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Question: The dimension of resistance \(R\) in terms of \({\mu _o}\) and \({\varepsilon _o}\) are: A.) \(\sq...

The dimension of resistance RR in terms of μo{\mu _o} and εo{\varepsilon _o} are:
A.) μoεo\sqrt {\dfrac{{{\mu _o}}}{{{\varepsilon _o}}}}
B.) εoμo\sqrt {\dfrac{{{\varepsilon _o}}}{{{\mu _o}}}}
C.) εoμo\dfrac{{{\varepsilon _o}}}{{{\mu _o}}}
D.) μoεo\dfrac{{{\mu _o}}}{{{\varepsilon _o}}}

Explanation

Solution

Hint: In this question, we first write the dimensional formula for resistance as [M1L2T3A2]\left[ {{M^1}{L^2}{T^{ - 3}}{A^{ - 2}}} \right], permittivity as [M1L3T4A2]\left[ {{M^{ - 1}}{L^{ - 3}}{T^4}{A^2}} \right], and permeability as [M1L1T2A2]\left[ {{M^1}{L^1}{T^{ - 2}}{A^{ - 2}}} \right].

Complete step-by-step answer:

Now we divide the dimension of permeability by the dimension of permittivity and get μoεo=[M2L4T6A4]\dfrac{{{\mu _o}}}{{{\varepsilon _o}}} = \left[ {{M^2}{L^4}{T^{ - 6}}{A^{ - 4}}} \right]. As we compare this to the dimensional formula of resistance we get μoεo\dfrac{{{\mu _o}}}{{{\varepsilon _o}}} gives us the square the dimensional formula of resistance. So we conclude μoεo=R2\dfrac{{{\mu _o}}}{{{\varepsilon _o}}} = {R^2} and μoεo=R\sqrt {\dfrac{{{\mu _o}}}{{{\varepsilon _o}}}} = R.
Therefore option A is correct.

In this question, we were asked to find the resistance RR in terms of permeability and permittivity of free space and hence, therefore we will be using the values of permeability (μo)\left( {{\mu _o}} \right) and permittivity (εo)\left( {{\varepsilon _o}} \right) for free space.
The permittivity (ε)\left( \varepsilon \right) is the measure of how easily a material can get polarized in an electric field. Whereas the permeability (μ)\left( \mu \right) is the measure of how easily a material can get magnetized in a magnetic field.

We will now see the values and dimensional formulae of that are permeability (μo)\left( {{\mu _o}} \right) and permittivity (εo)\left( {{\varepsilon _o}} \right) for free space that is
The dimensional formula for resistance is [M1L2T3A2]\left[ {{M^1}{L^2}{T^{ - 3}}{A^{ - 2}}} \right]
The permittivity of free space equals εo=8.85Faradm{\varepsilon _o} = 8.85\dfrac{{Farad}}{m} and its dimensional formula is equal to [M1L3T4A2]\left[ {{M^{ - 1}}{L^{ - 3}}{T^4}{A^2}} \right]
Similarly, the permeability of free space equals μo=1.26Henrym{\mu _o} = 1.26\dfrac{{Henry}}{m} and its dimensional formula is equal to [M1L1T2A2]\left[ {{M^1}{L^1}{T^{ - 2}}{A^{ - 2}}} \right]

Now, we will divide the dimension of permeability by the dimension of permittivity and get
μoεo=[M1L1T2A2][M1L3T4A2]\dfrac{{{\mu _o}}}{{{\varepsilon _o}}} = \dfrac{{\left[ {{M^1}{L^1}{T^{ - 2}}{A^{ - 2}}} \right]}}{{\left[ {{M^{ - 1}}{L^{ - 3}}{T^4}{A^2}} \right]}}
μoεo=[M2L4T6A4]\Rightarrow \dfrac{{{\mu _o}}}{{{\varepsilon _o}}} = \left[ {{M^2}{L^4}{T^{ - 6}}{A^{ - 4}}} \right]
Now when we compare this to the dimensional formula of resistance that is [M1L2T3A2]\left[ {{M^1}{L^2}{T^{ - 3}}{A^{ - 2}}} \right],
We will notice that what we have got is the nothing but the square of the dimensional formula of resistance.

Therefore, we can conclude that the ratio μoεo\dfrac{{{\mu _o}}}{{{\varepsilon _o}}} gives us the square of the resistance that is
μoεo=R2\dfrac{{{\mu _o}}}{{{\varepsilon _o}}} = {R^2}
So the square root will give us the resistance that is
μoεo=R\sqrt {\dfrac{{{\mu _o}}}{{{\varepsilon _o}}}} = R

Hence, option A is correct.

Note: For these types of questions we need to be well versed with the concepts of permittivity and permeability. We need to know their dimensional formulas and the dimensional formula of values that can be derived from permittivity and permeability that is resistance and velocity of free space.