Study on the Preparation and Performance of Silicone-Modified Phenolic Resin Binder for Rail Grinding Wheels
Abstract
:1. Introduction
2. Results and Discussion
2.1. Synthesis Theory and Infrared Spectral Analysis of the Silicone-Modified Phenolic Resin
2.2. Effect of MTMS Content on Fluidity of the Silicone-Modified Phenolic Resin
2.3. Effect of MTMS Content on Curing Temperature of the Silicone-Modified Phenolic Resin
2.4. Effect of MTMS Content on Thermal Properties of the Silicone-Modified Phenolic Resin
2.5. Effect of MTMS Content on Mechanical Properties of the Silicone-Modified Phenolic Resin
2.6. Grinding Tests on Rail Grinding Wheels Prepared with Silicone-Modified Phenolic Resins with Different MTMS Contents
3. Experiment
3.1. Preparation of Silicone-Modified Phenolic Resin
3.2. Preparation and Curing of Silicone-Modified Phenolic Resin Molded Specimens
3.3. Materials and Characterization
4. Conclusions
- The infrared spectroscopy tests showed that the silicone-modified phenolic resin (SMPR) was synthesized by successively introducing Si-O and Si-C bonds with greater bonding energy in MTMS into the macromolecular chain structure of phenolic resin through transesterification reactions and copolymerization reactions under the catalysis of p-toluenesulfonic acid;
- The fluidity of silicone-modified phenolic resin (SMPR) was between 30 and 60 mm, exhibiting excellent processability;
- Differential scanning calorimeter results indicated that silicone-modified phenolic resin (SMPR) can be fully cured at temperatures greater than 160 °C and that the SMPR has a lower curing temperature than the unmodified conventional phenolic resin (UMPR);
- Thermogravimetric analysis revealed that the thermal stability performance of the MTMS-modified SMPR was superior to that of the UMPR. When the amount of MTMS was 40% of the phenol mass, the thermal weight loss temperature of the synthesized SMPR at 30% weight loss was approximately 66% higher than that of the UMPR, which exhibited the best thermal stability;
- According to the results of mechanical property testing, the bending strength and impact strength of SMPR modified with 40% MTMS were approximately 14% and 6% greater than those of UMPR, suggesting the best mechanical performance;
- The grinding test findings demonstrated that the grinding ratio of rail grinding wheels prepared with 40% MTMS-modified SMPR as a binder was approximately 39.6% higher than that of rail grinding wheels manufactured with UMPR, extending the service life of rail grinding wheels.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Sample Availability
References
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Sample | Mass/g | |||
---|---|---|---|---|
Phenol | MTMS | TsOH | POM | |
UMPR (MTMS-0%) | 94.11 | 0 | 0.94 | 24.02 |
SMPR (MTMS-10%) | 94.11 | 9.41 | 0.94 | 24.02 |
SMPR (MTMS-20%) | 94.11 | 18.82 | 0.94 | 24.02 |
SMPR (MTMS-30%) | 94.11 | 28.23 | 0.94 | 24.02 |
SMPR (MTMS-40%) | 94.11 | 37.64 | 0.94 | 24.02 |
SMPR (MTMS-50%) | 94.11 | 47.06 | 0.94 | 24.02 |
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Liu, P.; Yuan, T.; Peng, J.; Zou, W.; Xiao, F. Study on the Preparation and Performance of Silicone-Modified Phenolic Resin Binder for Rail Grinding Wheels. Molecules 2023, 28, 3400. https://doi.org/10.3390/molecules28083400
Liu P, Yuan T, Peng J, Zou W, Xiao F. Study on the Preparation and Performance of Silicone-Modified Phenolic Resin Binder for Rail Grinding Wheels. Molecules. 2023; 28(8):3400. https://doi.org/10.3390/molecules28083400
Chicago/Turabian StyleLiu, Pengzhan, Tianshun Yuan, Jin Peng, Wenjun Zou, and Furen Xiao. 2023. "Study on the Preparation and Performance of Silicone-Modified Phenolic Resin Binder for Rail Grinding Wheels" Molecules 28, no. 8: 3400. https://doi.org/10.3390/molecules28083400
APA StyleLiu, P., Yuan, T., Peng, J., Zou, W., & Xiao, F. (2023). Study on the Preparation and Performance of Silicone-Modified Phenolic Resin Binder for Rail Grinding Wheels. Molecules, 28(8), 3400. https://doi.org/10.3390/molecules28083400