Thermal Hazard Evaluation of Lauroyl Peroxide Mixed with Nitric Acid
Abstract
:Abbreviations:
Ea | Activation energy (kJ/mol) |
R | Gas constant (J/(mol k)) |
Q | Heat power (W/g) |
T0 | Exothermic onset temperature (°C) |
T | Absolute temperature (K) |
∆Hd | Heat of decomposition (J/g) |
TMRiso | Isothermal time to maximum rate (min, h, or day) |
N | Thermal power or heat production rate (W = J/s) |
∆Hiso | Heat of decomposition under isothermal condition (J/g) |
1. Introduction
2. Results and Discussion
2.1. Thermal Analysis by DSC
Sample | Mass (mg) | β (°C/min) | Tmax (°C) | T0 (°C) | ΔHd (J/g) | n | Ea (kJ/mol) | ΔHtotal (mJ/g) |
---|---|---|---|---|---|---|---|---|
LPO 95 mass% + HNO3 (0.1 N, 3.8 mg) | 18.3 | 4 | 108 | 68 | 202 | 1.17 | 113 | 3,682 |
LPO 95 mass% + HNO3 (1 N, 1.6 mg) | 10.9 | 4 | 108 | 68 | 279 | 1.23 | 115 | 4,504 |
LPO 95 mass% + HNO3 (2 N, 1.2 mg) | 7.51 | 4 | 109 | 65 | 600 | 1.25 | 129 | 4,504 |
LPO 95 mass% + HNO3 (6 N, 0.5 mg) | 5.37 | 4 | 110 | 60 | 851 | 4.32 | 260 | 5,024 |
LPO 95 mass% + HNO3 (12 N, 0.8 mg) | 6.07 | 4 | 160 | 58 | 8162 | 2.36 | 147 | 49,550 |
2.1.1. Mechanism A
2.1.2. Mechanism B
2.1.3. Mechanism C
2.2. Thermal Decomposition Analysis of LPO Mixed with Inorganic Acids by TAM III
Sample | Mass/(LPO/contaminant) (mg) | Cell | TMRiso (min) | Heat power ∆Hiso (W/g) (J/g) |
---|---|---|---|---|
LPO + 1 N HNO3 | 52.8/15.2 | Glass | 696 | 0.0027 793.07 |
LPO + 6 N HNO3 | 52.7/24.6 | Glass | 570.6 | 0.0022 1,013.04 |
LPO +12 N HNO3 | 52.3/15.2 | Glass | 240.6 | 0.0048 2,059.98 |
Sample | Mass/(LPO/contaminant) (mg) | Cell | TMRiso (min) | Heat power ∆Hiso (W/g) (J/g) |
---|---|---|---|---|
LPO + 1 N HNO3 | 59.8/16.0 | Glass | 94.70 | 0.0103 894.12 |
LPO + 6 N HNO3 | 57.4/13.3 | Glass | 62.04 | 0.012 976.21 |
LPO +12 N HNO3 | 52.3/15.2 | Glass | 38.35 | 0.023 1,203.64 |
Sample | Mass/(LPO/contaminant) (mg) | Cell | TMRiso (min) | Heat power ∆Hiso (W/g) (J/g) |
---|---|---|---|---|
LPO + 1 N HNO3 | 57.4/14.2 | Glass | 12.09 | 0.046 872.0 |
LPO + 6 N HNO3 | 56.4/10.5 | Glass | 17.14 | 0.043 952.8 |
LPO +12 N HNO3 | 57.1/13.7 | Glass | 12.8 | 0.063 1,072.05 |
Sample | Mass/(LPO/contaminant) (mg) | Cell | TMRiso (min) | Heat power ∆Hiso (W/g) (J/g) |
---|---|---|---|---|
LPO + 1 N HNO3 | 60.1/11.9 | Glass | 8.58 | 0.13 573.06 |
LPO + 6 N HNO3 | 60.6/10.06 | Glass | 10.62 | 0.12 734.08 |
LPO + 12 N HNO3 | 60.1/8.5 | Glass | 8.07 | 0.15 655.04 |
2.2.1. The Calculation of Thermokinetic Parameters
3. Experimental
3.1. Sample Preparations
3.2. Differential Scanning Calorimetry (DSC)
3.3. Gas Chromatography/Mass Spectrometer (GC/MS)
3.4. Thermal Activity Monitor III (TAM III)
4. Conclusions
Acknowledgments
References
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Tsai, L.-C.; You, M.-L.; Ding, M.-F.; Shu, C.-M. Thermal Hazard Evaluation of Lauroyl Peroxide Mixed with Nitric Acid. Molecules 2012, 17, 8056-8067. https://doi.org/10.3390/molecules17078056
Tsai L-C, You M-L, Ding M-F, Shu C-M. Thermal Hazard Evaluation of Lauroyl Peroxide Mixed with Nitric Acid. Molecules. 2012; 17(7):8056-8067. https://doi.org/10.3390/molecules17078056
Chicago/Turabian StyleTsai, Lung-Chang, Mei-Li You, Mei-Fang Ding, and Chi-Min Shu. 2012. "Thermal Hazard Evaluation of Lauroyl Peroxide Mixed with Nitric Acid" Molecules 17, no. 7: 8056-8067. https://doi.org/10.3390/molecules17078056
APA StyleTsai, L. -C., You, M. -L., Ding, M. -F., & Shu, C. -M. (2012). Thermal Hazard Evaluation of Lauroyl Peroxide Mixed with Nitric Acid. Molecules, 17(7), 8056-8067. https://doi.org/10.3390/molecules17078056