Compute arclengths related to two-dimensional parametric/vector equations.
Subsection7.3.1Activities
Example7.3.1.
In Figure 166, the blue curve is the graph of the parametric equations \(x=t^2\) and \(y=t^3\) for \(1\leq t\leq 2\text{.}\) This curve connects the point \((1,1)\) to the point \((4,8)\text{.}\) The red dashed line is the straight line segment connecting these points.
Activity7.3.2.
Let’s first investigate the length of the dashed red line segment in Figure 166.
(a)
Draw a right triangle with the red dashed line segment as its hypotenuse, one leg parallel to the \(x\)-axis, and the other parallel to the \(y\)-axis.
How long are these legs?
\(3\) and \(7\text{.}\)
\(4\) and \(8\text{.}\)
\(3\) and \(8\text{.}\)
\(4\) and \(7\text{.}\)
(b)
The Pythagorean theorem states that for a right triangle with leg lengths \(a,b\) and hypotenuse length \(c\text{,}\) we have...
\(a=b=c\text{.}\)
\(a+b=c\text{.}\)
\(a^2=b^2=c^2\text{.}\)
\(a^2+b^2=c^2\text{.}\)
(c)
Using the leg lengths and Pythagorean theorem, how long must the red dashed hypotenuse be?
\(\sqrt{20}\approx 4.47\text{.}\)
\(\sqrt{58}\approx 7.62\text{.}\)
\(\sqrt{67}\approx 8.19\text{.}\)
\(\sqrt{100}=10\text{.}\)
(d)
Compared with the blue parametric curve connecting the same two points, is the red dashed line segement length an overestimate or underestimate?
Overestimate: the blue curve is shorter than the red line.
Underestimate: the blue curve is longer than the red line.
Exact: the blue curve is exactly as long as the red line.
Fact7.3.3.
Recall that the linear distance between two points \((x_1,y_1)\) and \((x_2,y_2)\) may be computed by the distance formula
Note that \(\Delta x=|x_2-x_1|\) and \(\Delta y=|y_2-y_1|\) measure leg lengths of a right triangle whose hypotenuse is the distance we want to measure, so we may rewrite this formula as
This formula will need to be modified to measure a curved path between two points.
Observation7.3.4.
By approximating the curve by several (say \(N\)) segements connecting points along the curve, we obtain a better approximation than a single line segment. For example, the illustration shown in Figure 167 gives three segments whose distances sum to about \(7.6315\text{,}\) while the actual length of the curve turns out to be about \(7.6337\text{.}\)
Activity7.3.5.
How should we modify the distance formula \(\sqrt{(\Delta x)^2+(\Delta y)^2}\) to measure arclength as illustrated in Figure 167?
(a)
Let \(\Delta L_1,\Delta L_2,\Delta L_3\) describe the lengths of each of the three segements. Which expression describes the total length of these segments?
We can let each \(\Delta L_i=\sqrt{(\Delta x_i)^2+(\Delta y_i)^2}\text{.}\) But we will find it useful to involve the parameter \(t\) as well, or more accurately, the change \(\Delta t_i\) of \(t\) between each point of the subdivision.
Which of these is algebraically the same as the above formula for \(\Delta L_i\text{?}\)
by checking to make sure it matches the distance formula for line segments.
The parametric equations \(x=3t-1\) and \(y=2-4t\) for \(1\leq t\leq 3\) represent the segment of the line \(y=-\frac{4}{3}x-\frac{2}{3}\) connecting \((2,-2)\) to \((8,-10)\text{.}\)
(a)
Find \(dx/dt\) and \(dy/dt\text{,}\) and substitute them into the formula above along with \(a=1\) and \(b=3\text{.}\)
(b)
Show that the value of this formula is \(10\text{.}\)
(c)
Show that the length of the line segment connecting \((2,-2)\) to \((8,-10)\) is \(10\) by applying the distance formula directly instead.
to write a definite integral that computes the given length. (Do not evaluate the integral.)
(a)
The portion of \(x=\sin 3t, y=\cos 3t\) where \(0\leq t\leq \pi/6\text{.}\)
(b)
The portion of \(x=e^t, y=\ln t\) where \(1\leq t\leq e\text{.}\)
(c)
The portion of \(x=t+1, y=t^2\) between the points \((3,4)\) and \((5,16)\text{.}\)
Activity7.3.9.
Let’s see how to modify \(\int_{t=a}^{t=b} \sqrt{\left(\frac{dx}{dt}\right)^2+\left(\frac{dy}{dt}\right)^2}dt\) to produce the arclength of the graph of a function \(y=f(x)\text{.}\)
(a)
Let \(x=t\text{.}\) How can \(\frac{dx}{dt}\) be simplified?
\(\displaystyle dx\)
\(\displaystyle dt\)
\(\displaystyle 1\)
\(\displaystyle 0\)
(b)
Given \(x=t\text{,}\) how should \(\frac{dy}{dt}\) and \(dt\) be rewritten?
\(\frac{dy}{dt}=\frac{dy}{dx}\) and \(dt=dx\text{.}\)
\(\frac{dy}{dt}=\frac{dx}{dt}\) and \(dt=dx\text{.}\)
\(\frac{dy}{dt}=\frac{dy}{dx}\) and \(dt=1\text{.}\)
\(\frac{dy}{dt}=\frac{dy}{dt}\) and \(dt=1\text{.}\)
(c)
Write a modified, simplified formula for \(\int_{t=a}^{t=b} \sqrt{\left(\frac{dx}{dt}\right)^2+\left(\frac{dy}{dt}\right)^2}dt\) with \(t\) replaced with \(x\text{.}\)