary blast injuries , 2014, International journal for numerical methods in biomedical engineering.
[142] David F. Moore,et al. Blast physics and central nervous system injury , 2008 .
[143] Suk-jae Hahm,et al. Frontal Crash Feasibility Study Using MADYMO 3D Frame Model , 1999 .
[144] Daniel L. Johnson,et al. Blast Overpressure Studies with Animals and Man: Biological Response to Complex Blast Waves , 1993 .
[145] I G Bowen,et al. THE RELATIONSHIP BETWEEN SELECTED BLAST‐WAVE PARAMETERS AND THE RESPONSE OF MAMMALS EXPOSED TO AIR BLAST * , 1968, Annals of the New York Academy of Sciences.
[146] Q Sun,et al. Computer-integrated finite element modeling of human middle ear , 2002, Biomechanics and modeling in mechanobiology.
[147] Michael S. Jaffee,et al. Computational biology — Modeling of primary blast effects on the central nervous system , 2009, NeuroImage.
[148] Synopsis of the National Football League Player Health and Safety Meeting: Chicago, Illinois, June 19, 2007. , 2008, Neurosurgery.
[149] Cameron R Bass,et al. Pulmonary injury risk assessment for short-duration blasts. , 2008, The Journal of trauma.
[150] Computational Simulation of the High Strain Rate Tensile Response of Polymer Matrix Composites , 2002 .
[151] Linxia Gu,et al. MRI-Based Three Dimensional Modeling of Blast Traumatic Brain Injury (bTBI) , 2010 .
[152] E. G. Damon,et al. Air-blast studies with eight species of mammals. Techn Progr Rep DASA 1854. , 1966, Fission product inhalation project [technical progress report]. Lovelace Foundation for Medical Education and Research.
[153] J M Wightman,et al. Explosions and blast injuries. , 2001, Annals of emergency medicine.
[154] Charles E. Anderson,et al. Mine blast loading experiments , 2011 .
[155] David F Meaney,et al. In-vitro approaches for studying blast-induced traumatic brain injury. , 2009, Journal of neurotrauma.
[156] HYPERELASTIC MATERIAL MODELING , 2004 .
[157] Stephen R Hallett,et al. The 19th International Conference on Composite Materials ICCM19 , 2013 .
[158] L Thollon,et al. Using a Finite Element Model to Evaluate Human Injuries Application to the HUMOS Model in Whiplash Situation , 2004, Spine.
[159] V. Spitzer,et al. The visible human dataset: The anatomical platform for human simulation , 1998, The Anatomical record.
[160] Linxia Gu,et al. The influence of heterogeneous meninges on the brain mechanics under primary blast loading , 2012 .
[161] Rolf H. Eppinger,et al. DYNAMIC AXIAL TOLERANCE OF THE HUMAN FOOT-ANKLE COMPLEX , 1996 .
[162] Nicola Bonora,et al. The pathogenesis of retinal damage in blunt eye trauma: finite element modeling. , 2011, Investigative ophthalmology & visual science.
[163] A. Constantinesco,et al. Fifty years of brain tissue mechanical testing: from in vitro to in vivo investigations. , 2010, Biorheology.
[164] D. Skerrett,et al. A hybrid 3-D reconstruction/registration algorithm for correction of head motion in emission tomography , 2000 .
[165] S. E. Voss,et al. Determinants of Hearing Loss in Perforations of the Tympanic Membrane , 2006, Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology.
[166] Reuben H. Kraft,et al. Development of a lower extremity model for high strain rate impact loading , 2015 .
[167] Svein Kleiven,et al. Correlation of an FE Model of the Human Head with Local Brain Motion--Consequences for Injury Prediction. , 2002, Stapp car crash journal.
[168] Pamela J VandeVord,et al. Intracranial pressure increases during exposure to a shock wave. , 2011, Journal of neurotrauma.
[169] D. R. Richmond,et al. BIODYNAMICS OF AIRBLAST. , 1971 .
[170] Karl Schweizerhof,et al. FE Human Modelling in Crash - Aspects of the numerical Modelling and current Applications in the Automotive Industry , 2007 .
[171] I. Yannas,et al. Design of an artificial skin. I. Basic design principles. , 1980, Journal of biomedical materials research.
[172] R Marchesini,et al. A phantom with tissue‐like optical properties in the visible and near infrared for use in photomedicine , 2001, Lasers in surgery and medicine.
[173] D. Pieramici,et al. Evaluation of patients with ocular trauma. , 2002, Ophthalmology clinics of North America.
[174] Bruce L. Tai,et al. Silicone-Based Tissue-Mimicking Phantom for Needle Insertion Simulation , 2014 .
[175] Patrick A. Forbes,et al. Development of a Human Body Model for the Analysis of Side Impact Automotive Thoracic Trauma , 2005 .
[176] Sean R. Mitchell,et al. Initial validation of a relaxed human soft tissue simulant for sports impact surrogates , 2014 .
[177] Karl Grosh,et al. A rheological network model for the continuum anisotropic and viscoelastic behavior of soft tissue , 2004, Biomechanics and modeling in mechanobiology.
[178] V. Unnikrishnan,et al. A biofidelic computational model of the female pelvic system to understand effect of bladder fill and progressive vaginal tissue stiffening due to prolapse on anterior vaginal wall , 2016, International journal for numerical methods in biomedical engineering.
[179] A M Hill,et al. Blast Mines: Physics, Injury Mechanisms And Vehicle Protection , 2009, Journal of the Royal Army Medical Corps.
[180] Q. Sun,et al. Three-Dimensional Finite Element Modeling of Human Ear for Sound Transmission , 2004, Annals of Biomedical Engineering.