Answer to Question #263247 in Mechanics | Relativity for lingget

Explanations & Calculations

"\\qquad\\qquad\n\\begin{aligned}\n\\to s&=ut\\\\\n\\small R&=\\small v_xt\\to v_x =\\frac{R}{t}\\cdots(1)\\\\\n\\\\\n\\uparrow s&=ut+\\frac{1}{2}at^2\\\\\n\\small -h&=\\small v_yt+\\frac{1}{2}(-g)t^2\\cdots(2)\\\\\n\\\\\n\\small \\tan\\theta&=\\small \\frac{v_y}{v_x}\\cdots(3)\\\\\n\\end{aligned}"

• By eliminating "\\small v_x\\, \\&\\,v_y" from those equations,

"\\qquad\\qquad\n\\begin{aligned}\n\\small v_y&=\\small \\frac{R}{t}\\tan\\theta\\\\\n\\\\\n\\small -h&=\\small R\\tan\\theta-\\frac{1}{2}gt^2\\\\\n\\small &=\\small \\sqrt{\\frac{2(R\\tan\\theta+h)}{g}}\n\\end{aligned}"

• If the delivery was done horizontally, then the velocity components become like this and the final answer follows accordingly.

"\\qquad\\qquad\n\\begin{aligned}\n\\small \\theta&=\\small 0\\\\\n\\small \\tan\\theta &=\\small 0\\\\\n\\small v_y&=\\small 0\\\\\n\\\\\n\\small t&=\\small \\sqrt{\\frac{2h}{g}}\\\\\n&=\\small \\sqrt{\\frac{2\\times1.5}{9.8}}\\\\\n&=\\small 0.6\\,s\\\\\n\\\\\n\\small v_x&=\\small \\frac{3.0m}{0.6s}\\\\\n&=\\small 5ms^{-1}\n\\end{aligned}"