| Literature DB >> 26500813 |
Andrew R Cuff1, Jen A Bright2, Emily J Rayfield3.
Abstract
The first finite element (FE) validation of a complete avian cranium was performed on an extant palaeognath, the ostrich (Struthio camelus). Ex-vivo strains were collected from the cranial bone and rhamphotheca. These experimental strains were then compared to convergence tested, specimen-specific finite element (FE) models. The FE models contained segmented cortical and trabecular bone, sutures and the keratinous rhamphotheca as identified from micro-CT scan data. Each of these individual materials was assigned isotropic material properties either from the literature or from nanoindentation, and the FE models compared to the ex-vivo results. The FE models generally replicate the location of peak strains and reflect the correct mode of deformation in the rostral region. The models are too stiff in regions of experimentally recorded high strain and too elastic in regions of low experimentally recorded low strain. The mode of deformation in the low strain neurocranial region is not replicated by the FE models, and although the models replicate strain orientations to within 10° in some regions, in most regions the correlation is not strong. Cranial sutures, as has previously been found in other taxa, are important for modifying both strain magnitude and strain patterns across the entire skull, but especially between opposing the sutural junctions. Experimentally, we find that the strains on the surface of the rhamphotheca are much lower than those found on nearby bone. The FE models produce much higher principal strains despite similar strain ratios across the entirety of the rhamphotheca. This study emphasises the importance of attempting to validate FE models, modelling sutures and rhamphothecae in birds, and shows that whilst location of peak strain and patterns of deformation can be modelled, replicating experimental data in digital models of avian crania remains problematic.Entities:
Keywords: Finite element analysis; Ostrich; Skull; Strain; Validation
Year: 2015 PMID: 26500813 PMCID: PMC4614885 DOI: 10.7717/peerj.1294
Source DB: PubMed Journal: PeerJ ISSN: 2167-8359 Impact factor: 2.984
Figure 1Artificial tendon.
(A) Schematic of the artificial tendon construction showing the carbon fibre loop sandwiched between layers of fibreglass. (B) The artificial tendon screwed into place on the M. pseudotemporalis superficialis. Screws highlighted in black circles.
Figure 2Ex-vivo experimental set up.
(A) Experimental testing of ostrich with gauges attached, under loading of the artificial tendons. (B) Schematic of experimental rig showing load and constraints.
Figure 3Digital reconstruction of the ostrich skull.
Red triangles represent the constraints, black arrows show orientation and location of loads, red rectangles are membrane elements that mirror the strain gauges. Gauge 6 was non-functional so was not included in the model, but its location is marked. The blue lines are sutures, and the yellow material is the keratinous rhamphotheca. The trabecular bone is not visible. Gauges labelled with an asterisk (*) are sites where nanoindentation was performed. Direction from grid one is labelled as the white arrow from which strain orientation were measured.
Material properties for the FE models.
All units for Young’s modulus (E) are MPa.
| Cortical bone | Trabecular bone | Suture | Beak | |||||
|---|---|---|---|---|---|---|---|---|
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| L1 | 7,000 | 0.35 | 7,000 | 0.35 | 7,000 | 0.35 | 7,000 | 0.35 |
| L2 | 13,620 | 0.35 | 0.64 | 0.28 | 50 | 0.40 | 1,000 | 0.35 |
| L3 | 13,620 | 0.35 | 0.64 | 0.28 | 50 | 0.40 | 3,100 | 0.35 |
| L4 | 13,620 | 0.35 | 1,000 | 0.30 | 50 | 0.40 | 1,000 | 0.35 |
| L5 | 13,620 | 0.35 | 1,000 | 0.30 | 50 | 0.40 | 3,100 | 0.35 |
| L6 | 13,620 | 0.35 | 2,000 | 0.30 | 50 | 0.40 | 3,100 | 0.35 |
| L7 | 13,620 | 0.35 | 1,000 | 0.30 | 46 | 0.35 | 1,330 | 0.35 |
| L8 | 13,620 | 0.35 | 2,000 | 0.30 | 46 | 0.35 | 1,330 | 0.35 |
| L9 | 13,620 | 0.35 | 2,000 | 0.30 | 13,620 | 0.35 | 3,100 | 0.35 |
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| ||||||||
| PH1 | 10,000 | 0.35 | 100 | 0.28 | 50 | 0.40 | 3,000 | 0.35 |
| PH2 | 10,000 | 0.35 | 1,000 | 0.28 | 50 | 0.40 | 3,000 | 0.35 |
| PH3 | 7,000 | 0.35 | 1,000 | 0.28 | 50 | 0.40 | 3,000 | 0.35 |
| PH4 | 7,000 | 0.35 | 1,000 | 0.28 | 1,000 | 0.40 | 3,000 | 0.35 |
| PH5 | 7,000 | 0.35 | 100 | 0.28 | 50 | 0.40 | 1,000 | 0.35 |
| PH6 | 7,000 | 0.35 | 100 | 0.28 | 10 | 0.40 | 1,000 | 0.35 |
| PH7 | 7,000 | 0.35 | 50 | 0.28 | 10 | 0.40 | 1,000 | 0.35 |
| PH8 | 5,000 | 0.35 | 50 | 0.28 | 10 | 0.40 | 1,000 | 0.35 |
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| ||||||||
| Mean | 5,030 | 0.35 | 1,500 | 0.30 | 27.1 | 0.35 | 18 | 0.35 |
| Max | 9,890 | 0.35 | 1,500 | 0.30 | 67 | 0.35 | 46 | 0.35 |
| Min | 1,240 | 0.35 | 1,500 | 0.30 | 9 | 0.35 | 9 | 0.35 |
Notes.
Rayfield, 2011—best match to ostrich mandible FE models.
Yamada, 1970—ostrich femoral bone.
Ashman, Rho & Turner, 1989—mammalian trabecular bone.
O’Mahony et al., 2000—human edentulous mandible.
Teo et al., 2006—porcine vertebral cancellous bone.
Odame, Yu & Zhang, 2005—mammal suture.
Rafferty, Herring & Marshall, 2003—pig nasofrontal suture.
Mow & Huiskes, 2005—Bovine cartilage, Athanasiou et al., 1998—human articular cartilage.
Seki, Bodde & Meyers, 2010—lowest of values for toucan beak 1.04 ± 0.06 GPa and 1.12 ± 0.13 GPa.
Soons et al., 2012a—dry finch beak keratin.
Bonser, 2000—ostrich claw keratin along mediolateral axis.
Young’s modulus (E) of various materials on an ostrich skull obtained by nanoindentaion (see text and Fig. 3 for test sites and experimental detail).
| Bone | Beak | Suture | |
|---|---|---|---|
| Gauge sites | 1,4,5 | 1,4 | 5 |
| Indents | 59 | 40 | 20 |
| Mean (GPa) | 5.03 | 0.0271 | 0.018 |
| Max (GPa) | 9.89 | 0.067 | 0.046 |
| Min (GPa) | 1.24 | 0.009 | 0.009 |
| St Dev (GPa) | 1.95 | 0.0144 | 0.011 |
| Median (GPa) | 4.95 | 0.0245 | 0.013 |
Maximum principal strains for the ex-vivo experiment and finite element models.
All values are in microstrain.
| Gauge site | 1 | 2 | 3 | 4 | 5 | 7 | 8 | 9 | 10 | 11 | 12 | 13 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
|
| ||||||||||||
| Test 1 | 17 | −22 | −8.0 | −6.0 | −7.0 | 990 | −20 | 25 | 4.0 | 4.0 | 58 | 21 |
| Test 2 | 14 | −39 | −25 | 1.0 | −77 | 970 | 13 | 14 | 6.0 | 6.0 | 71 | 31 |
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| L1 | 74 | 44 | 37 | 140 | 260 | 130 | 0.53 | 1.4 | 16 | 18 | 5.3 | 5.4 |
| L2 | 200 | 87 | 81 | 250 | 180 | 190 | 2.6 | 3.5 | 4.6 | 10 | 21 | 22 |
| L3 | 130 | 70 | 67 | 200 | 180 | 180 | 2.6 | 3.5 | 4.5 | 10 | 21 | 22 |
| L4 | 170 | 74 | 66 | 240 | 180 | 180 | 1.7 | 2.4 | 22 | 25 | 18 | 17 |
| L5 | 120 | 60 | 54 | 190 | 180 | 170 | 1.7 | 2.4 | 22 | 25 | 18 | 16 |
| L6 | 110 | 58 | 52 | 180 | 180 | 170 | 1.5 | 2.2 | 19 | 21 | 13 | 12 |
| L7 | 160 | 74 | 66 | 230 | 180 | 180 | 1.6 | 2.3 | 22 | 25 | 18 | 16 |
| L8 | 150 | 71 | 64 | 230 | 180 | 180 | 1.5 | 2.1 | 19 | 21 | 13 | 12 |
| L9 | 100 | 52 | 45 | 140 | 140 | 88 | 0.56 | 1.2 | 18 | 21 | 12 | 11 |
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| PH1 | 150 | 77 | 90 | 230 | 250 | 230 | 2.80 | 3.9 | 37 | 43 | 39 | 35 |
| PH2 | 130 | 73 | 84 | 230 | 250 | 230 | 2.2 | 3.2 | 28 | 31 | 21 | 19 |
| PH3 | 160 | 87 | 77 | 270 | 360 | 300 | 3.0 | 4.4 | 36 | 41 | 24 | 23 |
| PH4 | 150 | 81 | 70 | 240 | 380 | 210 | 1.6 | 3.7 | 36 | 40 | 24 | 22 |
| PH5 | 280 | 130 | 110 | 400 | 380 | 340 | 3.9 | 5.5 | 52 | 60 | 53 | 48 |
| PH6 | 300 | 150 | 140 | 440 | 300 | 360 | 3.1 | 4.5 | 52 | 62 | 54 | 49 |
| PH7 | 300 | 160 | 140 | 440 | 300 | 360 | 3.30 | 4.67 | 54 | 66 | 58 | 53 |
| PH8 | 360 | 190 | 170 | 550 | 450 | 490 | 4.9 | 6.9 | 74 | 87 | 78 | 71 |
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| N1 | 570 | 140 | 160 | 680 | 480 | 470 | 3.7 | 4.9 | 41 | 44 | 21 | 21 |
| N2 | 310 | 77 | 80 | 350 | 250 | 240 | 2.2 | 2.9 | 26 | 28 | 17 | 16 |
| N3 | 1,600 | 500 | 540 | 2,500 | 2,100 | 1,500 | 9.6 | 12 | 84 | 85 | 26 | 27 |
Minimum principal strains for the ex-vivo experiment and finite element models.
All values are in microstrain.
|
| 1 | 2 | 3 | 4 | 5 | 7 | 8 | 9 | 10 | 11 | 12 | 13 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
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| Test 1 | −59 | −69 | −68 | −78 | −970 | 170 | −110 | −100 | −83 | −83 | −100 | −77 |
| Test 2 | −85 | −120 | −110 | −130 | −980 | 160 | −97 | −160 | −71 | −71 | −110 | −77 |
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| L1 | −160 | −55 | −47 | −360 | −550 | −36 | −0.42 | −0.79 | −11 | −10 | −4.9 | −4.1 |
| L2 | −270 | −130 | −120 | −560 | −670 | −64 | −2.0 | −2.1 | −55 | −47 | −28 | −28 |
| L3 | −200 | −86 | −80 | −430 | −660 | −61 | −1.9 | −2.1 | −55 | −47 | −28 | −28 |
| L4 | −270 | −120 | −100 | −530 | −660 | −67 | −1.2 | −1.0 | −20 | −20 | −15 | −12 |
| L5 | −200 | −80 | −71 | −410 | −650 | −64 | −1.1 | −1.0 | −20 | −20 | −15 | −12 |
| L6 | −200 | −77 | −69 | −400 | −650 | −63 | −1.0 | −0.98 | −16 | −16 | −11 | −8.4 |
| L7 | −260 | −110 | −97 | −510 | −670 | −67 | −1.1 | −0.98 | −20 | −19 | −14 | −12 |
| L8 | −240 | −100 | −93 | −510 | −660 | −65 | −0.97 | −0.93 | −16 | −16 | −10 | −8.2 |
| L9 | −200 | −74 | −64 | −380 | −290 | −26 | −0.59 | −0.68 | −16 | −15 | −10 | −8.0 |
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| PH1 | −260 | −100 | −85 | −510 | −860 | −83 | −1.9 | −1.6 | −38 | −37 | −34 | −26 |
| PH2 | −250 | −95 | −79 | −500 | −850 | −84 | −1.6 | −1.4 | −1.4 | −24 | −17 | −14 |
| PH3 | −300 | −110 | −97 | −610 | −1,200 | −110 | −2.2 | −2.0 | −31 | −31 | −20 | −16 |
| PH4 | −300 | −110 | −94 | −610 | −810 | −77 | −1.2 | −1.8 | −31 | −30 | −20 | −16 |
| PH5 | −470 | −200 | −170 | −920 | −1,200 | −120 | −2.9 | −2.4 | −52 | −51 | −45 | −35 |
| PH6 | −470 | −200 | −180 | −970 | −1,400 | −130 | −1.9 | −1.8 | −52 | −52 | −46 | −35 |
| PH7 | −470 | −200 | −190 | −970 | −1,400 | −120 | −2.1 | −2.1 | −57 | −57 | −52 | −40 |
| PH8 | −600 | −250 | −220 | −1,200 | −1,900 | −170 | −3.2 | −2.9 | −76 | −75 | −69 | −53 |
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| N1 | −720 | −410 | −340 | −1,600 | −1,800 | −170 | −2.5 | −2.4 | −33 | −31 | −17 | −14 |
| N2 | −400 | −210 | −180 | −820 | −880 | −90 | −1.60 | −1.40 | −22 | −21 | −14 | −11 |
| N3 | −2,000 | −1,500 | −1,200 | −6,000 | −6,500 | −500 | −7.1 | −6.3 | −57 | −50 | −22 | −19 |
Strain ratios (E/|E|) for the ex-vivo experiment and finite element models.
| Gauge site | 1 | 2 | 3 | 4 | 5 | 7 | 8 | 9 | 10 | 11 | 12 | 13 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
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| Test 1 | 0.29 | −0.32 | −0.12 | −0.077 | −0.0072 | 5.7 | −0.18 | 0.24 | 0.048 | 0.048 | 0.56 | 0.27 |
| Test 2 | 0.17 | −0.33 | −0.24 | 0.0078 | −0.078 | 6.3 | 0.13 | 0.088 | 0.085 | 0.085 | 0.65 | 0.40 |
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| L1 | 0.48 | 0.80 | 0.79 | 0.39 | 0.47 | 3.5 | 1.3 | 1.8 | 1.5 | 1.7 | 1.1 | 1.3 |
| L2 | 0.75 | 0.68 | 0.67 | 0.45 | 0.27 | 2.9 | 1.3 | 1.7 | 0.083 | 0.21 | 0.77 | 0.78 |
| L3 | 0.65 | 0.82 | 0.83 | 0.46 | 0.27 | 2.9 | 1.3 | 1.7 | 0.082 | 0.22 | 0.77 | 0.78 |
| L4 | 0.63 | 0.62 | 0.63 | 0.44 | 0.27 | 2.7 | 1.5 | 2.3 | 1.1 | 1.3 | 1.2 | 1.4 |
| L5 | 0.56 | 0.75 | 0.76 | 0.46 | 0.27 | 2.7 | 1.5 | 2.3 | 1.1 | 1.3 | 1.2 | 1.4 |
| L6 | 0.56 | 0.75 | 0.76 | 0.45 | 0.27 | 2.7 | 1.5 | 2.2 | 1.2 | 1.3 | 1.2 | 1.4 |
| L7 | 0.61 | 0.67 | 0.68 | 0.45 | 0.26 | 2.7 | 1.5 | 2.3 | 1.1 | 1.3 | 1.2 | 1.4 |
| L8 | 0.61 | 0.67 | 0.69 | 0.45 | 0.26 | 2.7 | 1.5 | 2.2 | 1.2 | 1.3 | 1.2 | 1.4 |
| L9 | 0.54 | 0.70 | 0.70 | 0.37 | 0.48 | 3.4 | 0.95 | 1.7 | 1.2 | 1.3 | 1.2 | 1.4 |
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| PH1 | 0.57 | 0.76 | 1.1 | 0.46 | 0.29 | 2.8 | 1.5 | 2.5 | 0.96 | 1.2 | 1.1 | 1.3 |
| PH2 | 0.54 | 0.77 | 1.1 | 0.45 | 0.29 | 2.7 | 1.4 | 2.2 | 2.2 | 1.3 | 1.2 | 1.4 |
| PH3 | 0.53 | 0.79 | 0.79 | 0.45 | 0.32 | 2.7 | 1.4 | 2.2 | 1.2 | 1.3 | 1.2 | 1.4 |
| PH4 | 0.51 | 0.75 | 0.75 | 0.39 | 0.46 | 2.7 | 1.3 | 2.1 | 1.2 | 1.3 | 1.2 | 1.4 |
| PH5 | 0.60 | 0.66 | 0.66 | 0.44 | 0.32 | 2.8 | 1.4 | 2.3 | 0.99 | 1.2 | 1.2 | 1.4 |
| PH6 | 0.63 | 0.75 | 0.76 | 0.45 | 0.22 | 2.9 | 1.7 | 2.5 | 1.0 | 1.2 | 1.2 | 1.4 |
| PH7 | 0.64 | 0.75 | 0.75 | 0.45 | 0.22 | 3.0 | 1.6 | 2.3 | 0.94 | 1.2 | 1.1 | 1.3 |
| PH8 | 0.60 | 0.76 | 0.77 | 0.46 | 0.24 | 2.9 | 1.5 | 2.3 | 0.97 | 1.2 | 1.1 | 1.4 |
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| N1 | 0.79 | 0.36 | 0.47 | 0.42 | 0.27 | 2.8 | 1.5 | 2.1 | 1.2 | 1.4 | 1.2 | 1.5 |
| N2 | 0.77 | 0.36 | 0.45 | 0.42 | 0.29 | 2.7 | 1.4 | 2.1 | 1.2 | 1.3 | 1.2 | 1.4 |
| N3 | 0.79 | 0.33 | 0.43 | 0.41 | 0.32 | 3.1 | 1.3 | 1.9 | 1.5 | 1.7 | 1.1 | 1.4 |
Principal strain orientations from grid one direction on the gauge, in degrees.
| Gauge site | 1 | 2 | 3 | 4 | 5 | 7 | 8 | 9 | 10 | 11 | 12 | 13 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
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| Test 1 | 34 | 60 | 17 | 55 | −10 | 55 | −6.5 | 48 | 16 | −59 | −46 | −29 |
| Test 2 | 48 | 68 | 78 | 59 | −4.5 | 57 | −6.0 | 45 | 12 | −59 | −46 | −29 |
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| L1 | 57 | 23 | 53 | 54 | 56 | 45 | 38 | 37 | 78 | 70 | 55 | 19 |
| L2 | 64 | 20 | 55 | 55 | 52 | 47 | 19 | 17 | 43 | 50 | 54 | 17 |
| L3 | 62 | 26 | 52 | 55 | 51 | 47 | 18 | 18 | 44 | 51 | 54 | 17 |
| L4 | 61 | 15 | 57 | 55 | 51 | 49 | 28 | 1.0 | 71 | 70 | 56 | 25 |
| L5 | 60 | 23 | 54 | 55 | 51 | 49 | 27 | 2.5 | 71 | 70 | 56 | 25 |
| L6 | 60 | 21 | 54 | 55 | 51 | 49 | 26 | 3.7 | 72 | 69 | 56 | 25 |
| L7 | 61 | 18 | 55 | 55 | 51 | 49 | 25 | 3.5 | 71 | 70 | 56 | 25 |
| L8 | 61 | 16 | 56 | 55 | 51 | 49 | 23 | 5.1 | 72 | 69 | 56 | 25 |
| L9 | 59 | 20 | 55 | 54 | 56 | 45 | 43 | 39 | 72 | 69 | 56 | 25 |
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| PH1 | 60 | 26 | 53 | 55 | 52 | 47 | 28 | 11 | 67 | 70 | 56 | 24 |
| PH2 | 59 | 23 | 54 | 55 | 52 | 49 | 30 | 4.0 | 72 | 69 | 55 | 25 |
| PH3 | 59 | 24 | 53 | 55 | 52 | 49 | 31 | 7.3 | 72 | 69 | 56 | 25 |
| PH4 | 59 | 23 | 54 | 54 | 56 | 45 | 40 | 37 | 72 | 69 | 56 | 25 |
| PH5 | 61 | 21 | 55 | 55 | 52 | 47 | 32 | 11 | 68 | 70 | 56 | 24 |
| PH6 | 61 | 25 | 53 | 55 | 50 | 49 | 11 | 3.6 | 68 | 70 | 56 | 24 |
| PH7 | 63 | 25 | 53 | 55 | 50 | 48 | 8.4 | 5.0 | 67 | 70 | 56 | 23 |
| PH8 | 62 | 26 | 53 | 55 | 51 | 48 | 16 | 4.8 | 67 | 70 | 56 | 23 |
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| N1 | 63 | 2.6 | 64 | 55 | 51 | 49 | 22 | 3.7 | 75 | 70 | 56 | 24 |
| N2 | 63 | 6.0 | 63 | 55 | 52 | 49 | 28 | 1.5 | 73 | 70 | 56 | 25 |
| N3 | 63 | 1.9 | 65 | 55 | 51 | 49 | 21 | 3.7 | 75 | 70 | 56 | 24 |
Figure 4Maximum and minimum principal strains for both ex-vivo experiments, and finite element models in microstrain.
(A) Maximum, and (B) minimum principal strain for models with material properties from the literature; (C) Maximum, and (D) minimum principal strain for models with posthoc material properties; (E) Maximum, and (F) minimum principal strain for models with material properties from nanoindentation. Material properties for each model are listed in Table 1. Note that both experimental trials are shown.
Figure 5Strain ratios of ex-vivo experiment and finite element models.
Material properties from (A) the literature; (B) posthoc testing; (C) nanoindentation. Dashed line indicates a strain ratio of 1. Where the strain ratio is between 0.67 and 1.5, shear is the predominant regime. When the strain is greater than 2, or less than 0.5, the regime is either primarily tension or compression, respectively. Note that both experimental trials are shown.
Figure 6Principal strain orientation and magnitude.
Material properties from (A) the literature; (B) posthoc testing; (C) nanoindentation.
Euclidean distances from ex-vivo experimental measures to FE model data.
Data in bold are the closest to the experimental data for each specific metric.
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| Strain ratio | Orientation | |
|---|---|---|---|---|
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| ||||
| L1 | 922 | 591 | 4.39 | 203 |
| L2 | 893 | 657 |
| 180 |
| L3 |
|
| 4.10 |
|
| L4 | 890 | 648 | 4.89 | 207 |
| L5 | 877 | 561 | 4.93 | 204 |
| L6 | 874 | 557 | 4.91 | 204 |
| L7 | 886 | 627 | 4.90 | 205 |
| L8 | 884 | 627 | 4.89 | 205 |
| L9 | 933 | 805 | 4.09 | 205 |
|
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| PH1 | 864 | 559 | 4.96 | 201 |
| PH2 |
|
| 5.28 | 204 |
| PH3 | 864 | 690 | 4.90 | 204 |
| PH4 | 934 | 660 | 4.82 | 204 |
| PH5 | 931 | 1,003 | 4.76 | 203 |
| PH6 | 917 | 1,108 | 4.92 | 200 |
| PH7 | 920 | 1,106 |
|
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| PH8 | 1,002 | 1,587 | 4.75 | 200 |
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| N1 | 1,171 | 1,912 | 4.75 |
|
| N2 |
|
| 4.74 | 210 |
| N3 | 3,773 | 8,526 |
| 210 |
Figure 7Comparison of results between models (PH3 and PH4) with different suture properties (see Table 1).
(A) Maximum and (B) minimum principal strain, (C) strain ratio, and Von Mises (in MPa) stress for (D) PH3 and (E) PH4.
Figure 8Comparison of results between models (L4 and L5) with different rhamphotheca properties (see Table 1).
(A) Maximum and (B) minimum principal strain and (C) strain ratio.