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Mechanical response tissue analyzer for estimating bone strengthOne of the major concerns for extended space flight is weakness of the long bones of the legs, composed primarily of cortical bone, that functions to provide mechanical support. The strength of cortical bone is due to its complex structure, described simplistically as cylinders of parallel osteons composed of layers of mineralized collagen. The reduced mechanical stresses during space flight or immobilization of bone on Earth reduces the mineral content, and changes the components of its matrix and structure so that its strength is reduced. Currently, the established clinical measures of bone strength are indirect. The measures are based on determinations of mineral density by means of radiography, photon absorptiometry, and quantitative computer tomography. While the mineral content of bone is essential to its strength, there is growing awareness of the limitations of the measurement as the sole predictor of fracture risk in metabolic bone diseases, especially limitations of the measurement as the sole predictor of fracture risk in metabolic bone diseases, especially osteoporosis. Other experimental methods in clinical trials that more directly evaluate the physical properties of bone, and do not require exposure to radiation, include ultrasound, acoustic emission, and low-frequency mechanical vibration. The last method can be considered a direct measure of the functional capacity of a long bone since it quantifies the mechanical response to a stimulus delivered directly to the bone. A low frequency vibration induces a response (impedance) curve with a minimum at the resonant frequency, that a few investigators use for the evaluation of the bone. An alternative approach, the method under consideration, is to use the response curve as the basis for determination of the bone bending stiffness EI (E is the intrinsic material property and I is the cross-sectional moment of inertia) and mass, fundamental mechanical properties of bone.
Document ID
19910013718
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Arnaud, Sara B.
(NASA Ames Research Center Moffett Field, CA., United States)
Steele, Charles
(Stanford Univ. CA., United States)
Mauriello, Anthony
(GaitScan, Inc., Ridgewood NJ., United States)
Date Acquired
September 6, 2013
Publication Date
March 1, 1991
Publication Information
Publication: National Aeronautics and Space Administration, Technology 2000, Volume 1
Subject Category
Aerospace Medicine
Accession Number
91N23031
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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