Drying-Induced Strain-Stress and Deformation of Thin Ceramic Plate
Abstract
:1. Introduction
2. Experiments
2.1. Sample Preparation
2.2. Drying Experiments
3. Modeling
3.1. Heat and Moisture Transfer
3.2. Strain-Stress Analysis
3.3. Physical Properties and Parameters for Simulation
4. Results and Discussion
4.1. Transient Moisture Content and Temperature
4.2. Profiles of Moisture Content and Temperature
4.3. Drying-Induced Stress Formation
4.4. Effect of Plate Thickness on Drying-Induced Stress
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
Bi | Biot number defined by Equation (8) |
Bir | Biot number relating to radiative heat transfer defined by Equation (8) |
c | specific heat of wet clay |
cpa | specific heat of wet air |
Dw | moisture diffusivity in sample |
E(t) | relaxation modulus equivalent to Young’s modulus |
Fi | i element of body force vector |
G(t) | shear modulus |
G1, G2 | moduli defined by Equations (16) and (17) |
Gijkl | tensor correlating between stress and strain defined by Equation (15) |
h | heat transfer coefficient |
Ha | absolute humidity of hot air |
He | saturated absolute humidity at surface temperature of wet sample |
J* | moisture flux vector |
K(t) | bulk modulus |
k | mass transfer coefficient of moisture |
La | latent heat of water |
Le | Lewis number defined by Equation (8) |
l0 | representative length |
Nh | heat transfer parameter defined by Equation (8) |
Nm | mass transfer parameter defined by Equation (8) |
n | outward normal unit vector |
q* | heat flux vector |
Sv | volume shrinkage |
T | temperature |
t | time |
Ui | i element of displacement vector |
V | volume of sample |
W | moisture content of dry solid base |
Wc | critical moisture content |
x, y, z | coordinate |
α | thermal diffusivity of sample |
δij | Kronecker’s delta |
εij | ij element of strain tensor |
ε*ij | ij element of strain tensor relating to stress generation |
εsij | ij element of strain tensor caused by free shrinkage |
θ | dimensionless time |
ν | Poisson’s ratio |
η | correction factor of drying rate defined by Equation (10) |
λ | thermal conductivity of sample |
ρ | density of wet clay |
ρd | dry density excluding water in wet clay |
σij | ij element of stress tensor |
σr | Stefan-Boltzmann constant |
τ | dummy value for integration |
ϕ | blackness |
superscripts | |
* | dimensionless parameters |
0 | initial condition |
a | hot air |
i, j, k, l | x, y or z coordinate |
s | surface of sample |
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Terms | Run 1 | Run 2 | Run 3 | Run 4 | Run 5 |
---|---|---|---|---|---|
Drying mode | One side drying | Both sides drying | |||
Hot air temperature [°C] | 100 | 100 | 120 | 100 | 120 |
Sample thickness [mm] | 1.0 | 0.5 | 1.0 | 1.0 | 1.0 |
Sample width [mm] | 10.0 | 10.0 | 10.0 | 10.0 | 10.0 |
Sample length [mm] | 30.0 | 30.0 | 30.0 | 30.0 | 30.0 |
Initial sample weight [g] | 0.622 | 0.295 | 0.673 | 0.640 | 0.667 |
Initial sample temperature [°C] | 10.0 | 13.2 | 7.4 | 6.6 | 7.2 |
Sample moisture content [kg-water/kg-dry solid] | 0.359 | 0.316 | 0.417 | 0.420 | 0.381 |
Air flow rate at atmospheric temperature [L/min] | 50 | 50 | 50 | 50 | 50 |
Air humidity [kg-moisture/kg-dry air] | 1.8 × 10−3 | 5.9 × 10−3 | 1.8 × 10−3 | 1.8 × 10−3 | 1.8 × 10−3 |
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Itaya, Y.; Hanai, H.; Kobayashi, N.; Nakagawa, T. Drying-Induced Strain-Stress and Deformation of Thin Ceramic Plate. ChemEngineering 2020, 4, 9. https://doi.org/10.3390/chemengineering4010009
Itaya Y, Hanai H, Kobayashi N, Nakagawa T. Drying-Induced Strain-Stress and Deformation of Thin Ceramic Plate. ChemEngineering. 2020; 4(1):9. https://doi.org/10.3390/chemengineering4010009
Chicago/Turabian StyleItaya, Yoshinori, Hiroya Hanai, Nobusuke Kobayashi, and Tsuguhiko Nakagawa. 2020. "Drying-Induced Strain-Stress and Deformation of Thin Ceramic Plate" ChemEngineering 4, no. 1: 9. https://doi.org/10.3390/chemengineering4010009
APA StyleItaya, Y., Hanai, H., Kobayashi, N., & Nakagawa, T. (2020). Drying-Induced Strain-Stress and Deformation of Thin Ceramic Plate. ChemEngineering, 4(1), 9. https://doi.org/10.3390/chemengineering4010009