Structural Response of Double-Layer Steel Cylinders under Inside-Explosion Loading
Abstract
:1. Introduction
2. PDV Measurement System
3. Experimental Scheme
4. Analysis of Experimental Results
4.1. Results of PDV Measurement
4.2. Deformation of the Double-Layer Cylindrical Shells
5. The Numerical Simulation of Double-Layer Cylindrical Shells
5.1. The Model of Numerical Simulation
5.2. The Equation of Numerical Simulation
5.3. Results of Numerical Simulation
5.3.1. Shock Wave Pressure in the Double-Layer Shells
5.3.2. Analysis of Collision Process of the Inner and Outer Steel Shells
5.3.3. The Velocities of Double-Layer Cylindrical Shells by Simulation
6. Conclusions
- (1)
- This paper proposed a new method for measuring the deformation of double-layer steel cylindrical shells under internal explosion by PDV; the results of the deformation of the inner and outer cylindrical shells by PDV and numerical simulation are basically matched. Comparing the post-experimental results of the deformation of the double-layer shells with the results of the PDV and numerical simulations, it can be found that the error of maximum deformation is less than 10%.
- (2)
- The vibration period of the outer cylindrical shell and the time for reflection of the stress wave in the outer shell given by the numerical simulation and PDV measurement are consistent.
- (3)
- When the gap between the double-layer cylinders is constant, the deformation range of the outer cylinder is ± 1R, which is significantly smaller than the single-layer cylinder with an increase in the thickness of the inner cylinder, while the deformation range of the inner cylinder, which is in the range ± 1.4R, is significantly greater than the outer cylinder.
- (4)
- When the thickness of the inner layer increases, the maximum deformation of the inner cylinder gradually decreases. It can be seen from the trend of the deformation of the inner shell that the inner thickness has increased to a certain value of which the limiting case is a single-layer cylinder.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
Symbol List | |
k0 | incident light vector; |
k | scattering light vector; |
v | particle velocity vector, m/s; |
ω0 | frequency of incident light, Hz; |
ω | frequency of scattered light, Hz; |
θ | phase; |
λ0 | laser wavelength in vacuum, nm; |
v(t) | velocity of object movement, m/s; |
Q | explosive yield, gTNT; |
L | length of double-layer steel cylinders, mm; |
R | internal radius of double-layer steel cylinders, mm; |
h1 | thickness of inner steel cylinder, mm; |
Δ | gap between inner steel cylinder and outer steel cylinder, mm; |
h2 | thickness of outer steel cylinder, mm; |
γ | adiabatic index; |
ρ0 | the ideal gas initial density, kg/m3; |
e0 | initial specific internal energy, kJ/kg; |
P0 | initial air pressure, kPa; |
specific volume; | |
ρ00 | initial density of explosion, kg/m3; |
A0 | parameter of explosion, GPa; |
B0 | parameter of explosion, GPa; |
R1 | parameter of explosion; |
R2 | parameter of explosion; |
* | parameter of explosion; |
A | steel shell yield strength at strain rate of 1 s−1, MPa; |
B | steel shell strain hardening coefficient, MPa; |
n | steel shell strain hardening index; |
C | steel shell strain rate correlation index; |
ε* | reference strain ratio; |
C0 | velocity that stress wave propagates in steel, m/s. |
ID | Internal Diameter |
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Number | L/mm | R/mm | h1/mm | Δ/mm | h2/mm |
---|---|---|---|---|---|
No. 1 | 600 | 50 | 4 | 4 | 7.5 |
No. 2 | 600 | 50 | 6 | 4 | 5.6 |
No. 3 | 600 | 50 | 8 | 4 | 3.8 |
Number | h1/mm | Δ/mm | h2/mm | Maximum Velocity of the Inner Shell (m/s) | Maximum Velocity of the Outer Shell (m/s) |
---|---|---|---|---|---|
No. 1 | 4 | 4 | 7.5 | 201.4 | 82.3 |
No. 2 | 6 | 4 | 5.6 | 151.2 | 85.6 |
No. 3 | 8 | 4 | 3.8 | 100.6 | 62.2 |
Johnson-Cook Model | A/MPa | B/ MPa | n | c | Reference Strain Rate/s−1 |
370 | 700 | 0.4 | 0.055 | 1.0 | |
JWL equation of state | A0/GPa | B0/GPa | ω* | R1 | R2 |
374 | 3.74 | 0.35 | 4.15 | 0.9 |
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Qin, X.; Yang, J.; Guan, J.; Liao, Z.; Ma, Y.; Zhang, D. Structural Response of Double-Layer Steel Cylinders under Inside-Explosion Loading. Appl. Sci. 2023, 13, 709. https://doi.org/10.3390/app13020709
Qin X, Yang J, Guan J, Liao Z, Ma Y, Zhang D. Structural Response of Double-Layer Steel Cylinders under Inside-Explosion Loading. Applied Sciences. 2023; 13(2):709. https://doi.org/10.3390/app13020709
Chicago/Turabian StyleQin, Xuejun, Jun Yang, Junyi Guan, Zhen Liao, Yanjun Ma, and Dezhi Zhang. 2023. "Structural Response of Double-Layer Steel Cylinders under Inside-Explosion Loading" Applied Sciences 13, no. 2: 709. https://doi.org/10.3390/app13020709
APA StyleQin, X., Yang, J., Guan, J., Liao, Z., Ma, Y., & Zhang, D. (2023). Structural Response of Double-Layer Steel Cylinders under Inside-Explosion Loading. Applied Sciences, 13(2), 709. https://doi.org/10.3390/app13020709