At what temperature is the rms speed of oxygen molecules twice their rms speed at 27 C

At what temperature will the rms speed of oxygen molecules becomes just sufficient to escape from the earth's atmosphere?Given: Mass of oxygen molecule m =2.76 × 10 26 kg, Boltzmann constant i.e. .k B =1.38 × 10 23 JK 1A. 5.016 × 104 KB. 2.508 × 104 KC. 8.360 × 104 KD. 1.254 × 104 K

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This example problem demonstrates how to calculate the root mean square (RMS) velocity of particles in an ideal gas. This value is the square root of the average velocity-squared of molecules in a gas. While the value is an approximation, especially for real gases, it offers useful information when studying kinetic theory.

What is the average velocity or root mean square velocity of a molecule in a sample of oxygen at 0 degrees Celsius?

Gases consist of atoms or molecules that move at different speeds in random directions. The root mean square velocity (RMS velocity) is a way to find a single velocity value for the particles. The average velocity of gas particles is found using the root mean square velocity formula:

μrms = (3RT/M)½
μrms = root mean square velocity in m/sec
R = ideal gas constant = 8.3145 (kg·m2/sec2)/K·mol
T = absolute temperature in Kelvin
M = mass of a mole of the gas in kilograms.

Really, the RMS calculation gives you root mean square speed, not velocity. This is because velocity is a vector quantity that has magnitude and direction. The RMS calculation only gives the magnitude or speed. The temperature must be converted to Kelvin and the molar mass must be found in kg to complete this problem.

Find the absolute temperature using the Celsius to Kelvin conversion formula:

T = °C + 273
T = 0 + 273
T = 273 K

Find molar mass in kg:
From the periodic table, the molar mass of oxygen = 16 g/mol.
Oxygen gas (O2) is comprised of two oxygen atoms bonded together. Therefore:

molar mass of O2 = 2 x 16
molar mass of O2 = 32 g/mol
Convert this to kg/mol:
molar mass of O2 = 32 g/mol x 1 kg/1000 g
molar mass of O2 = 3.2 x 10-2 kg/mol

Find μrms:

μrms = (3RT/M)½
μrms = [3(8.3145 (kg·m2/sec2)/K·mol)(273 K)/3.2 x 10-2 kg/mol]½
μrms = (2.128 x 105 m2/sec2)½
μrms = 461 m/sec

The average velocity or root mean square velocity of a molecule in a sample of oxygen at 0 degrees Celcius is 461 m/sec.

Answer

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Hint: - The root-mean-square speed takes into account both molecular weight and temperature, two factors that directly affect the kinetic energy of a material.Formula Used: -${V_{rms}}$=$\sqrt {\dfrac{{3KT}}{m}} $Because both oxygen and hydrogen gas is diatomic, oxygen is 16 times heavier than hydrogen as measured per atom or molecule.

Complete step-by-step solution -

The root-mean-square rate is the calculation of particle velocity in a gas.The ${V_{rms}}$ is the square root of the average of the squares of the speeds of the molecules is ${\left({v}^{2}\right)}^\dfrac{1}{2}$ which can also be mentioned as ${V_{rms}} = $$\sqrt {\dfrac{{3{R}T}}{m}} $ of the molecules in a gas. RMS speed is inversely proportional to the square root of mass (molecular or molar).The root-mean-square speed takes into account molecular weight and temperature, two factors which directly affect a material's kinetic energy.The Boltzmann constant is the proportionality factor which relates the average relative kinetic energy of particles in a gas to the gas's thermodynamic temperature. We have, mass of oxygen molecule is $2.76 \times {10^{ - 26}}\;kg$ and ${k_B} = 1.38 \times {10^{ - 23}}J{K^{ - 1}}$Escape Velocity is referred to as the minimum velocity that someone or object has to predict to transcend the planet earth's gravitational pull. In other words, the minimum speed needed to escape the gravitational field is speed escape,Escape velocity is given by ${V_{escape}} = \sqrt {2gR} $Where, $g$ is the acceleration due to gravity and $R$ is the radius of earthTherefore, $g = 9.8 \dfrac{m}{{s}^2}$$R = 6.4 \times {10^6}$Therefore, \[{V_{escape}} = \sqrt {2 \times 9.8 \times 6.4 \times {{10}^6}} \]\[ \to {V_{escape}} = \sqrt {2 \times 9.8 \times 6.4 \times {{10}^6}} \]\[ \to {V_{escape}} = \sqrt {125.44 \times {{10}^6}} \]\[ \to {V_{escape}} = 11.2 \times {10^3} \dfrac{m}{s} \]Now let the temperature of the molecule be $T$ when it attains velocity, \[{V_{escape}}\]As per the question, rms speed of oxygen molecules become just sufficient for escaping from the Earth’s atmosphere i.e., ${V_{esape}} = {V_{rms}}$, where ${V_{rms}}$ is the speed of an oxygen molecule.Hence as per root mean square of the velocity,${V_{rms}} = $$\sqrt {\dfrac{{3{K_b}T}}{m}} $, where m is the molar mass of the gas in kilograms per mole, $T$ is the temperature, $K$ is molar mass gas constant. $ \to $${V_{rms}} = $$\sqrt {\dfrac{{3{K_b}T}}{m}} $$ \to T = \dfrac{{{{\left( {11.2 \times {{10}^3}} \right)}^2} \times m}}{{3{K_b}}}$ since, ${V_{esape}} = {V_{rms}}$ and \[{V_{escape}} = 11.2 \times {10^3} \dfrac{m}{s}\]Putting the value of ${K_B} = 1.38 \times {10^{ - 23}}J{K^{ - 1}}$ and m =$2.76 \times {10^{ - 26}}\;kg$$ \to T = \dfrac{{{{\left( {11.2 \times {{10}^3}} \right)}^2} \times \;\left( {2.76 \times {{10}^{ - 26}}} \right)}}{{3 \times \left( {1.38 \times {{10}^{ - 23}}} \right)}}$$ \to T = 8.3626 \times {10^4}\;K$Therefore, option D is the correct answer and the temperature at which the rms speed of oxygen molecules become just sufficient for escaping from the Earth’s atmosphere is $8.360 \times {10^4}\;K$.Note: - Root mean square speed, ${V_{rms}} = $$\sqrt {\dfrac{{3{K_b}T}}{m}} $ and escape velocity ${V_{escape}} = \sqrt {2gR} $ are very important for solving such type of numerical. Also we must remember the properties and nature like oxygen and hydrogen gas are diatomic and oxygen is 16 times heavier than hydrogen as measured per atom or molecule.

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At what temperature is the rms speed of oxygen molecules twice their rms speed at 27 C

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