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On 07/02/14 15:02, wrote:<br>
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<p>Dr. Pounds,</p>
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<p>Maybe you can tell me, maybe you cannot, but for question 2
part b, is A in the Arrhenius equation is that something that
I can calculate? Or is it something that I need to be given?</p>
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<p>Respectfully,</p>
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If you use the Arrhenius equation approach then you can calculate
the value of A (assuming you have the value for the<br>
activation energy from part a and the value for the rate constant at
a given temperature. <br>
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<pre class="moz-signature" cols="72">--
Andrew J. Pounds, Ph.D. (<a class="moz-txt-link-abbreviated" href="mailto:pounds_aj@mercer.edu">pounds_aj@mercer.edu</a>)
Professor of Chemistry and Computer Science
Mercer University, Macon, GA 31207 (478) 301-5627
<a class="moz-txt-link-freetext" href="http://faculty.mercer.edu/pounds_aj">http://faculty.mercer.edu/pounds_aj</a>
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