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Air enters the intake scoops S at the rate of 50 m3/s. If the engine burns fuel at the rate of 0.4 kg/s and the gas (air and fuel) is exhausted relative to the plane with a speed of 450 m/s, determine the resultant drag force exerted on the plane by air resistance. Assume that air has a constant density of 1.22 kg/m3. Hint: Since mass both enters and exits the plane, Eqs.15-28 and 15-29 must be combined to yield
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Engineering Mechanics: Dynamics (14th Edition)
- When a person ice-skates, the ice surface actually melts beneath the blades so that he or she skates on a thin film of water between the blade and the ice. Assume that a skater of mass m, moving at a constant speed Vo, suddenly stands stiffly with skates pointed directly forward and allows herself to coast to a stop. Neglecting air resistance, how far will she travel (on two blades) before she stops? Give the answer X as a function of (Vo, m, L, h, H, M. Multiple Choicearrow_forwardOn its takeoff roll, the airplane starts from rest and accelerates according to a = ao - kv² where ao is the constant acceleration resulting from the engine thrust and -kv² is the acceleration due to aerodynamic drag. If ao = 1.8 m/s², k = 0.000064 m ¹, and vis in meters per second, determine the design length of runway required for the airplane to reach the takeoff speed of 206 km/h if the drag term is (a) excluded and (b) included. Vo = 0 Answers: (a) Excluding drag, s= i (a) Including drag. S= i v= 206 km/h m marrow_forwardPlease write legibly.arrow_forward
- Is this correct please ?arrow_forwardWhile cruising in level flight at a speed of 600 mi/h, a jet plane scoops in air at the rate of 200 lb/s and discharges it with a velocity of 2100 ft/s relative to the airplane. Determine the total drag due to air friction on the airplane.arrow_forwardA sports car has a mass of 2 Mg and an engine efficiency of ɛ = 0.65. As the car moves forward, the wind creates a drag resistance on the car defined by F, = 1.2v² N, where v is the speed in m/s. The car accelerates at 5 m/s, starting from rest. Determine the engine's input power when t=4 s.arrow_forward
- The jet is traveling at a speed of 500 mi/h, 30degrees with the horizontal If the fuel is being spent at 4 lb/s , and the engine takes in air at 410 lb/s , whereas the exhaust gas (air and fuel) has a relative speed of 32700 ft/s , determine the acceleration of the plane at this instant. The drag resistance of the air is FD=(0.7v2)lb, where the speed is measured in ft/s. The jet has a weight of 15000 lbarrow_forwardA7.1-Mg truck is resting on the deck of a barge which displaces 398 Mg and is at rest in still water. If the truck starts and drives toward the bow at a speed relative to the barge Vrel = 4.4 km/h, calculate the speed v of the barge. The resistance to the motion of the barge through the water is negligible at low speeds. F'ed = 4.4 km/h 7.1 Mg 398 Mg- Answer: v = i km/harrow_forwardThe sports car has a mass of 2.0 Mg and accelerates at 6 m/s², starting from rest. (Figure 1) Part A If the drag resistance on the car due to the wind is Fn = (10v) N, where v is the velocity in m/s, determine the power supplied to the engine when t = 5 s. The engine has a running efficiency of e = 0.68. Express your answer to three significant figures and include the appropriate units. μΑ P = Value Units Submit Request Answer Provide Feedback Figure 1 of 1 >arrow_forward
- Using a conservation of momentum equation, show that the force on the hemispherical vane is twice that of the force on the flat vane ?arrow_forwardThe locomotive pulls the train with a force of 60 kN at a speed of 50 km/h. How much work does it do in 1.0 s? How much coal with a combustion heat of 20 MJ/kg is consumed in that time if the efficiency is 10%? What is the power of the locomotive? (The solutions are 3.0 GJ; 1.5 t; 83 kW)arrow_forwardProb. 15-1 15-142. The 12-Mg jet airplane has a constant speed of 950 km/h when it is flying along a horizontal straight line. Air enters the intake scoops S at the rate of 50 m/s. If the engine burns fuel at the rate of 0.4 kg/s and the gas (air and fuel) is exhausted relative to the plane with a speed of 450 m/s, determine the resultant drag force exerted on the plane by air resistance. Assume that air has a constant density of 1.22 kg/m³. Hint: Since mass both enters and exits the plane, Eqs. 15-28 and 15–29 must be combined to yield dv dm. dm; ΣF, - m Vple dt + vpli dt dt v = 950 km/h %24arrow_forward
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