Q18P Question: Show that satisfies u(... [FREE SOLUTION]

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Chapter 4: Q18P (page 238)

Question: Show that satisfies $u (x, y) = \frac{y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t) d t}{{(x - t)}^{2} + y^{2}} satisfies u_{x x} + u_{y y} = 0$ .

Short Answer

Expert verified

$u_{x x} + u_{y y} = 0 .$

Step by step solution

Given Information

Given that $u (x, y) = \frac{y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t) dt}{{(x - t)}^{2} + y^{2}}$ .

Formula Used

We know that $\frac{d}{d x} {鈭�}_{u (x)}^{v (x)} f (x, t) d t = f (x, v) \frac{d v}{d x} - f (x, u) \frac{d u}{d x} + {鈭�}_{u}^{v} \frac{鈭� f}{鈭� x} d t$ $\frac{d}{d x} {鈭�}_{u (x)}^{v (x)} f (x, t) d t = f (x, v) \frac{d v}{d x} - f (x, u) \frac{d u}{d x} + {鈭�}_{u}^{v} \frac{鈭� f}{鈭� x} d t$

Showing that uxx+uyy=0.

Using the formula

$u_{x} = \frac{y}{蟺} [\frac{f (鈭�)}{{(x - 鈭�)}^{2} . y^{2}} \frac{d}{d x} (鈭�) - \frac{f (鈭�)}{{(x + 鈭�)}^{2} + y^{2}} \frac{d}{d x} (- 鈭�) + {鈭�}_{- 鈭�}^{鈭�} \frac{鈭�}{鈭� x} [\frac{f (t)}{{(x - t)}^{2} + y^{2}}] d t] = \frac{y}{蟺} [0 - 0 + {鈭�}_{- 鈭�}^{鈭�} \frac{- 2 (x - t) f (t)}{{({(x - t)}^{2} + y^{2})}^{2}} d t] = \frac{- 2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{(x - t) f (t)}{{({(x - t)}^{2} + y^{2})}^{2}} d t$

Solving further

localid="1659349480594" $u_{x x} = \frac{- 2 y}{蟺} [\frac{(x - 鈭�) f (鈭�)}{{(x - 鈭�)}^{2} + y^{2}} \frac{d}{d x} (鈭�) - \frac{(x + 鈭�) f (鈭�)}{{(x + 鈭�)}^{2} + y^{2}} \frac{d}{d x} (- 鈭�) + {鈭�}_{- 鈭�}^{鈭�} \frac{鈭�}{鈭� x} [\frac{x - t}{{({(x - t)}^{2} + y^{2})}^{2}}] f (t) d t] = \frac{- 2 y}{蟺} [0 - 0 + {鈭�}_{- 鈭�}^{鈭�} \frac{{({(x - t)}^{2} + y^{2})}^{2} (1) - (x - t) ({(x - t)}^{2} + y^{2}) 2 (x - t)}{{({(x - t)}^{2} + y^{2})}^{4}} f (t) d t] = \frac{- 2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{({(x - t)}^{2} + y^{2}) [{(x - t)}^{2} + y^{2} - 4 {(x - t)}^{2}]}{{({(x - t)}^{2} + y^{2})}^{4}} f (t) d t = \frac{- 2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{y^{2} - 3 {(x - t)}^{2}}{{({(x - t)}^{2} + y^{2})}^{3}} f (t) d t = \frac{- 2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{y^{2} - 3 {(x - t)}^{2}}{{({(x - t)}^{2} + y^{2})}^{3}} f (t) d t$

Solving further

localid="1659350725416" $u (x, y) = \frac{y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t)}{{(x - t)}^{2} + y^{2}} = \frac{y}{蟺} [\frac{f (鈭�)}{{(x - 鈭�)}^{2} + y^{2}} \frac{d}{d y} (鈭�) - \frac{f (- 鈭�)}{{(x - 鈭�)}^{2} + y^{2}} \frac{d}{d y} (- 鈭�) + {鈭�}_{- 鈭�}^{鈭�} \frac{鈭�}{鈭� y} [\frac{1}{{(x - t)}^{2} + y^{2}}] f (t) d t] + \frac{y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t)}{{(x - t)}^{2} + y^{2}} u_{y} = \frac{- 2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{y f (t)}{{({(x - t)}^{2} + y^{2})}^{2}} d t + \frac{1}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t) d t}{{(x - t)}^{2} + y^{2}}$

Solving for $u_{y y}$

$u_{y y} = \frac{- 2 y}{蟺} [\frac{y f (鈭�)}{{({(x - 鈭�)}^{2} + y^{2})}^{2}} \frac{d}{d y} (鈭�) - \frac{y f (- 鈭�)}{({(x + 鈭�)}^{2} + y^{2})} \frac{d}{d y} (- 鈭�) + {鈭�}_{- 鈭�}^{鈭�} \frac{鈭�}{鈭� x} [\frac{y f (t)}{{({(x - t)}^{2} + y^{2})}^{2}}] d t + (\frac{- 2}{蟺}) {鈭�}_{- 鈭�}^{鈭�}] = \frac{1}{蟺} [\frac{f (鈭�)}{{(x - 鈭�)}^{2} + y^{2}} \frac{d}{d y} (鈭�) + {鈭�}_{- 鈭�}^{鈭�} \frac{鈭�}{鈭� y} (\frac{f (t)}{{(x - t)}^{2} + y^{2}}) d t] = \frac{- 2 y}{蟺} [0 - 0 + (\frac{({(x - t)}^{2} + y^{2}) (1) y^{2} ({(x - t)}^{2} + y^{2}) 2 y}{{({(x - t)}^{2} + y^{2})}^{4}})] + [\frac{y f (t)}{{({(x - t)}^{2} + y^{2})}^{2}}] d t + (\frac{- 2}{蟺}) {鈭�}_{- 鈭�}^{鈭�} = \frac{1}{蟺} [0 - 0 {鈭�}_{- 鈭�}^{鈭�} \frac{- 2 y}{{({(x - t)}^{2} + y^{2})}^{2}} f (t) d t] = \frac{- 2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{({(x - t)}^{2} - 3 y^{2} f (t))}{{({(x - t)}^{2} + y^{2})}^{3}} d t - \frac{4 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t) d t}{{({(x - t)}^{2} + y^{2})}^{2}}$

$u_{x x} + u_{y y} = \frac{- 2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{y^{2} - 3 (x - t) 2}{{({(x - t)}^{2} + y^{2})}^{3}} f (t) d t - \frac{2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} [\frac{({(x - t)}^{2} + 3 y^{2})}{{({(x - t)}^{2} + y^{2})}^{3}} f (t) d t - \frac{4 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t) d t}{{({(x - t)}^{2} + y^{2})}^{2}}] = \frac{- 2 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{- 2 [{(x - t)}^{2} + y^{2}]}{{({(x - t)}^{2} + y^{2})}^{3}} = - \frac{4 y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t) d t}{{({(x - t)}^{2} + y^{2})}^{2}} = 0$

Hence $u_{x x} + u_{y y} = 0 .$ .

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91影视

Question: Show that satisfies $u (x, y) = \frac{y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t) d t}{{(x - t)}^{2} + y^{2}} satisfies u_{x x} + u_{y y} = 0$ .

Short Answer

Step by step solution

Given Information

Formula Used

Showing that uxx+uyy=0.

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91影视

Question: Show that satisfies u(x,y)=y蟺鈭�-鈭�鈭�f(t)dt(x-t)2+y2satisfiesuxx+uyy=0.

Short Answer

Step by step solution

Given Information

Formula Used

Showing that uxx+uyy=0.

One App. One Place for Learning.

Most popular questions from this chapter

Recommended explanations on Physics Textbooks

Engineering Physics

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Study anywhere. Anytime. Across all devices.

Question: Show that satisfies $u (x, y) = \frac{y}{蟺} {鈭�}_{- 鈭�}^{鈭�} \frac{f (t) d t}{{(x - t)}^{2} + y^{2}} satisfies u_{x x} + u_{y y} = 0$ .