The data for the reaction: A + B overset...

The data for the reaction: `A + B overset(k)rarr C`.
`|{:("Experiment",[A]_(0),[B]_(0),"Initial rate"),(1,0.012,0.035,0.10),(2,0.024,0.070,0.80),(3,0.024,0.035,0.10),(4,0.012,0.070,0.80):}|`
The rate law corresponding to the above data is
(a) Rate `= k[B]^(3)` , (b) Rate `= k[B]^(4)`
( c) Rate `= k[A][B]^(3)` , (d) Rate `= k[A]^(2)[B]^(2)`

Similar Questions

Explore conceptually related problems

Select the rate law that corresponds to the datashown for the reaction A+BtoC {:(,Exp.,[A],[B],Rate),(,1,0.012,0.035,0.10),(,2,0.024,0.070,0.80),(,3,0.024,0.035,0.10),(,4,0.012,0.070,0.80):}

Select the law that correponds to data shown for the following reaction A+B rarr Products {:(Exp,[A],[B],"Initial rate",),(1,0.012,0.035,0.1,),(2,0.024,0.070,0.8,),(3,0.024,0.035,0.1,),(4,0.012,0.070,0.8,):}

|{:([A],[B],"Initial Rate"),(0.05,0.05,0.045),(0.10,0.05,0.09),(0.20,0.10,0.72):}| for 2A+BtoC . Find the rate low

(a) Write the rate expression. (b) Find the rate constant for {:([A]_(0),[B]_(0),,," R_(0) "Rate" (mol litre^(-1) s^(-1))),(0.1,0.2,,,0.05),(0.2,0.2,,,0.10),(0.1,0.1,,,0.05):}

The experiment data for the reaction 2A + B_(2) rarr 2AB is |{:("Experiment",[A] M,[B_(2)] M,"Initial rate" (mol L^(-1) s^(-1)),),(I,0.50,0.5,1.6 xx 10^(-4),),(II,0.50,1.0,3.2 xx 10^(-4),),(III,1.00,1.0,3.2 xx 10^(-4),):}| Write the most probable rate equation for the reacting giving reason for you answer.

For a reaction aA +b B rarr products the following data were found {:(,[A],[B],"rate",),(,0.10,0.10,1xx10^(-2),),(,0.20,0.20,8xx10^(-2),),(,0.10,0.20,2xx10^(-2),):} The overall order of reaction is

For a reaction A+2Brarr2C , the following data were obtained . Initial concentration {:(,[A],[B],"Rate"(moll^(-1)min^(-1))),(i.,1.0,1.0,0.15),(ii,2.0,1.0,0.30),(iii.,3.0,1.0,0.45),(iv.,1.0,2.0,0.15),(v.,1.0,3.0,0.15):} The rate law for this reaction

For the reaction : 2A +B rarr C +D , measurement of the rate of the reaction at varying concentrations are given below {:("Trial No.","[A]","[B]","rate"("m mole L"^(-1)"s"^(-1))),(1,0.010,0.010,2.5),(2,0.010,0.020,5.0),(3,0.030,0.020,45.0):} The rate law is therefore

Similar Questions

Recommended Questions