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An elevator can carry a maximum load of 1800 kg (elevator + pasenger) is moving up with a constant speed of 2ms^(-1). The frictional force opposing the motion is 4000 N. Determine theminimum power delivered by the motor to the elevator in watts as well as in horse power.. |
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Answer» <P> Solution :The downword force on the ELEVATOR is`F=mg+F_(f)=(1800xx10)+4000=22000N` The MOTOR must SUPPLY enough POWER to balance this force. Hence, `P = Fv = 22000xx2` `= 44000 W = 59 hp`. |
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