Answer to Question #141166 in Complex Analysis for Sanamtha

Question #141166

Solve the equation 13z/z+1 = 11-3i zeC [where C denotes the set of complex numbers]

Expert's answer

Let "z=x+iy."

"13x+13iy=(x+iy+1)(11-3i);"

"13x+13iy=11x+11iy+11-3ix+3y-3i;"

"2x-3y+i(3x+2y)=11-3i;"

"\\begin{cases}\n 2x-3y=11, \\\\\n 3x+2y=-3;\n\\end{cases}"

"\\begin{cases}\n x=\\frac{11+3y}{2},\\\\\n \\frac32(11+3y)+2y=-3;\n\\end{cases}"

"16.5+4.5y+2y=-3;"

"6.5y=-19.5;"

"y=-3;"

"x=1."

"z=1-3i."

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