某城市焦炉煤气的体积百分比组成为H 2 =59.2%、CH 4 =23.4%、CO=8.6%、C 2 H 4 =2%、CO 2 =2%、N 2 =3.6%、O 2 =1.2%,假设空气的含湿量为6g/m 3 ,则该煤气的理论烟气量为 ____ m 3 /m 3 。
【正确答案】
B
【答案解析】
[解析] 先计算理论空气量V 0
V 0 =0.023 81×(H 2 +CO)+0.047 62×(2CH 4 +3C 2 H 4 )+0.071 43H 2 S-0.047 60 2
=[0.023 81×(59.2+8.6)+0.047 62×(2×23.4+3×2)+0-0.047 6×1.2]m 3 /m 3
=4.07 m 3 /m 3
实际烟气量为:
其中:
=O.01×(CO 2 +CO+H 2 S+CH 4 +2C 2 H 4 )
=[O.01×(2+8.6+0+23.4+2×2)]m 3 /m 3
=0.38 m 3 /m 3
=O.01 N 2 +O.79V 0 =[0.1×3.6+O.79×4.07]m 3 /m 3 =3.251 m 3 /m 3
=0.01×[H 2 +2CH 4 +2C 2 H 4 +H 2 S+0.124×(d R +d k V 0 )]
=0.01×[59.2+2×23.4+2×2+0+0.124×(O+6X4.07)]m 3 /m 3
=1.13 m 3 /m 3
所以实际烟气量为:
