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<p style="text-align: justify;">The cumulative energy demand is a valuable parameter to assess the sustainability performance of a process, rather than only focussing on the impacts generated by the use of substances. In Figure 3 can be observed that the Pre-treatment processing entails a great number of operations, for that is not surprising that is contributing with highest impact to the overall life cycle.</p> | <p style="text-align: justify;">The cumulative energy demand is a valuable parameter to assess the sustainability performance of a process, rather than only focussing on the impacts generated by the use of substances. In Figure 3 can be observed that the Pre-treatment processing entails a great number of operations, for that is not surprising that is contributing with highest impact to the overall life cycle.</p> | ||
<p style="text-align: center;"><strong><img src="https://static.igem.org/mediawiki/2018/3/38/T--Edinburgh_OG--LCA_-_2.14.png" width="725" height="423" /></strong></p> | <p style="text-align: center;"><strong><img src="https://static.igem.org/mediawiki/2018/3/38/T--Edinburgh_OG--LCA_-_2.14.png" width="725" height="423" /></strong></p> | ||
− | <p style="text-align: center;"><strong>Figure 14 </strong>Life Cycle Assessment using the Cumulative Energy Demand method for the model of 1 kg EPS degradation with 1.5% of visualisation.<strong>Recommendations</strong></p> | + | <p style="text-align: center;"><strong>Figure 14 </strong>Life Cycle Assessment using the Cumulative Energy Demand method for the model of 1 kg EPS degradation with 1.5% of visualisation.</p> |
+ | <strong>Recommendations</strong></p> | ||
<p style="text-align: justify;">The percentages for both methods, the CML-IA and Cumulative Energy, pointed the Pre-treatment process as the most expensive in terms of energy demand and environmental impacts, making it susceptible for more study and research for making it more affordable.</p> | <p style="text-align: justify;">The percentages for both methods, the CML-IA and Cumulative Energy, pointed the Pre-treatment process as the most expensive in terms of energy demand and environmental impacts, making it susceptible for more study and research for making it more affordable.</p> | ||
<p style="text-align: justify;">In an optimal condition of EPS pyrolysis and energy optimisation of the pre-treatment processing are achieved then the impacts should show a decrease. Making the whole life cycle more feasible. Correspondingly, the second step to improve is the yield of styrene degradation as the current rate is approximately 600 mg/L per 48 hours of fermentation. One possible scenario is the use of only the enzymes for the styrene degradation or couple a bioprocess of production, in that way the charge of energy and materials of the fermentation can be cushioned by the production of a high-value compound.</p> | <p style="text-align: justify;">In an optimal condition of EPS pyrolysis and energy optimisation of the pre-treatment processing are achieved then the impacts should show a decrease. Making the whole life cycle more feasible. Correspondingly, the second step to improve is the yield of styrene degradation as the current rate is approximately 600 mg/L per 48 hours of fermentation. One possible scenario is the use of only the enzymes for the styrene degradation or couple a bioprocess of production, in that way the charge of energy and materials of the fermentation can be cushioned by the production of a high-value compound.</p> |
Revision as of 12:44, 17 October 2018