Energy Absorption and Limit Velocity of Epoxy Composites Incorporated with Fique Fabric as Ballistic Armor—A Brief Report
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Composite Fabrication
2.3. Stand-Alone Ballistic Tests
2.4. Ballistic Parameters
2.5. Weibull Statistical Analysis
2.6. Analysis of Variance (ANOVA)
2.7. Scanning Electron Microscopy (SEM)
3. Results and Discussion
3.1. Stand-Alone Ballistic Tests
3.2. Analysis of Variance (ANOVA) for Absorbed Energy
3.3. Limit Velocity Discussion
3.4. Composites Integrity and Failure Analyses
4. Summary and Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Nomenclature | Material |
---|---|
EC15BF | Epoxy composite with 15 vol% fique fabric |
EC30FF | Epoxy composite with 30 vol% fique fabric |
EC40BF | Epoxy composite with 40 vol% fique fabric |
EC50BF | Epoxy composite with 50 vol% fique fabric |
Stand-Alone 10 mm Thick Plate Target | (m/s) | (m/s) | (J) | (m/s) | Ref. |
---|---|---|---|---|---|
EC15FF | 839 ± 7 | 814 ± 6 | 203 ± 26 | 204 ± 13 | PW |
EC30FF | 840 ± 8 | 813 ± 8 | 209 ± 55 | 206 ± 25 | PW |
EC40FF | 837 ± 4 | 812 ± 10 | 200 ± 56 | 202 ± 28 | PW |
EC50FF | 843 ± 4 | 816 ± 5 | 219 ± 59 | 211 ± 27 | PW |
DGEBA/TETA epoxy | 850 ± 2 | 827 ± 6 | 190 ± 61 | 196 ± 32 | [11] |
Kevlar (ply of aramid fabric) | 848 ± 6 | 841 ± 7 | 58 ± 29 | 109 ± 7 | [24] |
Stand-Alone Composite Plate Target | β | θ (J) | R2 |
---|---|---|---|
EC15FF | 7.85 | 214.6 | 0.96 |
EC30FF | 4.01 | 231.8 | 0.73 |
EC40FF | 3.78 | 221.7 | 0.93 |
EC50FF | 4.05 | 241.2 | 0.88 |
Variation Causes | Sum of Squares | DF | Mean of Squares | Fcalc | Fcrit | p-Value |
---|---|---|---|---|---|---|
Treatment | 2304.48 | 4 | 576.12 | 0.22 | 2.74 | 0.93 |
Residual | 69,215.74 | 26 | 2662.14 | |||
Total | 71,520.22 | 30 |
Epoxy Composite | (m/s) | Reference |
---|---|---|
15 vol% fique fabric | 204 ± 13 | PW |
30 vol% fique fabric | 206 ± 25 | PW |
40 vol% fique fabric | 202 ± 28 | PW |
50 vol% fique fabric | 211 ± 27 | PW |
10 vol% piassava fiber | 236 ± 8 | [25] |
20 vol% piassava fiber | 200 ± 9 | [25] |
30 vol% piassava fiber | 202 ± 7 | [25] |
40 vol% piassava fiber | 198 ± 6 | [25] |
50 vol% piassava fiber | 204 ± 2 | [25] |
30 vol% mallow fiber | 231 ± 18 | [26] |
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Oliveira, M.S.; Luz, F.S.d.; Lopera, H.A.C.; Nascimento, L.F.C.; Garcia Filho, F.d.C.; Monteiro, S.N. Energy Absorption and Limit Velocity of Epoxy Composites Incorporated with Fique Fabric as Ballistic Armor—A Brief Report. Polymers 2021, 13, 2727. https://doi.org/10.3390/polym13162727
Oliveira MS, Luz FSd, Lopera HAC, Nascimento LFC, Garcia Filho FdC, Monteiro SN. Energy Absorption and Limit Velocity of Epoxy Composites Incorporated with Fique Fabric as Ballistic Armor—A Brief Report. Polymers. 2021; 13(16):2727. https://doi.org/10.3390/polym13162727
Chicago/Turabian StyleOliveira, Michelle Souza, Fernanda Santos da Luz, Henry Alonso Colorado Lopera, Lucio Fabio Cassiano Nascimento, Fabio da Costa Garcia Filho, and Sergio Neves Monteiro. 2021. "Energy Absorption and Limit Velocity of Epoxy Composites Incorporated with Fique Fabric as Ballistic Armor—A Brief Report" Polymers 13, no. 16: 2727. https://doi.org/10.3390/polym13162727
APA StyleOliveira, M. S., Luz, F. S. d., Lopera, H. A. C., Nascimento, L. F. C., Garcia Filho, F. d. C., & Monteiro, S. N. (2021). Energy Absorption and Limit Velocity of Epoxy Composites Incorporated with Fique Fabric as Ballistic Armor—A Brief Report. Polymers, 13(16), 2727. https://doi.org/10.3390/polym13162727