Author Contributions
Conceptualization, C.G. and L.Q.; methodology, J.G.; software, J.G.; validation, J.G. and L.Q.; formal analysis, C.G.; investigation, J.G.; resources, L.Q.; data curation, J.Y.; writing—original draft preparation, J.G.; writing—review and editing, J.G.; visualization, J.Y.; supervision, C.G. and L.Q.; project administration, C.G. and L.Q.; funding acquisition, L.Q. All authors have read and agreed to the published version of the manuscript.
Figure 1.
Structure schematic of the three-layer BHP structure.
Figure 1.
Structure schematic of the three-layer BHP structure.
Figure 2.
SWCNTs-A solution samples after 48 h of precipitation.
Figure 2.
SWCNTs-A solution samples after 48 h of precipitation.
Figure 3.
The tensile test bench and data acquisition program.
Figure 3.
The tensile test bench and data acquisition program.
Figure 4.
Force schematic diagram of the BHP.
Figure 4.
Force schematic diagram of the BHP.
Figure 5.
The curve on the effect of the friction term on the axial velocity of the BHP.
Figure 5.
The curve on the effect of the friction term on the axial velocity of the BHP.
Figure 6.
Modal test. (a) Hammer used in the modal test. (b) The tested pipeline.
Figure 6.
Modal test. (a) Hammer used in the modal test. (b) The tested pipeline.
Figure 7.
The frequency response curve for the BHP.
Figure 7.
The frequency response curve for the BHP.
Figure 8.
Meshing in the BHP model. (a) Solid region sweep meshing method; (b) fluid region meshing method.
Figure 8.
Meshing in the BHP model. (a) Solid region sweep meshing method; (b) fluid region meshing method.
Figure 9.
Flow pulsation curve for the bionic hydraulic pipeline inlet.
Figure 9.
Flow pulsation curve for the bionic hydraulic pipeline inlet.
Figure 10.
Bionic hydraulic pipeline physical diagram. (a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 10.
Bionic hydraulic pipeline physical diagram. (a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 11.
Stress–strain curve for the RTV-SWCNTs composites with different SWCNTs content. The content of the SWCNTs is: (a) 0 vol%; (b) 0.25 vol%; (c) 0.5 vol%; (d) 1 vol%; (e) 2 vol%; (f) 4 vol%.
Figure 11.
Stress–strain curve for the RTV-SWCNTs composites with different SWCNTs content. The content of the SWCNTs is: (a) 0 vol%; (b) 0.25 vol%; (c) 0.5 vol%; (d) 1 vol%; (e) 2 vol%; (f) 4 vol%.
Figure 12.
The fitting curve for the tensile experimental data on the composites with different SWCNTs content. The content of the SWCNTs is: (a) 0 vol%; (b) 0.25 vol%; (c) 0.5 vol%; (d) 1 vol%; (e) 2 vol%; (f) 4 vol%.
Figure 12.
The fitting curve for the tensile experimental data on the composites with different SWCNTs content. The content of the SWCNTs is: (a) 0 vol%; (b) 0.25 vol%; (c) 0.5 vol%; (d) 1 vol%; (e) 2 vol%; (f) 4 vol%.
Figure 13.
The fracture morphology for the specimens with different SWCNTs content under SEM. The content of the SWCNTs is: (a) 0 vol%; (b) 0.25 vol%; (c) 0.5 vol%; (d) 1 vol%; (e) 2 vol%; (f) 4 vol%.
Figure 13.
The fracture morphology for the specimens with different SWCNTs content under SEM. The content of the SWCNTs is: (a) 0 vol%; (b) 0.25 vol%; (c) 0.5 vol%; (d) 1 vol%; (e) 2 vol%; (f) 4 vol%.
Figure 14.
Radial acceleration at point P with different thicknesses of the elastic layer. (a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 14.
Radial acceleration at point P with different thicknesses of the elastic layer. (a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 15.
Radial acceleration at point P with different materials. The thickness of the elastic layer is (a) 5 mm; (b) 10 mm; (c) 20 mm; (d) 25 mm.
Figure 15.
Radial acceleration at point P with different materials. The thickness of the elastic layer is (a) 5 mm; (b) 10 mm; (c) 20 mm; (d) 25 mm.
Figure 16.
Radial acceleration at point P with different lengths of the elastic layer. (a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 16.
Radial acceleration at point P with different lengths of the elastic layer. (a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 17.
Effect of thickness of the elastic layer on flow pulsation. (a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 17.
Effect of thickness of the elastic layer on flow pulsation. (a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 18.
Effect of different elastic layer materials with the same thickness on flow pulsation. The thickness of the elastic layer is: (a) 5 mm; (b) 10 mm; (c) 15 mm; (d) 20 mm; (e) 25 mm.
Figure 18.
Effect of different elastic layer materials with the same thickness on flow pulsation. The thickness of the elastic layer is: (a) 5 mm; (b) 10 mm; (c) 15 mm; (d) 20 mm; (e) 25 mm.
Figure 19.
Flow pulsation curve for the BHP outlet. (a) RTV as the elastic layer; (b) RTV-SWCNTs composite as the elastic layer.
Figure 19.
Flow pulsation curve for the BHP outlet. (a) RTV as the elastic layer; (b) RTV-SWCNTs composite as the elastic layer.
Figure 20.
Effect of elastic layer thickness on the radial acceleration at point P.(a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 20.
Effect of elastic layer thickness on the radial acceleration at point P.(a) BHP with RTV as the elastic layer; (b) BHP with RTV-SWCNTs composite materials as the elastic layer.
Figure 21.
Effect of the length of the elastic layer on the radial acceleration at point P. (a) RTV as the elastic layer; (b) RTV-SWCNTs composite materials as the elastic layer.
Figure 21.
Effect of the length of the elastic layer on the radial acceleration at point P. (a) RTV as the elastic layer; (b) RTV-SWCNTs composite materials as the elastic layer.
Table 1.
Technical parameters of the scanning electron microscopy.
Table 1.
Technical parameters of the scanning electron microscopy.
Name | Electron Beam Acceleration Voltage (kV) | Amplification (Times) | Resolution (nm) | Maximum Sample Size (mm) |
---|
value | 0.5~30 | 30~800,000 | 1 (15 kV) | Φ100 |
Table 2.
Weighting coefficient mi.
Table 2.
Weighting coefficient mi.
m1 | m2 | m3 | m4 | m5 |
---|
−26.3744 | −70.80493 | −135 | −218.9216 | −322.5544 |
Table 3.
Weighting coefficient ni.
Table 3.
Weighting coefficient ni.
n1 | n2 | n3 | n4 | n5 | n6 |
---|
0.2821 | −1.25 | 1.0579 | 0.9375 | 0.3967 | 0.3516 |
Table 4.
Comparison of the modal analysis simulation and experimental data.
Table 4.
Comparison of the modal analysis simulation and experimental data.
| Simulation (Hz) | Experimental (Hz) | Error (%) |
---|
First-order mode | 78 | 81.26 | 4.01 |
Second-order mode | 331 | 333.68 | 0.8 |
Table 5.
The structural parameters for the BHP specimens.
Table 5.
The structural parameters for the BHP specimens.
No. | Length (mm) | Thickness of Elastic Layer (mm) | Thickness of Outer Layer (mm) | Inside Diameter (mm) |
---|
1 | 130 | 5 | 3 | 10 |
2 | 130 | 10 | 3 | 10 |
3 | 130 | 15 | 3 | 10 |
4 | 130 | 20 | 3 | 10 |
5 | 130 | 25 | 3 | 10 |
6 | 180 | 5 | 3 | 10 |
7 | 230 | 5 | 3 | 10 |
8 | 280 | 5 | 3 | 10 |
9 | 330 | 5 | 3 | 10 |
Table 6.
The suppressive effect of the different thicknesses of the elastic layer on pipeline vibration.
Table 6.
The suppressive effect of the different thicknesses of the elastic layer on pipeline vibration.
Thickness (mm) | RTV | RTV-SWCNTs Composite Materials | Vibration Reduction (%) |
---|
The Standard Deviation for the Vibration Acceleration |
---|
5 | 7.58 × 10–10 | 5.89 × 10–10 | 22.3 |
10 | 6.73 × 10–10 | 5.23 × 10–10 | 22.3 |
20 | 5.775 × 10–10 | 4.297 × 10–10 | 25.6 |
25 | 4.82 × 10–10 | 3.375 × 10–10 | 29.98 |
Table 7.
The suppressive effect of the different lengths in the BHP on the vibration of the pipeline wall.
Table 7.
The suppressive effect of the different lengths in the BHP on the vibration of the pipeline wall.
Length (mm) | RTV | RTV-SWCNTs Composite Materials | Vibration Reduction (%) |
---|
The Standard Deviation for the Vibration Acceleration |
---|
100 | 1.956 × 10−6 | 1.675 × 10−6 | 14.4 |
150 | 1.736 × 10−6 | 1.435 × 10−6 | 17.3 |
250 | 1.542 × 10−6 | 1.237 × 10−6 | 19.8 |
300 | 1.373 × 10−6 | 1.176 × 10−6 | 14.3 |
Table 8.
The absorption effect of the flow pulsation for the BHP with different thicknesses of the elastic layer.
Table 8.
The absorption effect of the flow pulsation for the BHP with different thicknesses of the elastic layer.
No. | Thickness (mm) | RTV | RTV-SWCNTs Composite Materials | Pulsation Reduction (%) |
---|
The Standard Deviation for the Flow Pulsation |
---|
1 | 5 | 0.319 | 0.248 | 22.3 |
2 | 10 | 0.291 | 0.215 | 26.1 |
3 | 15 | 0.253 | 0.177 | 30.04 |
4 | 20 | 0.1802 | 0.128 | 28.97 |
5 | 25 | 0.1197 | 0.0872 | 27.15 |
Table 9.
The absorption effect of flow pulsation in the BHPs with different lengths of pipeline.
Table 9.
The absorption effect of flow pulsation in the BHPs with different lengths of pipeline.
No. | Length (mm) | RTV | RTV-SWCNTs Composite Materials | Pulsation Reduction (%) |
---|
The Standard Deviation for Flow Pulsation |
---|
1 | 130 | 0.319 | 0.248 | 22.3 |
6 | 180 | 0.301 | 0.216 | 28.2 |
7 | 230 | 0.2702 | 0.1779 | 34.16 |
8 | 280 | 0.1824 | 0.1296 | 28.9 |
9 | 330 | 0.128 | 0.0913 | 28.7 |
Table 10.
Suppression effect in BHPs with different thicknesses of the elastic layer on pipe vibration.
Table 10.
Suppression effect in BHPs with different thicknesses of the elastic layer on pipe vibration.
No. | Thickness (mm) | RTV | RTV-SWCNTs Composite Materials | Vibration Reduction(%) |
---|
The Standard Deviation for Radial Acceleration |
---|
1 | 5 | 0.179 | 0.162 | 9.5 |
2 | 10 | 0.143 | 0.106 | 25.9 |
3 | 15 | 0.1202 | 0.0758 | 36.9 |
4 | 20 | 0.098 | 0.0689 | 29.7 |
5 | 25 | 0.0892 | 0.0689 | 22.8 |
Table 11.
Suppression effect in the BHPs with different lengths of pipeline on pipe vibration.
Table 11.
Suppression effect in the BHPs with different lengths of pipeline on pipe vibration.
No. | Length (mm) | RTV | RTV-SWCNTs Composite Materials | Vibration Reduction (%) |
---|
The Standard Deviation for Radial Acceleration |
---|
1 | 130 | 0.179 | 0.174 | 2.8 |
6 | 180 | 0.138 | 0.132 | 4.3 |
7 | 230 | 0.1202 | 0.102 | 15.14 |
8 | 280 | 0.108 | 0.0615 | 43.1 |
9 | 330 | 0.0712 | 0.03697 | 48.1 |