The work done when two mole of an ideal gas is compressed form a volume of `5 m^(3)` to `1 dm^(3)` at 300 K , under a pressure of 100 kPa is

Question

The work done when two mole of an ideal gas is compressed form a volume of `5 m^(3)` to `1 dm^(3)` at 300 K , under a pressure of 100 kPa is

The work done when two mole of an ideal gas is compressed form a volume of `5 m^(3)` to `1 dm^(3)` at 300 K , under a pressure of 100 kPa is
A. `499.9` kJ
B. `-499.9 `kJ
C. `-99.5` kJ
D. `42495`kJ

Monjur Alahi

7 views

2025-01-04 04:42

1 Answers

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Salim Ahmed Kawsar · Accepted Answer · 2023-02-05T15:29:48+06:00

Salim Ahmed Kawsar

Correct Answer - A
Work done , W = `- P_(ext") (V_(2) - V_(1))`
Here , `P_("ext") = 100 k Pa`
`V_(1) = 5 m^(3) = 5 xx 10^(3) L implies V_(2) = 1 dm^(3) = 1 L`
`therefore W = -100 xx (1 - 500)`
` = - 499900 k PaL`
`= - 499900 J = - 499.9 kJ ( because 1 k Pa L = 1 J)`

7 views Answered 2023-02-05 15:29