Team:ETH Zurich/modeling/diffmodel

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(Difference between revisions)
(Equations)
(Equations)
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The flow of internal AHL diffusing from the cells into the bead compartment is  
The flow of internal AHL diffusing from the cells into the bead compartment is  
-
$$N \sigma \mathcal{A} ([AHL_{int}-[AHL_{ext}]]) $$
+
$$N \sigma \mathcal{A} ([AHL_{int}]-[AHL_{ext}]) $$
where N is the total number of cells.
where N is the total number of cells.
Thus the diffusion rate of internal AHL (concentration per second) is :
Thus the diffusion rate of internal AHL (concentration per second) is :
-
$$Diff(AHL_{int})=\frac{\sigma \mathcal{A}}{V_{E. coli}} ([AHL_{ext}-[AHL_{int}]])=D_m ([AHL_{ext}-[AHL_{int}]])$$
+
$$Diff(AHL_{int})=\frac{\sigma \mathcal{A}}{V_{E. coli}} ([AHL_{ext}]-[AHL_{int}])=D_m ([AHL_{ext}-[AHL_{int}]])$$
and the diffusion rate of external AHL is
and the diffusion rate of external AHL is
-
$$Diff(AHL_{ext})=\frac{N \sigma \mathcal{A}}{V_{ext}} ([AHL_{ext}-[AHL_{int}]])= \frac{N V_{E.coli}}{V_{bead}}D_m([AHL_{ext}-[AHL_{int}]])$$
+
$$Diff(AHL_{ext})=\frac{N \sigma \mathcal{A}}{V_{ext}} ([AHL_{ext}]-[AHL_{int}])= \frac{N V_{E.coli}}{V_{bead}}D_m([AHL_{ext}]-[AHL_{int}])$$
$$
$$

Revision as of 16:28, 15 October 2014

iGEM ETH Zurich 2014