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Charles’ Law can be expressed mathematically as V=kT. If the constant k for 6.0 L of gas is 0.020 L/K (liters per kelvin), what is the temperature of the gas?
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Charles’ Law can be expressed mathematically as V=kT. If the constant k for 6.0 L of gas is 0.020 L/K (liters per kelvin), what is the temperature of the gas?

User Catzilla
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Answer: 300 K

Step-by-step explanation:

Charles' Law: This law states that volume is directly proportional to the temperature of the gas at constant pressure and number of moles.


V\propto T (At constant pressure and number of moles)


V=kT

Given : V= 6.0 L

k= 0.020 L/K

T=?


6.0=0.020LK^(-1)* T


T=300 K

Thus temperature of the gas is 300 K.

User Aemdy
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