Answer:
A) T₁ = 293°C
B) T₂ = 858.8°C
Step-by-step explanation:
Part A)
The average kinetic energy of an ideal gas molecule is given by the formula:
Kinetic Energy = K.E = (3/2)KT
where,
K = Boltzman's Constant
T = Absolute Temperature
For initial state:
T = 10° C + 273 = 283 K
K.E = K₁₀
Therefore,
K₁₀ = (3/2)K(283)
K₁₀ = 424.5 K
Now, for final state,
K.E₁ = 2 K₁₀ = 2 (424.5 K) = 849 K
T₁ = ?
Therefore,
849 K = (3/2) KT₁
T₁ = (849*2)/3 Kelvin
T₁ = 566 Kelvin = 293° C
Part B)
The average kinetic energy of an ideal gas molecule is given by the formula:
Kinetic Energy = K.E = (3/2)KT
Also,
K.E = (1/2)mv²
Comparing both equations we get:
(1/2)mv² = (3/2)KT
v = √(3KT/m)
For initial state:
T = 10° C + 273 = 283 K
v = Vrms
Therefore,
Vrms = √(3K*283/m)
Vrms = 29.14 √(K/m)
Now, for final state,
v = 2 Vrms = 2 (29.14 √(K/m)) = 58.27 √(K/m)
T₂ = ?
Therefore,
58.27 √(K/m) = √(3KT₂/m)
T₂ = (58.27)²/3 kelvin
T₂ = 1131.8 Kelvin = 858.8° C