| Literature DB >> 35519764 |
Xiong Yang1, Jing Zhou1, Xiaoling Xing1, Yafeng Huang1, Zhengfeng Yan1, Qi Xue1, Xiaofeng Wang1, Bozhou Wang1,2.
Abstract
3,3'-Bi(1,2,4-oxadiazole)-5,5'-diylbis(methylene)dinitrate (BOM) is a liquid phase carrier for melt cast explosives that is expected to replace TNT. The combination of a conjugated 1,2,4-oxadiazole backbone and nitrate ester groups endows BOM with both good energetic performance and impressive insensitivity. In this paper, the thermal behaviors of BOM were investigated using a TG-DSC synchronous thermal analyzer, proving that BOM is basically non-volatile under heating and melting processes. The apparent activation energy of BOM calculated by the Kissinger method was 158.2 kJ mol-1 at atmospheric pressure, which is higher than that of DNTF at atmospheric pressure and TNT at 2 MPa, indicating good thermal stability at low temperatures. The thermal decomposition mechanism of BOM was studied through both DSC-MS and in situ FTIR technologies. The low eutectic characteristics of BOM and DNTF were also investigated carefully and the best ratio of BOM/DNTF was 40/60 with a melting point at 75.5 °C. Finally, the detonation performances of TNT/HMX, BOM/HMX and BOM/DNTF(40/60)/HMX explosive formulations were calculated, showing that the detonation performances of the latter two formulations were significantly higher than that of TNT/HMX. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35519764 PMCID: PMC9059166 DOI: 10.1039/d0ra04517a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
The main properties of liquid phase carriers for melt cast explosives
| Exp | MP, °C |
|
|
|
|
|
|---|---|---|---|---|---|---|
| BOM | 85.8 | 1.823 | 8.18 | 28.1 | 8.6 J | 282 N |
| TNT | 80.8 | 1.64 | 6.94 | 21 |
| 4–6% |
| DNAN | 94.5 | 1.34 | 5.60 | 7.02 |
| 170 N |
| TNAZ | 101 | 1.84 | 8.73 | 37.2 |
| 353 N |
| DNTF | 110 | 1.937 | 9.25 | 41.1 |
| 84% |
| MTNI | 82 | 1.78 | 8.80 | 35.5 |
| 252 N |
| DNP | 86 | 1.81 | 8.24 | 28.8 | — | — |
| MDNT | 98 | 1.676 | 7.66 | — |
| 252 N |
| MTNP | 91 | 1.83 | 8.96 | 33.5 | — | — |
| DNBF | 85 | 1.85 | 8.80 | 35.6 |
| — |
| ADN | 92 | 1.82 | — | — |
| 72% |
| DINA | 51.3 | 1.488 | 7.58 | 28.6 | — | — |
| NG-N1 | 66 | 1.799 | 8.84 | 32.6 | 14 J | 96 N |
| TNE | 86 | 1.92 | 9.1 | 40 | 2.7 J | 75 N |
| TTA | 94 | 1.54 | 5.68 | — | — | — |
Fig. 1The molecular structure of BOM.
Fig. 2The synthesis of BOM.
Fig. 3TG–DSC curves of BOM.
Fig. 4DSC curves of BOM at different heating rates.
Kinetic parameters for the thermal decomposition reaction of BOM
|
|
|
|
| lg |
|---|---|---|---|---|
| 2.5 | 471.0 | 158.2 | 0.9848 | 19.55 |
| 5 | 477.1 | |||
| 10 | 486.1 | |||
| 20 | 495.3 |
Kinetic parameters of BOM, DNTF and TNT
| Exp |
|
| 1000, T |
|
| lg |
|
|---|---|---|---|---|---|---|---|
| BOM 0.1 MPa | 50 | 323.2 | 3.0941 | 158.2 | 58.8560 | 19.55 | 10−6.01 |
| 80 | 353.2 | 2.8313 | 158.2 | 53.8583 | 19.55 | 10−3.84 | |
| 130 | 403.2 | 2.4802 | 158.2 | 47.1811 | 19.55 | 10−0.94 | |
| 180 | 453.2 | 2.2065 | 158.2 | 41.9769 | 19.55 | 101.32 | |
| 230 | 503.2 | 1.9873 | 158.2 | 37.8068 | 19.55 | 103.13 | |
| 260 | 533.2 | 1.8755 | 158.2 | 35.6800 | 19.55 | 104.05 | |
| 300 | 573.2 | 1.7446 | 158.2 | 33.1906 | 19.55 | 105.13 | |
| 350 | 623.2 | 1.6046 | 158.2 | 30.5281 | 19.55 | 106.29 | |
| DNTF 0.1 MPa | 50 | 323.2 | 3.0941 | 58.8 | 21.8825 | 7.76 | 10−1.74 |
| 80 | 353.2 | 2.8313 | 58.8 | 20.0238 | 7.76 | 10−0.93 | |
| 130 | 403.2 | 2.4802 | 58.8 | 17.5407 | 7.76 | 100.15 | |
| 180 | 453.2 | 2.2065 | 58.8 | 15.6055 | 7.76 | 100.99 | |
| 230 | 503.2 | 1.9873 | 58.8 | 14.0549 | 7.76 | 101.66 | |
| 260 | 533.2 | 1.8755 | 58.8 | 13.2641 | 7.76 | 102.00 | |
| 300 | 573.2 | 1.7446 | 58.8 | 12.3385 | 7.76 | 102.41 | |
| 350 | 623.2 | 1.6046 | 58.8 | 11.3485 | 7.76 | 102.84 | |
| TNT 2 MPa | 50 | 323.2 | 3.0941 | 110.9 | 41.2587 | 7.60 | 10−10.3 |
| 80 | 353.2 | 2.8313 | 110.9 | 37.7553 | 7.60 | 10−8.79 | |
| 130 | 403.2 | 2.4802 | 110.9 | 33.0745 | 7.60 | 10−6.76 | |
| 180 | 453.2 | 2.2065 | 110.9 | 29.4263 | 7.60 | 10−5.18 | |
| 230 | 503.2 | 1.9873 | 110.9 | 26.5029 | 7.60 | 10−3.91 | |
| 260 | 533.2 | 1.8755 | 110.9 | 25.0121 | 7.60 | 10−3.26 | |
| 300 | 573.2 | 1.7446 | 110.9 | 23.2669 | 7.60 | 10−2.50 | |
| 350 | 623.2 | 1.6046 | 110.9 | 21.4005 | 7.60 | 10−1.69 |
Fig. 5MS spectra of BOM products.
Fig. 6The thermal decomposition process of BOM.
Fig. 7The infrared spectra at 40, 100, 170, 200 and 220 °C.
Fig. 8DSC curves of BOM/DNTF in different proportions.
Melting points of BOM/DNTF in different proportions
| BOM/DNTF |
|
|
|---|---|---|
| 100/0 | — | 86.4 |
| 90/10 | 72.5 | 83.2 |
| 80/20 | 74.6 | 82.3 |
| 70/30 | 74.9 | 79.8 |
| 60/40 | 75.5 | — |
| 50/50 | 75.9 | — |
| 40/60 | 75.5 | — |
| 30/70 | 74.7 | 97.3 |
| 20/80 | 74.8 | 102.0 |
| 10/90 | 72.8 | 106.2 |
| 0/100 | — | 111.5 |
Fig. 9Binary phase diagram of BOM/DNTF.
The impact, friction and ESD sensitivity of DNTF, BOM and BOM/DNTF (40/60)
| Exp | Impact, | Friction, % | ESD |
|---|---|---|---|
| DNTF | 20.0 | 84 | No initiation |
| BOM | 115.3 | 22 | No initiation |
| BOM/DNTF(40/60) | 106.8 | 24 | No initiation |
Fig. 10Temperature dependence of vapor pressure for DNTF and the BOM/DNTF(40/60) low eutectic.
Detonation performance parameters of melt cast explosives carriers
| Sample | Density, g cm−3 | OB, % | Detonation heat, J g−1 | Detonation velocity, m s−1 | Detonation pressure, GPa |
|---|---|---|---|---|---|
| TNT | 1.654 | −73.96 | 4380.45 | 6809.01 | 18.70 |
| BOM | 1.823 | −33.32 | 4857.29 | 8092.01 | 28.11 |
| BOM/DNTF(40/60) | 1.931 | −18.90 | 6008.45 | 9079.33 | 37.87 |
| BOM/DNTF(50/50) | 1.917 | −21.31 | 5815.85 | 8919.67 | 36.18 |
| BOM/DNTF(60/40) | 1.899 | −23.71 | 5620.03 | 8749.84 | 34.32 |
Detonation performance parameters of melt cast explosive systems
| Sample | Density, g cm−3 | OB, % | Detonation heat, J g−1 | Detonation velocity, m s−1 | Detonation pressure, GPa |
|---|---|---|---|---|---|
| TNT/HMX | 1.796 | −42.55 | 5174.33 | 8194.57 | 28.72 |
| BOM/HMX | 1.871 | −26.29 | 5347.88 | 8712.74 | 33.78 |
| BOM/DNTF(40/60)/HMX | 1.915 | −20.53 | 5797.43 | 9041.98 | 37.11 |
| BOM/DNTF(50/50)/HMX | 1.887 | −21.49 | 5777.20 | 8996.10 | 36.93 |
| BOM/DNTF(60/40)/HMX | 1.879 | −22.45 | 5700.71 | 8934.18 | 36.28 |
Fig. 11Comparison of detonation performance.