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?

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asked Jun 4, 2017 211k views

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Badroit · Answer 1 · 2017-06-09T02:25:06+0000

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

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?

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