Диссертация (1025646), страница 23
Текст из файла (страница 23)
Roy [et al.] // Proceedings of the IEEE 27th Annual NortheastBioengineering Conference. Storrs, CT, 2001. P. 31-32.88.Saxena A.K. Pectus excavatum, pectus caritanum and other forms ofthoracic deformities // Journal of the Indian Association of Pediatric Surgeons. 2005.Vol. 10, Issue 3. P.
147-157.89.Development and validation of subject-specific finite element models forblunt trauma study / W. Shen [et al.] // Journal of Biomechanical Engineering. 2008.Vol. 130. P. 021022-1-021022-13.90.Application of a new calibration method for a three-dimensional finiteelement model of a human lumbar annulus fibrosus / H. Schmidt [et al.] // ClinicalBiomechanics.
2006. No. 21. P. 337-344.91.Intradiscal pressure, shear strain, and fiber strain in the intervertebral discunder combined loading / H. Shmidt [et al.] // SPINE. 2007. Vol. 32, No. 7. P. 748-755.92.Determination of material properties related to quantitative CT in humanfemoral bone for patient specific finite element – a comparison of material laws / A.Sitzer[etal.].URL:http://www.webmedcentral.com/article_view/3177(датаобращения 28.09.2015).93.Tensile material properties of human rib cortical bone under quasi-staticand dynamic failure loading and influence of the bone microstucture on failurecharacteristics / D. Subit [et al.].
URL: http://arxiv.org/abs/1108.0390 (дата обращения28.09.2015).15294.Teale C., Romaniuk C., Mulley G. Calcification on chest radiographs: theassociation with age // Age and Ageing. 1989. Vol.18. P. 333-336.95.Templeton A., Cody D., Liebschner M. Updating a 3-D vertebral bodyfinite element model using 2-D images // Medical Engineering & Physics. 2004. Vol.26. P. 329–333.96.Vaziri A., Nayeb-Hashemi H., Akhavan-Tafti B. Computational model ofrib movement and its application in studying the effects of the age-related thoracic cagecalcification on respiratory system // Computer Methods in Biomechanics andBiomedical Engineering. 2010.
Vol.13, Issue 2. P. 257-264.97.Automatic generation of accurate subject-specific bone finite element / M.Viceconti [et al.] // Journal of Biomechanics. 2004. Vol. 37. P. 1597-1605.98.Weber P.G., Huemmer H.P., Reingruber B. Forces to be overcome incorrection of pectus excavatum // Journal of Thoracic and Cardiovascular Surgery.2006.
No. 132. P. 1369-1373.99.Critical evaluation of known bone material properties to realize anisotropicFE-simulation of the proximal femur / D.C. Wirtz [et al.] // Journal of Biomechanics.2000. No.33. P. 1325-1330.100. Yamada, H. Strength of biological materials / edited by Gaynor Evans.Baltimore, MD: Williams & Wilkins, 1970. 297 p.101. Inhomogeneous material property assignment and orientation definition oftransverse isotropy of femur / H.-S. Yang [et al.] // JBiSE. 2009. Vol. 2, No. 6.
P. 419424.102. Zhao J., Narwani G. Development of a human body finite element modelfor restraint system R&D applications // TAKATA – Automotive Systems Laboratory,Inc. 2001. №05-0399. W./P.103. Zioupos P., Cook R.B., Hutchinson J.R. Some basic relationships betweendensity values in cancellous and cortical bone // Journal of Biomechanics. 2008. No. 41.P. 1961-1968.104.
Gaussian blur. URL: http://en.wikipedia.org/wiki/Gaussian_blur (датаобращения 28.09.2015).153105. Altair HyperMesh 9.0 User's Guide.Altair Software, 2008. W./P.106. Amira 5 User's Guide.Visage Imaging Inc., 2008. W./P.107. ANSYS Mechanical APDL Documentation. ANSYS Release 14.5.ANSYS Inc., 2013. W./P.154ВВОДИМЫЕ СОКРАЩЕНИЯ И ОБОЗНАЧЕНИЯВДГКВоронкообразная деформация грудной клеткиГКГрудная клеткаКПКорректирующая пластинаКТКомпьютерная томографияМКЭМетод конечных элементовНДСНапряженно-деформированное состояниеПКПрограммный комплексGVЗначения оттенков серого (Grey Values)HUЗначения рентгеновской плотности по шкале Хаунсфилда(Hounsfield Units)155156.