A graph plotted between `log k` versus `1//T` for calculating activation energy is shown by

The graph between log k versus 1//T is a straight line.

The graph plotted between concentration versus time

The plot og log k vs 1//T helps to calculate

A graph plotted between log t_((1)/(2)) vs log concentration is a straight line. What is your conclusion? [Given : n = order of reaction]

The slope of the line in the graph of log k (k = rate constant) versus 1/T is - 5841. Calculate the activation energy of the reaction.

A graph plotted between log t_(50%) vs log concentration is a straight line. What conclusion can you draw from this graph?

The slope of line plotted between In k versus (1/T) Arrhenius equation is given by

Rate constant k of a reaction varies with temperature according to the equation logk = constant -E_a/(2.303R)(1/T) where E_a is the energy of activation for the reaction . When a graph is plotted for log k versus 1/T , a straight line with a slope - 6670 K is obtained. Calculate the energy of activation for this reaction