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<p>Figure 1 shows the concentration of PET repeat units and ethylene glycol over 125 hours. It is obvious that it takes some time for the concentration of enzymes to be high enough for the PET to be noticeably degraded. But once that threshold is reached, the plastic is degraded relatively quickly. The concentration of PET seems very high, but this is because of the conversion of solid PET to monomeric repeat units in that solid. This simulation was run on 10 grams of PET which translates to 52000 mM of repeat units. The ethylene glycol disappears due to the consumption of the cells as their carbon source. Figure 2 and Figure 3 better demonstrate this consumption. | <p>Figure 1 shows the concentration of PET repeat units and ethylene glycol over 125 hours. It is obvious that it takes some time for the concentration of enzymes to be high enough for the PET to be noticeably degraded. But once that threshold is reached, the plastic is degraded relatively quickly. The concentration of PET seems very high, but this is because of the conversion of solid PET to monomeric repeat units in that solid. This simulation was run on 10 grams of PET which translates to 52000 mM of repeat units. The ethylene glycol disappears due to the consumption of the cells as their carbon source. Figure 2 and Figure 3 better demonstrate this consumption. | ||
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Figure 1. Overall Model Consumption of PET and Production of EG | Figure 1. Overall Model Consumption of PET and Production of EG | ||
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+ | <p>Figure 2 shows cell number increase over the same simulation as Figure 1. The cell numbers reach very high levels as they are growing nearly exponentially the entire time. Only once the Ethylene glycol is all consumed does the system stabilize as start to decay. Figure 3. shows the degradation of PET as a solid overall in grams, instead of repeat unit concentration like in Figure 1.</p> | ||
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Revision as of 13:24, 1 August 2018