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Previous year question hub

Heat Exchangers and Evaporators - Heat Transfer - Chemical Engineering Previous Year Questions

Practice Heat Exchangers and Evaporators - Heat Transfer - Chemical Engineering previous year questions organised from real papers, with year-wise coverage and clear topic navigation.

17Papers
17Years
35Questions
1Topics

Heat Exchangers and Evaporators question pattern

Every graph below is calculated only from this selection.

Questions by year

Year-wise coverage for Heat Exchangers and Evaporators. Each bar uses a separate theme-derived color.

Difficulty distribution

How the classified questions are distributed by difficulty.

Medium 23 65.7%
Easy 12 34.3%

Question type distribution

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

MCQ 21 60%
Numerical Answer Type (NAT) 13 37.1%
MSQ 1 2.9%

Subject weightage

Top subjects by unique question coverage.

Chemical Engineering
35 Qs

Most asked topics

Top topics across the included previous year papers.

Heat Transfer
35 Qs

Subtopic coverage

Top subtopics inside this exact selection.

Heat Exchangers and Evaporators
35 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
3 Qs
Chemical Engineering (CH) 2024
1 Qs
Chemical Engineering (CH) 2023
2 Qs
Chemical Engineering (CH) 2022
3 Qs
Chemical Engineering (CH) 2021
3 Qs
Chemical Engineering (CH) 2020
2 Qs
Chemical Engineering (CH) 2019
2 Qs
Chemical Engineering (CH) 2018
4 Qs
Chemical Engineering (CH) 2017
1 Qs
Chemical Engineering (CH) 2014
2 Qs
Chemical Engineering (CH) 2013
2 Qs
Chemical Engineering (CH) 2012
2 Qs
Chemical Engineering (CH) 2011
1 Qs
Chemical Engineering (CH) 2010
3 Qs
Chemical Engineering (CH) 2009
1 Qs
Chemical Engineering (CH) 2007
2 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) 202520253View paper
Chemical Engineering (CH) 202420241View paper
Chemical Engineering (CH) 202320232View paper
Chemical Engineering (CH) 202220223View paper
Chemical Engineering (CH) 202120213View paper
Chemical Engineering (CH) 202020202View paper
Chemical Engineering (CH) 201920192View paper
Chemical Engineering (CH) 201820184View paper
Chemical Engineering (CH) 201720171View paper
Chemical Engineering (CH) 201420142View paper
Chemical Engineering (CH) 201320132View paper
Chemical Engineering (CH) 201220122View paper
Chemical Engineering (CH) 201120111View paper
Chemical Engineering (CH) 201020103View paper
Chemical Engineering (CH) 200920091View paper
Chemical Engineering (CH) 200720072View paper

All Heat Exchangers and Evaporators previous year questions

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

1
2007 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2007
A hot fluid entering a well-stirred vessel is cooled by feeding cold water through a jacket around the vessel. Assume the jacket is well-mixed. For the following data,
mass flowrates of the hot fluid = 0.25 kg/s,
mass flow rate of cold water = 0.4 kg/s,
specific heats of oil = 6000 J/kgK
specific heat of cold water = 4184 J/kgK
the inlet and exit temperature of the hot fluid is 150 °C and 100 °C respectively,
inlet temperature of cold water = 20 °C
the overall heat transfer coefficient is 500 W/m²K.
the heat transfer area in m², is
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2
2007 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2007
The following list of options P, Q, R and S are some of the important considerations in the design of a shell and tube heat exchanger.
P) square pitch permits the use of more tubes in a given shell diameter
Q) the tube side clearance should not be less than one fourth of the tube diameter
R) baffle spacing is not greater than the diameter of the shell or less than one-fifth of the shell diameter
S) The pressure drop on the tube side is less than 10 psi
Pick out the correct combination of ‘TRUE’ statements from the following:
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3
2009 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2009
A double-pipe heat exchanger is to be designed to heat 4 kg/s of a cold feed from 20 to 40 °C using a hot stream available at 160 °C and a flow rate of 1 kg/s. The two streams have equal specific heat capacities and the overall heat transfer coefficient of the heat exchanger is 640 W/m²·K. Then the ratio of the heat transfer areas required for the co-current to counter-current modes of operation is
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4
2010 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2010

Which ONE of the following statements about baffles in a shell and tube heat exchanger is FALSE? Baffles

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5
2010 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2010
Hot oil at 150°C is used to preheat a cold fluid at 30°C in a 1 : 1 shell and tube heat exchanger. The exit temperature of the hot oil is 110°C. Heat capacities (product of mass flow rate and specific heat capacity) of both the streams are equal. The heat duty is 2 kW.
Under co-current flow conditions, the overall heat transfer resistance (1/UA) is
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6
2010 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2010
Under counter-current flow conditions, the overall heat transfer resistance (1/UA) is
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7
2011 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2011
Oil at 120 °C is used to heat water at 30 °C in a 1–1 co-current shell and tube heat exchanger. The available heat exchange area is \( S_1 \). The exit temperatures of the oil and the water streams are 90 °C and 60 °C respectively. The co-current heat exchanger is replaced by a 1–1 counter-current heat exchanger having heat exchange area \( S_2 \). If the exit temperatures and the overall heat transfer coefficients are same, the ratio of \( S_1 \) to \( S_2 \) is
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8
2012 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2012
In a counter-flow double pipe heat exchanger, oil (\( \dot{m} = 2 \) kg/s, \( C_p = 2.1 \) kJ/kg.°C) is cooled from 90 °C to 40 °C by water (\( \dot{m} = 1 \) kg/s, \( C_p = 4.2 \) kJ/kg.°C) which enters the inner tube at 10 °C. The radius of the inner tube is 3 cm and its length is 5 m. Neglecting the wall resistance, the overall heat transfer coefficient based on the inner radius, in kW/m².K, is
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9
2012 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2012
In a 1-1 pass floating head type shell and tube heat exchanger, the tubes (od = 25 mm; id = 21 mm) are arranged in a square pitch. The tube pitch is 32 mm. The thermal conductivity of the shell side fluid is 0.19 W/m.K, and the Nusselt number is 200. The shell-side heat transfer coefficient (in W/m².K), rounded off to the nearest integer, is
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10
2013 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2013

The effectiveness of a heat exchanger in the ε-NTU method is defined as

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11
2013 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2013

In a double pipe counter-current heat exchanger, the temperature profiles shown in the figure were observed. During operation, due to fouling inside the pipe, the heat transfer rate reduces to half of the original value. Assuming that the flow rates and the physical properties of the fluids do not change, the LMTD (in °C) in the new situation is

Question diagram

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12
2014 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2014

Steam economy of a multiple effect evaporator system is defined as

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13
2014 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2014
An oil with a flow rate of 1000 kg/h is to be cooled using water in a double-pipe counter-flow heat exchanger from a temperature of 70 °C to 40 °C. Water enters the exchanger at 25 °C and leaves at 40 °C. The specific heats of oil and water are 2 kJ kg⁻¹ K⁻¹ and 4.2 kJ kg⁻¹ K⁻¹, respectively. The overall heat transfer coefficient is 0.2 kW m⁻² K⁻¹. The minimum heat exchanger area (in m²) required for this operation is __________
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14
2017 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2017
In a heat exchanger, the inner diameter of a tube is 25 mm and its outer diameter is 30 mm. The overall heat transfer coefficient based on the inner area is 360 W/m².°C. Then, the overall heat transfer coefficient based on the outer area, rounded to the nearest integer, is ______ W/m².°C.
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15
2018 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2018

Economy of evaporators used for concentrating sugarcane juice is

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16
2018 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2018

Segmental baffles in a 2-4 shell and tube heat exchanger

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17
2018 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2018
An insulated storage tank contains 1000 kg liquid of specific heat 10 kJ kg\(^{-1}\) K\(^{-1}\). The liquid is heated by saturated steam, condensing in a helical coil at a temperature of 180 \(^{\circ}C\). The heat transfer area of the coil is 0.1 m\(^2\). If the overall heat transfer coefficient is constant at 1000 W m\(^{-2}\) K\(^{-1}\), then the time (in hours) required to raise the temperature of the liquid in the tank from 20 \(^{\circ}C\) to 80 \(^{\circ}C\) is __________ (rounded off to second decimal place).
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18
2018 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2018

A hot liquid is to be cooled in a 1-1 shell and tube heat exchanger from 80 °C to 50 °C. Cooling water enters the tube side at 30 °C, and exits at 45 °C. The properties of the liquids are constant. Also, the overall heat transfer coefficient is same for counter-current and co-current modes. The percentage saving in heat transfer area for counter-current option with respect to the area of co-current option is __________ (rounded off to third decimal place).

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19
2019 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2019
Consider the two countercurrent heat exchanger designs for heating a cold stream from \( t_{in} \) to \( t_{out} \), as shown in figure. The hot process stream is available at \( T_{in} \). The inlet stream conditions and overall heat transfer coefficients are identical in both the designs. The heat transfer area in Design I and Design II are respectively \( A_{HX}^I \) and \( A_{HX}^{II} \). If heat losses are neglected, and if both the designs are feasible, which of the following statements holds true?
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20
2019 · Chemical Engineering · Heat Transfer · Heat Exchangers and Evaporators
Chemical Engineering (CH) 2019
Stream A with specific heat capacity \(C_{pA} = 2000\) J/(kg K) is cooled from 90 °C to 45 °C in a concentric double pipe counter current heat exchanger having a heat transfer area of 8 m². The cold stream B of specific heat capacity \(C_{pB} = 1000\) J/(kg K) enters the exchanger at a flow rate 1 kg/s and 40 °C. The overall heat transfer coefficient \(U = 250\) W/(m² K). Assume that the mean driving force is based on the arithmetic mean temperature difference, that is, \([\Delta T]_{AMTD} = \left[\frac{T_{A,in} + T_{A,out}}{2}\right] - \left[\frac{T_{B,in} + T_{B,out}}{2}\right]\), where \(T_{i,in}\) and \(T_{i,out}\) refer to the temperature of the \(i^{th}\) stream (\(i = A, B\)) at the inlet and exit, respectively. The mass flow rate of stream A (in kg/s), is __________ (rounded off to two decimal places).
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Showing 20 of 35 questions