| Literature DB >> 28772825 |
Andrea Toldy1, Péter Niedermann2, Ákos Pomázi3, György Marosi4, Beáta Szolnoki5.
Abstract
Carbon fibre reinforced flame-retarded bioepoxy composites were prepared from commercially available sorbitol polyglycidyl ether (SPE) cured with cycloaliphatic amine hardener. Samples containing 1, 2, and 3% phosphorus (P) were prepared using additive type flame retardants (FRs) resorcinol bis(diphenyl phosphate) (RDP), ammonium polyphosphate (APP), and their combinations. The fire performance of the composites was investigated by limiting oxygen index (LOI), UL-94 tests, and mass loss calorimetry. The effect of FRs on the glass transition temperature, and storage modulus was evaluated by dynamic mechanical analysis (DMA), while the mechanical performance was investigated by tensile, bending, and interlaminar shear measurements, as well as by Charpy impact test. In formulations containing both FRs, the presence of RDP, acting mainly in gas phase, ensured balanced gas and solid-phase mechanism leading to best overall fire performance. APP advantageously compensated the plasticizing (storage modulus and glass transition temperature decreasing) effect of RDP in combined formulations; furthermore, it led to increased tensile strength and Charpy impact energy.Entities:
Keywords: carbon fibre reinforced bioepoxy composite; phosphorus-containing additive flame retardant; solid- and gas-phase mechanism; synergism
Year: 2017 PMID: 28772825 PMCID: PMC5458979 DOI: 10.3390/ma10050467
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Chemical structures of the applied components.
Limiting oxygen index (LOI) and UL-94 results of the flame retarded sorbitol polyglycidyl ether (SPE) composites.
| Flame Retardant Composition | LOI [V/V%] | UL-94 |
|---|---|---|
| SPE composite reference | 24 | HB (1st ignition) |
| RDP 1% P | 26 | HB (1st ignition) |
| RDP 2% P | 26 | HB (1st ignition) |
| RDP 3% P | 27 | V-1 |
| APP 1% P | 25 | HB (1st ignition) |
| APP 2% P | 28 | HB (1st ignition) |
| APP 3% P | 31 | HB (2nd ignition) |
| RDP 1% P + APP 2% P | 30 | HB (2nd ignition) |
| RDP 1.5% P + APP 1.5% P | 31 | HB (2nd ignition) |
| RDP 2% P + APP 1% P | 32 | V-1 |
Figure 2Heat release rate of reference and flame retarded SPE composites with resorcinol bis(diphenyl phosphate) (RDP).
Figure 3Heat release rate of reference and flame retarded SPE composites with ammonium polyphosphate (APP).
Figure 4Heat release rate of reference and flame retarded SPE composites with 3% phosphorus.
Mass loss type cone calorimetry results of reference and flame retarded SPE composites.
| Flame Retardant Composition | TTI [s] | pHRR [kW/m2] | Time of pHRR [s] | FIGRA [kW/m2s] | THR [MJ/m2] | EHC [MJ/kg] | MARHE [kW/m2] | Residue [mass%] |
|---|---|---|---|---|---|---|---|---|
| SPE composite reference | 61 | 163 | 88 | 1.9 | 16.9 | 16.4 | 77.4 | 60 |
| RDP 1% P | 57 | 127 | 72 | 1.8 | 14.4 | 15.7 | 66.3 | 63 |
| RDP 2% P | 66 | 100 | 91 | 1.1 | 11.9 | 13.2 | 51.4 | 65 |
| RDP 3% P | 77 |
| 107 |
| 10.6 | 12.3 | 44.3 | 67 |
| APP 1% P | 61 | 130 | 86 | 1.5 | 13.4 | 14.4 | 60.3 | 65 |
| APP 2% P | 58 | 124 | 81 | 1.5 | 13.3 | 14.1 | 61.7 | 64 |
| APP 3% P | 72 | 114 | 90 | 1.3 | 12.7 | 13.5 | 55.7 | 65 |
| RDP 1% P + APP 2% P |
| 92 |
|
| 10.9 |
| 45.2 | 63 |
| RDP 1.5% P + APP 1.5% P | 64 | 103 | 97 | 1.1 | 12.1 | 13.3 | 52.3 | 65 |
| RDP 2% P + APP 1% P | 72 | 91 | 105 | 0.9 |
| 12.2 |
|
|
TTI: time to ignition, pHRR: peak of heat release rate, FIGRA: fire growth rate, THR: total heat release, EHC: average effective heat of combustion, MARHE: maximum of average rate of heat emission, average standard deviation of the measured mass loss calorimeter values: TTI: ±3, pHRR: ±30, time of pHRR: ±5, residue: ±2.
Figure 5Tan delta curves of reference and 3% P-containing SPE composites.
Effect of the additive flame retardants on the glass transition temperature (Tg) of SPE composites.
| Flame Retardant Composition | tan delta [-] | Tg [°C] |
|---|---|---|
| SPE composite reference | 0.1263 | 111 |
| RDP 1% P | 0.1385 | 102 |
| RDP 2% P | 0.1417 | 94 |
| RDP 3% P | 0.1513 | 83 |
| APP 1% P | 0.0997 | 115 |
| APP 2% P | 0.0983 | 120 |
| APP 3% P | 0.0982 | 121 |
| RDP 1% P + APP 2% P | 0.1128 | 104 |
| RDP 1.5% P + APP 1.5% P | 0.1279 | 100 |
| RDP 2% P + APP 1% P | 0.1211 | 95 |
Figure 6Storage modulus curves of reference and flame retarded SPE composites.
Storage moduli of reference and flame retarded SPE composites.
| Flame Retardant Composition | Storage Modulus at 25 °C [GPa] | Storage Modulus at 75 °C [GPa] |
|---|---|---|
| SPE composite reference | 68.79 | 68.86 |
| RDP 1% P | 67.33 | 61.76 |
| RDP 2% P | 65.04 | 58.93 |
| RDP 3% P | 69.60 | 44.23 |
| APP 1% P | 80.33 | 76.85 |
| APP 2% P | 62.18 | 61.31 |
| APP 3% P | 68.40 | 66.43 |
| RDP 1% P + APP 2% P | 71.54 | 68.33 |
| RDP 1.5% P + APP 1.5% P | 75.34 | 65.96 |
| RDP 2% P + APP 1% P | 73.48 | 66.70 |
Tensile, flexural, interlaminar shear, and Charpy impact properties of reference and flame retarded SPE composites.
| Flame Retardant Composition | Tensile Strength [MPa] | Flexural Strength [MPa] | Interlaminar Shear Strength [MPa] | Charpy Impact Energy [kJ/m2] |
|---|---|---|---|---|
| SPE reference | 916.2 ± 18.7 | 996.9 ± 64.3 | 41.1 ± 1.9 | 85.5 ± 6.6 |
| RDP 1% P | 818.8 ± 56.5 | 867.7 ± 62.2 | 44.3 ± 1.3 | 88.7 ± 6.9 |
| RDP 2% P | 826.4 ± 49.8 | 900.4 ± 64.9 | 47.5 ± 0.7 | 90.5 ± 19.3 |
| RDP 3% P | 851.2 ± 29.7 | 919.5 ± 138.4 | 41.3 ± 1.0 | 93.0 ± 6.9 |
| APP 1% P | 795.6 ± 123.0 | 895.0 ± 41.3 | 42.7 ± 1.5 | 75.1 ± 8.9 |
| APP 2% P | 842.1 ± 49.9 | 948.4 ± 43.4 | 41.0 ± 1.4 | 79.8 ± 9.4 |
| APP 3% P | 914.3 ± 76.6 | 927.4 ± 74.4 | 42.7 ± 1.2 | 102.2 ± 33.6 |
| RDP 1% P + APP 2% P | 1025.0 ± 23.4 | 1004.3 ± 95.2 | 41.0 ± 2.8 | 99.0 ± 19.9 |
| RDP 1.5% P + APP 1.5% P | 951.1 ± 37.3 | 956.0 ± 98.5 | 41.0 ± 1.1 | 95.0 ± 17.6 |
| RDP 2% P + APP 1% P | 948.1 ± 8.3 | 976.0 ± 98.5 | 38.3 ± 1.2 | 87.0 ± 1.8 |