Cadaver Training Research Facility (CTRF), Jai Prakash Narayan Apex Trauma Centre (JPNTC), All India Institute of Medical Sciences (AIIMS)New Delhi, India
Cadaver Training Research Facility (CTRF), Jai Prakash Narayan Apex Trauma Centre (JPNTC), All India Institute of Medical Sciences (AIIMS)New Delhi, India
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
Ahsanizadeh S., Li L., Visco-hyperelastic constitutive modeling of soft tissues based on short and long-term internal variables, Biomed. Eng. Online, 2015, 14, 29.Search in Google Scholar
Arendt E.A., Agel J., Dick R., Anterior cruciate ligament injury patterns among collegiate men and women, J. Athl. Train., 1999, 34, 86–92.Search in Google Scholar
Arnoux P.J., Cavallero C., Chabrand P., Brunet C., Knee ligament failure under dynamic loadings, Int. J. Crashworthiness, 2002, 7, 255–268.Search in Google Scholar
Bonner T.J., Newell N., Karunaratne A., Pullen A.D., Amis A.A., Bull A.M.J., Masouros S.D., Strain-rate sensitivity of the lateral collateral ligament of the knee, J. Mech. Behav. Biomed. Mater., 2015, 41, 261–270.Search in Google Scholar
Chandrashekar N., Mansouri H., Slauterbeck J., Hashemi J., Sex-based differences in the tensile properties of the human anterior cruciate ligament, J. Biomech., 2006, 39, 2943–2950.Search in Google Scholar
Corder G.W., Foreman D.I., Nonparametric Statistics for Non-Statisticians, A Step-by-Step Approach, 2011.Search in Google Scholar
Crowninshield R.D., Pope M.H., The strength and failure characteristics of rat medial collateral ligaments, J. Trauma., 1976, 16, 99–105.Search in Google Scholar
Danto M.I., Woo S.L.Y., The mechanical properties of skeletally mature rabbit anterior cruciate ligament and patellar tendon over a range of strain rates, J. Orthop. Res., 1993, 11, 58–67.Search in Google Scholar
Holzapfel G., Nonlinear solid mechanics: A continuum approach for engineering, 1st ed., Work, 2000, 455.Search in Google Scholar
Kennedy J.C., Hawkins R.J., Willis R.B., Danylchuck K.D., Tension studies of human knee ligaments. Yield point, ultimate failure, and disruption of the cruciate and tibial collateral ligaments, J. Bone Joint Surg. Am., 1976, 58, 350–355.Search in Google Scholar
Kiapour A.M., Kiapour A., Goel V.K., Quatman C.E., Wordeman S.C., Hewett T.E., Demetropoulos C.K., Unidirectional coupling between tibiofemoral frontal and axial plane rotation supports valgus collapse mechanism of ACL injury, J. Biomech., 2015, 48, 1745–1751.Search in Google Scholar
Levine J.W., Kiapour A.M., Quatman C.E., Wordeman S.C., Goel V.K., Hewett T.E., Demetropoulos C.K., Clinically relevant injury patterns after an anterior cruciate ligament injury provide insight into injury mechanisms, Am. J. Sports Med., 2014, 41, 385–395.Search in Google Scholar
Limbert G., Middleton J., A transversely isotropic viscohyperelastic material Application to the modeling of biological soft connective tissues, Int. J. Solids Struct., 2004, 41, 4237–4260.Search in Google Scholar
Marieswaran M., Jain I., Garg B., Sharma V., Kalyanasundaram D., A Review on Biomechanics of Anterior Cruciate Ligament and Materials for Reconstruction, Appl. Bionics Biomech., 2018, 1–14.Search in Google Scholar
McLean S.G., Mallett K.F., Arruda E.M., Deconstructing the anterior cruciate ligament: what we know and do not know about function, material properties, and injury mechanics, J. Biomech. Eng., 2015, 137, 020906.Search in Google Scholar
Mo F., Arnoux P.J., Cesari D., Masson C., The failure modelling of knee ligaments in the finite element model, Int. J. Crashworthiness, 2012, 17, 630–636.Search in Google Scholar
Mo F., Arnoux P.J., Cesari D., Masson C., Investigation of the injury threshold of knee ligaments by the parametric study of car-pedestrian impact conditions, Saf. Sci., 2014, 62, 58–67.Search in Google Scholar
Mo F., Masson C., Cesari D., Arnoux P.J., Coupling Lateral Bending and Shearing Mechanisms to Define Knee Injury Criteria for Pedestrian Safety, Traffic Inj. Prev., 2013, 14, 378–386.Search in Google Scholar
Noyes F.R., DeLucas J.L., Torvik P.J., Biomechanics of anterior cruciate ligament failure: an analysis of strain-rate sensitivity and mechanisms of failure in primates, J. Bone Joint Surg. Am., 1974, 56, 236–53.Search in Google Scholar
Noyes F.R., Grood E.S., The strength of the anterior cruciate ligament in humans and Rhesus monkeys, J. Bone Joint Surg. Am., 1976, 58, 1074–1082.Search in Google Scholar
Pioletti D.P., Rakotomanana L.R., Benvenuti J.F., Leyvraz P.F., Viscoelastic constitutive law in large deformations: Application to human knee ligaments and tendons, J. Biomech., 1998, 31, 753–757.Search in Google Scholar
Pioletti D.P., Rakotomanana L.R., Leyvraz P.F., Strain rate effect on the mechanical behavior of the anterior cruciate ligament-bone complex, Med. Eng. Phys., 1999, 21, 95–100.Search in Google Scholar
Schumacher T.C., Tushtev K., Wagner U., Becker C., große Holthaus M., Hein S.B., Haack J., Heiss C., Engelhardt M., El Khassawna T., Rezwan K., A novel, hydroxyapatite-based screw-like device for anterior cruciate ligament (ACL) reconstructions, Knee, 2017.Search in Google Scholar
Shelburne K.B., Kim H.J., Sterett W.I., Pandy M.G., Effect of posterior tibial slope on knee biomechanics during functional activity, J. Orthop. Res., 2011, 29, 223–231.Search in Google Scholar
Subramanium, Law inrelation to medical men, [in:] Med. Jurisprud. Toxicol., Butterworths, New Delhi, 1999.Search in Google Scholar
Taylor D.C., Dalton J.D., Seaber A. V, Garrett W.E., Viscoelastic properties of muscle-tendon units, Am. J. Sports Med., 1990, 18, 300–309.Search in Google Scholar
Trent P.S., P Walker.S., Wolf B., Ligament length patterns, strength, and rotational axes of the knee joint, Clin. Orthop. Relat. Res., 1976, 263–270.Search in Google Scholar
De Vita R., Slaughter W.S., A structural constitutive model for the strain rate-dependent behavior of anterior cruciate ligaments, Int. J. Solids Struct., 2006, 43, 1561–1570.Search in Google Scholar
Woo S.L.Y., Hollis J.M., Adams D.J., Lyon R.M., Takai S., Tensile properties of the human femur-anterior cruciate ligament- tibia complex the effects of specimen age and orientation, Am. J. Sport. Med., 1991, 19, 217–225.Search in Google Scholar