Performance Study of Lightweight Insulating Mortar Reinforced with Straw Fiber
Abstract
:1. Introduction
2. Materials and Experimental Testing
2.1. Materials
2.2. Preparation of Straw Fiber
2.3. Preparation of Straw Fiber Mortar Samples
2.4. Experimental Testing
3. Analysis of Test Results
3.1. Moisture Content
3.2. Thermal Conductivity
3.3. SEM Micrographs
3.4. Compressive Strength
3.5. Impermeability Grade
3.6. Comprehensive Evaluation
4. Simulation of the Thermal Insulation
4.1. Numerical Simulation Methodology
4.1.1. Building Geometric Models
4.1.2. Fundamental Assumptions
- The thermal physical properties of the surrounding rock and insulation layer are assumed stable, homogeneous and isotropic;
- The incompressible ideal gas law was applied to define the fluid density;
- The heat loss caused by the work done by the viscous force of the fluid was ignored;
- The airflow was fully developed and turbulent;
- The turbulent viscosity was isotropic, and the turbulent viscosity coefficient could be considered as a scalar;
- The thermal continuity involving stationary and no-slip conditions was applied to the outer surface of the heading and between the inner surface of the airway and the air;
- The constant temperature, which could be regarded as the virgin rock temperature, was applied to the far-field boundary condition.
4.1.3. Governing Equations
4.1.4. Boundary Conditions and Parameters
4.2. Thermal Insulation Effect
5. Conclusions
- According to the results, the moisture content of the samples was relatively high during the initial stages of mortar formation. The evaluation of the thermal insulation properties highlighted the detrimental effect of a high moisture content in the mortar, in that the high water content weakened the thermal insulation properties. On day 28, the thermal conductivity of the mortar mixed with three different lengths of fibers decreased with an increasing percentage of fibers. The thermal insulation performance of the 5 mm, 10 mm and 15 mm mortars increased by about 44%, 49% and 38%, respectively, when the fiber admixture was 6%. The fiber mortar with a 10 mm length has the best thermal insulation performance among mortars of the same length type, and the thermal conductivity of mortar with 6% content is as low as 0.163 W/(m °C); the longer the fiber is in a certain length range, the better the effect on the obstruction of heat flow.
- The SEM micrographs show that the mortar with 2% content has a uniform distribution of gel material on the fiber surface, and the fibers are tightly bonded to the matrix, making the 5 mm, 10 mm and 15 mm fibers of the mortar compressive strength increased by 2.48%, 3.49% and 0.82%, respectively. With increased fiber content (4%, 6%), voids and discontinuities were generated due to the binding effect, resulting in a decrease in compressive strength. The mortar with 6% added 15 mm fibers had the lowest compressive strength (6.39 MPa), showing a 22.5% decrease in strength. In addition, adding fibers can effectively improve the impermeability of the mortar.
- By comparing the simulation results for the cooling effect of straw fiber insulation mortar with the GR2-10 proportion and ordinary concrete, it can be seen that the difference in internal temperature between the two types of materials is 12 °C, while the difference in temperature at the outlet is 0.5 °C. The straw fiber insulation mortar sprayed on the surface of the high-temperature tunnel can exert an effective heat insulation effect, which effectively hinders the transfer of heat flow to the airflow.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Materials | The Addition Amounts of Each Component of Mortar (kg/m3) | |||||||||
---|---|---|---|---|---|---|---|---|---|---|
GR0-0 | GR2-5 | GR4-5 | GR6-5 | GR2-10 | GR4-10 | GR6-10 | GR2-15 | GR4-15 | GR6-15 | |
Cement | 26.24 | 26.24 | 26.24 | 26.24 | 26.24 | 26.24 | 26.24 | 26.24 | 26.24 | 26.24 |
Fly ash | 6.56 | 6.56 | 6.56 | 6.56 | 6.56 | 6.56 | 6.56 | 6.56 | 6.56 | 6.56 |
Sand | 75.44 | 75.44 | 75.44 | 75.44 | 75.44 | 75.44 | 75.44 | 75.44 | 75.44 | 75.44 |
Ceramic granules | 42.65 | 42.65 | 42.65 | 42.65 | 42.65 | 42.65 | 42.65 | 42.65 | 42.65 | 42.65 |
Glass beads | 29.15 | 29.15 | 29.15 | 29.15 | 29.15 | 29.15 | 29.15 | 29.15 | 29.15 | 29.15 |
Water | 18.04 | 18.04 | 18.04 | 18.04 | 18.04 | 18.04 | 18.04 | 18.04 | 18.04 | 18.04 |
Fibers | 0 | 0.65 | 1.32 | 1.97 | 0.65 | 1.32 | 1.97 | 0.65 | 1.32 | 1.97 |
Time | Thermal Conductivity (W/(m °C)) | |||||||||
---|---|---|---|---|---|---|---|---|---|---|
GR0-0 | GR2-5 | GR4-5 | GR6-5 | GR2-10 | GR4-10 | GR6-10 | GR2-15 | GR4-15 | GR6-15 | |
3d | 0.647 | 0.696 | 0.934 | 1.178 | 0.674 | 0.911 | 1.004 | 0.710 | 1.076 | 1.138 |
7d | 0.535 | 0.615 | 0.873 | 0.865 | 0.561 | 0.846 | 0.811 | 0.500 | 0.779 | 0.815 |
28d | 0.324 | 0.222 | 0.190 | 0.179 | 0.208 | 0.181 | 0.163 | 0.210 | 0.203 | 0.199 |
Type | Property | Value | Type | Property | Value |
---|---|---|---|---|---|
Inlet | Velocity inlet | 2.5 m/s | Wall of airway | Ks | 0.05 m |
Temperature | 15.5 °C | Cs | 0.07 | ||
Outlet | Pressure outlet | 1.1 atm | Solution methods | Scheme | Coupled |
Viscous model | K-epsilon | Standard | Spatial discretization | Turbulent kinetic energy | Second-order upwind |
Far-Field boundary | Temperature | \ | Turbulent dissipation rate | Second-order upwind | |
General | Solver type | Pressure-based | Pressure | PRESTO! |
Material | Thermal Conductivity (W/(m∙°C)) | Density (kg/m3) | Specific Heat (J/(kg °C)) |
---|---|---|---|
surrounding rock | 5.1 | 2593 | 790 |
plain concrete | 1.5 | 2200 | 900 |
insulating mortar | 0.208 | 1650 | \ |
air | 0.0242 | 1.225 | 1006.43 |
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Zhang, X.; Liu, W.; Zhang, S.; Hou, J. Performance Study of Lightweight Insulating Mortar Reinforced with Straw Fiber. Materials 2023, 16, 2266. https://doi.org/10.3390/ma16062266
Zhang X, Liu W, Zhang S, Hou J. Performance Study of Lightweight Insulating Mortar Reinforced with Straw Fiber. Materials. 2023; 16(6):2266. https://doi.org/10.3390/ma16062266
Chicago/Turabian StyleZhang, Xiao, Weitao Liu, Shuo Zhang, and Jiaoyun Hou. 2023. "Performance Study of Lightweight Insulating Mortar Reinforced with Straw Fiber" Materials 16, no. 6: 2266. https://doi.org/10.3390/ma16062266
APA StyleZhang, X., Liu, W., Zhang, S., & Hou, J. (2023). Performance Study of Lightweight Insulating Mortar Reinforced with Straw Fiber. Materials, 16(6), 2266. https://doi.org/10.3390/ma16062266