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So then, just like we saw, analogous to what saw just before, dS/dp it's T dS/dp at constant T.
就像我们看到的,就像我们刚才看到的一样,结果是T乘以恒定温度下的。
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SdT This has minus T dS minus S dT, but the dT part is zero because we're at constant temperature.
这一项包含负的Tds和,但是dT的部分等于零,因为温度为常数。
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TdS It comes from the fact that dq reversible is T dS, pdV and dw reversible is minus p dV.
这个结论来自于:可逆过程下dq等于,做功dw等负的。
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In other words, the order of taking the derivatives with respect to pressure and temperature doesn't matter And what this will show is that dS/dp dS/dp at constant temperature, here we saw how entropy varies with volume, this is going to show us how it varies with pressure.
换句话说,对温度和压强的求导顺序无关紧要,结果会表明,恒定温度下的,对应我们上面看到的,熵如何随着体积变化,这个式子告诉我们,熵如何随着压强变化。
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T So we know that T dS/dT at constant volume is Cv over T, T and dS/dT at constant pressure is Cp, over T.
在恒定压强下定压比热容Cp乘以dT除以,所以在恒定体积下dS/dT等于Cv除以,在恒定压强下dS/dT等于Cp除以。
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SdT So we have dA is minus S dT minus T dS.
我们得到dA等于负TdS减去。
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SdT So dG is dH minus T dS minus S dT.
所以dG等于dH减去TdS再减去。
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pdV So, du is T dS minus p dV.
即du等于TdS减去。
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So all that's left is negative T dS is less than zero.
只剩下TdS小于零。
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We'll substitute that in, and the T dS terms are going to cancel.
将其代入,消去TdS项。
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T That dS is greater than dq over T.
对吗,熵的变化dS大于热量dq除以温度。
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This time, the T dS terms are going to cancel.
这次TdS会被消去。
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In other words, T surrounding dS has to be greater than zero, and of course temperature is always positive.
换句话说这就意味着,环境温度T乘以dS必须大于零,当然环境温度T是正的。
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p Well, it's not just p dS/dV because there's some dS/dV at constant T.
它不是简单的,因为式子中还包含,恒定温度下的。
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du external dV minus T surroundings dS is less than zero.
加上压强p,du,plus,p,乘以dV减去环境温度T乘以dS小于零。
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if it's a reversible process then the equality holds, but if it's irreversible, which means it happens spontaneously, T then dS is greater than this.
对于可逆过程,等号成立,但是如果是不可逆过程,这些不可逆过程是自发进行的,那么dS大于dq除以。
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We saw that in general dS is greater than T or equal to dq over T.
我们发现一般来说dS大于,或者等于dq除以。
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T Namely dS is greater than dq over T.
换句话说就是dS大于dq除以。
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