Let ε0 denote the dimensional formula of the permittivity of vacuum. If M= mass, L= length, T = time and A = electric current, then dimensions of permittivity is given as [ M p L q T r A s]. Find the value of (p- q +r/s)

Question

Let ε0 denote the dimensional formula of the permittivity of vacuum. If M= mass, L= length, T = time and A = electric current, then dimensions of permittivity is given as [ M p L q T r A s]. Find the value of (p- q +r/s) (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

From Coulomb's law, F =( q 1 q 2/4 π ε0 r 2) ∴ ε0=( q 1 q 2/4 π Fr 2)=(( A 1 T 1)( A 1 T 1)/[ M 1 L 1 T -2]( L 2))( L 2) =[ M -1 L -3 T 4 A 2] ∴ p =-1, q =-3, r =4, s =2 ∴ ( p - q + r / s )=(-1-(-3)+4/2)=(6/2)=3

Q. Let ε0​ denote the dimensional formula of the permittivity of vacuum. If M= mass, L= length, T= time and A= electric current, then dimensions of permittivity is given as [MpLqTrAs]. Find the value of sp−q+r​

From Coulomb's law, F=4πε0​r2q1​q2​​ ∴ε0​=4πFr2q1​q2​​=[M1L1T−2](L2)(A1T1)(A1T1)​(L2) =[M−1L−3T4A2] ∴p=−1,q=−3,r=4,s=2 ∴sp−q+r​=2−1−(−3)+4​=26​=3

Q. Let $ε_{0}$ denote the dimensional formula of the permittivity of vacuum. If $M =$ mass, $L =$ length, $T =$ time and $A =$ electric current, then dimensions of permittivity is given as $[M^{p} L^{q} T^{r} A^{s}]$ . Find the value of $\frac{p - q + r}{s}$