Answer:
1) Recursive definition: [tex]p_n = (50,000)3^n[/tex]
2) At the beginning of the 4th interval
Explanation:
1)
The initial population of the bacteria at time zero is
[tex]p_0 = 50,000[/tex]
Here we are told that the reading is taken every two hours; we call this time interval "n", so
[tex]n=2 h[/tex]
And also, after every time interval n, the number of bacteria has tripled.
This means that when n = 1,
[tex]p_1 = 3 p_0[/tex]
And when n=2,
[tex]p_2 = 3 p_1 = 3(3p_0)=9 p_0[/tex]
Applied recursively, we get
[tex]p_n = 3^n p_0[/tex]
And substituting p0,
[tex]p_n = (50,000)3^n[/tex] (1)
2)
Here we want to find at the beginning of which interval there are
[tex]p=1,350,000[/tex]
bacteria.
This means that we can rewrite eq.(1) as
[tex]1,350,000=(50,000)3^n[/tex]
By simplifying,
[tex]27=3^n[/tex]
Which means that
[tex]n=3[/tex]
However, this means that the number of bacteria is 1,350,000 after 3 time intervals; therefore, at the beginning of the 4th interval.
