Durability of Cellulosic-Fiber-Reinforced Geopolymers: A Review
Abstract
:1. Introduction
2. Typical Properties of CFs
3. Fiber-Reinforced Geopolymer Composites
3.1. The Polymerization Mechanism of Geopolymer
3.2. Fiber Matrix Interface Bonding Mechanisms
4. Research Status of the Durability of CFGCs
4.1. The Alkaline Degradation Mechanism of CFs
4.2. Crack Resistance and Toughness of CFGCs
4.2.1. The Effect of Bast Fiber on the Toughness of CFGCs
4.2.2. The Effect of Leaf Fiber on the Toughness of CFGCs
4.2.3. The Effect of Seed Fiber on the Toughness of CFGCs
4.2.4. The Effect of Fruit Fiber on the Toughness of CFGCs
4.2.5. The Effect of Stem Fiber on the Toughness of CFGCs
4.2.6. The Effect of Grass/Reeds Fiber on the Toughness of CFGCs
4.3. Resistance to Sulfate Attack of CFGCs
4.4. Resistance to Chloride Ion Penetration of CFGCs
4.5. Performance of CFGCs against Wetting/Drying Cycles
4.6. High Temperature Tolerance of CFGCs
5. Other Factors Affecting the Durability of CFGCs
5.1. The Effect of Nanomaterial Addition on the Durability of CFGCs
5.2. The Effect of Fiber Modification on the Durability of CFGCs
6. Conclusions
- All types of natural cellulose fibers can be used to reinforce geopolymers. Among the bast fibers, hemp, flax and jute, and leaf fiber sisal are the most widely used, and there is also more related research;
- An appropriate amount of plant fiber has a beneficial effect on the mechanical properties of the geopolymer, toughening and cracking resistance, and other types of durability. Too much mixing will have a negative effect. In CFGCs, the CF content range is mostly 0.1–10%, and the best content is usually 2–4% volume content;
- The alkaline degradation of CF in the geopolymer matrix has an adverse effect on the mechanical properties of the composites. Chemical modification and self-modification can be used to adjust the adhesion state of the fiber and matrix interface and optimize the properties of the interface layer between the fiber and matrix to achieve the best properties of the geopolymer;
- Nanomaterials can improve the microstructure of CFGCs, make the material matrix more compact, reduce the degradation rate of CF and improve the durability of CFGCs;
- CFGCs have good properties of resistance to sulfate and chloride ion erosion and can prevent degradation of fibers at high temperatures. However, the sugar precipitated from CFs in alkaline environment reduces the compactness of geopolymer gel and has a negative effect on its durability.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Fiber Type | Fiber Name | Density/ (g cm−3) | Tensile Strength/MPa | Specific Strength/(S ρ−1) | Tensile Modulus/GPa | Specific Modulus/(E ρ−1) | Elongation at Break/% | Ref. |
---|---|---|---|---|---|---|---|---|
Bast | Flax | 1.5 | 800–1500 | 535–1000 | 27.6–80 | 18.4–53 | 1.2–3.2 | [37] |
Hemp | 1.48 | 550–900 | 372–608 | 70 | 47.3 | 2–4 | [38] | |
Jute | 1.46 | 393–800 | 269–548 | 10–30 | 6.85–20.6 | 1.5–1.8 | [39] | |
Kenaf | 1.45 | 930 | 641 | 53 | 36.55 | 1. 6 | [40] | |
Ramie | 1.5 | 220–938 | 147–625 | 44–128 | 29.3–85 | 2–3.8 | [41] | |
Leaf | Abaca | 1.5 | 400 | 267 | 12 | 8 | 3–10 | [42] |
Sisal | 1.45 | 530–640 | 366–441 | 9.4–22 | 6.5–15.2 | 3–7 | [41] | |
Banana Leaf | 1.35 | 600 | 444 | 17.85 | 13.2 | 3.36 | [41] | |
Coconut leaf | 1.15 | 500 | 435 | 2. 5 | 2.17 | 20 | [43] | |
Seed | cotton | 1.6 | 287–597 | 179–373 | 5.5–12.6 | 3.44–7.9 | 7–8 | [43] |
Grass | bamboo | 1.1 | 500 | 454 | 35.91 | 32.6 | 1.4 | [43] |
Fruit | Coconut shell | 1.2 | 175 | 146 | 4–6 | 3.3–5 | 30 | [41] |
Wood | Soft wood | 1.5 | 1000 | 667 | 40 | 26.67 | 4.4 | [43] |
POC/(%) | OPTF/(%) | Water Reducing Agent/(%) | Tensile/(MPa) | Shear/(MPa) | Flexural/(MPa) | Water Absorption/(%) | Cross-Section Reduction/(%) | Weight Loss/(%) |
---|---|---|---|---|---|---|---|---|
0 | 0 | 0 | 4.55 | 9.41 | 6.31 | 0.6 | −1.15 | −2.2 |
25 | 0 | 0 | 4.31 | 9.04 | 6.02 | 0.8 | −1.2 | −2.2 |
50 | 0 | 0 | 3.94 | 7.94 | 5.56 | 1.4 | −1.2 | −2.6 |
75 | 0 | 0 | 3.62 | 7.09 | 5.10 | 1.8 | −1.5 | −2.8 |
100 | 0 | 0 | 2.91 | 6.42 | 4.78 | 3.2 | −2 | −3.1 |
100 | 0 | 0.5 | 3.05 | 6.48 | 4.83 | 3 | −1.9 | −3 |
100 | 1 | 0.5 | 4.41 | 7.19 | 6.86 | 4.9 | −2 | −3.4 |
100 | 2 | 0.5 | 3.44 | 6.93 | 5.34 | 7.8 | −2.6 | −3.9 |
100 | 3 | 0.5 | 3.21 | 6.54 | 5.03 | 12.5 | −3.9 | −5.7 |
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Liu, J.; Lv, C. Durability of Cellulosic-Fiber-Reinforced Geopolymers: A Review. Molecules 2022, 27, 796. https://doi.org/10.3390/molecules27030796
Liu J, Lv C. Durability of Cellulosic-Fiber-Reinforced Geopolymers: A Review. Molecules. 2022; 27(3):796. https://doi.org/10.3390/molecules27030796
Chicago/Turabian StyleLiu, Jie, and Chun Lv. 2022. "Durability of Cellulosic-Fiber-Reinforced Geopolymers: A Review" Molecules 27, no. 3: 796. https://doi.org/10.3390/molecules27030796