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Differential equations (1 Viewer)

Affinity

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I asked my teacher if the following would be ok in exams, he answered: it might cost me marks. Could anyone give their opinion?

given dN/dt= k(N-B) find N in terms of t.

dN/dt= k(N-B)

1/(N-B) dN = k dt

/
| 1/(N-B) dN =
/

/
| k dt
/


ln | N - B | = kt + C

N - B = e^(kt + C)
N = Ae^kt + B For some constant A.
 

Lazarus

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You'd only lose marks if the question had specifically asked you to employ some other method. I can't see anything wrong with what you've done; it's the standard process for backtracking from a differential equation.
 

kini mini

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That seems perfectly valid to me, in fact it's the usual on as Laz said.

Why would you lose marks for it? Did your teacher explain?
 

Harimau

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Originally posted by Affinity
I asked my teacher if the following would be ok in exams, he answered: it might cost me marks. Could anyone give their opinion?

given dN/dt= k(N-B) find N in terms of t.

dN/dt= k(N-B)

1/(N-B) dN = k dt

/
| 1/(N-B) dN =
/

/
| k dt
/


ln | N - B | = kt + C

N - B = e^(kt + C)
N = Ae^kt + B For some constant A.
My tutor taught me the same thing, and i think it might actually even be considered superior compared to the other method of guessing the answer and differentiating it...
 

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