Dimensional analysis of the equation velocity x= pressure difference 3 / 2 × density -3 / 2, gives the value of x as

Question

Dimensional analysis of the equation velocity x= pressure difference 3 / 2 × density -3 / 2, gives the value of x as  (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

( text velocity ) x = P 3 / 2 × ρ-3 / 2=(( P /ρ))2 =([ textM L- 1 textT- 2]/[ textM L- 3])(3/2) =[L2 T- 2]3 / 2 =[L3 T- 3] =[. L1 T- 1 ].3 But [L1 T- 1] is the dimension of velocity. ⇒ x=3

Q. Dimensional analysis of the equation velocity $^{x} =$ pressure difference $^{3/2} \times$ density $^{- 3/2}$ , gives the value of $x$ as ______

$(velocity)^{x} = P^{3/2} \times ρ^{- 3/2} = (\frac{P}{ρ})^{2}$
$= \frac{[ M L ^{- 1} T ^{- 2} ]}{[ M L ^{- 3} ]}^{\frac{3}{2}}$
$= [L^{2} T^{- 2}]^{3/2}$
$= [L^{3} T^{- 3}]$
$= [L^{1} T^{- 1}]^{3}$
But $[L^{1} T^{- 1}]$ is the dimension of velocity.
$\Rightarrow x = 3$

Q. Dimensional analysis of the equation velocity x= pressure difference 3/2× density −3/2, gives the value of x as ______

( velocity )x=P3/2×ρ−3/2=(ρP​)2 =[M L−3][M L−1T−2]​23​ =[L2T−2]3/2 =[L3T−3] =[L1T−1]3 But [L1T−1] is the dimension of velocity. ⇒x=3

Q. Dimensional analysis of the equation velocity $^{x} =$ pressure difference $^{3/2} \times$ density $^{- 3/2}$ , gives the value of $x$ as ______

$(velocity)^{x} = P^{3/2} \times ρ^{- 3/2} = (\frac{P}{ρ})^{2}$
$= \frac{[ M L ^{- 1} T ^{- 2} ]}{[ M L ^{- 3} ]}^{\frac{3}{2}}$
$= [L^{2} T^{- 2}]^{3/2}$
$= [L^{3} T^{- 3}]$
$= [L^{1} T^{- 1}]^{3}$
But $[L^{1} T^{- 1}]$ is the dimension of velocity.
$\Rightarrow x = 3$