scholarly article | Q13442814 |
P356 | DOI | 10.1016/S8756-3282(98)00071-4 |
P698 | PubMed publication ID | 9662132 |
P2093 | author name string | X D Wang | |
C M Agrawal | |||
M E Alder | |||
J D Mabrey | |||
N S Masilamani | |||
P2860 | cites work | Determinants of the mechanical properties of bones | Q37142496 |
Age-related bone changes | Q37373561 | ||
The elastic moduli of human subchondral, trabecular, and cortical bone tissue and the size-dependency of cortical bone modulus | Q38024422 | ||
Advances in the fracture mechanics of cortical bone | Q39690672 | ||
Age-related structural changes in trabecular and cortical bone: cellular mechanisms and biomechanical consequences | Q40212855 | ||
When bone mass fails to predict bone failure | Q40798054 | ||
Stiffness of compact bone: effects of porosity and density | Q45077973 | ||
Fracture toughness of human bone under tension | Q45083579 | ||
Resistance to crack growth in human cortical bone is greater in shear than in tension | Q45099499 | ||
The influence of bone morphology on fracture toughness of the human femur and tibia | Q45107549 | ||
Influence of bone composition and apparent density on fracture toughness of the human femur and tibia | Q45109163 | ||
Anisotropy of the Young's modulus of bone | Q45764888 | ||
Age-related changes in the tensile properties of cortical bone. The relative importance of changes in porosity, mineralization, and microstructure | Q46296154 | ||
Use of a compact sandwich specimen to evaluate fracture toughness and interfacial bonding of bone. | Q52384059 | ||
The effect of porosity and mineral content on the Young's modulus of elasticity of compact bone | Q52577187 | ||
Fracture mechanics of bone--the effects of density, specimen thickness and crack velocity on longitudinal fracture. | Q52697190 | ||
Relations between age, mineral density and mechanical properties of human femoral compacta | Q58281543 | ||
Anisotropy of Young's modulus of bone | Q59063735 | ||
Changes in the Stiffness, Strength, and Toughness of Human Cortical Bone With Age | Q59295429 | ||
Fracture mechanics parameters for compact bone--effects of density and specimen thickness | Q67600396 | ||
Orientation dependence of the fracture mechanics of cortical bone | Q69428363 | ||
Fracture toughness of bone using a compact sandwich specimen: effects of sampling sites and crack orientations | Q71332000 | ||
A non-human primate model for the study of osteoporosis and oral bone loss | Q72908541 | ||
P433 | issue | 1 | |
P921 | main subject | bone fracture | Q68833 |
P304 | page(s) | 67-72 | |
P577 | publication date | 1998-07-01 | |
P1433 | published in | Bone | Q15755003 |
P1476 | title | Changes in the fracture toughness of bone may not be reflected in its mineral density, porosity, and tensile properties | |
P478 | volume | 23 |
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Q37115576 | Fourier transform infrared imaging microspectroscopy and tissue-level mechanical testing reveal intraspecies variation in mouse bone mineral and matrix composition. |
Q44870942 | Fracture toughness of human femoral neck: effect of microstructure, composition, and age. |
Q30494296 | Hierarchy of Bone Microdamage at Multiple Length Scales |
Q37055037 | Identification of material parameters based on Mohr-Coulomb failure criterion for bisphosphonate treated canine vertebral cancellous bone |
Q30886905 | Identifying Novel Clinical Surrogates to Assess Human Bone Fracture Toughness |
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Q34457514 | Osteopenia and osteoporosis in adult baboons (Papio hamadryas). |
Q36372368 | Pueraria mirifica extract and puerarin enhance proliferation and expression of alkaline phosphatase and type I collagen in primary baboon osteoblasts |
Q34792341 | The bone diagnostic instrument II: indentation distance increase |
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