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Articles

Embedding digitized fibre fields in finite element models of muscles

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Pages 223-236 | Received 01 Jun 2013, Accepted 02 Nov 2013, Published online: 07 Feb 2014

References

  • Ackerman MJ. 1994. The national library of medicine's visible human project. Available from: http://www.nlm.nih.gov/research/visible/visible_human.
  • AllardJ, CotinS, FaureF, BensoussanPJ, PoyerF, DuriezC, DelingetteH, GrisoniL. 2007. SOFA – an open source framework for medical simulation. In: Medicine meets virtual reality, MMVR 15. IOS Press. Palm Beach.
  • BlemkerS, DelpS. 2005. Three-dimensional representation of complex muscle architectures and geometries. Ann Biomed Eng. 33(5):661–673.
  • BlemkerSS, PinskyPM, DelpSL. 2005. A 3D model of muscle reveals the causes of nonuniform strains in the biceps brachii. J Biomech. 38(4):657–665.
  • BuchaillardS, PerrierP, PayanY. 2009. A biomechanical model of cardinal vowel production: muscle activations and the impact of gravity on tongue positioning. J Acoust Soc Am. 126:2033–2051.
  • FaureF, GillesB, BousquetG, PaiDK. 2011. Sparse meshless models of complex deformable solids. ACM Trans Graph. 30(4):73.1–73.9.
  • FelsS, VogtF, van den DoelK, LloydJE, StavnessI, Vatikiotis-BatesonE. 2006. ArtiSynth: a biomechanical simulation platform for the vocal tract and upper airway. Vancouver, BC: Department of Computer Science, University of British Columbia. Technical report TR-2006-10.
  • FernandezJ, MithraratneP, ThruppS, TawhaiM, HunterP. 2004. Anatomically based geometric modelling of the musculo-skeletal system and other organs. Biomech Model Mechanobiol. 2:139–155.
  • GillesB, BousquetG, FaureF, PaiDK. 2011. Frame-based elastic models. ACM Trans Graph. 30(2):15:1–15:12.
  • GregsonJ, ShefferA, ZhangE. 2011. All-hex mesh generation via volumetric PolyCube deformation. Comput Graph Forum. 30(5):1407–1416.
  • JohanssonT, MeierP, BlickhanR. 2000. A finite-element model for the mechanical analysis of skeletal muscles. J Theor Biol. 206(1):131–149.
  • KimSY, BoyntonEL, RavichandiranK, FungLY, BleakneyR, AgurAM. 2007. Three-dimensional study of the musculotendinous architecture of supraspinatus and its functional correlations. Clin Anat. 20(6):648–655.
  • LabelleF, ShewchukJR. 2007. Isosurface stuffing: fast tetrahedral meshes with good dihedral angles. ACM Trans Graph. 26(3):57.1–57.10.
  • LansdownDA, DingZ, WadingtonM, HornbergerJL, DamonBM. 2007. Quantitative diffusion tensor MRI-based fiber tracking of human skeletal muscle. J Appl Physiol. 103(2):673–681.
  • LeeD, RavichandiranK, JacksonK, FiumeE, AgurA. 2012. Robust estimation of physiological cross-sectional area and geometric reconstruction for human skeletal muscle. J Biomech. 45(8):1507–1513.
  • LemosR, EpsteinM, HerzogW. 2008. Modeling of skeletal muscle: the influence of tendon and aponeuroses compliance on the force–length relationship. Med Biol Eng Comput. 46:23–32.
  • LevinDI, GillesB, MadlerB, PaiDK. 2011. Extracting skeletal muscle fiber fields from noisy diffusion tensor data. Med Image Anal. 15(3):340–353.
  • LiZ, MogkJ, LeeD, BibliowiczJ, AgurA. 2013. Development of an archicturally comprehensive database of forearm flexors and extensors from a single cadaveric specimen. Comput Methods Biomech Biomed Eng: Imaging Vis (BPMHAI). In press.
  • LieberRL, JacobsonMD, FazeliBM, AbramsRA, BotteMJ. 1992. Architecture of selected muscles of the arm and forearm: anatomy and implications for tendon transfer. J Hand Surg. 17(5):787–798.
  • LuYT, ZhuHX, RichmondS, MiddletonJ. 2011. Modelling skeletal muscle fibre orientation arrangement. Comput Methods Biomech Biomed Eng. 14(12):1079–1088.
  • Maas S, Rawlins D, Weiss J, Ateshian G. 2012. FEBio: finite elements for biomechanics, user's manual. Musculoskeletal Research Laboratories, University of Utah. Technical report 1.4. Available from: http://mrl.sci.utah.edu/software/febio.
  • MartinsJAC, PatoMPM, PiresEB. 2006. A finite element model of skeletal muscles. Virtual Phys Prototyp. 1(3):159–170.
  • McInerneyT, TerzopoulosD. 1995. A dynamic finite element surface model for segmentation and tracking in multidimensional medical images with application to cardiac 4D image analysis. Comput Med Imaging Graph. 19(1):69–83.
  • NashM, HunterP. 2000. Computational mechanics of the heart. J Elast Phys Sci Solids. 61:113–141.
  • NedelL, ThalmannD. 1998. Real time muscle deformations using mass-spring systems. Proceedings of Computer graphics international; 1998 Jun 22–26; Hannover. p. 156–165. 10.1109/CGI.1998.694263.
  • NielsenPM, GriceIJL, SmaillBH, HunterPJ. 1991. Mathematical model of geometry and fibrous structure of the heart. Am J Physiol. 260:H1365–H1378.
  • RöhrleO, DavidsonJB, PullanAJ. 2012. A physiologically based, multi-scale model of skeletal muscle structure and function. Front Physiol. 3:358.1–358.14.
  • RöhrleO, PullanAJ. 2007. Three-dimensional finite element modelling of muscle forces during mastication. J Biomech. 40(15):3363–3372.
  • TeranJ, BlemkerS, HingVNT, FedkiwR. 2003. Finite volume methods for the simulation of skeletal muscle. In: Proceedings of the 2003 ACM SIGGRAPH/Eurographics Symposium on Computer Animation (SCA'03); Jul; San Diego, CA.Aire-la-Ville: Eurographics Association. p. 68–74.
  • WebbJD, BlemkerSS, DelpSL. 2012. 3D finite element models of shoulder muscles for computing lines of actions and moment arms. Comput Methods Biomech Biomed Eng. 1–9. [Epub ahead of print].
  • ZajacF. 1989. Muscle and tendon: properties, models, scaling, and application to biomechanics and motor control. Crit Rev Biomed Eng. 17(4):359–410.
  • ZhouX, LuJ. 2005. NURBS-based Galerkin method and application to skeletal muscle modelling. In: Proceedings of the 2005 ACM Symposium on Solid and Physical Modeling (SPM'05); Jun; Cambridge, MA.New York, NY: ACM. p. 71–78.
  • ZhuY, BridsonR. 2005. Animating sand as a fluid. ACM Trans Graph (TOG). 24(3):965–972.

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