| Literature DB >> 30832261 |
Chenggao Li1,2,3, Guijun Xian4,5,6.
Abstract
In the present article, the degradation of the tensile properties of polyacrylonitrile (PAEntities:
Keywords: carbon fiber; elastic mechanics theory; elevated temperature; mechanical properties; rule of mixtures
Year: 2019 PMID: 30832261 PMCID: PMC6427305 DOI: 10.3390/ma12050724
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Exposure conditions of carbon fiber-reinforced polymers (CFRPs) at elevated temperatures for engineering applications.
| Composite Type | Temperature Range (°C) | Maximum Exposure Time (h) | Fire Protection Coating |
|---|---|---|---|
| CFRP bars [ | 0–400 | 2 | Inorganic mortar cladding |
| CFRP strips [ | 0–1000 | 3 | Intumescent coating |
| CFRP strips [ | 0–1100 | 5 | Fire protective boards |
| CFRP laminates [ | 0–1000 | 2.5 | Vermiculite-perlite mortar |
| CFRP laminates [ | 0–165 | 8 | - |
| CFRP laminates [ | 0–600 | 1 | Laminate plaster board/intumescent paint |
Figure 1Skin–core structure model of carbon fiber.
Figure 2Schematic diagram including the graphitic planes at angle ϕ with respect to the loading direction and the stress state normal and parallel to the graphitic planes.
Shear properties between graphite layers calculated by Equations (3) and (6).
| Samples | Samples | ||||
|---|---|---|---|---|---|
| Original a | 31.584 | 1.399 | 500 °C–30 min | 31.067 | 1.213 |
| 400 °C–30 min | 31.452 | 1.346 | 500 °C–1 h b | 30.635 | 0.999 |
| 550 °C–30 min | 29.363 | 0.803 | 500 °C–2 h | 30.755 | 0.703 |
| 600 °C–30 min | 28.729 | 0.833 | 500 °C–4 h | 30.901 | 0.619 |
| 700 °C–30 min | 0 | 0 | 500 °C–10 h | 25.076 | 0.442 |
a The original is the untreated sample (control sample); b 500 °C–1 h: 500 °C is the exposure temperature, 1 h is the exposure time.
Figure 3Effects of elevated temperatures on the mechanical properties of single carbon fibers. Note: the exposure time was 30 min at each temperature.
Figure 4Effects of exposure time at 500 °C on the mechanical properties of single carbon fibers.
Shape parameter (m) of carbon fibers.
| Samples | Shape Parameter ( | Samples | Shape Parameter ( |
|---|---|---|---|
| Original | 5.217 | 500 °C–1 h | 5.229 |
| 400 °C–30 min | 5.560 | 500 °C–2 h | 3.684 |
| 500 °C–30 min | 5.483 | 500 °C–4 h | 3.388 |
| 550 °C–30 min | 3.816 | 500 °C–10 h | 2.570 |
| 600 °C–30 min | 5.293 | - | - |
Figure 5Temperature dependence of the mass evolution of carbon fiber.
Figure 6Time dependence of the mass evolution of carbon fiber at 500 and 550 °C.
Figure 7SEM pictures of carbon fibers: (A) original; (B) 500 °C for 30 min; (C) 500 °C for 10 h.
Figure 8AFM pictures of carbon fibers: (A) original; (B) 500 °C for 30 min, and (C) 550 °C for 30 min.
Surface element contents of original and exposed carbon fibers determined by XPS.
| Samples | C (%) | O (%) | N (%) | O/C (%) |
|---|---|---|---|---|
| Original | 69.8 | 25.61 | 4.59 | 36.69 |
| 300 °C–10 h | 75.45 | 23.77 | 0.79 | 31.50 |
| 500 °C–30 min | 61.95 | 34.05 | 4.00 | 54.96 |
| 550 °C–30 min | 58.86 | 35.26 | 5.89 | 59.90 |
| 500 °C–2 h | 61.05 | 34.33 | 4.62 | 56.23 |
| 500 °C–10 h | 34.15 | 61.26 | 4.59 | 179.36 |
Surface functional groups of control and exposed carbon fibers determined by XPS.
| Samples | C–C | C–OH (C–O–C) | C=O | COOH (R) | ||||
|---|---|---|---|---|---|---|---|---|
| Binding Energy (eV) | Percentage (%) | Binding Energy (eV) | Percentage (%) | Binding Energy (eV) | Percentage (%) | Binding Energy (eV) | Percentage (%) | |
| Original | 284.13 | 72.12 | 285.64 | 22.57 | 287.52 | 5.31 | - | - |
| 300 °C–10 h | 284.60 | 76.51 | 286.11 | 14.21 | 288.45 | 9.28 | - | - |
| 500 °C–30 min | 284.54 | 71.44 | 286.11 | 17.65 | 287.76 | 5.56 | 289.72 | 5.35 |
| 550 °C–30 min | 284.41 | 51.53 | 285.72 | 34.82 | 287.47 | 10.24 | 288.92 | 3.41 |
| 500 °C–2 h | 284.22 | 41.83 | 285.20 | 40.41 | 287.10 | 12.11 | 289.19 | 5.65 |
| 500 °C–10 h | 284.26 | 37.61 | 285.36 | 47.59 | 287.35 | 13.97 | 289.71 | 0.83 |
Figure 9Transformation schematic diagram of oxygen-containing functional groups between the graphite layers.
Figure 10FTIR spectra of carbon fibers: (A) exposed to different temperatures for 30 min; (B) exposed at 500 °C for different times.
Figure 11The dependence of the exposure temperature on the radial distribution of tensile modulus of carbon fibers.
Figure 12The effect of exposure temperature on the square of the diameter of carbon fibers.
Figure 13Variation of tensile modulus with the exposure temperature.
Figure 14Variation of oxidation degree (OD) versus the exposure temperature.
Figure 15Variation of tensile modulus with the exposure time.
Figure 16Variation of oxidation degree (OD) versus the exposure time.
Figure 17Time–temperature equivalence on the radial distribution of tensile modulus.
Figure 18Equivalence of exposure temperature and time on the diameter.
Figure 19Time–temperature equivalence equation.
Figure 20The dependence of the exposure temperature on the tensile strength.
Figure 21The dependence of the exposure time on the relationship between the modulus for shear and the shear strength between the graphite layers.
Figure 22The dependence of the exposure time on the tensile strength.