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Previous year question hub

Transport Phenomena and Rate Processes - Metallurgical Engineering Previous Year Questions

Practice Transport Phenomena and Rate Processes - Metallurgical Engineering previous year questions organised from real papers, with year-wise coverage and clear topic navigation.

19Papers
19Years
84Questions
1Topics

Transport Phenomena and Rate Processes question pattern

Every graph below is calculated only from this selection.

Questions by year

Year-wise coverage for Transport Phenomena and Rate Processes. Each bar uses a separate theme-derived color.

Difficulty distribution

How the classified questions are distributed by difficulty.

Easy 49 58.3%
Medium 34 40.5%
Hard 1 1.2%

Question type distribution

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

MCQ 44 52.4%
Numerical Answer Type (NAT) 31 36.9%
MSQ 7 8.3%
Fill in the blanks 2 2.4%

Subject weightage

Top subjects by unique question coverage.

Metallurgical Engineering
84 Qs

Most asked topics

Top topics across the included previous year papers.

Transport Phenomena and Rate Processes
84 Qs

Subtopic coverage

Top subtopics inside this exact selection.

Heat transfer
29 Qs
Momentum Transfer
29 Qs
Basic Laws of Chemical Kinetics
11 Qs
Mass Transfer
10 Qs
Dimensional Analysis
4 Qs
Electrochemical Kinetics
1 Qs

Paper coverage

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

Metallurgical Engineering (MT) 2026
7 Qs
Metallurgical Engineering (MT) 2025
6 Qs
Metallurgical Engineering (MT) 2024
4 Qs
Metallurgical Engineering (MT) 2023
6 Qs
Metallurgical Engineering (MT) 2022
8 Qs
Metallurgical Engineering (MT) 2021
7 Qs
Metallurgical Engineering (MT) 2020
5 Qs
Metallurgical Engineering (MT) 2019
5 Qs
Metallurgical Engineering (MT) 2018
5 Qs
Metallurgical Engineering (MT) 2017
4 Qs
Metallurgical Engineering (MT) 2016
1 Qs
Metallurgical Engineering (MT) 2014
2 Qs
Metallurgical Engineering (MT) 2013
2 Qs
Metallurgical Engineering (MT) 2012
6 Qs
Metallurgical Engineering (MT) 2011
4 Qs
Metallurgical Engineering (MT) 2010
4 Qs
Metallurgical Engineering (MT) 2009
2 Qs
Metallurgical Engineering (MT) 2008
2 Qs
Metallurgical Engineering (MT) 2007
4 Qs

Browse by subtopics

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

Included previous year papers

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

PaperYear / sessionQuestions in this viewOpen
Metallurgical Engineering (MT) 202620267View paper
Metallurgical Engineering (MT) 202520256View paper
Metallurgical Engineering (MT) 202420244View paper
Metallurgical Engineering (MT) 202320236View paper
Metallurgical Engineering (MT) 202220228View paper
Metallurgical Engineering (MT) 202120217View paper
Metallurgical Engineering (MT) 202020205View paper
Metallurgical Engineering (MT) 201920195View paper
Metallurgical Engineering (MT) 201820185View paper
Metallurgical Engineering (MT) 201720174View paper
Metallurgical Engineering (MT) 201620161View paper
Metallurgical Engineering (MT) 201420142View paper
Metallurgical Engineering (MT) 201320132View paper
Metallurgical Engineering (MT) 201220126View paper
Metallurgical Engineering (MT) 201120114View paper
Metallurgical Engineering (MT) 201020104View paper
Metallurgical Engineering (MT) 200920092View paper
Metallurgical Engineering (MT) 200820082View paper
Metallurgical Engineering (MT) 200720074View paper

Sample previous year questions

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

1
2007 · Metallurgical Engineering · Transport Phenomena and Rate Processes · Mass Transfer
Metallurgical Engineering (MT) 2007
The number of boundary conditions required to solve a steady-state two-dimensional diffusion equation \(\nabla^2 C = 0\) is
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2
2008 · Metallurgical Engineering · Transport Phenomena and Rate Processes · Momentum Transfer
Metallurgical Engineering (MT) 2008

Deoxidation of liquid steel with ferrosilicon produces spherical silica particles. The particles of 5 μm diameter take 3000 minutes to float up through a 2 m height of liquid steel. For particles of 50 μm diameter to float up through the same height, the time required in minutes is

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3
2009 · Metallurgical Engineering · Transport Phenomena and Rate Processes · Heat transfer
Metallurgical Engineering (MT) 2009

A furnace wall consists of four layers of different materials, M1, M2, M3 and M4. If the layers are of equal thickness and the steady state temperature profile is, as shown below, then the material with the lowest thermal conductivity is

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4
2010 · Metallurgical Engineering · Transport Phenomena and Rate Processes · Heat transfer
Metallurgical Engineering (MT) 2010

At steady state and when the inner and outer walls of a long hollow cylinder are kept at two different temperatures, the unidirectional temperature variation along the thickness of the wall is

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5
2011 · Metallurgical Engineering · Transport Phenomena and Rate Processes · Basic Laws of Chemical Kinetics
Metallurgical Engineering (MT) 2011
For a reaction A→B, if the rate of change in concentration of A (CA), can be written as \(-\frac{dC_A}{dt} = k C_A^2\), then the change in concentration with time from initial concentration of A, CA0 is given by
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6
2012 · Metallurgical Engineering · Transport Phenomena and Rate Processes · Heat transfer
Metallurgical Engineering (MT) 2012
How many boundary conditions are required to solve the following equation? \[ \frac{\partial^2 T}{\partial r^2} + \frac{1}{r} \frac{\partial T}{\partial r} = \frac{1}{\alpha} \frac{\partial T}{\partial t} \]
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