When a freely suspended bar magnet is heated, its magnetic dipole moment decreases by 36 %. Then its periodic time would

When a freely suspended bar magnet is heated, its magnetic dipole mome

1.	When a freely suspended bar magnet is heated, its magnetic dipole moment decreases by 36 %. Then its periodic time would
Answer» increase by 36 % increase by 25 % decrease by 25 % decrease by 64 % Solution :Initial periodic time of oscillation, `T= 2PI sqrt( (I)/( mB_h))` (Where `B_h=` horizontal component of Earth.s MAGNETIC field) Here I and `B_h` remain CONSTANT and so, `T prop (1)/( sqrt(m))` ` therefore (T_1)/( T_2) = sqrt((m_2)/( m_1))` `therefore (T_1)/( T_2)= sqrt((64)/( 1000)) (because ` If `m_1 =100` unit, then `m_2=100-36 =64` unit) `therefore (T_1)/( T_2) = (8)/(10)` `therefore T_2 = (10)/(8) T_(1) = 1.25 T_(1)` Percentage increase in periodic time, `(T_2 - T_1)/( T_1) xx 100% = (0.25 T_1)/( T_1)xx 100% = 25%`

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When a freely suspended bar magnet is heated, its magnetic dipole moment decreases by 36 %. Then its periodic time would

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