Water is flowing in a horizontal pipe of uniform cross-section. At some place the pipe becomes narrow, then the pressure of water at this place

Remains same

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May increase or decrease

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Increases

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Decreases

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Solution

The correct option is D Decreases
Applying Bernoulli's equation.
$P + \frac{1}{2} ρ v^{2} + ρ g h =$ constant
Since the pipe is horizontal,

$P_{A} + \frac{1}{2} ρ v_{A}^{2} + ρ g h_{A} = P_{B} + \frac{1}{2} ρ V_{B}^{2} + ρ g_{B}$
$[∵ h_{A} = h_{B}]$
$P_{A} + \frac{1}{2} ρ V_{A}^{2} = P_{B} + \frac{1}{2} ρ V_{B}^{2} . . . . . (1)$
Now applying the equation of continuity,
$A_{A} V_{A} = A_{B} V_{B}$
But $A_{B} < A_{A} \Rightarrow V_{B} > V_{A}$
Then from equation $(1)$
$\Rightarrow P_{A} > P_{B}$
So, option (D) is correct.

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