Answer to Question #338365 in Differential Equations for Jas

Question #338365

Activity 1:

Solve the following problems applying the concepts learned above. Write your answer on a separate sheet of paper. (Show your solution)

1. The rate of change x is proportional to x. When t =0, x0 = 3 and when t =2, x=6. What is the value of x when t =4?

2. A certain plutonium isotope decays at a rate proportional to the amount present. Approximately 15% of the original amount decomposes in 100 years. How much amount of the substance has decayed after 600 years? Also, find the half - life t1/2 of this radioactive substance ; that is, find the time required for this substance to decay to one- half of its original amount.

Expert's answer

"dx\/dt=kx"

"\\dfrac{dx}{x}=kdt"

"\\int \\dfrac{dx}{x}=\\int kdt"

"\\ln |x|=kt+\\ln C"

"x=Ce^{kt}"

Given "x(0)=3"

"3=Ce^{0}=>C=3"

"x=3e^{kt}"

Given "x(2)=6"

"6=3e^{k(2)}"

"2k=\\ln 2"

"k=\\dfrac{\\ln 2}{2}"

"x=3(2)^{t\/2}"

Then

"x(4)=3(2)^{4\/2}"

"x(4)=12"

"N=\\dfrac{1}{k}\\dfrac{dN}{dt}"

"\\dfrac{dN}{N}=kdt"

"\\int \\dfrac{dN}{N}=\\int kdt"

"\\ln |N|=kN+\\ln C"

"N(t)=N_0e^{kt}"

Given "N(100)=0.85N_0"

"0.85N_0=N_0e^{100k}"

"k=0.01\\ln0.85"

"N(t)=N_0(0.85)^{t\/100}"

Then

"N(600)=N_0(0.85)^{600\/100}"

"N(600)=0.37715N_0"

"100-37.715=62.285"

Approximately 62.285% of the original amount decomposes in 600 years.

"N(t_{1\/2})=N_0\/2=N_0(0.85)^{t_{1\/2}\/100}"

"t_{1\/2}=100(\\dfrac{\\ln0.5}{\\ln0.85})"

"t_{1\/2}=426.5\\ years"

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Answer to Question #338365 in Differential Equations for Jas

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