Answer to Question #313144 in Mechanical Engineering for Jhay

"P =\\frac{2\\pi NT}{60}"

"T =\\frac{40000\\times 60}{2\\pi\\times500 } = 763.94" Nm

(a) Diameter of the driven pulley for open belt drive

"sin \\beta = \\frac{D-d}{2C}"

"D = Sin \\beta \\times 2C +d =sin 144 \\times 2200 + 600 = 1893.13" mm

(b) Speed of the driven pulley

"\\frac{n}{N}=\\frac{D}{d}"

"n = N\\times \\frac{D}{d}= 500\\times \\frac{1893.13}{600}= 1577.61 \\approx 1578" rpm

(c) belt length for open belt connection

"L = 2C+\\frac{\\pi(D+d)}{2}+\\frac{(D-d)^2}{4C} =2\\times 1100+\\frac{\\pi (1893.13+600)}{2}+\\frac{(1893.13-600)^2}{4\\times1100}=6496.24" mm