Research on High- and Low-Temperature Characteristics of Bitumen Blended with Waste Eggshell Powder
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Sample Preparation
2.2. Microstructural Morphology
2.3. Chemical Characterization
2.4. Conventional Performance Testing of Asphalt
2.5. Rheological Characterization
2.5.1. Temperature Sweep
2.5.2. Frequency Sweep
2.5.3. Multiple Stress Creep Recovery
2.6. Bending Beam Rheometer Experiment
3. Results
3.1. Microstructural Morphology
3.2. Chemical Characterization
3.3. Conventional Performance of Asphalt
3.4. Temperature Sweep
3.5. Frequency Sweep
3.6. Multiple Stress Creep Recovery
3.7. Bending Beam Rheometer Experiment
4. Discussion
- For the sake of solving the environmental and resource issues generated by biological waste eggshells, this study combined eggshell powder with bitumen materials for bio-roads construction, formulated a preliminary set of effective schemes for recycling waste eggshells into asphalt materials, and contributed to the sustainable development of engineering and construction materials.
- This study intended to establish a link between asphalt materials and food bioscience. Moreover, this study will raise important functions for the interdisciplinary study of asphalt materials and food bioscience, and promote the application of biomaterials from food science to engineering.
- Generally, biomass is used as renewable bio-modifiers, including soybean oil, waste engine oil, vegetable oil, palm oil, waste cooking oil, swine manure, and so on. The low-temperature property can be improved by most bio-modifiers, and some bio-modifiers need to adopt pyrolysis, distillation, purification, and other processes, which increases the cost of using biological resources. However, the biological waste eggshell can not only significantly improve asphalt properties inexpensively, but also has a wide range of resources. Therefore, biological waste eggshell is a good biological waste resource, which is worth popularizing and applying.
5. Conclusions
- SEM tests showed that eggshell powder has a rough and porous microstructure. This implies that eggshell powder could adsorb more asphalt material and thereby affect the performance of asphalt.
- The FT-IR test indicated that the eggshell powder could not alter the chemical structure of the bitumen-binding materials, and the eggshell powder and asphalt materials were mainly physical miscibility processes.
- Asphalt conventional performance tests indicated that ES increased the consistency, hardness, and thermal stability of bitumen materials and reduced the plastic deformation capacity. This is a preliminary indication that eggshell powder can rise the high-temperature characteristics of bitumen.
- DSR temperature and frequency sweep experiments demonstrated that the eggshell powder could rise the |G*|, reduce the phase angle δ, and improve |G*|/sinδ. This further indicated that eggshell powder could enhance the high-temperature characteristics of bitumen.
- MSCR revealed that the addition of eggshell powder increased R and reduced Jnr. This demonstrated that eggshell powder could increase the permanent deformation resistance of asphalt materials.
- BBR revealed that the addition of eggshell powder could improve the stiffness modulus and reduce the creep rate. This indicated that eggshell powder could not increase the toughness or low-temperature crack resistance of bitumen. The temperature should be considered in practice.
- Study the viscoelastic and rheological characteristics of materials systematically by using the master and black curves.
- Investigate the relationship between macroscopical performance and the microstructure and chemical composition of asphalt.
- Evaluate the compounding effect of various biological waste asphalt materials.
- Find out the relationship between biological waste and performance of asphalt mixtures.
- Develop a new composite material that can comprehensively improve asphalt performance.
- Pave the test bio-road and observe the performance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Materials | Resources | Application |
---|---|---|
cement | municipal solid waste incineration fly ash [8] | produce eco-friendly supplementary cementitious materials in the manufacture of eco-cements |
textile waste [9] | produce lightweight concrete partition | |
seashell waste [10] | use seashell waste as fine aggregate or cement substitute | |
clay brick waste [11] | replace cement with brick waste powder to produce sustainable construction materials | |
glass waste [12] | replace cement with ground glass waste | |
eggshell ash and strap plastic waste [13] | replace cement with eggshell ash and reinforced with waste plastic fiber | |
asphalt | fish scale powder [14] | use fish scale powder to improve asphalt performance |
waste wood [15] | use bio-oil extracted from waste wood to rejuvenate asphalt binder | |
waste steel shavings and waste ferrites [16] | use waste steel shavings and ferrites to heal pavement crack by induction heating | |
plastic waste [17] | improve rutting and fatigue performance asphalt | |
dry battery waste powder [18] | improve high-temperature characteristics of asphalt | |
swine manure [19] | ameliorate low-temperature characteristics of asphalt | |
others | electronic wastes (polyethylene) [20] | produce a construction part with electromagnetic- interference-shielding characteristics |
city sewage sludge [21] | produce clay bricks inexpensively | |
residue of municipal solid waste pyrolysis [22] | manufacture ceramic material |
Properties | Experiment Results | Technical Requirements (JTG F40-2004) [48] |
---|---|---|
Penetration (25 °C, 100 g, 5 s, 0.1 mm) | 66.5 | 60–80 |
Softening point (°C) | 49.5 | ≧46 |
Ductility (5 cm/min, 5 °C, mm) | 78 | - |
Dynamic viscosity (60 °C) (Pa·s) | 280 | ≥180 |
Flash point (°C) | 310 | ≥260 |
Wax content (%) | 1.81 | ≤2.2 |
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Wang, X.; Ji, G.; Zhang, Y.; Guo, Y.; Zhao, J. Research on High- and Low-Temperature Characteristics of Bitumen Blended with Waste Eggshell Powder. Materials 2021, 14, 2020. https://doi.org/10.3390/ma14082020
Wang X, Ji G, Zhang Y, Guo Y, Zhao J. Research on High- and Low-Temperature Characteristics of Bitumen Blended with Waste Eggshell Powder. Materials. 2021; 14(8):2020. https://doi.org/10.3390/ma14082020
Chicago/Turabian StyleWang, Xuancang, Guanyu Ji, Yi Zhang, Yuchen Guo, and Jing Zhao. 2021. "Research on High- and Low-Temperature Characteristics of Bitumen Blended with Waste Eggshell Powder" Materials 14, no. 8: 2020. https://doi.org/10.3390/ma14082020
APA StyleWang, X., Ji, G., Zhang, Y., Guo, Y., & Zhao, J. (2021). Research on High- and Low-Temperature Characteristics of Bitumen Blended with Waste Eggshell Powder. Materials, 14(8), 2020. https://doi.org/10.3390/ma14082020