The Effect of Aluminum Particle Size on the Formation of Reactive Jet
Abstract
:1. Introduction
2. X-ray Experiment
2.1. Experimental Composition
2.2. Experimental Results
2.2.1. The Morphology of Reactive Jets
2.2.2. Energy Release Behavior of Reactive Jet
2.2.3. The Damage Effect of Witness Target
3. The Numerical Simulation
3.1. Finite Element Model
3.2. Material Model
3.2.1. Constitutive Model
3.2.2. EOS Model
3.2.3. The Material Models of Explosive and Target Plates
4. Results and Discussion
4.1. The Morphology Reactive Shaped Charge Jets
4.2. Reaction Degree and Jet Velocity during the Jet Formation
5. Conclusions
- (1)
- The RMs reacted during the PTFE/Al reactive shaped charge jet formation, which can be divided into local reaction stage and overall reaction stage. In the local reaction stage, the reaction is relatively mild and mainly concentrated in the jet head. In the whole reaction stage, the RMs deflagrate violently, and the reaction mainly concentrates in the slug.
- (2)
- Secondary collision occurs in the inner layer of the liner during the jet formation, and the pressure generated by the secondary collision is higher than that given by the explosive. Therefore, the reaction of PTFE/Al reactive shaped charge jet is from inside to outside during the jet formation.
- (3)
- The effect of Al particle size on the mechanical properties and reaction rate of PTFE/Al RMs are the main reason for the formation of the difference during the jet formation. Compared with the 5 μm aluminum powder, the PTFE/Al reactive liner prepared with 100 μm aluminum powder reacted slowly and the morphology of jet is more condensed, which is conducive to generating greater penetration depth.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Particle Size of Al (μm) | Ρ (g/cm3) | A (MPa) | B (Mpa) | n | C | m |
---|---|---|---|---|---|---|
5 | 2.27 | 14.9 | 45.463 | 0.74415 | 0.115 | 1 |
100 | 2.27 | 13.9 | 49.564 | 0.60135 | 0.057 | 1 |
Material | ρ0 (g/cm3) | C0 (km/s) | S | γ0 | αv (10−5/K) |
---|---|---|---|---|---|
Al | 2.712 | 5.332 | 1.375 | 2.18 | 6.93 |
PTFE | 2.152 | 1.754 | 1.723 | 0.59 | 10.9 |
PTFE/Al | 2.296 | 3.077 | 1.743 | 0.70 | - |
Material | A (Mbar) | B (Mbar) | R1 | R2 | W | ρ (g/cm3) | PCJ (Mbar) | D (m/s) |
---|---|---|---|---|---|---|---|---|
8701 | 5.2423 | 0.7678 | 4.2 | 1.1 | 0.34 | 1.71 | 0.286 | 8315 |
Material | ρ (g/cm3) | C (m/s) | S | γ | A (Mbar) | B (Mbar) | n | c | m | Tm (K) |
---|---|---|---|---|---|---|---|---|---|---|
45# steel | 7.83 | 4569 | 1.33 | 1.67 | 0.0057 | 0.0032 | 0.28 | 0.064 | 1.06 | 1811 |
Particle Size of Al (μm) | Test of Time (μs) | Diameter of Slug (mm) | Diameter of Jet (mm) | ||||
---|---|---|---|---|---|---|---|
Experiment | Simulation | Error (%) | Experiment | Simulation | Error (%) | ||
5 | 19.1 | 27.7 | 29.5 | 6.5 | 13.8 | 13.1 | 5.1 |
29.8 | 35.0 | 32.8 | 6.3 | 12.5 | 11.7 | 6.4 | |
100 | 18.9 | 25.4 | 27.5 | 7.6 | 9.2 | 9.7 | 5.2 |
29.9 | 30.0 | 31.5 | 5 | 11.5 | 12.0 | 4.2 |
Particle Size of Al (μm) | Local Reaction Stage | Overall Reaction Stage | ||
---|---|---|---|---|
Reaction Degree (%) | Reaction Rate (g/μs) | Reaction Degree (%) | Reaction Rate (g/μs) | |
5 | 4.5 | 0.362 | 60 | 1.67 |
100 | 0.8 | 0.067 | 80 | 1.52 |
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Guo, M.; Wang, Y.; Chen, Y.; Xiao, J.; Wang, H. The Effect of Aluminum Particle Size on the Formation of Reactive Jet. Crystals 2022, 12, 1560. https://doi.org/10.3390/cryst12111560
Guo M, Wang Y, Chen Y, Xiao J, Wang H. The Effect of Aluminum Particle Size on the Formation of Reactive Jet. Crystals. 2022; 12(11):1560. https://doi.org/10.3390/cryst12111560
Chicago/Turabian StyleGuo, Mengmeng, Yanxin Wang, Yongkang Chen, Jianguang Xiao, and Haifu Wang. 2022. "The Effect of Aluminum Particle Size on the Formation of Reactive Jet" Crystals 12, no. 11: 1560. https://doi.org/10.3390/cryst12111560
APA StyleGuo, M., Wang, Y., Chen, Y., Xiao, J., & Wang, H. (2022). The Effect of Aluminum Particle Size on the Formation of Reactive Jet. Crystals, 12(11), 1560. https://doi.org/10.3390/cryst12111560