Asked by bob
a particle moves along the x axis in such a way that its acceleration at time t, t>0 , is given by x(t)= (ln x)^2. at what value of t does the velocity of the particle attain its maximum
Answers
Answered by
Anonymous
velocity has max when acceleration is zero
I assume x(t) = (ln t)^2 which is zero at t=1.
I assume x(t) = (ln t)^2 which is zero at t=1.
Answered by
MathMate
Assuming the function is
x(t)=(ln(t))^2
then t has a vertical asymptote at x=0.
which explains why the domain of x(t) is set at x>0.
To find the maximum, we need to find
x'(t)=0
where
x'(t)=2ln(t)/t
and x'(t)=0 at t=1.
Check if maximum or minimum by finding x"(t)=2/t^2 - 2ln(t)/t
so
x"(1)=2 >0
Hence t=1 is a minimum.
Therefore, the function has no maximum, as it increases indefinitely as t inreases for t>1.
x(t)=(ln(t))^2
then t has a vertical asymptote at x=0.
which explains why the domain of x(t) is set at x>0.
To find the maximum, we need to find
x'(t)=0
where
x'(t)=2ln(t)/t
and x'(t)=0 at t=1.
Check if maximum or minimum by finding x"(t)=2/t^2 - 2ln(t)/t
so
x"(1)=2 >0
Hence t=1 is a minimum.
Therefore, the function has no maximum, as it increases indefinitely as t inreases for t>1.
There are no AI answers yet. The ability to request AI answers is coming soon!
Submit Your Answer
We prioritize human answers over AI answers.
If you are human, and you can answer this question, please submit your answer.