Author Contributions
Conceptualization, H.L. (Hong Lin) and C.H.; methodology, H.L. (Hong Lin) and C.H.; software, H.L. (Hong Lin), C.H. and L.Y.; validation, H.L. (Haochen Luan), P.H., H.X. and S.Z.; investigation, L.Y. and H.L. (Hong Lin); writing—original draft preparation, H.L. (Hong Lin) and C.H.; writing—review and editing, L.Y. and L.Z.; supervision, H.L. (Hong Lin); project administration, H.L. (Hong Lin) and L.Y.; funding acquisition, H.L. (Hong Lin). All authors have read and agreed to the published version of the manuscript.
Figure 1.
Cross-section of different unit cell. (a) Arrow; (b) Concave hexagon; and (c) Concave arc.
Figure 1.
Cross-section of different unit cell. (a) Arrow; (b) Concave hexagon; and (c) Concave arc.
Figure 2.
Dimensions of the structure.
Figure 2.
Dimensions of the structure.
Figure 3.
Sandwich blast wall dimensions.
Figure 3.
Sandwich blast wall dimensions.
Figure 4.
The FE model of sandwich panel. (a) configuration I, Arrow-shape; (b) configuration II, Concave hexagon-shaped; and (c) configuration III, Concave arc-shaped.
Figure 4.
The FE model of sandwich panel. (a) configuration I, Arrow-shape; (b) configuration II, Concave hexagon-shaped; and (c) configuration III, Concave arc-shaped.
Figure 5.
Diagram of TNT position and boundary conditions.
Figure 5.
Diagram of TNT position and boundary conditions.
Figure 6.
(
a) Diagram of the validated test of Neuberger [
44]. (
b) Simulated deformation of [
45].
Figure 6.
(
a) Diagram of the validated test of Neuberger [
44]. (
b) Simulated deformation of [
45].
Figure 7.
Verification of this study. (a) FE model; and (b) simulated deformation.
Figure 7.
Verification of this study. (a) FE model; and (b) simulated deformation.
Figure 8.
The central displacement time–history curve of circular plate.
Figure 8.
The central displacement time–history curve of circular plate.
Figure 9.
Deformation of sandwich panel with different honeycomb core. (a) arrow honeycomb structure; (b) concave hexagonal honeycomb structure; and (c) concave arc-shaped honeycomb structure.
Figure 9.
Deformation of sandwich panel with different honeycomb core. (a) arrow honeycomb structure; (b) concave hexagonal honeycomb structure; and (c) concave arc-shaped honeycomb structure.
Figure 10.
Anti-blast indices of three honeycomb structures.
Figure 10.
Anti-blast indices of three honeycomb structures.
Figure 11.
Deflection histories of the concave arc honeycomb.
Figure 11.
Deflection histories of the concave arc honeycomb.
Figure 12.
Illustration of the points along the X direction of the concave arc honeycomb.
Figure 12.
Illustration of the points along the X direction of the concave arc honeycomb.
Figure 13.
Displacement of the points along the X direction of the concave arc honeycomb.
Figure 13.
Displacement of the points along the X direction of the concave arc honeycomb.
Figure 14.
Concave arc honeycomb with different concave angles.
Figure 14.
Concave arc honeycomb with different concave angles.
Figure 15.
Deformation of different concave angles. (a) 15°; (b) 25°; (c) 35°; (d) 45°; (e) 55°; (f) 65°; (g) 75°.
Figure 15.
Deformation of different concave angles. (a) 15°; (b) 25°; (c) 35°; (d) 45°; (e) 55°; (f) 65°; (g) 75°.
Figure 16.
The curves of anti-blast indices of different concave angle. (a) δmax-θ curve; (b) SEA-θ curve; and (c) P-θ curve.
Figure 16.
The curves of anti-blast indices of different concave angle. (a) δmax-θ curve; (b) SEA-θ curve; and (c) P-θ curve.
Figure 17.
Concave arc honeycomb with different aspect ratio (l/h).
Figure 17.
Concave arc honeycomb with different aspect ratio (l/h).
Figure 18.
Deformation of different aspect ratio (l/h). (a) 1.0; (b) 1.1; (c) 1.2; (d) 1.3; (e) 1.4; and (f) 1.5.
Figure 18.
Deformation of different aspect ratio (l/h). (a) 1.0; (b) 1.1; (c) 1.2; (d) 1.3; (e) 1.4; and (f) 1.5.
Figure 19.
The curve of anti-blast index and different aspect ratio (l/h).
Figure 19.
The curve of anti-blast index and different aspect ratio (l/h).
Figure 20.
Section of sandwich panel with gradient honeycomb. (a) Positive gradient; and (b) Negative gradient.
Figure 20.
Section of sandwich panel with gradient honeycomb. (a) Positive gradient; and (b) Negative gradient.
Figure 21.
Deformation of different gradient. (a) Positive gradient; and (b) Negative gradient.
Figure 21.
Deformation of different gradient. (a) Positive gradient; and (b) Negative gradient.
Figure 22.
Deflection histories of centre points of face plates and honeycomb core. (a) Positive gradient; and (b) Negative gradient.
Figure 22.
Deflection histories of centre points of face plates and honeycomb core. (a) Positive gradient; and (b) Negative gradient.
Figure 23.
Anti-blast index diagram of two gradients.
Figure 23.
Anti-blast index diagram of two gradients.
Figure 24.
Diagram of the blast walls on offshore platform. (a) overall view; (b) top view; and (c) front view.
Figure 24.
Diagram of the blast walls on offshore platform. (a) overall view; (b) top view; and (c) front view.
Figure 25.
Dimensions of the blast wall.
Figure 25.
Dimensions of the blast wall.
Figure 26.
Configurations of blast wall with different curvature (m−1).
Figure 26.
Configurations of blast wall with different curvature (m−1).
Figure 27.
Diagram of TNT position. (a) vertical view; and (b) left view.
Figure 27.
Diagram of TNT position. (a) vertical view; and (b) left view.
Figure 28.
The curve of anti-blast index and different curvature.
Figure 28.
The curve of anti-blast index and different curvature.
Figure 29.
Deformation of blast wall with curvature of 1/20. (a) OBW-1; and (b) OBW-2.
Figure 29.
Deformation of blast wall with curvature of 1/20. (a) OBW-1; and (b) OBW-2.
Figure 30.
Different boundary conditions. (a) Two sides fixed; (b) Three sides fixed; (c) Four sides fixed.
Figure 30.
Different boundary conditions. (a) Two sides fixed; (b) Three sides fixed; (c) Four sides fixed.
Figure 31.
Deformation of blast wall with different boundary conditions. (a) Two sides fixed; (b) Three sides fixed; and (c) Four sides fixed.
Figure 31.
Deformation of blast wall with different boundary conditions. (a) Two sides fixed; (b) Three sides fixed; and (c) Four sides fixed.
Table 1.
Dimensions of each unit cell of the honeycomb core.
Table 1.
Dimensions of each unit cell of the honeycomb core.
Type | h (m) | l (m) | θ1 (°) | θ2 (°) | N1 | N2 | t (m) | a (m) |
---|
Arrow | 0.05455 | 0.06298 | 30 | 60 | 13 | 5 | 0.00069 | / |
Concave hexagonal | 0.04 | 0.05 | 45 | 10 | 5 | 0.00075 | 0.07333 |
Concave arc | 0.04 | 0.05 | 45 | 10 | 5 | 0.00092 | 0.04990 |
Table 2.
Material attributes of 316 stainless steel and aluminum A5052.
Table 2.
Material attributes of 316 stainless steel and aluminum A5052.
Material Attributes | 316 Stainless Steel | Aluminum A5052 |
---|
density (ρ) (kg/m3) | 7850 | 2700 |
elastic modulus (E) (GPa) | 210 | 62 |
Poisson’s ratio (ν) | 0.3 | 0.3 |
yield stress(σ0) (MPa) | 353.7 | 225 |
tangent modulus(Etan) (GPa) | 3.6 | 50 |
Strain rate parameter (P) | 5.2 | 4 |
Strain rate parameter (C) | 1704.5 | 6000 |
Table 3.
Comparison of peak overpressure.
Table 3.
Comparison of peak overpressure.
| CONWEP Method | Empirical Formula | Error |
---|
Peak overpressure | 279.419 MPa | 278.604 MPa | 0.29% |
Table 4.
Material properties of simplified Johnson–Cook constitutive model.
Table 4.
Material properties of simplified Johnson–Cook constitutive model.
Properties | ρ (kg/m3) | E (GPa) | ν | A (MPa) | B (MPa) | n | c |
---|
Value | 7830 | 210 | 0.28 | 950 | 560 | 0.26 | 0.014 |
Table 5.
Comparison of center deflection results.
Table 5.
Comparison of center deflection results.
| Results of Ref. [44] | Results of Ref. [45] | Results of This Study |
---|
The center deflection | 54.00 mm | 57.32 mm | 53.75 mm |
Error | \ | 6.15% | 0.46% |
Table 6.
Anti-blast indices of the three configurations.
Table 6.
Anti-blast indices of the three configurations.
Configuration | δmax (m) | SEA (J/kg) | P (J/(kg·m)) |
---|
I (Arrow) | 0.1272280 | 1363.178882 | 10,714.45658 |
II (Concave hexagon) | 0.1346310 | 1516.538976 | 11,264.41144 |
III (Concave arc) | 0.0575835 | 1138.625587 | 19,773.46961 |
Table 7.
The indices of two gradients.
Table 7.
The indices of two gradients.
Type | δmax (m) | SEA (J/kg) | P(J/(kg·m)) |
---|
Positive gradient | 0.0532216 | 1149.959731 | 21,607.01164 |
Negative gradient | 0.0430880 | 768.0236468 | 17,824.53692 |
Table 8.
The indices of different boundary conditions.
Table 8.
The indices of different boundary conditions.
Boundary | δmax (m) | TEA (J) |
---|
Two sides fixed | 0.9799 | 1310 |
Three sides fixed | 1.115 | 1280 |
Four sides fixed | 0.3915 | 1250 |