simulated landfill
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Author(s):  
Mochammad Arief Budihardjo ◽  
Yudha Gusti Wibowo ◽  
Bimastyaji Surya Ramadan ◽  
Muhamad Allan Serunting ◽  
Eflita Yohana ◽  
...  

Polymers ◽  
2021 ◽  
Vol 13 (7) ◽  
pp. 1014
Author(s):  
Quecholac-Piña Xochitl ◽  
Hernández-Berriel María del Consuelo ◽  
Mañón-Salas María del Consuelo ◽  
Espinosa-Valdemar Rosa María ◽  
Vázquez-Morillas Alethia

Different degradable plastics have been promoted as a solution for the accumulation of waste in landfills and the natural environment; in Mexico, the most popular options are oxo-degradable, which degrade in a sequential abiotic–biotic process, and compostable plastics. In this research, high-density polyethylene, oxo-degradable high-density polyethylene, and certified compostable plastic were exposed to simulated landfill conditions in an 854-day-long experiment to assess their degradation. High-density polyethylene showed limited degradation, due mainly to surface erosion, evidenced by a 13% decrease in elongation at break. The pro-oxidant additive in the oxo-degradable plastic increased this loss of mechanical properties to 27%. However, both plastic films kept their physical integrity and high molecular weight by the end of the experiment, evidencing degradation but no biodegradation. While the compostable film fragmented, had a lower molecular weight at the end of the experiment, and decreased the presence of C=O bonds, this degradation took place remarkably slower than expected from a composting process. Results show that oxo-degradable and compostable plastics will not biodegrade readily in landfills. This fact should be known and understood for decision-makers to match the characteristics of the materials to the features of the waste management systems.


Materials ◽  
2020 ◽  
Vol 13 (16) ◽  
pp. 3497
Author(s):  
Min Li ◽  
Rui Zhao ◽  
Sude Ma ◽  
Tianxue Yang

Scaling commonly occurs at pipe wall during landfill leachate collection and transportation, which may give rise to pipe rupture, thus posing harm to public health and environment. To prevent scaling, this study prepared a low surface energy nanocomposite by incorporating silicone-acrylate polymer and hydrophobically modified nano-SiO2 into the high-density polyethylene (HDPE) substrate. Through the characterization of contact angle, scanning electron microscopy and thermogravimetry, the results showed that the prepared composite has low wettability and surface free energy, excellent thermal stability and acid-base resistance. In addition, the prepared composite was compared with the commercial HDPE pipe material regarding their performance on anti-scaling by using an immersion test that places their samples into a simulated landfill leachate. It was apparent that the prepared composite shows better scaling resistance. The study further expects to provide insight into pipe materials design and manufacture, thus to improve landfill leachate collection and transportation.


2020 ◽  
Vol 198 ◽  
pp. 110641
Author(s):  
Xiaoyu Li ◽  
Wenchuan Ding ◽  
Siying Tan ◽  
Xiaolan Zeng

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