Flying with a speed of VV = 120 m/s at an altitude of 2000 m, where...
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Flying with a speed of VV∞ = 120 m/s at an altitude of 2000 m, where the density is 1.007 kg/m3, the pilot calculates the required power to be 61 kW A) If the power plant is an ICE-propeller with shaft power of 320 kW at sea level, and a propeller efficiency of 80 %, what are the maximum rates of climb at altitudes of 2000 m and 5000 m if the total aircraft mass is 2000 kg? B) Assuming the rate of climb varies linearly with altitude, find the minimum time taken to climb from 2000 m to 5000 m. Flying with a speed of VV∞ = 120 m/s at an altitude of 2000 m, where the density is 1.007 kg/m3, the pilot calculates the required power to be 61 kW A) If the power plant is an ICE-propeller with shaft power of 320 kW at sea level, and a propeller efficiency of 80 %, what are the maximum rates of climb at altitudes of 2000 m and 5000 m if the total aircraft mass is 2000 kg? B) Assuming the rate of climb varies linearly with altitude, find the minimum time taken to climb from 2000 m to 5000 m.
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Related Book For
Vector Mechanics for Engineers Statics and Dynamics
ISBN: 978-0073212227
8th Edition
Authors: Ferdinand Beer, E. Russell Johnston, Jr., Elliot Eisenberg, William Clausen, David Mazurek, Phillip Cornwell
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