512 ENGINEERING THERMODYNAMICS
dharm
\M-therm\Th11-2.pm5
+Example 11.8. A sample of fuel has the following percentage composition : Carbon = 86
per cent ; Hydrogen = 8 per cent ; Sulphur = 3 per cent ; Oxygen = 2 per cent ; Ash = 1 per cent.
For an air-fuel ratio of 12 : 1, calculate :
(i)Mixture strength as a percentage rich or weak.
(ii)Volumetric analysis of the dry products of combustion.
Solution.
Element, wt. (kg) O 2 reqd. (kg)
C = 0.86 0.86 ×^83 = 2.29
H 2 = 0.08 0.08 × 8 = 0.64
S = 0.03 0.03 ×^11 = 0.03
O 2 = 0.02
Total O 2 = 2.96
Weight of oxygen to be supplied per kg of fuel = 2.96 – 0.02 = 294 kg.
Weight of minimum air required for complete combustion =
2 94 100
23
. ×
= 12.78 kg
Hence “correct” fuel-air ratio =^1
12 78.
: 1
But actual ratio is
1
12 : 1.
(i)Mixture strength =
12 78
12
.
× 100 = 106.5%
This show that mixture is 6.5% rich. (Ans.)
Deficient amount of air = 12.78 – 12 = 0.78 kg
Amount of air saved by burning 1 kg of C to CO instead of CO 2
= Oxygen saved ×
100
23
=
8
3
4
(^23)
L (CO )− (CO)
NM
O
QP
×
100
23
= 5.8 kg
Hence^078
58
.
.
= 0.134 kg of carbon burns to CO and as such 0.86 – 0.134 = 0.726 kg of carbon
burns to CO 2.
∴ CO formed = 0.134 ×^7
3
= 0.313 kg
CO 2 formed = 0.726 ×^11
3
= 2.662 kg
N 2 supplied = 12 × 0.77 = 9.24 kg
SO 2 formed = 0.03 × 2 = 0.06 kg.