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| + | <p> We infer PLA can degrade to lactate that could enter into metabolic cycle of anaerobic bacteria, generating CH4 (methane) and/or CO2 . This condition with no oxygen could be found it at typical landfills so in a hypothetical situation where PLA would be established in our society (it means we would use PLA instead of fossil plastic) huge amount of PLA could aggravate the global warming (due to greenhouse gases) . Nevertheless, a controlling degradation of PLA would permit take advantage of CH4 gene- |
| + | ration to produce energy if it is combusted and would help reduce the effects of climate change. If we implemented our project in long term we would promote cultivation of macroalgae which could contribute to economic development of Chile. Also, macroalgae don’t require arable land, fertilizer or fresh water resources and is a renewable resource , so it is a better alternative than corn cultivation. Nevertheless, a Chilean regulation of macroalgae uses should be constantly checked to avoid overexploitation and imbalance of natural ecosystem where macroalgae live. </p> |
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| + | <p>We think one advantage of using macroalgae it we could make a close-cycle; it means macroalgae would consume environmental CO2 generated in the PLA production process, allowing global reduction of CO2. In the case of fossils plastic this wouldn’t occur due to fossils plastic are made of fossil combustible which positively contribute to global CO2 amount if they are partially degraded or combusted . </p> |
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