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Question

Consider the kinetic data given in the following table for the reaction A + B + C → Product

Ex. No.

[A]

[B]

[C]

Rate of reaction

1.

0.2

0.1

0.1

6×10-5

2.

0.2

0.2

0.1

6×10-5

3.

0.2

0.1

0.2

1.2×10-4

4.

0.3

0.1

0.1

9×10-5

When [A] =0.15

[B] =0.25

[C] =0.15

Rate of reaction is Y×10-5m/s. Find Y.


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Solution

The above question can be solved as:

Step 1:

Let us write the rate of reaction equation as: r=kAaBbCc------(i)

where x,y,z are coefficient of reactant A,B and C respectively.

and, order of the reaction =x+y+z-------(ii)

Step 2:

Apply the data of exp(1) in equation(i):

6×10-5=k0.2x0.1y0.1z-------(iii)

Again apply the date of exp(2) in equation(i):

6×10-5=k0.2x0.2y0.1z-------(iv)

Divide eq(iii) by eq(iv)

6×10-56×10-5=k0.2x0.1y0.1zk0.2x0.2y0.1z1=0.5yy=0

Similarly x,z can be found as 1,1

and the order of the reaction is =1+0+1=2

So, the rate law for reaction is: r=kA1B0C1r=kAC______v

Step 3:

Placing the values of concentration of A and C in equation v to find the value of k.

From experiment 2.:

6×10-5=k0.2×0.1k=3×10-3mol-1Ls-1

Step 4:

Now, place the given concentrations of A, B, and C and calculate the value of k in the equation v to determine the rate of reaction.

r=3×10-3×0.15×0.15r=6.75×10-5mol-1Ls-1

Therefore, as the rate of reaction is Y×10-5m/s then Y=6.75.


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