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0.95 bar दाब तथा 25°C ताप पर नाइट्रोजन की एक निश्चित मात्रा का आयतन 250 cm है तो उस ताप की गणना कीजिए

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0.95 bar दाब तथा 25°C ताप पर नाइट्रोजन की एक निश्चित मात्रा का आयतन 250 cm है तो उस ताप की गणना कीजिए जिस पर इस गैस का आयतन 200 cm3 तथा दाब 1.25 bar हो।

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\(\frac{P_1\ V_1}{T_1} = \frac{P_2\ V_2}{T_2}\) 

P1 = 0.95 bar, 

V= 250 cm3 

T1 = 25 + 273 = 298 K 

P2 = 1.25 bar 

V2 = 200 cm3 

T2 = ?

अतः

\(T_2 = \frac{P_2\ V_2\ T_1}{P_1\ V_1} = \frac{1.25\times 200\times 298}{0.95\times 250}\) 

T2 = 313.6 K

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