Answer to Question #174145 in Field Theory for Cj Santos

Answer

a) Time period is given

"T=2\\pi\\sqrt{\\frac{l}{g}}\\\\=2\\pi\\sqrt{\\frac{0.24}{9.8}}=0.98sec"

So angular velocity

"\\omega=\\frac{2\\pi}{T}=6.39rad\/sec"

So amplitude of oscillation

"A=l-lcos\\theta=l-lcos\\omega t=0.017"

"V=V_{max}sin\\omega t\\\\=V_{max}=V_{max}sin\\omega t"

Putting value of "\\omega"

"6.39\\times t=3.14\/2"

t=0.25sec

b) When angel is 11° then then also time is equal to time in part (a) . Because that time is only depend on angular frequency and angular frequency is only depend on length of string. So time taken in t= 0.25s