Answer:
a) k=2.07944 (1/hour)
b) [tex]P(t)=40e^{2.0794t}[/tex]
c) P(7)=83,886,080
Step-by-step explanation:
We know that the cells duplicates after 20 minutes (t=1/3 hours).
We can write a model of that as:
[tex]\frac{dP}{dt}=kP\\\\\frac{dP}{P}=kdt\\\\\int \frac{dP}{P}=k\int dt\\\\ln(P)+C_1=kt\\\\P=Ce^{kt}\\\\\\P(0)=40=Ce^0=C\\\\C=40\\\\\\P(1/3)=80=40e^{k*(1/3)}\\\\e^{k*(1/3)}=80/40=2\\\\k/3=ln(2)\\\\k=3*ln(2)=2.07944[/tex]
a) k=2.0794 h^(-1)
b) [tex]P(t)=40e^{2.0794t}[/tex]
c) [tex]P(7)=40e^{2.0794*7}=40*e^{14.556}=40*2,097,152=83,886,080[/tex]
