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Previous year question hub

Boundary Layers and Flow around Particles - Fluid Mechanics and Mechanical Operations - Chemical Engineering Previous Year Questions

Practice Boundary Layers and Flow around Particles - Fluid Mechanics and Mechanical Operations - Chemical Engineering previous year questions organised from real papers, with year-wise coverage and clear topic navigation.

11Papers
11Years
14Questions
1Topics

Boundary Layers and Flow around Particles question pattern

Every graph below is calculated only from this selection.

Questions by year

Year-wise coverage for Boundary Layers and Flow around Particles. Each bar uses a separate theme-derived color.

Difficulty distribution

How the classified questions are distributed by difficulty.

Easy 11 78.6%
Medium 3 21.4%

Question type distribution

MCQ, numerical, multiple-select and other formats found in these papers.

MCQ 9 64.3%
Numerical Answer Type (NAT) 5 35.7%

Subject weightage

Top subjects by unique question coverage.

Chemical Engineering
14 Qs

Most asked topics

Top topics across the included previous year papers.

Fluid Mechanics and Mechanical Operations
14 Qs

Subtopic coverage

Top subtopics inside this exact selection.

Boundary Layers and Flow around Particles
14 Qs

Paper coverage

Question coverage for the most populated papers. Every active PYP paper remains listed below.

Chemical Engineering (CH) 2026
1 Qs
Chemical Engineering (CH) 2025
1 Qs
Chemical Engineering (CH) 2023
1 Qs
Chemical Engineering (CH) 2021
1 Qs
Chemical Engineering (CH) 2020
2 Qs
Chemical Engineering (CH) 2019
1 Qs
Chemical Engineering (CH) 2017
3 Qs
Chemical Engineering (CH) 2016
1 Qs
Chemical Engineering (CH) 2012
1 Qs
Chemical Engineering (CH) 2010
1 Qs
Chemical Engineering (CH) 2009
1 Qs

Included previous year papers

Newest papers appear first. Sort by year, question coverage or name.

PaperYear / sessionQuestions in this viewOpen
Chemical Engineering (CH) 202620261View paper
Chemical Engineering (CH) 202520251View paper
Chemical Engineering (CH) 202320231View paper
Chemical Engineering (CH) 202120211View paper
Chemical Engineering (CH) 202020202View paper
Chemical Engineering (CH) 201920191View paper
Chemical Engineering (CH) 201720173View paper
Chemical Engineering (CH) 201620161View paper
Chemical Engineering (CH) 201220121View paper
Chemical Engineering (CH) 201020101View paper
Chemical Engineering (CH) 200920091View paper

All Boundary Layers and Flow around Particles previous year questions

Practice every matching question in batches of 20, with every available option.

1
2009 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2009

For a mixing tank operating in the laminar regime, the power number varies with the Reynolds number (Re) as

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2
2010 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2010
The diameter of a drop of liquid fuel changes with time, due to combustion, according to the relationship, \( D = D_0 \left(1 - \frac{t}{t_b}\right) \). While burning, the drop falls at its terminal velocity under Stokes’ flow regime. The distance it will travel before complete combustion, is given by
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3
2012 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2012
For uniform laminar flow (in the \( x \)-direction) past a flat plate at high Reynolds number, the local boundary layer thickness ( \( \delta \) ) varies with the distance along the plate ( \( x \) ) as
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4
2016 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2016
Consider a rigid solid sphere falling with a constant velocity in a fluid. The following data are known at the conditions of interest: viscosity of the fluid = 0.1 Pa s, acceleration due to gravity = 10 m s-2, density of the particle = 1180 kg m-3 and density of the fluid = 1000 kg m-3. The diameter (in mm, rounded off to the second decimal place) of the largest sphere that settles in the Stokes’ law regime (Reynolds number ≤ 0.1), is ________
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5
2017 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2017
The thickness of laminar boundary layer over a flat plate varies along the distance from the leading edge of the plate. As the distance increases, the boundary layer thickness
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6
2017 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2017
A gas bubble (gas density \(\rho_g = 2\) kg/m³; bubble diameter \(D = 10^{-4}\) m) is rising vertically through water (density \(\rho = 1000\) kg/m³; viscosity \(\mu = 0.001\) Pa.s). Force balance on the bubble leads to the following equation.
\[\frac{dv}{dt} = -g\frac{\rho_g - \rho}{\rho_g} - \frac{18\mu}{\rho_g D^2}v\]
where \(v\) is the velocity of the bubble at any given time \(t\). Assume that the volume of the rising bubble does not change. The value of \(g = 9.81\) m/s².
The terminal rising velocity of the bubble (in cm/s), rounded to 2 decimal places, is ______ cm/s.
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7
2017 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2017
A propeller (diameter \( D = 15 \) m) rotates at \( N = 1 \) revolution per second (rps). To understand the flow around the propeller, a lab-scale model is made. Important parameters to study the flow are velocity of the propeller tip (\( V = \pi ND \)), diameter \( D \) and acceleration due to gravity (\( g \)). The lab-scale model is \( 1/100^{th} \) of the size of the actual propeller.
The rotation speed of the lab-scale model, to the nearest integer, should be ______ rps.
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8
2019 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2019
For a fully-developed turbulent hydrodynamic boundary layer for flow past a flat plate, the thickness of the boundary layer increases with distance \( x \) from the leading edge of the plate, along the free-stream flow direction, as
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9
2020 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2020
Consider an incompressible flow of a constant property fluid over a smooth, thin and wide flat plate. The free stream flows parallel to the surface of the plate along its length and its velocity is constant. Value of the Reynolds number at a distance of 2.0 m from the leading edge of the plate is 8000. The flow within the boundary layer at a distance of 1.0 m from the leading edge of the plate is
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10
2020 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2020
Ratio of momentum diffusivity to thermal diffusivity is
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11
2021 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2021
Consider a fluid confined between two horizontal parallel plates and subjected to shear flow.

In the first experiment, the plates are separated by a distance of 1 mm. It is found that a shear stress of 2 N m–2 has to be applied to keep the top plate moving with a velocity of 2 m s–1, while the other plate is fixed.

In the second experiment, the plates are separated by a distance of 0.25 mm. It is found that a shear stress of 3 N m–2 has to be applied to keep the top plate moving with a velocity of 1 m s–1, while the other plate is fixed.

In the range of shear rates studied, the rheological character of the fluid is
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12
2023 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2023
A large tank is filled with water (density = \( 1 \text{ g.cm}^{-3} \)) upto a height of \( 5 \text{ m} \). A \( 100 \text{ μm} \) diameter solid spherical particle (density = \( 0.8 \text{ g.cm}^{-3} \)) is released at the bottom of the tank. The particle attains its terminal velocity (\( v_t \)) after traveling to a certain height in the tank. Use acceleration due to gravity as \( 10 \text{ m.s}^{-2} \) and water viscosity as \( 10^{-3} \text{ Pa.s} \). Neglect wall effects on the particle. If Stokes law is applicable, the absolute value of \( v_t \) (in \( \text{mm.s}^{-1} \)) is ______ (rounded off to two decimal places).
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13
2025 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2025

The sum of the components of the force due to pressure and shear at the solid-fluid boundary of a solid body in the direction normal to the flow is

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14
2026 · Chemical Engineering · Fluid Mechanics and Mechanical Operations · Boundary Layers and Flow around Particles
Chemical Engineering (CH) 2026
Consider a two-dimensional, steady, laminar flow of an incompressible fluid with zero pressure gradient, over a thin horizontal flat plate of length 2 m. The free stream velocity is 1 m s−1. A boundary layer thickness of 1 mm is observed at a distance of 0.25 m from the leading edge of the plate. At 1 m from the leading edge, the boundary layer thickness (in mm) is ______ (rounded off to the nearest integer).
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