Two capillary of lengths L and 2L and of radii R and 2R are connected in series. The net rate of flow of fluid through them will be (Given rate of the flow through single capillary.X=(π pR4/8η L))

Question

Two capillary of lengths L and 2L and of radii R and 2R are connected in series. The net rate of flow of fluid through them will be (Given rate of the flow through single capillary.X=(π pR4/8η L)) (A) (8/9)X (B) (9/8)X (C) (5/7)X (D) (7/5)X

Tardigrade Admin · Accepted Answer

Fluid resistance is given by R=(8η L/π r4) When two capillary tubes of same size are joined in parallel, then equivalent fluid resistance is Req=R1 + R2=(8η L/π R4)+(8η×2L/π(2R)4) =[(8η L/π R4)×(9/8)] Equivalent resistance becomes (9/8) times so, rate of flow will be (8/9)X

Q. Two capillary of lengths L and 2L and of radii R and 2R are connected in series. The net rate of flow of fluid through them will be (Given rate of the flow through single capillary. $X = \frac{π p R ^{4}}{8 η L})$

$\frac{8}{9} X$

$\frac{9}{8} X$

$\frac{5}{7} X$

$\frac{7}{5} X$

Q. Two capillary of lengths L and 2L and of radii R and 2R are connected in series. The net rate of flow of fluid through them will be (Given rate of the flow through single capillary.X=8ηLπpR4​)

98​X

89​X

75​X

57​X

Fluid resistance is given by R=πr48ηL​ When two capillary tubes of same size are joined in parallel, then equivalent fluid resistance is Req​=R1​+R2​=πR48ηL​+π(2R)48η×2L​ =[πR48ηL​×89​] Equivalent resistance becomes 89​ times so, rate of flow will be 98​X

Q. Two capillary of lengths L and 2L and of radii R and 2R are connected in series. The net rate of flow of fluid through them will be (Given rate of the flow through single capillary. $X = \frac{π p R ^{4}}{8 η L})$

$\frac{8}{9} X$

$\frac{9}{8} X$

$\frac{5}{7} X$

$\frac{7}{5} X$