हिंदी

If CX(s)+OX2(g)⟶COX2(g), ΔH = - 396 kJ mol-1, calculate heat liberated during formation of 0.154 kg of CO2. -

Advertisements
Advertisements

प्रश्न

If \[\ce{C_{(s)} + O_{2(g)} -> CO_{2(g)}}\], ΔH = - 396 kJ mol-1, calculate heat liberated during formation of 0.154 kg of CO2.

विकल्प

  • 1386.0 kJ

  • 346.5 kJ

  • 693.0 kJ

  • 1039.5 kJ

MCQ

उत्तर

1386.0 kJ

Explanation:

For formation of 1 mol CO2 = 396 kJ heat is liberated

`therefore 154/44 "mol" ≡ (396 xx 154)/44` = 1386 kJ heat is liberated.

shaalaa.com
Nature of Heat and Work
  क्या इस प्रश्न या उत्तर में कोई त्रुटि है?
Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×