摘要:19.分析某种煤气的体积组成如下:H250%.CH430%.CO10%.N26%.CO24%. 已知:H2(g)+O2(g)=H2O(1);△H=-285.8kJ·mol-1 CO(g)+ O2(g)=CO2(g); △H=-282.6kJ·mol-1 CH4(g)+2O2(g)=CO2(g)+2H2O(1); △=-890.3kJ·mol-1 则在标准状况下.224L该种煤气燃烧时放出的热量为 ( ) A.1461.7kJ B.4382.5kJ C.4665.1kJ D.5811.5kJ

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分析某种煤气的体积组成如下:H250%、CH430%、CO10%、N26%、CO24%.
已知:H2(g)+
1
2
O2(g)═H2O(l)△H=-285.8kJ?mol-1
CO(g)+
1
2
O2(g)═CO2(g)△H=-282.6kJ?mol-1
CH4(g)+2O2(g)═CO2(g)+2H2O(l)△H=-890.3kJ?mol-1
则在标准状况下,224L该种煤气燃烧时放出的热量为(  )
A.1461.7kJB.4382.5kJC.4665.1kJD.5811.5kJ
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分析某种煤气的体积组成如下:H250%、CH430%、CO10%、N26%、CO24%。

已知:H2(g)+O2(g)=H2O(1);△H=-285.8kJ?mol1

CO(g)+ O2(g)=CO2(g); △H=-282.6kJ?mol1

CH4(g)+2O2(g)=CO2(g)+2H2O(1); △=-890.3kJ?mol1

则在标准状况下,224L该种煤气燃烧时放出的热量为          (    )

A.1461.7kJ          B.4382.5kJ          C.4665.1kJ          D.5811.5kJ

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