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MathsMediumMCQ2019 ยท 10 Apr Shift 2

Q77.The sum of the real roots of the equation ๐‘ฅ -6 -1 2 -3๐‘ฅ ๐‘ฅ- 3 = 0, is equal to: -3 2๐‘ฅ ๐‘ฅ+ 2 (1) 0 (2) -4 (3) 6 (4) 1 JEE Main 2019 (10 Apr Shift 2) JEE Main Previous Year Paper

What This Question Tests

This question tests the ability to expand a 3x3 determinant to form a cubic equation and then find the sum of its real roots by factoring the polynomial.

Concepts Tested

Determinant of a 3x3 matrixFactoring polynomialsRoots of an equation

Formulas Used

Determinant expansion formula for 3x3 matrix

๐Ÿ“š NCERT Sections This Tests

1.32 โ€” Calculate The Depression In The Freezing Point Of Water When 10 G Of

Chemistry Class 11 ยท Chapter 1

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1.32 Calculate the depression in the freezing point of water when 10 g of CH3CH2CHClCOOH is added to 250 g of water. Ka = 1.4 ร— 10โ€“3, Kf = 1.86 K kg molโ€“1. 1.33 19.5 g of CH2FCOOH is dissolved in 500 g of water. The depression in the freezing point of water observed is 1.00 C. Calculate the vanโ€™t Hoff factor and dissociation constant of fluoroacetic acid.

3.10 โ€” In A Reaction Between A And B, The Initial Rate Of Reaction (R0) Was Measured

Chemistry Class 11 ยท Chapter 3

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3.10 In a reaction between A and B, the initial rate of reaction (r0) was measured for different initial concentrations of A and B as given below: A/ mol Lโ€“1 0.20 0.20 0.40 B/ mol Lโ€“1 0.30 0.10 0.05 r0/mol Lโ€“1sโ€“1 5.07 ร— 10โ€“5 5.07 ร— 10โ€“5 1.43 ร— 10โ€“4 What is the order of the reaction with respect to A and B? 3.11 The following results have been obtained during the kinetic studies of the reaction: 2A + B ยฎ C + D Experiment [A]/mol Lโ€“1 [B]/mol Lโ€“1 Initial rate of formation of D/mol Lโ€“1 minโ€“1 I 0.1 0.1 6.0 ร— 10โ€“3 II 0.3 0.2 7.2 ร— 10โ€“2 III 0.3 0.4 2.88 ร— 10โ€“1 IV 0.4 0.1 2.40 ร— 10โ€“2 Determine the rate law and the rate constant for the reaction. 3.12 The reaction between A and B is first order with respect to A and zero order with respect to B. Fill in the blanks in the following table: Experiment [A]/ mol Lโ€“1 [B]/ mol Lโ€“1 Initial rate/ mol Lโ€“1 minโ€“1 I 0.1 0.1 2.0 ร— 10โ€“2 II โ€“ 0.2 4.0 ร— 10โ€“2 III 0.4 0.4 โ€“ IV โ€“ 0.2 2.0 ร— 10โ€“2 3.13 Calculate the half-life of a first order reaction from their rate constants given below: (i) 200 sโ€“1 (ii) 2 minโ€“1 (iii) 4 yearsโ€“1 3.14 The half-life for radioactive decay of 14C is 5730 years. An archaeological artifact containing wood had only 80% of the 14C found in a living tree. Estimate the age of the sample. 3.15 The experimental data for decomposition of N2O5 [2N2O5 ยฎ 4NO2 + O2] in gas phase at 318K are given below: t/s 0 400 800 1200 1600 2000 2400 2800 3200 102 ร— [N2O5]/ 1.63 1.36 1.14 0.93 0.78 0.64 0.53 0.43 0.35 mol Lโ€“1 (i) Plot [N2O5] against t. (ii) Find the half-life period for the reaction. (iii) Draw a graph between log[N2O5] and t. (iv) What is the rate law ? Chemistry 86 Reprint 2025-26 (v) Calculate the rate constant. (vi) Calculate the half-life period from k and compare it with (ii).

3.23 โ€” The Rate Constant For The Decomposition Of Hydrocarbons Is 2.418 ร— 10โ€“5Sโ€“1

Chemistry Class 11 ยท Chapter 3

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3.23 The rate constant for the decomposition of hydrocarbons is 2.418 ร— 10โ€“5sโ€“1 at 546 K. If the energy of activation is 179.9 kJ/mol, what will be the value of pre-exponential factor.