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Term Test 1 / Re: TT1 Problem 3 (morning)
« on: October 19, 2018, 09:23:34 AM »
(a)
$
U_{xx} = \frac{\partial}{\partial x} \frac{\partial}{\partial x} U \\
= \frac{\partial}{\partial x} 8y^3 -24x^2 y +5 \\
= -48xy \\
\\
U_{yy} = \frac{\partial}{\partial y} \frac{\partial}{\partial y} U \\
= \frac{\partial}{\partial y} 24x y^2 - 8x^3 \\
= 48xy \\
U_{xx} + U_{yy} = -48xy + 48xy = 0
$
Thus, U is harmonic.
(b)
By Cauchy Reimann:
$
V_y = U_x = 8y^3 - 24x^2 y + 5
\Rightarrow V = 2y^4 - 12 x^2 y^2 +5y +h(x)\\
V_x = -U_y = -24x y^2 + 8x^3
\Rightarrow V = -12 x^2 y^2 + 2x^4 + g(y) \\
\Rightarrow V(x,y) = 2x^4 - 12 x^2 y^2 + 2y^4 + 5y
$
(c)
$$
f(x,y) = U(x,y) + iV(x,y) = 8xy^3 - 8x^3y+5x + i(2x^4 - 12 x^2 y^2 + 2y^4 + 5y) \\
f(x,y) = 2i(x^4 + 4ix^3y - 6x^2y^2 -4ixy^3 +y^4) + 5(x+iy) \\
f(x,y) = 2i(x+iy)^4 + 5(x+iy) \\
f(z) = 2i ({z}) ^4 + 5z\color{red}{+Ci}.
$$
$
U_{xx} = \frac{\partial}{\partial x} \frac{\partial}{\partial x} U \\
= \frac{\partial}{\partial x} 8y^3 -24x^2 y +5 \\
= -48xy \\
\\
U_{yy} = \frac{\partial}{\partial y} \frac{\partial}{\partial y} U \\
= \frac{\partial}{\partial y} 24x y^2 - 8x^3 \\
= 48xy \\
U_{xx} + U_{yy} = -48xy + 48xy = 0
$
Thus, U is harmonic.
(b)
By Cauchy Reimann:
$
V_y = U_x = 8y^3 - 24x^2 y + 5
\Rightarrow V = 2y^4 - 12 x^2 y^2 +5y +h(x)\\
V_x = -U_y = -24x y^2 + 8x^3
\Rightarrow V = -12 x^2 y^2 + 2x^4 + g(y) \\
\Rightarrow V(x,y) = 2x^4 - 12 x^2 y^2 + 2y^4 + 5y
$
(c)
$$
f(x,y) = U(x,y) + iV(x,y) = 8xy^3 - 8x^3y+5x + i(2x^4 - 12 x^2 y^2 + 2y^4 + 5y) \\
f(x,y) = 2i(x^4 + 4ix^3y - 6x^2y^2 -4ixy^3 +y^4) + 5(x+iy) \\
f(x,y) = 2i(x+iy)^4 + 5(x+iy) \\
f(z) = 2i ({z}) ^4 + 5z\color{red}{+Ci}.
$$