Difficulty distribution
How the classified questions are distributed by difficulty.
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Practice Electrical Engineering previous year questions organised from real papers, with year-wise coverage and clear topic navigation.
Every graph below is calculated only from this selection.
Year-wise coverage for Electrical Engineering. Each bar uses a separate theme-derived color.
How the classified questions are distributed by difficulty.
MCQ, numerical, multiple-select and other formats found in these papers.
Top subjects by unique question coverage.
Top topics across the included previous year papers.
Top subtopics inside this exact selection.
Question coverage for the most populated papers. Every active PYP paper remains listed below.
Open a focused page built from the same verified paper data.
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Newest papers appear first. Sort by year, question coverage or name.
| Paper | Year / session | Questions in this view | Open |
|---|---|---|---|
| Electrical Engineering (EE) 2025 | 2025 | 28 | View paper |
| Electrical Engineering (EE) 2024 | 2024 | 54 | View paper |
| Electrical Engineering (EE) 2023 | 2023 | 55 | View paper |
| Electrical Engineering (EE) 2022 | 2022 | 52 | View paper |
| Electrical Engineering (EE) 2021 | 2021 | 55 | View paper |
| Electrical Engineering (EE) 2020 | 2020 | 55 | View paper |
| Electrical Engineering (EE) 2019 | 2019 | 55 | View paper |
| Electrical Engineering (EE) 2018 | 2018 | 54 | View paper |
| Electrical Engineering (EE) 2017 [Session 1] | 2017 | 55 | View paper |
| Electrical Engineering (EE) 2017 [Session 2] | 2017 | 55 | View paper |
| Electrical Engineering (EE) 2016 [Session 1] | 2016 | 55 | View paper |
| Electrical Engineering (EE) 2016 [Session 2] | 2016 | 52 | View paper |
| Electrical Engineering (EE) 2015 [Session 1] | 2015 | 1 | View paper |
| Electrical Engineering (EE) 2014 [Session 1] | 2014 | 53 | View paper |
| Electrical Engineering (EE) 2014 [Session 2] | 2014 | 55 | View paper |
| Electrical Engineering (EE) 2014 [Session 3] | 2014 | 35 | View paper |
| Electrical Engineering (EE) 2013 [Session 1] | 2013 | 64 | View paper |
| Electrical Engineering (EE) 2013 [Session 2] | 2013 | 65 | View paper |
| Electrical Engineering (EE) 2013 [Session 3] | 2013 | 65 | View paper |
| Electrical Engineering (EE) 2013 [Session 4] | 2013 | 65 | View paper |
| Electrical Engineering (EE) 2012 | 2012 | 65 | View paper |
| Electrical Engineering (EE) 2011 | 2011 | 65 | View paper |
| Electrical Engineering (EE) 2010 | 2010 | 65 | View paper |
| Electrical Engineering (EE) 2009 | 2009 | 59 | View paper |
| Electrical Engineering (EE) 2008 | 2008 | 84 | View paper |
| Electrical Engineering (EE) 2007 | 2007 | 80 | View paper |
A varied preview from the papers represented in this selection, with every available option.
Consider a bundled conductor of an overhead line, consisting of three identical sub-conductors placed at the corners of an equilateral triangle as shown in the figure. If we neglect the charges on the other phase conductors and ground, and assume that spacing between sub-conductors is much larger than their radius, the maximum electric field intensity is experienced at
