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ChemistryMediumNumerical2020 · 02 Sep Shift 2

Q36.The results given in the below table were obtained during kinetic studies of the following reaction: 2A + B →C + D Experiment [A]/ molL−1 [B]/ molL−1 Initial rate/ molL−1 min−1 I 0. 1 0. 1 6. 00 × 10−3 II 0. 1 0. 2 2. 40 × 10−2 III 0. 2 0. 1 1. 20 × 10−2 IV X 0. 2 7. 20 × 10−2 V 0. 3 Y 2. 88 × 10−1 X and Y in the given table are respectively : (1) 0. 4, 0. 4 (2) 0. 4, 0. 3 (3) 0. 3, 0. 4 (4) 0. 3, 0. 3

What This Question Tests

This question tests the ability to determine the order of a reaction and the rate constant using the initial rate method from experimental data, and then calculate unknown concentrations.

Concepts Tested

Rate lawOrder of reactionRate constantInitial rate method

Formulas Used

Rate = k[A]^m[B]^n

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3.21 The following data were obtained during the first order thermal decomposition of SO2Cl2 at a constant volume. SO2 Cl 2 g  SO 2 g  Cl 2 g Experiment Time/s–1 Total pressure/atm 1 0 0.5 2 100 0.6 Calculate the rate of the reaction when total pressure is 0.65 atm.

📋 Question Details

Chapter
Chemical Kinetics
Topic
Determination of reaction order, Rate law, Rate constant
Year
2020
Shift
02 Sep Shift 2
Q Number
Q36
Type
Numerical
NCERT Ref
Class 12 Chemistry Ch 4: Chemical Kinetics
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