| Literature DB >> 30961227 |
Xiaoxing Yan1,2, Xingyu Qian3, Rong Lu4, Tetsuo Miyakoshi5.
Abstract
In this study, Fraxinus mandshurica veneer was dyed with reactive brilliant red X-3B, black KN-B and blue K-3R dyes. The dye concentration, bath ratio and dyeing time were selected for an orthogonal experiment. Analysis of variance showed that the dye concentration had the greatest effect on the dye uptake of F. mandshurica veneer. In the independent experiments, dye uptake increased at first and then decreased with increasing dye concentration; the chromatic aberration increased with the dye concentration and then remained steady. The infrared spectra were used to examine the dyeing behaviors before and after dyeing and the binding form between reactive dyes and F. mandshurica veneer was analyzed. Based on the optimization of process parameters, the optimal dyeing condition was considered to be 75 °C, the dye concentration to be 0.5⁻1.0%, the dyeing time to be 60 min and the bath ratio to be 20:1. The dye uptakes of reactive brilliant red X-3B, black KN-B and blue K-3R dyes were 75.0⁻75.4%, 50.0⁻64.6% and 32.0⁻66.0%, respectively. The chromatic aberration of F. mandshurica veneer dyed with reactive brilliant red X-3B, black KN-B and blue K-3R dyes was 53.0⁻59.0, which was a significant increase. After dyeing, the hardness and impact strength of the waterborne coating on the dyed F. mandshurica increased but adhesion was reduced. The coating films produced a matte glossiness.Entities:
Keywords: Fraxinus mandshurica veneer; reactive dyes; waterborne coatings
Year: 2018 PMID: 30961227 PMCID: PMC6401795 DOI: 10.3390/polym10121302
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1The structures of (A) reactive brilliant red X-3B dye, (B) reactive black KN-B dye and (C) reactive blue K-3R dye.
L4 (23) results of dye uptake by F. mandshurica veneer.
| Sample | Dye concentration (%) | Bath ratio | Dyeing time (min) | Dye uptakeRed (%) | Dye uptakeBlack (%) | Dye uptakeBlue (%) |
|---|---|---|---|---|---|---|
| 1Red, 1Black, 1Blue | 1.0 | 20:1 | 60 | 75.0 | 50.0 | 66.0 |
| 2Red, 2Black, 2Blue | 1.0 | 30:1 | 120 | 53.0 | 36.0 | 44.0 |
| 3Red, 3Black, 3Blue | 5.0 | 20:1 | 120 | 8.4 | 22.0 | 42.0 |
| 4Red, 4Black, 4Blue | 5.0 | 30:1 | 60 | 3.6 | 1.8 | 33.0 |
| RangeRed | 58.0 | 13.4 | 8.6 | |||
| RangeBlack | 31.1 | 17.1 | 3.1 | |||
| RangeBlue | 17.5 | 15.5 | 6.5 | |||
| VarianceRed | 3364.0 | 179.6 | 74.0 | |||
| VarianceBlack | 967.2 | 292.4 | 9.6 | |||
| VarianceBlue | 306.3 | 240.3 | 42.3 |
1Red, 2Red, 3Red and 4Red refer to the 1–4 samples of reactive brilliant red X-3B dye. 1Black, 2Black, 3Black and 4Black refer to 1–4 samples of reactive black KN-B dye. 1Blue, 2Blue, 3Blue and 4Blue refer to 1–4 samples of reactive blue K-3R dye. RangeRed, RangeBlack and RangeBlue are the range of reactive brilliant red X-3B dye, reactive black KN-B dye and reactive blue K-3R dye, respectively. VarianceRed, VarianceBlack and VarianceBlue are the variance of reactive brilliant red X-3B dye, reactive black KN-B dye and reactive blue K-3R dye, respectively. Dye uptakeRed, Dye uptakeBlack and Dye uptakeBlue are the dye uptake of reactive brilliant red X-3B dye, reactive black KN-B dye and reactive blue K-3R dye, respectively.
L4 (23) orthogonal test of chromatic aberration with reactive brilliant red.
| Sample | L | a | b | L’ | a’ | b’ | ΔL | Δa | Δb | ΔE |
|---|---|---|---|---|---|---|---|---|---|---|
| 1Red | 75.45 | +5.79 | +20.86 | 37.08 | +45.75 | +8.39 | −38.37 | +39.96 | −12.47 | 56.79 |
| 2Red | 76.77 | +5.35 | +20.11 | 33.09 | +41.59 | +13.26 | −43.68 | +36.24 | −6.85 | 57.17 |
| 3Red | 74.30 | +5.97 | +21.15 | 30.33 | +36.21 | +12.97 | −43.97 | +30.24 | −8.18 | 53.99 |
| 4Red | 75.14 | +5.95 | +19.92 | 30.87 | +38.00 | +13.71 | −44.27 | +32.05 | −6.21 | 55.01 |
L4 (23) orthogonal test of chromatic aberration with reactive black.
| Sample | L | a | b | L’ | a’ | b’ | ΔL | Δa | Δb | ΔE |
|---|---|---|---|---|---|---|---|---|---|---|
| 1Black | 75.79 | +6.15 | +21.01 | 20.82 | +1.73 | −2.57 | −54.97 | −4.42 | −23.58 | 59.98 |
| 2Black | 74.61 | +5.99 | +20.49 | 22.41 | +1.28 | −2.65 | −52.20 | −4.71 | −23.14 | 57.29 |
| 3Black | 74.90 | +5.87 | +20.06 | 20.29 | +4.29 | −0.36 | −54.61 | −1.58 | −20.42 | 58.32 |
| 4Black | 74.46 | +5.70 | +20.07 | 20.45 | +4.03 | −0.61 | −54.01 | −1.67 | −20.68 | 57.86 |
L4 (23) orthogonal test of chromatic aberration with reactive blue.
| Sample | L | a | b | L’ | a’ | b’ | ΔL | Δa | Δb | ΔE |
|---|---|---|---|---|---|---|---|---|---|---|
| 1Blue | 75.29 | +5.99 | +21.61 | 23.08 | +1.26 | −5.91 | −52.21 | −4.73 | −27.52 | 59.21 |
| 2Blue | 74.46 | +5.97 | +20.07 | 22.98 | +1.23 | −5.44 | −51.48 | −4.74 | −25.51 | 57.65 |
| 3Blue | 74.91 | +6.03 | +20.83 | 19.84 | +1.93 | −3.40 | −55.07 | −4.10 | −24.23 | 60.30 |
| 4Blue | 75.71 | +5.81 | +21.71 | 21.04 | +2.21 | −3.64 | −54.67 | −3.60 | −25.35 | 60.37 |
Figure 2Effects of reactive brilliant red X-3B, black KN-B and blue K-3R dye concentrations on dye uptake.
Figure 3Effect of reactive brilliant red X-3B dye, reactive black KN-B dye and reactive blue K-3R dye concentrations on chromatic aberration.
Figure 4IR spectra of F. mandshurica veneer after dyeing with different concentrations of reactive red.
Assignment of peaks.
| Peak (cm−1) | Assignment |
|---|---|
| 3380 | –OH stretching vibration |
| 2360 | –CN stretching vibration |
| 1658 | N–H–O absorption |
| 1171 | C–O–C bond absorption |
| 3324 | absorption of N–H |
| 1730 | carbonyl groups |
Figure 5Side SEM of F. mandshurica veneer after reactive red dyeing at different concentrations of (A) 0.5% and (B) 3.0%.
Figure 6IR spectra of F. mandshurica veneer after dyeing with different concentrations of reactive black.
Figure 7IR spectra of F. mandshurica veneer after dyeing with different concentrations of reactive blue.
Figure 8Variation trend of waterborne coating hardness on the F. mandshurica veneer after dyeing.
Figure 9Variation trend of waterborne coating adhesion on the F. mandshurica veneer after dyeing.
Figure 10Variation trend of waterborne coating impact strength on the F. mandshurica veneer after dyeing.
Figure 11Variation trends of gloss of waterborne coating on the F. mandshurica veneer after dyeing.