发布时间 : 星期一 文章第五版物理化学第五章习题答案更新完毕开始阅读e5e5845be518964bcf847c1b
?θΔrHmT2-T1 lgθ=()K12.303RTT2T1θK2θΔrHm=135.78kJ?mol
∴K3θ135.781100-1000 lg=()2.5052.303RT1100×1000K3θ=11
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t/℃ 30 50 70 90 100 110 1/T 0.003299 0.003095 0.002914 0.002754 0.00268 0.00261 p/kPa 0.827 3.999 15.9 55.23 97.47 167 log (kPa) -0.08249 0.601951 1.201397 1.742175 1.988871 2.222716
2.52.01.5)aPK1.0/p(gl0.50.0-0.50.00260.00270.00280.00290.00300.00310.00320.00330.0034T-1/K-1
直线的斜率m =-3.345×103
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解:当温度T=473K时
lgKθ=-ΔrHθ?m2.303RT+C
∴ΔθrHm2.303R=2100
∴ΔHθrm=40.21kJ?mol-1
2C3H5OH(g)=CH3COOC2H5(g)+2H2(g)473K, ΔθfHm/kJ?mol-1 -235.34 x 0
x-2×(-235.34) = 40.21 x=-430.47kJ·mol-1
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