Ask Question
28 November, 00:27

If xy^2 = 20, and x is decreasing at the rate of 3 units per second, the rate at which y is changing when y = 2 is nearest to?

+5
Answers (1)
  1. 28 November, 02:24
    0
    Xy^2 = 20 = > y^2 = 20/x

    [y^2]' = [20/x]'

    2y [dy/dt] = [-20/x^2] [dx/dt]

    dy/dt = [-10/yx^2] [dx/dt]

    [dx/dt] = - 3 u/s ... (the negative sign was included to account for decreasing)

    y = 2 = > x (2) ^2 = 20 = > x = 20/4 = 5

    dy/dt = [-10 / (2*5^2) ] [ - 3]

    dy/dt = [-1/5][ - 3] = 3/5

    Answer: dy/dt = 3/5 units/s
Know the Answer?
Not Sure About the Answer?
Find an answer to your question ✅ “If xy^2 = 20, and x is decreasing at the rate of 3 units per second, the rate at which y is changing when y = 2 is nearest to? ...” in 📘 Mathematics if you're in doubt about the correctness of the answers or there's no answer, then try to use the smart search and find answers to the similar questions.
Search for Other Answers