Effect of Fungi Removal Method on the Mechanical Properties of Polymer Composites Reinforced with Oat and Millet Husks †
Abstract
:1. Introduction
2. Materials
2.1. Composite Materials
- A composite with a PVC matrix and pulverized oat husk filler;
- A composite with a PVC matrix and pulverized millet husk filler.
2.2. Testing Specimens
- Reference specimens;
- Test specimens (exposed to water and fungi);
- Control specimens for the determination of dry mass.
- Ten specimens for series 1 and 3;
- Forty specimens for series 2, including two methods of cleaning (by brushing and with water under pressure) and two methods of testing (loss in mass and flexural strength), which required 10 specimens for each version.
3. Methods
3.1. Mass Loss of Composites after Exposure to Coniophora Puteana
3.1.1. Pre-Conditioning by Soaking in Water
3.1.2. Determination of Initial Dry Mass
3.1.3. Preparing Fungi for the Test
3.1.4. Assessment of Fungal Activity
3.1.5. Mass Loss Test
3.2. Bending Strength and Modulus of Elasticity after Exposure to Coniophora Puteana
4. Results and Discussion
Bending Strength and Modulus of Elasticity after Exposure to Coniophora Puteana
5. Conclusions
- The mass loss regardless of the mycelium removal method was 0.3% compared to the initial state.
- Brushed specimens showed slightly higher flexural strength and a higher modulus of elasticity than the specimens cleaned with water under pressure.
- The method of mycelium removal does not significantly affect the physical and mechanical properties of the oat filler composite.
- The mass loss of the specimens varies depending on the method of mycelium removal. Cleaning with water under pressure resulted in the highest mass loss at 2.3%, while the brush-cleaned specimens had a mass loss of 0.8%.
- The results of the flexural strength and modulus of elasticity tests also confirm the loss in mass of the specimens. The millet husk-composite after water cleaning showed higher results, including after brushing, compared to the oat husk composite.
- The differences in the results with different cleaning methods may be caused by the microstructure of millet husk fillers.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Marking | Matrix | Mineral Filler (Type/Share 1) | Natural Filler (Type/Share 1) | Other 2 |
---|---|---|---|---|
Oat | PVC | CaCO3/ 50 phr | Pulverized oat husks/ 30 phr | Physical modifiers, stabilizers; polyethylene wax |
Millet | Pulverized millet husks/ 30 phr |
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Goron, M.; Sudoł, E. Effect of Fungi Removal Method on the Mechanical Properties of Polymer Composites Reinforced with Oat and Millet Husks. Mater. Proc. 2023, 13, 33. https://doi.org/10.3390/materproc2023013033
Goron M, Sudoł E. Effect of Fungi Removal Method on the Mechanical Properties of Polymer Composites Reinforced with Oat and Millet Husks. Materials Proceedings. 2023; 13(1):33. https://doi.org/10.3390/materproc2023013033
Chicago/Turabian StyleGoron, Maria, and Ewa Sudoł. 2023. "Effect of Fungi Removal Method on the Mechanical Properties of Polymer Composites Reinforced with Oat and Millet Husks" Materials Proceedings 13, no. 1: 33. https://doi.org/10.3390/materproc2023013033
APA StyleGoron, M., & Sudoł, E. (2023). Effect of Fungi Removal Method on the Mechanical Properties of Polymer Composites Reinforced with Oat and Millet Husks. Materials Proceedings, 13(1), 33. https://doi.org/10.3390/materproc2023013033