A cylclist is riding with a speed of `27 km h^-1`. As he approaches a circular turn on the road of radius `80 m`, he applies brakes and reduces his speed at the constant rate of `0.5 ms^-2`. What is the magnitude and direction of the net acceleration of the cyclist on the circular turn ?A. `0.68 ms^(-2)`B. `0.86 ms^(-2)`C. `0.56 ms^(-2)`D. `0.76 ms^(-2)`

A cylclist is riding with a speed of `27 km h^-1`. As he approaches a

1.	A cylclist is riding with a speed of `27 km h^-1`. As he approaches a circular turn on the road of radius `80 m`, he applies brakes and reduces his speed at the constant rate of `0.5 ms^-2`. What is the magnitude and direction of the net acceleration of the cyclist on the circular turn ?A. `0.68 ms^(-2)`B. `0.86 ms^(-2)`C. `0.56 ms^(-2)`D. `0.76 ms^(-2)`
Answer» Correct Answer - b Here, `v=27kmh^(-1)=27xx5/18ms^(-1)` `v=15/2=7.5ms^(-1)` `r=80m` Centripetal acceleration, `a_(c)=(v^(2))/r` `a_(c)=((7.5ms^(-1))^(2))/(80m)=0.7 ms^(-2)` Tangential acceleration, `at=0.5 ms^(-2)` Magnitude of the net acceleration is `a=sqrt((a_(c))^(2)+(a_(t))^(2))=sqrt((0.7)^(2)+(0.5)^(2))=0.86 ms^(-2)`

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