Optimization of Hot-Air and Microwave Combined Drying Technical Parameters for Extruded Cotton Stalks Based on Response Surface Methodology
Abstract
:1. Introduction
2. Materials and Methods
2.1. Material Preparation
2.2. Experimental Set-Up
2.3. Experimental Methods
2.4. Experimental Methods
2.4.1. Single-Factor Experimental Design
2.4.2. Optimization Experiment of Combined Drying Process
2.5. Measurement Indicators and Calculation Methods
2.5.1. Calculation of Moisture Content at Conversion Point
2.5.2. Drying Rate
2.5.3. Energy Consumption per Unit Precipitation
3. Results and Discussion
3.1. Single-Factor Experiment
3.1.1. Hot-Air Temperature
3.1.2. Moisture Content at the Conversion Point
3.1.3. Microwave Power
3.2. Response Surface Experimental Results and Analysis
3.2.1. Regression Model Equation Analysis of Variance
3.2.2. Interaction Analysis of Model Significant Factors
3.3. The Optimal Process of Hot-Air and Microwave Combined Drying
3.4. Verification of Optimization Process for Hot-Air and Microwave Combined Drying
4. Conclusions
- During the hot-air and microwave combined drying process, extruded cotton stalks were greatly affected by three factors: hot-air temperature, moisture content at the conversion point, and microwave power. The drying time required for extruded cotton stalks decreased with an increase in the three factors, which also had a significant impact on the energy consumption per unit precipitation of extruded cotton stalks.
- Based on the regression analysis of the experimental data, the ternary quadratic regression equations of drying rate (Y1) and energy consumption per unit precipitation (Y2) were obtained as follows:
- 3.
- The optimum process parameters of hot-air and microwave combined drying for extruded cotton stalks were as follows: hot-air temperature 95 °C, moisture content at the conversion point 57%, and microwave power 700 W. With this experimental condition, through experimental verification, the drying rate and energy consumption per unit precipitation were 4.13632 kg (100 kg·min)−1 and 70.88522 MJ kg−1, respectively, which were close to the simulated values, proving the feasibility of the regression model.
- 4.
- With the experimental conditions of hot-air temperature 95 °C, moisture content at the conversion point 57%, and microwave power 700 W, we compared hot-air and microwave combined drying with single drying, and the drying rate of microwave drying was the highest. The energy consumption per unit precipitation of hot-air and microwave combined drying was the lowest, and it was 106.7% and 10.4% lower than that of hot-air drying and microwave drying, respectively.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Level | Factors | ||
---|---|---|---|
Hot Air Temperature x1 (°C) | Moisture Content at the Conversion Point x2 (%) | Microwave Power x3 (W) | |
Upper asterisk arm | 107 | 63 | 782 |
Upper level | 100 | 60 | 460 |
Zero level | 90 | 55 | 580 |
Lower level | 80 | 50 | 700 |
Lower asterisk arm | 73 | 47 | 378 |
Temperature T (°C) | Air Density ρ (kg·m−3) | The Heat Capacity of Air C (J·(kg·°C)−1 |
---|---|---|
60 | 1.0250 | 1017 |
70 | 0.9960 | 1017 |
73 | 0.9876 | 1017 |
80 | 0.9680 | 1022 |
90 | 0.9420 | 1022 |
100 | 0.9160 | 1022 |
107 | 0.8999 | 1022 |
Number | Factors | Average Drying Rate Y1 (kg (kg·100·min)−1 | Energy Consumption per Unit Precipitation Y2 (MJ kg−1) | ||
---|---|---|---|---|---|
X 1 (°C) | X2 (%) | X3 (W) | |||
1 | −1 | −1 | −1 | 3.0057 | 92.7671 |
2 | 1 | −1 | −1 | 3.5016 | 85.4825 |
3 | −1 | 1 | −1 | 3.0409 | 94.3448 |
4 | 1 | 1 | −1 | 3.7410 | 82.0764 |
5 | −1 | −1 | 1 | 3.4210 | 79.6454 |
6 | 1 | −1 | 1 | 3.4210 | 84.3873 |
7 | −1 | 1 | 1 | 3.5494 | 78.7479 |
8 | 1 | 1 | 1 | 4.3697 | 69.3243 |
9 | −1.682 | 0 | 0 | 2.9213 | 92.2064 |
10 | 1.682 | 0 | 0 | 3.9846 | 76.6567 |
11 | 0 | −1.682 | 0 | 3.2098 | 87.3424 |
12 | 0 | 1.682 | 0 | 3.3548 | 88.0132 |
13 | 0 | 0 | −1.682 | 3.4098 | 87.8184 |
14 | 0 | 0 | 1.682 | 4.1767 | 69.5542 |
15 | 0 | 0 | 0 | 3.727 | 78.3253 |
16 | 0 | 0 | 0 | 3.6879 | 79.7258 |
17 | 0 | 0 | 0 | 3.6749 | 79.7985 |
18 | 0 | 0 | 0 | 3.9543 | 74.7966 |
19 | 0 | 0 | 0 | 3.7956 | 77.9613 |
20 | 0 | 0 | 0 | 3.9097 | 75.0987 |
Source | Sum of Squares | Freedom | Mean Squares | F Value | Significant Level p |
---|---|---|---|---|---|
X1 | 1.060 | 1 | 1.060 | 55.930 | <0.0001 ** |
X2 | 0.190 | 1 | 0.190 | 9.830 | 0.0106 * |
X3 | 0.560 | 1 | 0.560 | 29.470 | 0.0003 ** |
X1X2 | 0.130 | 1 | 0.130 | 6.920 | 0.0251 * |
X1X3 | 0.018 | 1 | 0.018 | 0.930 | 0.3573 |
X2X3 | 0.081 | 1 | 0.081 | 4.250 | 0.0462 * |
X12 | 0.200 | 1 | 0.200 | 10.380 | 0.0092 ** |
X22 | 0.450 | 1 | 0.450 | 23.860 | 0.0006 ** |
X32 | 0.000176 | 1 | 0.000176 | 0.009263 | |
Model | 2.640 | 9 | 0.290 | 15.490 | <0.0001 ** |
Residual | 0.190 | 10 | 0.019 | — | — |
Lack of fit | 0.120 | 5 | 0.024 | 1.750 | 0.2772 |
Pure error | 0.069 | 5 | 0.014 | — | — |
Cor. Total | 2.830 | 9 | — | — | — |
Source | Sum of Squares | Freedom | Mean Squares | F Value | Significant Level p |
---|---|---|---|---|---|
X1 | 185.90 | 1 | 185.90 | 29.15 | 0.0003 ** |
X2 | 20.33 | 1 | 20.33 | 3.19 | 0.1045 |
X3 | 393.23 | 1 | 393.23 | 61.75 | <0.0001 ** |
X1X2 | 45.84 | 1 | 45.84 | 7.19 | 0.0231 * |
X1X3 | 27.64 | 1 | 27.64 | 4.33 | 0.044 * |
X2X3 | 24.96 | 1 | 24.96 | 3.91 | 0.0761 |
X12 | 74.88 | 1 | 74.88 | 11.74 | 0.0065 ** |
X 22 | 169.27 | 1 | 169.27 | 26.54 | 0.0004 ** |
X 32 | 0.89 | 1 | 0.89 | 0.14 | 0.7169 |
Model | 922.95 | 9 | 102.55 | 16.08 | <0.0001 ** |
Residual | 63.78 | 10 | 6.38 | — | — |
Lack of fit | 39.65 | 5 | 7.93 | 1.64 | 0.2994 |
Pure error | 24.13 | 5 | 4.83 | — | — |
Cor. Total | 986.73 | 9 | — | — |
Different Drying Methods | Average Drying Rate Y1 (kg (kg·100·min)−1 | Energy Consumption per Unit Precipitation Y2 (MJ kg−1) |
---|---|---|
Hot-air drying | 1.73 | 146.58 |
Microwave drying | 4.33 | 78.28 |
Combination drying | 4.14 | 70.89 |
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Wang, H.; Wang, F.; Gao, H.; Zhai, X.; Li, P. Optimization of Hot-Air and Microwave Combined Drying Technical Parameters for Extruded Cotton Stalks Based on Response Surface Methodology. Agriculture 2023, 13, 1996. https://doi.org/10.3390/agriculture13101996
Wang H, Wang F, Gao H, Zhai X, Li P. Optimization of Hot-Air and Microwave Combined Drying Technical Parameters for Extruded Cotton Stalks Based on Response Surface Methodology. Agriculture. 2023; 13(10):1996. https://doi.org/10.3390/agriculture13101996
Chicago/Turabian StyleWang, Hongti, Fangyan Wang, Hongwei Gao, Xinting Zhai, and Peng Li. 2023. "Optimization of Hot-Air and Microwave Combined Drying Technical Parameters for Extruded Cotton Stalks Based on Response Surface Methodology" Agriculture 13, no. 10: 1996. https://doi.org/10.3390/agriculture13101996
APA StyleWang, H., Wang, F., Gao, H., Zhai, X., & Li, P. (2023). Optimization of Hot-Air and Microwave Combined Drying Technical Parameters for Extruded Cotton Stalks Based on Response Surface Methodology. Agriculture, 13(10), 1996. https://doi.org/10.3390/agriculture13101996