Using the method of shells, what is the volume of the solid formed by rotating y = sqrt(x) from x = 0 to 4 about the y-axis?

Unlock all questions

This demo includes only 20 questions. Upgrade to access hundreds of questions, flashcards, exam simulations, and disable ads.

Full question bankExam simulationsFlashcards
From $9.99Unlock all

Prepare for the AP Calculus BC Test. Study with flashcards and multiple choice questions, each question has hints and explanations. Maximize your exam performance!

Multiple Choice

Using the method of shells, what is the volume of the solid formed by rotating y = sqrt(x) from x = 0 to 4 about the y-axis?

Explanation:
Using cylindrical shells around the y-axis, take vertical slices. A slice at position x has radius equal to its distance from the y-axis, which is x, and its height is the vertical extent of the region from y = 0 up to y = √x, so height = √x. With thickness dx, the volume is V = ∫ from 0 to 4 of 2π(radius)(height) dx = ∫_0^4 2π x √x dx = 2π ∫_0^4 x^(3/2) dx. Evaluating, the antiderivative of x^(3/2) is (2/5)x^(5/2). Thus V = 2π * (2/5) [x^(5/2)]_0^4 = (4π/5) * 4^(5/2). Since 4^(5/2) = (√4)^5 = 2^5 = 32, the volume is V = (4π/5) * 32 = 128π/5.

Using cylindrical shells around the y-axis, take vertical slices. A slice at position x has radius equal to its distance from the y-axis, which is x, and its height is the vertical extent of the region from y = 0 up to y = √x, so height = √x. With thickness dx, the volume is

V = ∫ from 0 to 4 of 2π(radius)(height) dx = ∫_0^4 2π x √x dx = 2π ∫_0^4 x^(3/2) dx.

Evaluating, the antiderivative of x^(3/2) is (2/5)x^(5/2). Thus

V = 2π * (2/5) [x^(5/2)]_0^4 = (4π/5) * 4^(5/2).

Since 4^(5/2) = (√4)^5 = 2^5 = 32, the volume is

V = (4π/5) * 32 = 128π/5.

More Multiple Choice Questions
Subscribe

Get the latest from Examzify

You can unsubscribe at any time. Read our privacy policy