Experimental Investigation on Mechanical Properties of Geocell Strips at Low Temperature
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Test Method
3. Results and Discussion
3.1. Stress–Strain Relationship and Fracture Mode of HDPE Specimens
3.2. Stress–Strain Relationship and Fracture Mode of PP Specimens
3.3. Stress–Strain Relationship and Fracture Mode of PET Specimens
3.4. Comparative Analysis of Test Results
4. Conclusions
- The elongation of the HDPE geocell strip is the largest, but the necking phenomenon occurs during the tension process. The PET and PP geocell strips have no obvious deformation during tension.
- The HDPE geocell has a good ductility, and the plastic deformation on fracture surface is obvious, which belongs to a ductile failure. At the room temperature, −5 °C, and −20 °C, the PET geocell strip has yield and strengthening stages, and the fracture surface is relatively smooth, which presents the feature of a hard ductile failure. However, at a temperature of −35 °C, the failure pattern of PET geocell strip turns to the brittle failure. There is no plastic deformation on the fracture surface of the PP geocell strip under various temperature conditions, which conforms to the feature of brittle failure.
- When the temperature decreases from the room temperature to −35 °C, the tensile strengths of the HDPE and PET strips are increased by 53% and 21.4%, respectively, while the tensile strength of PP geocell strips has no obvious regularity. The temperature sensitivity of the three geocell strips from high to low is as follows: HDPE, PET, and PP.
- The elongation of PET strip at failure is higher than that of the PP strip at the room temperature, −5 °C, and −20 °C, and the elongation of the PET strip at failure is slightly lower than that of the PP specimen at −35 °C. In cold regions, the overall tensile properties of the PET geocell specimens are more favorable than those of HDPE and PP geocell specimens.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Material | Specimen Width/mm | Specimen Thickness/mm | Length of Gauge/mm |
---|---|---|---|
HDPE | 100 | 1.1 | 20 |
PP | 100 | 0.5 | 20 |
PET | 100 | 0.5 | 20 |
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Bai, Q.; He, G.; Wang, Y.; Liu, J. Experimental Investigation on Mechanical Properties of Geocell Strips at Low Temperature. Materials 2022, 15, 5456. https://doi.org/10.3390/ma15155456
Bai Q, He G, Wang Y, Liu J. Experimental Investigation on Mechanical Properties of Geocell Strips at Low Temperature. Materials. 2022; 15(15):5456. https://doi.org/10.3390/ma15155456
Chicago/Turabian StyleBai, Qiyu, Guofeng He, Yong Wang, and Jie Liu. 2022. "Experimental Investigation on Mechanical Properties of Geocell Strips at Low Temperature" Materials 15, no. 15: 5456. https://doi.org/10.3390/ma15155456
APA StyleBai, Q., He, G., Wang, Y., & Liu, J. (2022). Experimental Investigation on Mechanical Properties of Geocell Strips at Low Temperature. Materials, 15(15), 5456. https://doi.org/10.3390/ma15155456