Ask Question
21 May, 06:42

A company plans to enclose three parallel rectangular areas for sorting returned goods. The three areas are within one large rectangular area and 952 yd of fencing is available. What is the largest total area that can be enclosed? A rectangle has 2 horizontal sides and 2 vertical sides. Two vertical line segments divide the rectangle into 3 smaller rectangles.

+5
Answers (1)
  1. 21 May, 06:50
    0
    A (max) = 28322 yd²

    Dimensions:

    x = 238 yd

    y = 119 yd

    Step-by-step explanation:

    Let call "x" and "y" horizontal and vertical sides of the rectangle, then we have:

    The total area, sum of areas of the three small rectangles is:

    A (r) = x*y

    And the length to be fenced is

    P = 2*x + 2*y * 2*y

    P = 2*x + 4*y and 952 = 2*x + 4*y ⇒ y = (952 - 2*x) / 4

    Total area as function of x s:

    A (r) = x * y ⇒ A (x) = x * (952 - 2*x) / 4

    A (x) = 238*x - (1/2) * x²

    Taking derivatives on both sides of the equation we get:

    A' (x) = 238 - x ⇒ A' (x) = 0 ⇒ 238 - x = 0

    x = 238 yd

    Therefore y = (952 - 2*x) / 4

    y = (952 - 2 * 238) / 4

    y = 119 yd

    Largest area is:

    A (max) = y * x

    A (max) = 238 * 119

    A (max) = 28322 yd²
Know the Answer?
Not Sure About the Answer?
Find an answer to your question 👍 “A company plans to enclose three parallel rectangular areas for sorting returned goods. The three areas are within one large rectangular ...” in 📗 Mathematics if the answers seem to be not correct or there’s no answer. Try a smart search to find answers to similar questions.
Search for Other Answers