| Literature DB >> 31731723 |
Yongqing Li1, Changhai Chen2, Hailiang Hou1, Yuansheng Cheng2, Haopeng Gao3, Pan Zhang2, Ting Liu2.
Abstract
Polyurea has attracted considerable attention owing to its potential applications in protective fields to improve the resistant performance of structures subjected to damage loads resulting from intentional or accidental explosions. However, different spraying strategies ofEntities:
Keywords: air blast; dynamic response; polyurea; spraying strategy; steel
Year: 2019 PMID: 31731723 PMCID: PMC6918193 DOI: 10.3390/polym11111888
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Schematic of the synthesis and chemical molecular structure of polyurea via the co-polymerization reaction of an isocyanate component and a synthetic resin blend.
Figure 2FT-IR spectroscopy of LINE-X 350 polyurea with typical peaks.
Quasi-static material parameters of 304 stainless steel and LINE XS-350 polyurea.
| Property | 304 Stainless Steel | LINE XS-350 Polyurea |
|---|---|---|
| Density, | 7.90 | 1.08 |
| Elastic modulus, | 2.05 × 105 | 201 |
| Quasi-static yield stress, | 310 | — |
| Shore hardness (D) | — | 60 ± 1 |
| Tensile strength, | 736 | 22.39 |
| Failure strain, | 0.41 | 1.63 |
Figure 3Quasi-static true stress–strain curves of (a) 304 stainless steel and (b) LINE XS-350 specimens.
Schematic design of the three types of polyurea-coated steel plates with different spraying strategies. Legend: SPW, polyurea which is sprayed on the whole area of the back side of the steel plate; SPP, polyurea which is sprayed onto a partial area (central area) of the back side of the steel plate; SPC, polyurea in which the polyurea backing layer is in contact with the rear surface of the steel plate.
| Specimen | Geometry | Spraying Position | Spraying Area | Interface Condition |
|---|---|---|---|---|
| SPW |
| Back face | Whole area | Direct spraying |
| SPP |
| Back face | Partial area | Direct spraying |
| SPC |
| Back face | Whole area | In contact |
■ Steel ■ Polyurea.
Figure 4Polyurea spraying process using the spray polyurea elastomer (SPUA) technique.
Figure 5(a) Top view and (b) side view of a schematic of the clamping and supporting structures; (c) a photograph of the test set-up just prior to detonation; (d) picture of the cylindrical TNT charge.
Detailed information regarding the experimental results for polyurea-coated steel plates in the present study.
| Case No. | Information about Tested Plates | Explosive | Experimental Results | |||||
|---|---|---|---|---|---|---|---|---|
|
| ||||||||
| SPW-1 | 1.38 | 3.1 | 14.2 | 2.72 | 50 | 55 | Failed | Petalling |
| SPW-2 | 1.38 | 3.1 | 14.2 | 2.72 | 100 | 55 | 37.9 | I |
| SPW-3 | 1.38 | 3.1 | 14.2 | 2.72 | 150 | 55 | 34.5 | I |
| SPW-4 | 1.80 | 3.1 | 17.5 | 3.36 | 50 | 55 | Failed | IIc |
| SPW-5 | 1.80 | 3.1 | 17.5 | 3.36 | 100 | 55 | 43.0 | I |
| SPW-6 | 0.90 | 6.6 | 14.2 | 2.72 | 100 | 55 | 46.8 | I |
| SPP-1 | 1.38 | 3.1 | 14.2 | 2.38 | 50 | 55 | Failed | Petalling |
| SPP-2 | 1.38 | 3.1 | 14.2 | 2.38 | 100 | 55 | Failed | IIc |
| SPP-3 | 1.38 | 3.1 | 14.2 | 2.38 | 150 | 55 | 47.5 | I |
| SPC-1 | 1.38 | 3.1 | 14.2 | 2.72 | 50 | 55 | Failed | Petalling |
| SPC-2 | 1.38 | 3.1 | 14.2 | 2.72 | 100 | 55 | 42.4 | I |
Detailed information of the experimental results for bare steel plates [47].
| Case No. | Information about Tested Plates | Explosive | Experimental Results | |||||
|---|---|---|---|---|---|---|---|---|
|
| ||||||||
| BS-1 | 1.80 | - | 14.2 | 2.72 | 50 | 55 | Failed | Petalling |
| BS-2 | 1.80 | - | 14.2 | 2.72 | 100 | 55 | 55.0 a | II *c |
| BS-3 | 1.80 | - | 14.2 | 2.72 | 150 | 55 | 39.5 | I |
a: maximum deflection of bulging region ignoring failure.
Figure 6Photographs of the damaged plates (a) SPW-1, (b) SPP-1, (c) SPC-1, and (d) BS-1 (from Ref. [47]) tested at a stand-off distance of 50 mm.
Figure 7Photographs of the damaged plates (a) SPW-2, (b) SPP-2, (c) SPC-2, and (d) BS-2 (from Ref. [47]) tested at a stand-off distance of 100 mm.
Figure 8Photographs of the damaged plates (a) SPW-3, (b) SPP-3, and (c) BS-3 (from Ref. [47]) tested at a stand-off distance of 150 mm.
Measurements of crevasses/holes of front steel layers in polyurea-coated steel plates and a bare steel plate, BS-1 (from Ref. [47]).
| Case No. |
| Petal Numbers | |||
|---|---|---|---|---|---|
| SPW-1 | 1.38 | 50 | Petalling | 7 | 200.9 |
| SPW-4 | 1.80 | 50 | IIc | / | 33.4 |
| SPP-1 | 1.38 | 50 | Petalling | 7 | 206.6 |
| SPP-2 | 1.38 | 100 | IIc | / | 47.2 |
| SPC-1 | 1.38 | 50 | Petalling | 4 | 102.8 |
| BS-1 | 1.80 | 50 | Petalling | 7 | 165.9 |
Measurements of spalling on the polyurea backing layers in the present experiments.
| Case No. | Layer Thickness | Charge Information | Failure Mode | Area of Spalling | |||
|---|---|---|---|---|---|---|---|
|
| |||||||
| SPW-2 | 1.38 | 3.1 | 100 | 55 | I | 313.1 | 0.36 |
| SPW-3 | 1.38 | 3.1 | 150 | 55 | I | 268.4 | 0.31 |
| SPW-4 | 1.80 | 3.1 | 50 | 55 | IIc | 412.2 | 0.48 |
| SPW-5 | 1.80 | 3.1 | 100 | 55 | I | 238.6 | 0.28 |
| SPW-6 | 0.90 | 6.6 | 100 | 55 | I | 423.3 | 0.49 |
| SPP-2 | 1.38 | 3.1 | 100 | 55 | IIc | 125.1 | 0.14 |
Figure 9Influence of spraying strategy on the performance of polyurea-coated steel plates under air blasts.
Figure 10Influence of spraying thickness on the maximum permanent deflection (δs) of the front steel layers in different polyurea-coated steel plates at a stand-off distance of 100 mm.
Figure 11Schematic of stress wave propagation and complex stress states in polyurea backing layers during blast-resistant procedure for SPW, SPP, and SPC plates.
Figure 12Influence of spraying strategy on the energy absorption of polyurea-coated steel plates.