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Image-based multilevel biomechanical...
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Luo, Yunhua.
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Image-based multilevel biomechanical modeling for fall-Induced hip fracture
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Image-based multilevel biomechanical modeling for fall-Induced hip fracture/ by Yunhua Luo.
作者:
Luo, Yunhua.
出版者:
Cham :Springer International Publishing : : 2017.,
面頁冊數:
xvi, 165 p. :ill., digital ;24 cm.
內容註:
Introduction -- Bone Composition, Metabolism and Bone Disease -- Bone Imaging for Osteoporosis Assessment -- Bone Density and Mechanical Property -- Multilevel Biomechanics of Hip Fracture -- Risk of Fall -- Low-Trauma Accident Fall and Impact Force -- Finite Element Modeling of Femur Stresses/Strains Induced by Impact Force -- Measurements of Hip Fracture Risk -- Preliminary Clinical Studies.
Contained By:
Springer eBooks
標題:
Hip joint - Fractures -
電子資源:
http://dx.doi.org/10.1007/978-3-319-51671-4
ISBN:
9783319516714
Image-based multilevel biomechanical modeling for fall-Induced hip fracture
Luo, Yunhua.
Image-based multilevel biomechanical modeling for fall-Induced hip fracture
[electronic resource] /by Yunhua Luo. - Cham :Springer International Publishing :2017. - xvi, 165 p. :ill., digital ;24 cm.
Introduction -- Bone Composition, Metabolism and Bone Disease -- Bone Imaging for Osteoporosis Assessment -- Bone Density and Mechanical Property -- Multilevel Biomechanics of Hip Fracture -- Risk of Fall -- Low-Trauma Accident Fall and Impact Force -- Finite Element Modeling of Femur Stresses/Strains Induced by Impact Force -- Measurements of Hip Fracture Risk -- Preliminary Clinical Studies.
Fall-induced hip fracture is an epidemic health risk among elderly people. This book presents an image-based multilevel modeling approach to understanding the biomechanics involved in fall-induced hip fracture. By hierarchically integrating a body-level dynamics model, a femur-level finite element model, and a local bone failure model, the biomechanics approach is able to simulate all stages in sideways falls and to incorporate all biomechanical variables affecting hip fracture. This book is useful for clinicians to accurately evaluate fracture risk, for biomechanical engineers to virtually test hip protective devices, and for biomedical students to learn image-based biomechanical modeling techniques. This book also covers: Biomechanical viewing on bone composition, bone remodeling, and bone strength Bone imaging and information captured for constructing biomechanical models Bone mechanical testing and mechanical properties required for biomechanical modeling.
ISBN: 9783319516714
Standard No.: 10.1007/978-3-319-51671-4doiSubjects--Topical Terms:
3220173
Hip joint
--Fractures
LC Class. No.: RD549
Dewey Class. No.: 617.15
Image-based multilevel biomechanical modeling for fall-Induced hip fracture
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Introduction -- Bone Composition, Metabolism and Bone Disease -- Bone Imaging for Osteoporosis Assessment -- Bone Density and Mechanical Property -- Multilevel Biomechanics of Hip Fracture -- Risk of Fall -- Low-Trauma Accident Fall and Impact Force -- Finite Element Modeling of Femur Stresses/Strains Induced by Impact Force -- Measurements of Hip Fracture Risk -- Preliminary Clinical Studies.
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Fall-induced hip fracture is an epidemic health risk among elderly people. This book presents an image-based multilevel modeling approach to understanding the biomechanics involved in fall-induced hip fracture. By hierarchically integrating a body-level dynamics model, a femur-level finite element model, and a local bone failure model, the biomechanics approach is able to simulate all stages in sideways falls and to incorporate all biomechanical variables affecting hip fracture. This book is useful for clinicians to accurately evaluate fracture risk, for biomechanical engineers to virtually test hip protective devices, and for biomedical students to learn image-based biomechanical modeling techniques. This book also covers: Biomechanical viewing on bone composition, bone remodeling, and bone strength Bone imaging and information captured for constructing biomechanical models Bone mechanical testing and mechanical properties required for biomechanical modeling.
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