ху dr dy (x² + y²)'

Calculus: Early Transcendentals
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Chapter1: Functions And Models
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Evaluating integrals Evaluate the following integral as they are written.

ху
dr dy
(x² + y²)'
Transcribed Image Text:ху dr dy (x² + y²)'
Expert Solution
Step 1: Given

The integral, 1214xyx2+y22dx dy.

Step 2: To determine

To evaluate the integral, 1214xyx2+y22dx dy.

Let, 1214xyx2+y22dx dy ----1.

First integrating the above integral with respect to x and keeping y constant, we get

1214xyx2+y22dx dy=12y14xx2+y22dx dy.

Now, substituting u=x2+y2du=2xdx. Implies when x=1u=y2+1 and when x=4u=y2+16.

1214xyx2+y22dx dy=12yy2+1y2+1612u2dx dy

 

Step 3

Therefore,

1214xyx2+y22dx dy=12yy2+1y2+1612u2dx dy=12y2y2+1y2+161u2du dy=12y2-1uy2+1y2+16 dy ----xndx=xn+1n+1+C=12y2-1y2+16+1y2+1y2+1y2+16 dy =12y215y2+1y2+16 dy =15212yy2+1y2+16 dy  ----2

Step 4

Thus, integrating equation (2) with respect to y, we get

1214xyx2+y22dx dy=15212yy2+1y2+16 dy.

Now taking partial fraction of yy2+1y2+16=y15y2+1-y15y2+16.

1214xyx2+y22dx dy=15212y15y2+1dy-12y15y2+16 dy.

Next, substitute u=y2+1du=2y dy in 12y15y2+1dy .

Such that when y=1u=2 and when y=2u=5.

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