| Literature DB >> 28701741 |
Fengyi Wang1, Zhiguo Wu2,3, Xushui Shangguan4, Yunqiang Sun1, Juanjuan Feng1, Zhongyou Li4, Luyang Chen4, Shiyong Zuo1, Renfu Zhuo1, Pengxun Yan1,5.
Abstract
Mono-dispersed, spherical and core/shell structure aluminum nanopowders (ANPs) were produced massively by high energy ion beam evaporation (HEIBE). And the number weighted average particle size of the ANPs is 98.9 nm, with an alumina shell (3-5 nm). Benefiting from the passivation treatment, the friction, impact and electrostatic spark sensitivity of the ANPs are almost equivalent to those of aluminum micro powders. The result of TG-DSC indicates the active aluminum content of ANPs is 87.14%, the enthalpy release value is 20.37 kJ/g, the specific heat release S 1/Δm 1* (392-611 °C) which determined the ability of energy release is 19.95 kJ/g. And the value of S 1/Δm 1* is the highest compared with ANPs produced by other physical methods. Besides, the ANPs perfectly compatible with hydroxyl-terminated polybutadiene (HTPB), 3 wt. % of ANPs were used in HTPB propellant replaced micron aluminum powders, and improved the burning rate in the 3-12 MPa pressure range and reduced the pressure exponential by more than 31% in the 3-16 MPa pressure range. The production technology of ANPs with excellent properties will greatly promote the application of ANPs in the field of energetic materials such as propellant, explosive and pyrotechnics.Entities:
Year: 2017 PMID: 28701741 PMCID: PMC5507889 DOI: 10.1038/s41598-017-05599-0
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
The characteristics of the ANPs.
| Sample | Structure | Shape | Dispersion |
|
|
|
|
|---|---|---|---|---|---|---|---|
| ANPs | Core/shell | Sphere | Mono-dispersed | 20.92 | 98.9 | 106.2 | 36.1 |
Figure 1(a,b) TEM image of the sample. (c) Histograms showing size distribution obtained from the area of image (a). (d,e,f,g,h) HRTEM image of the sample that showed the lattice distortion and the structural characteristics of the interface.
Figure 2(a,b) SEM graph of the sample. (c) Energy-dispersive spectroscopic (EDS) result of the sample.
Figure 3XRD diffraction spectra of the sample.
Figure 4DSC-TG-DTG results for the sample heated in oxygen at 10 °C/min.
Reactivity Parameters from DSC-TG-DTG Analyses of ANPs.
| Sample |
|
|
|
|
|
|
|
|---|---|---|---|---|---|---|---|
| ANPs (1.44 mg) | 509 | 14.55 (392–611 °C) | 3.265 | 19.95 | 0.0267 | 87.14 | 20.37 |
| 60.38 (700–1100 °C) | 17.225 | 25.36 | 0.0428 |
Compared the sensitivity of ANPs and aluminum micron powders.
| Type | Test result | Test condition | ||
|---|---|---|---|---|
| ANPs | AMPs (30.96 μm) | |||
| ESD |
| 1417.0 | 1533.3 | Temperature 25 °C, Relative Humidity 50%, Capacitance 3 × 3900 PF, Stitch Length 0.5 mm |
|
| 11.75 | 13.75 | ||
| Friction sensitivity | 0% | 0% | Temperature 23 °C, Relative Humidity 70%, Testing Angle 90°, Test Pressure 4.0 MPa | |
| Impact sensitivity | 0% | 0% | Temperature 23 °C, Relative Humidity 70%, Drop Weight 98.0 N, Drop height 50 cm, Impact Energy 49 J | |
Compatibility of ANPs and HTPB propellant.
| Sample | Initial mass, g | Mass after 14 days, g | Isothermal weight loss rate, % |
|---|---|---|---|
| Conventional HTPB propellant | 9.887 | 9.879 | 0.081 |
| Adding 3 wt.% ANPs HTPB propellant | 10.499 | 10.493 | 0.057 |
Figure 5Effect of ANPs on burning rate of HTPB propellant.
Compared the ability of energy release below 650 °C of ANPs manufactured by different methods.
| Method |
| Measurement atmosphere |
|
|
|
|
| Reference |
|---|---|---|---|---|---|---|---|---|
| HEIBE | 98.9 | O2 | 509 | 3.265 | 14.55 | 19.95 | — | our sample |
| Air | 516 | 3.082 | 14.15 | 19.36 | 2.9 | |||
| LCHE | 20.0–50.0 | O2 | 529 | 3.548 | 16.80 | 18.77 | 6.1 |
|
| Laser method | 50.0 | O2 | 556 | 4.219 | 22.00 | 17.05 | 17.0 |
|
| Plasma technology | 90.0 | Air | 430 | 5.500 | 32.00 | 15.28 | 30.6 |
|
| Induction method | 50.0 | O2 | 553 | 3.584 | 22.80 | 13.97 | 42.8 |
|
| EEW(Alex) | 183.0 | Air | 460 | 3.900 | 25.00 | 13.87 | 43.8 |
|
| IHE | 20.0–50.0 | O2 | 530 | 1.180 | 19.80 | 5.30 | 276.4 |
|