| Literature DB >> 30966408 |
Bao-Guo Yao1, Yun-Liang Peng2, Yun-Juan Yang3.
Abstract
Tactile properties are one of the most important attributes of porous polymeric materials such as textiles, comprising a subjective evaluation index for textile materials and functional clothing, primarily affecting the sensation of comfort during the wearing of a garment. A new test method was proposed, and a mechanical measurement system was developed to objectively characterize the tactile properties of porous polymeric materials by simulating the dynamic contact processes during human skin contact with the materials and in consideration of different aspects of tactile sensations. The measurement system can measure the bending, compression, friction, and thermal transfer properties in one apparatus, and is capable of associating the objective measurements with the subjective tactile sensations. The test and evaluation method, the components of the mechanical measurement system, the definition and grading method of the evaluation indices, and the neural network prediction model from objective test results to subjective sensations of tactile properties were presented. The experiments were conducted for the objective tests and correlation tests. Seven types of porous polymeric sheet materials from seven categories for the tactile properties were cut to a size of 200 mm × 200 mm and tested. Each index of tactile properties was significantly different (P < 0.05) between different sheet materials. The correlations of bending, compression, friction, and thermal transfer properties with Kawabata KES test methods were analyzed. An intra-laboratory test was conducted and an analysis of the variance was performed to determine the critical differences of within laboratory precisions of the measurement system. This mechanical measurement system provides a method and system for objective measurement and evaluation of tactile properties of porous polymeric sheet materials in industrial application.Entities:
Keywords: characterization; evaluation; measurement system; porous polymeric materials; precision; tactile properties
Year: 2018 PMID: 30966408 PMCID: PMC6415084 DOI: 10.3390/polym10040373
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Mechanical device of the measurement system: (a) structural diagram; (b) prototype of the mechanical device.
Figure 2Integration measurement of tactile characteristics of four dimensions: (a) bending; (b) compression; (c) friction; (d) thermal transfer.
Figure 3Measurement of compression properties.
Figure 4Schematic diagram of thermal transfer.
Indices definition for objective evaluation of tactile properties.
| Tactile | Symbol | Description | Unit |
|---|---|---|---|
| Thermal transfer | Maximum heat flux value | kW/m2 | |
| Psychosensory intensity of descending stage | |||
| Psychosensory intensity of ascending stage | |||
| Bending | Maximum bending force | mN | |
| Bending rigidity | N·s | ||
| Bending recovery rigidity | N·s | ||
| Friction | Static friction index | ||
| Dynamic friction index | |||
| Intensity index of friction | N·s | ||
| Compression | Compression work of pressure stage | mN·cm/cm2 | |
| Compression work of pressure release stage | mN·cm/cm2 | ||
| Compression resilience index |
Structural parameters of seven typical samples for objective and correlation tests.
| Sample | Weight (g/m2) | Thickness (mm) at 4.14 kPa | Content |
|---|---|---|---|
| A | 119.425 | 0.39 | Polyester |
| B | 191.05 | 4.93 | Polyethylene foam |
| C | 323.775 | 0.81 | Linen |
| D | 139.95 | 0.45 | Polyester |
| E | 75.4 | 3.05 | Polyurethane foam |
| F | 128.95 | 0.36 | 95% polyester + 5% spandex |
| G | 2703.5 | 2.98 | Silicone rubber |
Objective indices of tactile properties for correlation analysis between MTT system and KES system.
| Tactile Properties | MTT System Indices | KES System Indices |
|---|---|---|
| Dynamic heat transfer characteristics | Maximum heat flux value | Thermal conductivity |
| Bending properties | Bending rigidity | Bending moment |
| Friction properties | Intensity index of friction | Mean friction coefficient |
| Compression properties | Compression work of pressure release stage | Linearity of compression |
Basic structural features of test samples for the precision test.
| Sample | Weight (g/m2) | Thickness (mm) at 4.14 kPa |
|---|---|---|
| 1 | 779.85 | 1.53 |
| 2 | 113.875 | 0.31 |
| 3 | 28.1 | 0.04 |
| 4 | 1089.875 | 13.64 |
MTT test results of tactile properties by mean values.
| Sample | |||||
|---|---|---|---|---|---|
| A | 0.24 | 5.64 | 33.6 | 67.3 | |
| B | 0.31 | 14.26 | 73.3 | 39.2 | |
| C | 0.40 | 6.7 | 21.4 | 75.5 | |
| D | 0.093 | 8.64 | 26.6 | 77.1 | |
| E | 0.33 | 9.32 | 70.2 | 34.5 | |
| F | 0.32 | 3.87 | 27.2 | 27.6 | |
| G | 0.16 | 15.17 | 23.6 | 29.5 | |
| One-way ANOVA | P (Sig.) | 0.00 | 0.00 | 0.00 | 0.00 |
KES test results of tactile properties by mean values.
| Sample | K | B | MIU | LC | |
|---|---|---|---|---|---|
| A | 9.05 | 0.088 | 0.27 | 0.30 | |
| B | 10.24 | 0.40 | 0.52 | 0.36 | |
| C | 15.64 | 0.16 | 0.17 | 0.23 | |
| D | 3.54 | 0.23 | 0.20 | 0.28 | |
| E | 11.69 | 0.29 | 0.59 | 0.37 | |
| F | 13.41 | 0.002 | 0.23 | 0.40 | |
| G | 6.78 | 0.46 | 0.22 | 0.45 | |
| One-way ANOVA | P (Sig.) | 0.00 | 0.00 | 0.00 | 0.00 |
Figure 5Histogram of MTT test results: (a) maximum heat flux value; (b) bending rigidity; (c) intensity index of friction; (d) compression work of pressure release stage.
Figure 6Relationship between maximum heat flux value () of MTT test and KES thermal test.
Figure 7Relationship between bending rigidity () of MTT test and KES bending test.
Figure 8Relationship between intensity index of friction () of MTT test and KES friction coefficient test.
Figure 9Relationship between compression work of pressure release stage () of MTT test and KES compression test.
Raw data for the maximum bending force from the intra-laboratory experiment.
| Sample | Operator | Test1 | Test2 | Test3 | Test4 | Test5 |
|---|---|---|---|---|---|---|
| 1 | 01 | 679.26 | 679.28 | 679.54 | 679.01 | 679.88 |
| 02 | 679.01 | 678.93 | 678.99 | 679.12 | 678.93 | |
| 2 | 01 | 35.83 | 34.37 | 35.67 | 35.56 | 35.02 |
| 02 | 35.89 | 38.11 | 36.79 | 37.19 | 36.87 | |
| 3 | 01 | 20.46 | 19.38 | 20.33 | 19.67 | 19.87 |
| 02 | 18.76 | 22.07 | 19.76 | 20.88 | 19 | |
| 4 | 01 | 1196.74 | 1197.81 | 1196.99 | 1197.5 | 1197.09 |
| 02 | 1196.48 | 1197.51 | 1196.49 | 1197.08 | 1197.7 |
Critical differences of maximum bending force for bending properties.
| Number of Observations in Each Average | Sample 1 | Sample 2 | Sample 3 | Sample 4 | ||||
|---|---|---|---|---|---|---|---|---|
| Single Operator | within Laboratory | Single Operator | within Laboratory | Single Operator | within Laboratory | Single Operator | within Laboratory | |
| 1 | 0.663 | 0.980 | 1.957 | 3.730 | 2.599 | 2.599 | 1.383 | 1.383 |
| 3 | 0.383 | 0.817 | 1.130 | 3.370 | 1.501 | 1.501 | 0.798 | 0.798 |
| 5 | 0.296 | 0.780 | 0.875 | 3.293 | 1.162 | 1.162 | 0.618 | 0.618 |
| 7 | 0.250 | 0.764 | 0.740 | 3.260 | 0.982 | 0.982 | 0.523 | 0.523 |
Critical differences of maximum heat flux vale for thermal transfer properties.
| Number of Observations in Each Average | Sample 1 | Sample 2 | Sample 3 | Sample 4 | ||||
|---|---|---|---|---|---|---|---|---|
| Single Operator | within Laboratory | Single Operator | within Laboratory | Single Operator | within Laboratory | Single Operator | within Laboratory | |
| 1 | 1.842 | 6.524 | 0.613 | 4.230 | 1.228 | 5.228 | 1.162 | 1.162 |
| 3 | 1.063 | 6.348 | 0.354 | 4.201 | 0.709 | 5.131 | 0.671 | 0.671 |
| 5 | 0.824 | 6.313 | 0.274 | 4.195 | 0.549 | 5.111 | 0.520 | 0.520 |
| 7 | 0.696 | 6.297 | 0.232 | 4.192 | 0.464 | 5.103 | 0.439 | 0.439 |
Critical differences of static friction index for friction properties.
| Number of Observations in Each Average | Sample 1 | Sample 2 | Sample 3 | Sample 4 | ||||
|---|---|---|---|---|---|---|---|---|
| Single Operator | Within Laboratory | Single Operator | Within Laboratory | Single Operator | Within Laboratory | Single Operator | Within Laboratory | |
| 1 | 0.00166 | 0.00264 | 0.00310 | 0.0149 | 0.00572 | 0.00872 | 0.00428 | 0.0116 |
| 3 | 0.00096 | 0.00227 | 0.00179 | 0.0147 | 0.00330 | 0.00736 | 0.00247 | 0.0110 |
| 5 | 0.00074 | 0.00218 | 0.00139 | 0.0146 | 0.00256 | 0.00706 | 0.00191 | 0.0109 |
| 7 | 0.00063 | 0.00215 | 0.00117 | 0.0146 | 0.00216 | 0.00693 | 0.00162 | 0.0109 |
Critical differences of compression resilience index for compression properties.
| Number of Observations in Each Average | Sample 1 | Sample 2 | Sample 3 | Sample 4 | ||||
|---|---|---|---|---|---|---|---|---|
| Single Operator | within Laboratory | Single Operator | within Laboratory | Single Operator | within Laboratory | Single Operator | within Laboratory | |
| 1 | 0.0134 | 0.0200 | 0.0196 | 0.0196 | 0.00301 | 0.0123 | 0.0138 | 0.0577 |
| 3 | 0.00775 | 0.0167 | 0.0113 | 0.0113 | 0.00174 | 0.0120 | 0.00795 | 0.0566 |
| 5 | 0.00601 | 0.0160 | 0.00875 | 0.00875 | 0.00135 | 0.01195 | 0.00616 | 0.0564 |
| 7 | 0.00508 | 0.0157 | 0.00739 | 0.00739 | 0.00114 | 0.01193 | 0.00520 | 0.0563 |