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Previous year question hub

Integral Analysis for a Control Volume - Engineering Sciences Previous Year Questions

Practice Integral Analysis for a Control Volume - Engineering Sciences previous year questions organised from real papers, with year-wise coverage and clear topic navigation.

13Papers
13Years
25Questions
1Topics

Integral Analysis for a Control Volume question pattern

Every graph below is calculated only from this selection.

Questions by year

Compare question counts across years.

Difficulty distribution

How the classified questions are distributed by difficulty.

Medium 18 72%
Easy 7 28%

Question type distribution

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

MCQ 12 48%
Numerical Answer Type (NAT) 12 48%
MSQ 1 4%

Subject weightage

Top subjects by unique question coverage.

Engineering Sciences
25 Qs

Most asked topics

Top topics across the included previous year papers.

Integral Analysis for a Control Volume
25 Qs

Subtopic coverage

Top subtopics inside this exact selection.

Reynolds Transport Theorem and Conservation Laws
25 Qs

Paper coverage

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

Engineering Sciences (XE) 2026
1 Qs
Engineering Sciences (XE) 2025
2 Qs
Engineering Sciences (XE) 2024
4 Qs
Engineering Sciences (XE) 2022
2 Qs
Engineering Sciences (XE) 2021
3 Qs
Engineering Sciences (XE) 2020
1 Qs
Engineering Sciences (XE) 2019
2 Qs
Engineering Sciences (XE) 2014
1 Qs
Engineering Sciences (XE) 2013
2 Qs
Engineering Sciences (XE) 2012
2 Qs
Engineering Sciences (XE) 2011
1 Qs
Engineering Sciences (XE) 2008
2 Qs
Engineering Sciences (XE) 2007
2 Qs

Browse by subtopics

Open a focused page built from the same verified paper data.

Included previous year papers

Newest papers appear first. Search these papers or sort by year and name.

Paper nameYearPDFAttempt
Engineering Sciences (XE) 20262026
1 questions in this view
2026
Engineering Sciences (XE) 20252025
2 questions in this view
2025
Engineering Sciences (XE) 20242024
4 questions in this view
2024
Engineering Sciences (XE) 20222022
2 questions in this view
2022
Engineering Sciences (XE) 20212021
3 questions in this view
2021
Engineering Sciences (XE) 20202020
1 questions in this view
2020
Engineering Sciences (XE) 20192019
2 questions in this view
2019
Engineering Sciences (XE) 20142014
1 questions in this view
2014
Engineering Sciences (XE) 20132013
2 questions in this view
2013
Engineering Sciences (XE) 20122012
2 questions in this view
2012
Engineering Sciences (XE) 20112011
1 questions in this view
2011
Engineering Sciences (XE) 20082008
2 questions in this view
2008
Engineering Sciences (XE) 20072007
2 questions in this view
2007

Sample previous year questions

A varied preview from the papers represented in this selection, with every available option.

1
2007 · Engineering Sciences · Integral Analysis for a Control Volume · Reynolds Transport Theorem and Conservation Laws
Engineering Sciences (XE) 2007

The power utilized for propelling the boat is

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2
2008 · Engineering Sciences · Integral Analysis for a Control Volume · Reynolds Transport Theorem and Conservation Laws
Engineering Sciences (XE) 2008
A two-dimensional water jet hits a splitter plate as shown. The velocities at sections ①, ② and ③ may be taken as uniform and equal to V. The weight of the water and the friction along the plate may be neglected. For the data shown what is θ?

Question diagram

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3
2011 · Engineering Sciences · Integral Analysis for a Control Volume · Reynolds Transport Theorem and Conservation Laws
Engineering Sciences (XE) 2011
After splitting, the velocity of the upward half-jet along the plate is
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4
2012 · Engineering Sciences · Integral Analysis for a Control Volume · Reynolds Transport Theorem and Conservation Laws
Engineering Sciences (XE) 2012
The total kinetic energy imparted to the water per second (in kW) by the pump is
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5
2013 · Engineering Sciences · Integral Analysis for a Control Volume · Reynolds Transport Theorem and Conservation Laws
Engineering Sciences (XE) 2013

The magnitude of the force, in kN, required to hold the pipe in place, is

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6
2014 · Engineering Sciences · Integral Analysis for a Control Volume · Reynolds Transport Theorem and Conservation Laws
Engineering Sciences (XE) 2014
A reducing elbow is used to deflect water upward by \(30^{\circ}\) as shown in the figure. The mass flow rate at the inlet is 14 kg/s. Water is entering at a gauge pressure of 200 kPa and exits to the atmosphere. The cross-sectional area is \(113 \text{ cm}^2\) at the inlet and \(7 \text{ cm}^2\) at the exit. Density of water and acceleration due to gravity are 1000 kg/m³ and 10 m/s², respectively. Magnitude of \(x\)-component of the water force on the elbow is ____ N.
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