Suppose that the average velocity (vrmsvrms) of carbon dioxide molecules (molecular mass is equal to 44.0 g/mol) in a flame is found to be 1.05×105m/s1.05×105m/s. What temperature does this represent?

asked Jul 27, 2020 47.7k views

3 votes

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2 votes

Answer:

Temperature is 19464105 K or 1.94×
10^(7) K

Step-by-step explanation:

Given data

mass=44
(g)/(mol)

Vrms=
1.05*10^(5)(m)/(s)

Temperatur=?

Solution

$Vrms=\sqrt{(3kT)/(m) }\\ k=1.38*10^(-23)(j)/(K)\\  Vrms^(2)=(3kT)/(m)\\  T=(mVrms^(2) )/(3k)$

$T=((44*((1kg)/(1000g) )*(1)/(6.02*10^(23)molecules ) )*(1.05*10^(5) ))/(3*1.38*10^(-23) )\\ T=19464105K\\T=1.9*10^(7) K$

Mrjasmin answered Jul 31, 2020

6.0k points

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