Hello everyone. please solve this question.A grind stone of 10 cm radi

1.	Hello everyone. please solve this question.A grind stone of 10 cm radius completes 50 rotations in 10s. What is its angular velocity? What is the linear speed of a point on its rim? {Take π = 3.142}
Answer» Solution :- As given ▪️Radius = 10 CM = 0.1 m ▪️No of rotation in 10 sec = 50 → No of rotation in one sec = 5 → FREQUENCY (f) = 5 ▪️π = 3.142 *Frequency = rate of occurance of something over a given period of time* Now as we KNOW that :- Angular VELOCITY (ω) = 2πf *So Angular velocity* = 2 × 3.142 × 5 = 10 × 3.142 = 31.42 rad/sec Now also we know that Linear velocity = Angular velocity × radius v = ωr *So Linear velocity* → v = 0.1 × 31.42 → v = 3.142 m/s So $\huge{\boxed{\sf{\omega = 31.42 \: rad/sec}}}$ $\huge{\boxed{\sf{v= 3.142 \: m/s}}}$

Hello everyone. please solve this question.A grind stone of 10 cm radius completes 50 rotations in 10s. What is its angular velocity? What is the linear speed of a point on its rim? {Take π = 3.142}

Answer»

Solution :-

As given

▪️Radius = 10 CM = 0.1 m

▪️No of rotation in 10 sec = 50

→ No of rotation in one sec = 5

→ FREQUENCY (f) = 5

▪️π = 3.142

**Frequency = rate of occurance of something over a given period of time

Now as we KNOW that :-

Angular VELOCITY (ω) = 2πf

So Angular velocity

= 2 × 3.142 × 5

= 10 × 3.142

= 31.42 rad/sec

Now also we know that

Linear velocity = Angular velocity × radius

v = ωr

So Linear velocity

→ v = 0.1 × 31.42

→ v = 3.142 m/s

So

$\huge{\boxed{\sf{\omega = 31.42 \: rad/sec}}}$

$\huge{\boxed{\sf{v= 3.142 \: m/s}}}$

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