A jet airplane travelling at the speed of 500 km/h ejects its products of combustion at the speed of 1500 km/h relative to the jet plane. What is the speed of the latter with respect to an observer on the ground?


Given,


Speed of the jet plane, vjet = 500 km/h


Relative speed of the combustion products, v’smoke = 1500km/h


Observation:


As plane moves forward, combustion smoke moves backward.


Thus,


Velocity of combustion gases, vsmoke = vjet – v’smoke


= 500 – 1500


= -1000 m/s


( Jet moving direction is taken as ‘+ve’ for man standing on ground)


5
1