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Implementation and Integration of a Finite Element Model into the Bone Remodeling Model to Characterize Skeletal LoadingNASA's Digital Astronaut Project is developing a bone physiology model to predict changes in bone mineral density over the course of a space mission. The model intends to predict bone loss due to exposure in microgravity as well as predicting bone maintenance due to mechanical stimulus generated by exercise countermeasures. These predictions will be used to inform exercise device efficacy and to help design exercise protocols that will maintain bone mineral density during long exposures to microgravity during spaceflight. The mechanical stimulus and the stresses that are exhibited on the bone are important factors for bone remodeling. These stresses are dependent on the types of exercise that are performed and vary throughout the bone due to the geometry. A primary area of focus for bone health is the proximal femur. This location is critical in transmitting loads between the upper and lower body and have been known to be a critical failure point in older individuals with conditions like osteoporosis.
Document ID
20170001542
Acquisition Source
Glenn Research Center
Document Type
Presentation
Authors
Werner, C. R.
(Zin Technologies, Inc. Cleveland, OH, United States)
Lewandowski, B.
(NASA Glenn Research Center Cleveland, OH United States)
Boppana, A.
(Zin Technologies, Inc. Cleveland, OH, United States)
Pennline, J. A.
(NASA Glenn Research Center Cleveland, OH United States)
Date Acquired
February 10, 2017
Publication Date
January 23, 2017
Subject Category
Aerospace Medicine
Report/Patent Number
GRC-E-DAA-TN38786
Report Number: GRC-E-DAA-TN38786
Meeting Information
Meeting: 2017 NASA Human Research Program Investigators'' Workshop (HRP IWS 2017)
Location: Galveston, TX
Country: United States
Start Date: January 23, 2017
End Date: January 26, 2017
Sponsors: NASA Headquarters
Funding Number(s)
CONTRACT_GRANT: NNC14CA02C
WBS: WBS 516724.01.02.10
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
bone mineral content
microgravity
mathematical models
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