What is the arclength of $f(t) = (t-e^(t),t-2/t+3)$ on $t in [1,2]$ ?

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What is the arclength of $f(t) = (t-e^(t),t-2/t+3)$ on $t in [1,2]$ ?

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Answer 1 · 2018-01-17T05:02:05

$~4.298$

Explanation:

If we have a really small change in $t$ , we will travel according to the following equation:
$ds^2 = dx^2 + dy^2 = [((dx)/(dt))^2 +((dy)/(dt))^2]dt^2$
i.e.
$ds = dt sqrt(((dx)/(dt))^2 +((dy)/(dt))^2)$

The total length is therefore
$int_(t_0)^(t_f) ds = int_(t_0)^(t_f) sqrt(((dx)/(dt))^2 +((dy)/(dt))^2) dt$

Calculating the values,
$(dx)/(dt) = 1 - e^t$
$(dy)/(dt) = 1 + 2/t^2$

Therefore, plugging in the numbers, we have the equation
$int_(1)^(2) sqrt((( 1 - e^t )^2 +(1 + 2/t^2)^2) dt$

We can't solve this exactly (or at least not in any easy way if it is technically possible), so we plug this into a calculator such as WolframAlpha, getting the value around $4.298$ .

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What is the arclength of $f(t) = (t-e^(t),t-2/t+3)$ on $t in [1,2]$ ?

1 Answer

Explanation:

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1 Answer

Explanation:

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What is the arclength of $f(t) = (t-e^(t),t-2/t+3)$ on $t in [1,2]$ ?