Asked by Steven
A viral preparation was inactivated in a chemical bath. The activation process was found to be first order in virus concentration. The beginning of the experiment 2% of the virus was found to be inactivated per minute.
[i] Evaluate k for the inactivation process in units (1/s).
[ii] How much time would be required for the virus to become 50% inactivated?
[iii] How much time would be required for the virus to become 75% inactivated?
[i] Evaluate k for the inactivation process in units (1/s).
[ii] How much time would be required for the virus to become 50% inactivated?
[iii] How much time would be required for the virus to become 75% inactivated?
Answers
Answered by
DrBob222
ln(No/N) = kt
No = 100
N = 98
k is to be found
time is 1 min or 60 seconds depending upon how the answer is to be displayed.
For #2, N is 50
For #3 N = 25.
No = 100
N = 98
k is to be found
time is 1 min or 60 seconds depending upon how the answer is to be displayed.
For #2, N is 50
For #3 N = 25.
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