Answer to Question #290462 in Electricity and Magnetism for bobby

We know that

"F_1=\\frac{kq_1q_2}{r^2}"

a=0.10

"F_1=\\frac{9\\times10^9\\times5\\times10^{-6}\\times5\\times10^{-6}}{(a\\sqrt{2})^2}"

"F_1=\\frac{0.1125}{a^2}"

Put a value

"F_1=\\frac{0.1125}{0.10^2}=11.25N"

"F_2=\\frac{kq_2q_3}{r^2}"

"F_2=-\\frac{9\\times10^9\\times5\\times10^{-6}\\times2\\times10^{-6}}{a^2}"

"F_2=-\\frac{0.09}{0.01^2}=-900N"

"F=\\sqrt{F_1^2+F_2^2+2F_1F_2cos\\theta}"

"Cos\\theta=\\frac{a}{a\\sqrt2}=\\frac{1}{\\sqrt{2}}"

Put value

"F=892.08N"

Part(b)

Magnitude of force

"|F|=892.08" N

"\\theta=tan^{-1}(\\frac{900}{11.25})=-89.28\u00b0"