Answer to Question #167429 in Quantum Mechanics for Kipkirui Emmanuel

"x=Acos \\omega t=Acos \\frac{2\\pi t}{T},"

"v=-\\frac{2\\pi A}{T}sin\\frac{2\\pi t}{T}, \\implies"

"A=-\\frac{vT}{2\\pi sin\\frac{2\\pi t}{T}},"

"A=-\\frac{-0.964\\cdot 0.61}{6.28\\cdot sin\\frac{6.28\\cdot 0.05}{0.61}}=0.19~m,"

"E=\\frac{kA^2}{2}=\\frac{\\omega ^2 m A^2}{2}=\\frac{2\\pi ^2mA^2}{T^2}=\\frac{2\\cdot 3.14^2\\cdot m\\cdot 0.19^2}{0.61^2}=1.91m~(J),~" where "m" is the mass of a block.