题目内容
【题目】已知热化学方程式:2H2(g)+O2(g) 
2H2O(l) H= -571.6 kJ·mol-1,2CH3OH(l)+3O2(g) 2CO2(g)+4H2O(l) H= -1452 kJ·mol-1,H+(aq)+OH-(aq) H2O(l) H= -57.3 kJ·mol-1。据此判断下列说法正确的是
A. CH3OH的燃烧热为1452 kJ·mol-1
B. 2H2(g)+O2(g) 2H2O(g) H > -571.6 kJ·mol-1
C. CH3COOH(aq)+NaOH(aq) H2O(l)+CH3COONa(aq) H= -57.3 kJ·mol-1
D. 2CH3OH(l)+O2(g) 2CO2(g)+4H2(g) H= -880.4 kJ·mol-1
【答案】B
【解析】A.根据方程式2CH3OH(l)+3O2(g) =2CO2(g)+4H2O(l) H= -1452 kJ·mol-1可知,CH3OH的燃烧热为
×1452 kJ·mol-1=726 kJ·mol-1,故A错误;B.液态水变成水蒸气会吸热,因此2H2(g)+O2(g) =2H2O(g) H > -571.6 kJ·mol-1,故B正确;C. 醋酸为弱酸,电离需要吸热,CH3COOH(aq)+NaOH(aq) =H2O(l)+CH3COONa(aq) H>-57.3 kJ·mol-1,故C错误;D. ①2H2(g)+O2(g) =2H2O(l) H= -571.6 kJ·mol-1,②2CH3OH(l)+3O2(g) =2CO2(g)+4H2O(l) H= -1452 kJ·mol-1,根据盖斯定律,将②-①×2得:2CH3OH(l)+O2(g) =2CO2(g)+4H2(g) H= -308.8 kJ·mol-1,故D错误;故选B。
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