The slider-crank mechanism of a single-cylinder diesel engine is shown in Fig. P17-2. A gas force...
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The slider-crank mechanism of a single-cylinder diesel engine is shown in Fig. P17-2. A gas force P = 17 800 N acts to the left through piston pin C. The crank rotates counterclockwise at a constant speed of 1 800 r/min. Draw the mechanism to a scale of 1 mm = 2 mm. Use a velocity scale of 1 mm = 0.3 m/s, an acceleration scale of 1 mm = 22.5 m/s', and a force scale of 1 mm = 175 N. Make a combined static- and inertia-force analysis. (a) Determine the forces F,14 and F12 and the torque T2 in newton-meters exerted by the crankshaft on the crank for equilibrium. (b) Determine the magnitude and direction of the shaking force and its location from point 02. G2 2 60 3 G3 Link M, kg I, kg · m? 了 O,B = 76.2 mm = 50.8 mm ВС 3D 286 mm BG, 2 2.26 0.00544 3 3.63 0.0408 4 2.72 = 127 mm Figure P17-2 The slider-crank mechanism of a single-cylinder diesel engine is shown in Fig. P17-2. A gas force P = 17 800 N acts to the left through piston pin C. The crank rotates counterclockwise at a constant speed of 1 800 r/min. Draw the mechanism to a scale of 1 mm = 2 mm. Use a velocity scale of 1 mm = 0.3 m/s, an acceleration scale of 1 mm = 22.5 m/s', and a force scale of 1 mm = 175 N. Make a combined static- and inertia-force analysis. (a) Determine the forces F,14 and F12 and the torque T2 in newton-meters exerted by the crankshaft on the crank for equilibrium. (b) Determine the magnitude and direction of the shaking force and its location from point 02. G2 2 60 3 G3 Link M, kg I, kg · m? 了 O,B = 76.2 mm = 50.8 mm ВС 3D 286 mm BG, 2 2.26 0.00544 3 3.63 0.0408 4 2.72 = 127 mm Figure P17-2
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