Answer:
The speed of DC series motor will increase by Sqrt (3) times.
N2 = Sqrt (3) x N1
Step-by-step explanation:
Since, Torque of a DC series motor is given as:
T = K ∅ Ia²
Where:
K = Machine Constant
∅ = Flux in the machine
Ia = Armature Current
For Initial Condition:
T1 = K ∅ Ia1²--------------(1)
For Final Condition:
T2 = K ∅ Ia2² --------------(2)
Dividing Equations (1) and (2),
T1 / T2 = K ∅ Ia1² / K ∅ Ia2²
T1 / T2 = Ia1² / Ia2² -----------------(3)
Since, T2 = T1 / 3 (as given in question that torque drops by the factor of 3),
Then, equation 3 implies:
⇒ T1 / (T1/3) = Ia1² / Ia2²
⇒ 3 = Ia1² / Ia2²
⇒ Ia1 = Sqrt (3) x Ia2 ---------------- (4)
Since,
N2 / N1 = Ia1 / Ia2
Therefore,
N2 / N1 = [Sqrt (3) x Ia2] / Ia2
⇒ N2 / N1 = Sqrt (3)
⇒ N2 = Sqrt (3) x N1
Hence, the with the drop in load torque by the factor of 3, the speed of DC series motor will increase by Sqrt (3) times.