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    JEE Main 2024 Question Paper With Solutions PDF

    JEE Main 2024 Question Paper With Solutions PDF

    #JEE Main
    Team Careers360Updated on 31 Mar 2026, 12:42 PM IST

    JEE Main 2024 Question Paper - The National Testing Agency releases the JEE Main question paper 2024 on the official website, jeemain.nta.nic.in. Download the 2024 question paper PDF for free from the website. No login credentials are required to download the JEE Main 2024 question paper. Careers360 has also provided the JEE Main 2024 question paper PDF along with solutions on this page. With the help of the previous year’s question paper, analyse questions, compare answers, and understand the JEE Main exam pattern and difficulty level. To download the official JEE Mains 2024 question paper PDF, candidates can go through this article and download the PDF by clicking on the links provided in the article.

    Live | Apr 3, 2026 | 2:38 PM IST
    JEE Main 2026 April Exam LIVE: NTA Day 2 entrance exam tomorrow; shift timings, answer key

    Candidates who are appearing for the JEE Mains 2026 session 2 exams tomorrow, April 3, can practice and prepare by solving the JEE Main 2026 January session question paper provided by Careers360's official question paper page.

    JEE Main 2024 Question Paper With Solutions PDF
    JEE Main 2024 Question Paper PDF With Solution

    JEE Main 2024 Question Paper Session 1

    Candidates preparing for the upcoming Joint Entrance Examination can download the JEE Main question paper PDF 2024 via the links. Just click on the link to easily access the question paper and answer key. Check the table below with the link for the JEE Main Question Paper 2024 PDF.

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    JEE Main 2024 Questions Paper Analysis with Answers

    The JEE Main 2024 exam was conducted in two sessions and in two shifts. Candidates can check a thorough analysis of the session and sheet-wise question paper by experts of careers360. The JEE Main 2024 question paper is based on the latest syllabus and the latest pattern, which was changed by NTA. Candidates will find out the paper analysis here to see what they can expect fro the upcoming exam.

    JEE Main 2024 Questions and Paper Analysis (April Session)

    JEE Main 2024 Questions and Paper Analysis (January Session)

    JEE Main 2024 Papers: Questions and Analysis for 27, 29,30,31 January and 1 February

    JEE Main 2024 Paper: Questions and Analysis of 27th January Morning Shift

    JEE Main 2024 Paper: Questions and Analysis of 27th January Evening Shift

    JEE Main 2024 Paper: Questions and Analysis of 29th January Morning Shift

    JEE Main 2024 Paper: Questions and Analysis of 29th January Evening Shift

    JEE Main 2024 Paper: Questions and Analysis of 30th January Morning Shift

    JEE Main 2024 Paper: Questions and Analysis of 30th January Evening Shift

    JEE Main 2024 Paper: Questions and Analysis of 31st January Morning Shift

    JEE Main 2024 Paper: Questions and Analysis of 31st January Evening Shift

    JEE Main 2024 Paper: Questions and Analysis of 1st February Morning Shift

    JEE Main 2024 Paper: Questions and Analysis of 1st February Evening Shift

    How to download the JEE Main 2024 Question Papers With Solutions?

    To download the question paper from the official website, candidates just have o follow the steps:

    • Visit the official website of the National Testing Agency, nta.ac.in/Home.

    • On the home page, click on the ‘Downloads’ option.

    • Candidates will now be directed to the previous year's exam paper window.

    • Now, on the search option, enter the exam year (select 2024) and the exam type (select JEE Main),

    • Click ‘Search’ and the JEE Main 2024 question paper download link will be displayed in table format.

    • Candidaets can click on the question paper 2024 type and download in PDF format.

    Also Check:

    JEE Main Last 10 Years Question Papers with Solutions

    JEE Main Question Paper with Solutions and Answer Keys

    JEE Main Syllabus: Subjects & Chapters
    Select your preferred subject to view the chapters

    Benefits of Solving the JEE Main 2024 Question Paper

    For JEE Main exam preparation, the previous year's JEE Main question papers are an important resource. The JEE Main 2024 question paper, based on the latest syllabus and latest pattern, offers the following benefits-

    • Helps in revising and identifying topics that need more practice and conceptual clarity.

    • Students gain a better understanding of the JEE Main exam pattern, frequently appearing topics and more. It acts as an effective preparation strategy for the exam.

    • Candidates can improve their time management skills. They can also use it to determine which sections to concentrate on for better accuracy and speed.

    • Regular practice of JEE Main question paper pdf with solutions can help aspirants gain confidence and reduce anxiety before the exam.

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    JEE Main Previous Year Questions 2024

    Chemistry

    1. Cyclohexene 1721277874250is __________ type of an organic compound.

    a)Benzenoid non-aromatic

    b)Benzenoid aromatic

    c)Alicyclic

    d)Acyclic

    Solution : 1721277874171 is alicyclic compound

    2. Which of the following statements are correct?

    A. Glycerol is purified by vacuum distillation because it decomposes at its normal boiling point.

    B. Aniline can be purified by steam distillation as aniline is miscible in water.

    C. Ethanol can be separated from the ethanol-water mixture by azeotropic distillation because it forms azeotrope.

    D. An organic compound is pure, if mixed M.P. remains the same.

    Choose the most appropriate answer from the options given below :

    Solution: Option (B) is incorrect because aniline is immiscible in water.

    Physics

    1. By what percentage will the illumination of the lamp decrease if the current drops by 20%?

    a)56% b) 26% c) 36% d)46%

    Solution: Heat and Power developed in a resistor

    Heat developed in a resistor: When a steady current flows through a resistance R for time t, the loss in electric potential energy appears as increased thermal energy(Heat H) of the resistor and H=i^2RtThe power developed = \frac{energy}{time}=i^2R=iR=\frac{V^2}{R} (from Ohm's law)

    The unit of heat is the joule (J)

    The unit of power is the watt (W)

    2. A block of mass 5 kg is there on a smooth inclined plane which is making 30 degrees angle with the horizontal, And a hanging mass of 6 kg is attached with it by a string which passes through a pulley; the acceleration of the system is

    1. 4m/s-2 b)1.8m.s-2 c) 4.5m/s-2 d) 5m/s-2

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    Solution: Let us see the fbd for the system

    1721277875916

    For acceleration, we can write the equation as

    a=\frac{6g-5gsin30^{o}}{6+5}

    \Rightarrow a=\frac{60-(50\times \frac{1}{2})}{11}=3.18ms^{-2}

    Maths

    1. If the mean and variance of five observations are \frac{24}{5} and \frac{194}{25} respectively and the mean of the first four observations is \frac{7}{2}, then the variance of the first four observations in equal to

    a)\frac{4}{5} b)\frac{5}{4} c)\frac{3}{5} d)\frac{105}{4}

    Solution: MEAN (Arithmetic Mean)

    The mean is the sum of the value of each observation in a dataset divided by the number of observations.

    Mean of the Ungrouped Data

    If n observations in data are x1, x2, x3, ……, xn, then arithmetic mean \mathit{\bar x} is given by

    \mathit{\bar x}=\frac{x_1+x_2+x_3+\ldots\dots +x_n }{n}=\frac{1}{n}\sum^{n}_{i=1}x_i

    Variance and Standard Deviation

    The mean of the squares of the deviations from the mean is called the variance and is denoted by σ2 (read as sigma square).

    Variance is a quantity that leads to a proper measure of dispersion.

    The variance of n observations x1 , x2 ,..., xn is given by

    \sigma^{2}=\frac{1}{n} \sum_{i=1}^{n}\left(x_{i}-\bar{x}\right)^{2}

    \bar{X}=\frac{24}{5} ; \sigma^2=\frac{194}{25}

    Let the first four observations be \mathrm{x}_1, \mathrm{x}_2, \mathrm{x}_3, \mathrm{x}_4

    Here, \frac{x_1+x_2+x_3+x_4+x_5}{5}=\frac{24}{5}

    Also, \frac{\mathrm{x}_1+\mathrm{x}_2+\mathrm{x}_3+\mathrm{x}_4}{4}=\frac{7}{2}\Rightarrow \mathrm{x}_1+\mathrm{x}_2+\mathrm{x}_3+\mathrm{x}_4=14

    Now from eqn -1

    \mathrm{x}_5=10 Now, \sigma^2=\frac{194}{25}

    \begin{aligned} & \frac{x_1^2+x_2^2+x_3^2+x_4^2+x_5^2}{5}-\frac{576}{25}=\frac{194}{25} \\ & \Rightarrow x_1^2+x_2^2+x_3^2+x_4^2=54 \end{aligned}

    Now, the variance of the first 4 observations

    \mathrm{Var}=\frac{\sum_{\mathrm{i}=1}^4 \mathrm{x}_{\mathrm{i}}^2}{4}-\left(\frac{\sum_{\mathrm{i}=1}^4 \mathrm{x}_{\mathrm{i}}}{4}\right)^2=\frac{54}{4}-\frac{49}{4}=\frac{5}{4}

    2. If the general term of the first AP = 3n-5 and that of the second AP is 3n+5. Then the 50th term of AP where both the AP are added

    a)155 b) 145 c) 300 d)150

    Solution: As we learned,

    Properties of an AP:

    If a_{1},a_{2},a_{3}\: \: and\: b_{1},b_{2},b_{3} are two APs,

    then a_{1}+ b_{1},a_{2}+ b_{2,}a_{3}+ b_{3} is also an AP.

    In this Question,

    T_n=3n+5+3n-5= 6n

    T_{50}=6\times 50=300

    Frequently Asked Questions (FAQs)

    Q: Upto which year should I solve the question paper of JEE Main?
    A:

    It is advised to candidates that they should solve at least 10 previous year's question papers to know more about the exam pattern.

    Q: Is it necessary to attempt all 75 questions in JEE Mains?
    A:

    Yes, candidates must attempt all the 75 questions in JEE Mains. However, candidates should only attempt the questions if they are confident about the answer.

    Q: Is there a negative marking in the JEE Main Exam?
    A:

    Yes, there is a negative marking in the JEE Main Exam in both sections for each subject.

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    JEE Main 2026 2nd April question paper with answer key

    Careers360's Experts will provide the the JEE Mains 2 April shift 1 question paper 2026 with solutions and answer key immediately after the exam. Refer to below link

    https://engineering.careers360.com/articles/jee-mains-2026-april-2-shift-1-paper-with-solutions-pdf

    Read Complete Answer
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    Maniprabha Singh
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    I' m class 12 student. I want to study JEE main exam, with 2027 board exam. How can I start ro study

    You can start your preparation right away! Go through the JEE Main syllabus, practice PYQs, do Mock Test, revise Class 12 syllabus, etc. You can also check the complete JEE Main preparation tips here: https://engineering.careers360.com/articles/jee-main-preparation-tips

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    Ranjeeta
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    Iss all complete or correct syllabus for jee 2027

    Hi
    JEE Mains 2027 Syllabus has not been released yet.
    You can refer to the link below to get the latest update on JEE Mains
    https://engineering.careers360.com/exams/jee-main

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    sanoj kathlane
    1 Apr'26
    Hello. I am Shruthi. Mine jee mains session 1 was not so good and gained 33.6899 percentile , I am trying for session 2 and kcet and cuet ug and comedk also can I get admission in your college....

    Please mention the name of the college for which you are seeking BTech admission. There are a huge number of colleges that accept the KCET, COMEDK UGET, JEE Main and CUET scores.

    Please check the link for the list of engineering colleges in Karnataka and their details- https://engineering.careers360.com/colleges/ranking/top-engineering-colleges-in-karnataka

    All the

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    Rudra Veena
    30 Mar'26
    Jee mains previous paper solve sample paper hindi midieum

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