| Literature DB >> 32942690 |
Tao Yang1, Ferina Saati2, Jean-Philippe Groby3, Xiaoman Xiong4, Michal Petrů1, Rajesh Mishra4, Jiří Militký4, Steffen Marburg2.
Abstract
Nowadays, fibrous polyester materials are becoming one of the most important alternatives for controlling reverberation time by absorbing unwanted sound energy in the automobile and construction fields. Thus, it is worthy and meaningful to characterize their acoustic behavior. To do so, non-acoustic parameters, such as tortuosity, viscous and thermal characteristic lengths and thermal permeability, must be determined. Representative panels of polyester fibrous material manufactured by perpendicular laying technology are thus tested via the Bayesian reconstruction procedure. The estimated porosity and airflow resistivity are found in good agreement with those tested via direct measurements. In addition, the homogeneity of polyester fibrous panels was characterized by investigating the mean relative differences of inferred non-acoustic parameters from the direct and reverse orientation measurements. Some parameters, such as tortuosity, porosity and airflow resistivity, exhibit very low relative differences. It is found that most of the panels can be assumed homogeneous along with the panel thickness, the slight inhomogeneity mostly affecting the thermal characteristic length.Entities:
Keywords: Bayesian reconstruction; homogeneity; polyester fibrous materials; porous materials
Year: 2020 PMID: 32942690 PMCID: PMC7569921 DOI: 10.3390/polym12092098
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Cross-sectional images of fibers. (a) Staple fiber; (b) hollow fiber; (c) bicomponent fiber [9].
Figure 2Sketch of perpendicular laying technology [17].
Figure 3Example of manufactured polyester fibrous panel. Images are taken from different directions: (a,b) top view, and (c,d) side view.
Characteristics of polyester materials.
| Samples | Porosity (%) | Bulk Density (kg/m3) | Thickness (mm) | Airflow Resistivity |
|---|---|---|---|---|
| Sample 1 | 98.52 | 16.93 | 27.48 | 4108 ± 199 |
| Sample 2 | 98.29 | 19.49 | 23.87 | 5357 ± 217 |
| Sample 3 | 98.03 | 22.49 | 20.69 | 7029 ± 356 |
| Sample 4 | 97.94 | 23.54 | 20.32 | 7498 ± 333 |
| Sample 5 | 97.86 | 24.45 | 20.76 | 7319 ± 243 |
| Sample 6 | 97.85 | 24.54 | 19.49 | 10,978 ± 329 |
| Sample 7 | 97.66 | 26.71 | 19.00 | 7530 ± 408 |
| Sample 8 | 97.59 | 27.54 | 18.43 | 9829 ± 376 |
| Sample 9 | 97.58 | 27.61 | 16.85 | 10,181 ± 259 |
| Sample 10 | 97.29 | 30.94 | 15.46 | 13,397 ± 329 |
| Sample 11 | 96.94 | 34.95 | 13.31 | 12,868 ± 199 |
| Sample 12 | 96.89 | 35.56 | 14.27 | 14,989 ± 285 |
| Sample 13 | 96.86 | 35.87 | 14.15 | 15,414 ± 167 |
| Sample 14 | 96.59 | 38.98 | 12.27 | 19,751 ± 442 |
| Sample 15 | 96.09 | 44.60 | 10.43 | 20,474 ± 687 |
| Sample 16 | 96.01 | 45.56 | 11.14 | 19,733 ± 688 |
Figure 4Four-microphone impedance tube configurations.
Figure 5The surface texture of polyester fibrous panel sample: (a,c) front side, and (b,d) back side.
Inferred non-acoustic parameters of polyester panels.
| Samples | Orientations |
| |||||
|---|---|---|---|---|---|---|---|
| Sample 1 | Direct | 99.8 (0.19) | 1(0.0017) | 184 (3.2) | 354(30.8) | 5225 | 6.98 (0.53) |
| Reverse | 99.8 (0.18) | 1(0.0017) | 187 (4.0) | 414(32.0) | 5202 | 6.95 (0.50) | |
| Sample 2 | Direct | 99.0 (0.86) | 1 (0.0026) | 146 (5.1) | 333(71.0) | 6527 | 4.56 (0.36) |
| Reverse | 99.8 (0.19) | 1 (0.0018) | 153 (3.3) | 239 (16.9) | 6638 | 4.81 (0.28) | |
| Sample 3 | Direct | 99.6 (0.30) | 1 (0.0027) | 123 (2.3) | 241 (16.7) | 8052 | 4.02 (0.24) |
| Reverse | 99.6 (0.35) | 1(0.0029) | 127 (2.6) | 231 (15.6) | 8129 | 3.83 (0.21) | |
| Sample 4 | Direct | 99.7 (0.27) | 1 (0.0027) | 110 (2.0) | 649 (230.0) | 9147 | 3.51 (0.15) |
| Reverse | 99.7 (0.18) | 1 (0.0016) | 131 (2.2) | 146 (7.7) | 9538 | 2.98 (0.18) | |
| Sample 5 | Direct | 99.8 (0.18) | 1 (0.0016) | 118 (1.8) | 211 (13.7) | 9650 | 4.27 (0.30) |
| Reverse | 99.8 (0.17) | 1(0.0012) | 114 (1.5) | 227 (12.2) | 9641 | 4.64 (0.33) | |
| Sample 6 | Direct | 98.9 (0.54) | 1 (0.0035) | 91 (1.8) | 1025 (325.0) | 10,754 | 4.07 (0.24) |
| Reverse | 100 (0.03) | 1 (0.0012) | 124 (2.0) | 125 (2.2) | 11,576 | 3.41 (0.30) | |
| Sample 7 | Direct | 99.8 (0.13) | 1 (0.0011) | 105 (1.6) | 184 (13.5) | 11,313 | 3.68 (0.18) |
| Reverse | 99.8 (0.14) | 1 (0.0014) | 103 (1.4) | 206 (12.9) | 11,213 | 3.77 (0.23) | |
| Sample 8 | Direct | 99.8 (0.18) | 1 (0.0012) | 98.7 (1.5) | 219 (17.4) | 12,283 | 3.97 (0.19) |
| Reverse | 99.8 (0.15) | 1 (0.0013) | 101 (1.3) | 204 (16.3) | 12,259 | 4.07 (0.35) | |
| Sample 9 | Direct | 97.0 (0.95) | 1 (0.0024) | 103 (3.4) | 276 (44.4) | 11,434 | 4.10 (0.31) |
| Reverse | 99.8 (0.25) | 1 (0.0022) | 107 (1.8) | 214 (15.3) | 11,491 | 4.00 (0.21) | |
| Sample 10 | Direct | 99.7 (0.24) | 1 (0.0020) | 76 (1.0) | 259 (28.9) | 14,528 | 3.13 (0.17) |
| Reverse | 99.8 (0.12) | 1 (0.0011) | 94 (1.4) | 104 (4.0) | 14,935 | 2.19 (0.14) | |
| Sample 11 | Direct | 99.7 (0.23) | 1 (0.0018) | 78 (0.9) | 330 (38.3) | 13,613 | 3.49 (0.18) |
| Reverse | 99.8 (0.18) | 1 (0.0012) | 83 (1.0) | 180 (8.9) | 13,763 | 3.18 (0.15) | |
| Sample 12 | Direct | 99.8 (0.13) | 1 (0.0013) | 76 (0.9) | 383 (34) | 14,535 | 4.03 (0.19) |
| Reverse | 99.8 (0.14) | 1 (0.0018) | 87 (1.3) | 159 (9.6) | 15,004 | 3.58 (0.20) | |
| Sample 13 | Direct | 99.8 (0.24) | 1 (0.0011) | 70 (0.9) | 398 (45) | 16,167 | 3.51 (0.14) |
| Reverse | 99.8 (0.15) | 1 (0.0020) | 79 (1.0) | 134 (7.6) | 16,567 | 2.95 (1.77) | |
| Sample 14 | Direct | 99.8 (0.16) | 1 (0.0017) | 68 (1.0) | 246 (19.4) | 17,734 | 3.24 (0.22) |
| Reverse | 99.9 (0.08) | 1 (0.0014) | 85 (1.4) | 86 (1.6) | 18,205 | 1.89 (0.95) | |
| Sample 15 | Direct | 98.3 (0.76) | 1 (0.0041) | 53 (1.1) | 206 (21.9) | 23,241 | 2.67 (0.18) |
| Reverse | 99.8 (0.16) | 1 (0.0016) | 56 (0.81) | 130 (6.9) | 23,432 | 2.60 (0.14) | |
| Sample 16 | Direct | 99.8 (0.14) | 1 (0.0020) | 66 (0.80) | 143 (8.0) | 20,712 | 2.43 (0.12) |
| Reverse | 99.8 (0.14) | 1(0.0017) | 72 (1.2) | 86 (4.1) | 20,619 | 1.81 (0.09) |
Figure 6Inferred non-acoustic parameters from direct and reverse orientations: (a) viscous characteristic length , (b) thermal characteristic length , (c) airflow resistivity , and (d) thermal permeability .
Figure 7Comparison between measured and inferred airflow resistivity: (a) correlation between the measured and inferred values, and (b) their relative difference.
Figure 8Mean relative differences of inferred non-acoustic parameters.