1) A + B C Some experiments were run to measure the initial rate of reaction vs. starting concentration of A and B. Here are the results. Experiment number [A], M [B], M initial rate, M/s 1 0.230 0.170 0.330 2 0.460 0.170 2.640 4 0.230 0.510 0.330 If we start with 0.197 M A and 0.330 M B, what will be the initial rate? hint, you must find order, and k.
2) For the reaction A + B + C ----> D + E, the following data
were obtained:
Exp. A,
M B,
M C,M rate,
M/s
1 0.70 0.20 0.40 35
2 0.70 0.60 0.40 105
3 0.
20 0.10 0.20
5.0
4 0.
80 0.10 0.20
20
5 0.37 0.86 0.18
80
6 0.37 0.86 0.77
80
7 0.58 0.39 0.99 ?
Write the rate law? ( I think the answer is k[B]^2[C]^2 but i'm not
sure)
1) A + B C Some experiments were run to measure the initial rate of reaction...
Consider the equation: 2A + B → C The initial rate of reaction is measured at several different concentrations of the reactants with the following results: [A] (M) [B] (M) Initial Rate (M/s) 0.40 0.10 0.026 0.10 0.10 0.026 0.40 0.20 0.103 (blank 1) What is the order with respect to reactant A? (write a number) (blank 2) What is the order with respect to B? (write a number) (blank 3) What is the value of the rate constant. Include...
For the reaction A+B+C→D+EA+B+C→D+E, the initial reaction rate was measured for various initial concentrations of reactants. The following data were collected: Trials [A] (M) [B] (M) [C] (M) Initial rate (M/s) 1 0.20 0.20 0.20 6.0x10-5 2 0.20 0.20 0.60 1.8×10−4 3 0.40 0.20 0.20 2.4×10−4 4 0.40 0.40 0.20 2.4×10−4 Given the data calculated in Parts A, B, C, and D, determine the initial rate for a reaction that starts with 0.45 M of reagent A and 0.90 M...
1. Shown below are the results of four separate experiments measuring reaction rate for the following reaction: 2 A+3B+C - 2D+3E Trial [A. BL. C. Initial rate (M/s) 0.01 0.20 0.10 1.67 x 10+ 2 0.02 0.20 0.20 1.33 x 10-3 3 0.02 0.20 0.10 3.33 x 104 4 0.01 0.40 0.10 1.67 x 10-4 c. What is the rate when the initial concentrations for all reactants is 0.15 M?
Given the following initial rate data at 25.0°C, for the reaction 3 A + B Æ P [A] [B] Rate (in M/s) Run 1 0.10 M 0.15 M 1.08 x 10-5 Run 2 0.10 M 0.20 M 1.25 x 10-5 Run 3 0.20 M 0.20 M 5.01 x 10-5 a) Find the rate law for the reaction. Final Answer for a): b) What is the value of the rate constant k?
need help with #3 please
QUESTION 3 Determine the rate-law expression for the reaction below at the temperature at which the tabulated initial rate data were obtained, rate- A + 2B + 3C - Products Experiment Initial [A] 0.10 M Initial [B] 0.20 M Initial [C] 0.10 M 0.40 M 0.20 M 0.10 M Initial Rate of Loss of A 4.0 x 10-2 Mmin 4.0 x 10-2 M/min 1.0 x 10- M'min 16x 10- Mmin 0.20 M 0.25 M 0.40...
Initial rate data is given in the table for the following reaction. 2NO(g) +0,(g) + 2NO,(8) Experiment (NO) initia, (M) olinitial (M) Rate (M/s) 0.420 0.460 0.206 2 0.840 0.460 0.824 3 / 0.420 0.920 0.412 4 0.420 0.230 0.103 What is the rate law for the reaction? Orate = k[NO][02] Orate = k[NO]”[02] rate = k[NO] rate = k[NO]{0,12
6. Consider the reaction X + Y → Z Initial Rate of Disappearance of X (M/s) [X] (M) [Y] (M) 0.053 0.10 0.50 0.127 0.20 0.30 1.02 0.40 0.60 0.254 0.20 0.60 0.509 0.40 0.30 From the data in the table, obtained at 360 K, (a) determine the overall order of the reaction (b) determine the initial rate of disappearance of X when the concentration of X is 0.30 M and that of Y is 0.40 M. ________ M/s
Be sure to answer all parts. Consider the reaction X + Y Z Initial Rate of Disappearance of [X] (M) [Y](M) X (M/s) From the data in the table, obtained at 360 K, 0.053 0.10 0.50 (a) determine the overall order of the reaction 0.20 0.30 0.127 1.02 0.254 0.40 0.60 0.20 0.60 0.30 0.509 0.40 (b) determine the initial rate of disappearance of X when the concentration of X is 0.40 M and that of Y is 0.30 M....
Be sure to answer all parts Consider the reaction X + Y → Z Initial Rate of Disappearance of |[XI (M) [YI(M) X (M/s) From the data in the table, obtained at 360 K, 0.053 0.127 1.02 0.254 0.509 0.10 0.20 0.30 0.40 0.20 0.60 0.40 0.30 0.50 (a) determine the overall order of the reaction 0.60 (b) determine the initial rate of disappearance of X when the concentration of X is 0.30 M and that of Y is 0.50...
answer all
The reaction A+B +C+D rate = k[A] [B]? has an initial rate of 0.0730 M/s. What will the initial rate be if [A] is halved and (B) is tripled? initial rate: 0.3163 M What will the initial rate be if (A] is tripled and (B) is halved? initial rate: 0.0937 For the reaction 2 H2O(g) = 2H2(g) + O2(g) the equilibrium concentrations were found to be [H,O] = 0.250 M, [H] = 0.330 M, and (0,] = 0.800...