In November 2024
Answer to Question #292013 in Mechanics | Relativity for Kenny
A projectile leaves the ground at an angle 30° to the horizontal. The kinetic energy is E neglecting the air resistance . Find in terms of E it's kinetic energy at the highest point of motion
At highest point only vertical components of velocity
"v_x=vcos\\theta=vcos30\u00b0=\\frac{\\sqrt3}{2}"
"E_{up}=\\frac{1}{2}mv_x^2\\\\E_{up}=\\frac{1}{2}mv^2cos^2\\theta"
"E_{up}=\\frac{1}{2}mv^2\\times(\\frac{\\sqrt{3}}{2})^2=\\frac{3}{8}mv^2"
"E=\\frac{1}{2}mv^2"
"\\frac{E_{up}}{E}=\\frac{\\frac{3}{8}mv^2}{\\frac{mv^2}{2}}"
"E_{up}=\\frac{3}{4}E"
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