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Previous year question hub

Maxwell's Equations - Electromagnetics - Electronics & Communication Engineering Previous Year Questions

Practice Maxwell's Equations - Electromagnetics - Electronics & Communication Engineering previous year questions organised from real papers, with year-wise coverage and clear topic navigation.

16Papers
12Years
25Questions
1Topics

Maxwell's Equations question pattern

Every graph below is calculated only from this selection.

Questions by year

Year-wise coverage for Maxwell's Equations. Each bar uses a separate theme-derived color.

Difficulty distribution

How the classified questions are distributed by difficulty.

Easy 14 56%
Medium 11 44%

Question type distribution

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

MCQ 17 68%
Numerical Answer Type (NAT) 7 28%
MSQ 1 4%

Subject weightage

Top subjects by unique question coverage.

Electronics & Communication Engineering
25 Qs

Most asked topics

Top topics across the included previous year papers.

Electromagnetics
25 Qs

Subtopic coverage

Top subtopics inside this exact selection.

Maxwell's Equations
25 Qs

Paper coverage

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

Electronics & Communication Engineering (EC) 2025
3 Qs
Electronics & Communication Engineering (EC) 2024
1 Qs
Electronics & Communication Engineering (EC) 2022
1 Qs
Electronics & Communication Engineering (EC) 2021
1 Qs
Electronics & Communication Engineering (EC) 2019
3 Qs
Electronics & Communication Engineering (EC) 2017
1 Qs
Electronics & Communication Engineering (EC) 2016 [Session 2]
3 Qs
Electronics & Communication Engineering (EC) 2016 [Session 1]
2 Qs
Electronics & Communication Engineering (EC) 2016 [Session 3]
1 Qs
Electronics & Communication Engineering (EC) 2014 [Session 4]
2 Qs
Electronics & Communication Engineering (EC) 2014 [Session 1]
1 Qs
Electronics & Communication Engineering (EC) 2014 [Session 3]
1 Qs
Electronics & Communication Engineering (EC) 2013 [Session 1]
1 Qs
Electronics & Communication Engineering (EC) 2012
2 Qs
Electronics & Communication Engineering (EC) 2011
1 Qs
Electronics & Communication Engineering (EC) 2008
1 Qs

Included previous year papers

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

PaperYear / sessionQuestions in this viewOpen
Electronics & Communication Engineering (EC) 202520253View paper
Electronics & Communication Engineering (EC) 202420241View paper
Electronics & Communication Engineering (EC) 202220221View paper
Electronics & Communication Engineering (EC) 202120211View paper
Electronics & Communication Engineering (EC) 201920193View paper
Electronics & Communication Engineering (EC) 201720171View paper
Electronics & Communication Engineering (EC) 2016 [Session 1]20162View paper
Electronics & Communication Engineering (EC) 2016 [Session 2]20163View paper
Electronics & Communication Engineering (EC) 2016 [Session 3]20161View paper
Electronics & Communication Engineering (EC) 2014 [Session 1]20141View paper
Electronics & Communication Engineering (EC) 2014 [Session 3]20141View paper
Electronics & Communication Engineering (EC) 2014 [Session 4]20142View paper
Electronics & Communication Engineering (EC) 2013 [Session 1]20131View paper
Electronics & Communication Engineering (EC) 201220122View paper
Electronics & Communication Engineering (EC) 201120111View paper
Electronics & Communication Engineering (EC) 200820081View paper

All Maxwell's Equations previous year questions

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

1
2008 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2008
For static electric and magnetic fields in an inhomogeneous source-free medium, which of the following represents the correct form of two of Maxwell's equations?
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2
2011 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2011
A current sheet $\vec{J} = 10\hat{a}_y \,\text{A/m}$ lies on the dielectric interface $x = 0$ between two dielectric media with $\epsilon_{r1} = 5$, $\mu_{r1} = 1$ in Region-1 ($x < 0$) and $\epsilon_{r2} = 2$, $\mu_{r2} = 2$ in Region-2 ($x > 0$). If the magnetic field in Region-1 at $x = 0^-$ is $\vec{H}_1 = 3\hat{a}_x + 30\hat{a}_y \,\text{A/m}$, the magnetic field in Region-2 at $x = 0^+$ is

Question diagram

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3
2012 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2012
The magnetic field at a distance \( r \) from the center of the wire is proportional to
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4
2012 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2012
A hole of radius \( b \) (\( b < a \)) is now drilled along the length of the wire at a distance \( d \) from the center of the wire as shown below. The magnetic field inside the hole is

Question diagram

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5
2013 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2013 [Session 1]
The divergence of the vector field \( \vec{A} = x\hat{a}_x + y\hat{a}_y + z\hat{a}_z \) is
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6
2014 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2014 [Session 1]
The force on a point charge \(+q\) kept at a distance \(d\) from the surface of an infinite grounded metal plate in a medium of permittivity \(\epsilon\) is
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7
2014 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2014 [Session 3]
A region shown below contains a perfect conducting half-space and air. The surface current \(\boldsymbol{K}_s\) on the surface of the perfect conductor is \(\boldsymbol{K}_s = \hat{\boldsymbol{z}} 2\) amperes per meter. The tangential \(\boldsymbol{H}\) field in the air just above the perfect conductor is
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8
2014 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2014 [Session 4]
The electric field (assumed to be one-dimensional) between two points A and B is shown. Let ψA and ψB be the electrostatic potentials at A and B, respectively. The value of ψB − ψA in Volts is __________
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9
2014 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2014 [Session 4]
If E⃗ = −(2y3 − 3yz2)x̂ − (6xy2 − 3xz2)ŷ + (6xyz)ẑ is the electric field in a source free region, a valid expression for the electrostatic potential is
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10
2016 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2016 [Session 1]
Concentric spherical shells of radii 2 m, 4 m, and 8 m carry uniform surface charge densities of 20 nC/m2, −4 nC/m2 and ρs, respectively. The value of ρs (nC/m2) required to ensure that the electric flux density D = 0 at radius 10 m is ______
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11
2016 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2016 [Session 1]
The current density in a medium is given by \( \vec{J} = \frac{400 \sin\theta}{2\pi(r^2 + 4)} \hat{a}_r \text{ Am}^{-2} \) The total current and the average current density flowing through the portion of a spherical surface \( r = 0.8 \text{ m}, \frac{\pi}{12} \le \theta \le \frac{\pi}{4}, 0 \le \phi \le 2\pi \) are given, respectively, by
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12
2016 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2016 [Session 2]
A uniform and constant magnetic field \( \mathbf{B} = \hat{z}B \) exists in the \( \hat{z} \) direction in vacuum. A particle of mass \( m \) with a small charge \( q \) is introduced into this region with an initial velocity \( \mathbf{v} = \hat{x}v_x + \hat{z}v_z \). Given that \( B, m, q, v_x \) and \( v_z \) are all non-zero, which one of the following describes the eventual trajectory of the particle?
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13
2016 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2016 [Session 2]
The parallel-plate capacitor shown in the figure has movable plates. The capacitor is charged so that the energy stored in it is \(E\) when the plate separation is \(d\). The capacitor is then isolated electrically and the plates are moved such that the plate separation becomes \(2d\).
At this new plate separation, what is the energy stored in the capacitor, neglecting fringing effects?
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14
2016 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2016 [Session 2]
A positive charge \(q\) is placed at \(x = 0\) between two infinite metal plates placed at \(x = -d\) and at \(x = +d\) respectively. The metal plates lie in the \(yz\) plane.
The charge is at rest at \(t = 0\), when a voltage \(+V\) is applied to the plate at \(-d\) and voltage \(-V\) is applied to the plate at \(x = +d\). Assume that the quantity of the charge \(q\) is small enough that it does not perturb the field set up by the metal plates. The time that the charge \(q\) takes to reach the right plate is proportional to
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15
2016 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2016 [Session 3]
Faraday's law of electromagnetic induction is mathematically described by which one of the following equations?
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16
2017 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2017

Two conducting spheres S1 and S2 of radii a and b (b > a) respectively, are placed far apart and connected by a long, thin conducting wire, as shown in the figure. For some charge placed on this structure, the potential and surface electric field on S1 are Va and Ea, and that on S2 are Vb and Eb, respectively. Then, which of the following is CORRECT?

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17
2019 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2019
What is the electric flux \(\int \vec{E} \cdot d\vec{a}\) through a quarter-cylinder of height H (as shown in the figure) due to an infinitely long line charge along the axis of the cylinder with a charge density of Q?
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18
2019 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2019
Radiation resistance of a small dipole current element of length \( l \) at a frequency of 3 GHz is 3 ohms. If the length is changed by 1%, then the percentage change in the radiation resistance, rounded off to two decimal places, is ______%.
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19
2019 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2019
Two identical copper wires W1 and W2, placed in parallel as shown in the figure, carry currents \(I\) and \(2I\), respectively, in opposite directions. If the two wires are separated by a distance of \(4r\), then the magnitude of the magnetic field \(\vec{B}\) between the wires at a distance \(r\) from W1 is
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20
2021 · Electronics & Communication Engineering · Electromagnetics · Maxwell's Equations
Electronics & Communication Engineering (EC) 2021
For a vector field \( \mathbf{D} = \rho \cos^2 \phi \, \mathbf{a}_\rho + z^2 \sin^2 \phi \, \mathbf{a}_\phi \) in a cylindrical coordinate system \((\rho, \phi, z)\) with unit vectors \(\mathbf{a}_\rho, \mathbf{a}_\phi, \mathbf{a}_z\), the net flux of \(\mathbf{D}\) leaving the closed surface of the cylinder \((\rho = 3, 0 \le z \le 2)\) (rounded off to two decimal places) is __________
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Showing 20 of 25 questions