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प्रश्न
0.5 mole of an ideal gas at 300 K, expands isothermally from an initial volume of 2 L to a final volume of 6 L.
Calculate:
- work done by the gas
- heat supplied to the gas.
[Given: R = 8.31 J mol−1 K−1]
संख्यात्मक
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उत्तर
Given: Number of moles of gas (n) = 0.5 moles
Temperature (T) = 300 K
Initial Volume (V1) = 2 L = 2.0 × 10−3 m3
Final Volume (V2) = 6 L = 6.0 × 10−3 m3
Universal Gas Constant (R) = 8.314 J/mol K
(a) Work done by the gas (W) = `nRT ln (V_2/V_1)`
= `0.5 xx 8.314 xx 300 xx ln(6/2)`
= `0.5 xx 8.314 xx 300 xx ln 3`
= `0.5 xx 8.314 xx 300 xx 1.0986`
= 1370 J
(b) Heat supplied to the gas (Q) = ΔU + W
For an ideal gas, the internal energy (U) is a function of temperature only. Since the process is isothermal (ΔT = 0), the change in internal energy (ΔU = 0).
∴ Q = W
= 1370 J
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