| Literature DB >> 23194460 |
Ahmed Idhammad1, Abdelmounaïm Abdali.
Abstract
BACKGROUND: Bone tissue is the main element of the human skeleton and is a dynamic tissue that is continuously renewed by bone-resorbing osteoclasts and bone-forming osteoblasts.The bone is also capable of repairing itself and adapting its structure to changes in its load environment through the process of bone remodeling.Therefore, this phenomenon has been gaining increasing interest in the last years and many laws have been developed in order to simulate this process.Entities:
Mesh:
Year: 2012 PMID: 23194460 PMCID: PMC3564697 DOI: 10.1186/1742-4682-9-51
Source DB: PubMed Journal: Theor Biol Med Model ISSN: 1742-4682 Impact factor: 2.432
Figure 1Bone remodeling sequence.
Thermodynamic variables
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| A | ||
Chart of thermodynamic variables
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| ϕ | - | |
Figure 2Law of bone remodeling.
Figure 3Model geometry with n-unit elements.
Values of the parameters used during the numerical simulations
| Maximum density | ϕmax | 1.75 | g/cm3 |
| Minimal density | ϕmin | 0.01 | g/cm3 |
| Initial density | ϕ0 | 0.6 | g/cm3 |
| The step of time | Δt | 5.10-3 | UT |
| The total force | F | 10 | N |
| The distance between 2 centers | d | 25 | mm |
| Reference stimulus value | Sref | 0.04 | MPA |
| The fatigue life of the bone | fd | 3 | years |
| n-unit elements of the bone fragment | 50 |
m (m < n ) is the total number of osteocytes in the bone fragment.
Constants α = 3 β = 0.5 D0 = 0.8 c = 100 τ = 1.
Figure 4Evolution of the variable of bone remodeling, (a) case of a uniform distribution of the osteocyte cells, (b) a heterogeneous case.