大学化学

上一篇    下一篇

面向化工热力学的吉布斯自由能通俗化教学改革与实践

胡胜楠, 雷冰, 舒凤远, 元辛   

  1. 中山大学化学工程与技术学院, 广东 珠海 519082
  • 收稿日期:2026-03-23 修回日期:2026-05-09
  • 通讯作者: 元辛 E-mail:yuanx29@mail.sysu.edu.cn Xin Yuan
  • 基金资助:
    中山大学2026年校级教学质量与教学改革工程项目(实验实践类-科产教融合实践教学基地,课程建设与教学改革类-化工设备机械基础项目制课程)

Popularized teaching reform and practice of Gibbs free energy in chemical engineering thermodynamics

Shengnan Hu, Bing Lei, Fengyuan Shu, Xin Yuan   

  1. School of Chemical Engineering and Technology, Sun Yat-Sen University, Zhuhai 519082, Guangdong Province, China
  • Received:2026-03-23 Revised:2026-05-09
  • Contact: Xin Yuan E-mail:yuanx29@mail.sysu.edu.cn

摘要: 吉布斯自由能是化工热力学中核心且抽象的概念,是判断恒温恒压条件下自发过程方向与限度的关键判据。针对学生在理解吉布斯自由能本质与应用时存在的难点,本文构建了“本质定义-判据应用-微观机制-工程实践”的四阶梯通俗化教学方案。该方案运用规范的热力学术语、鲜活的化工案例、具象化的图示及恰当的生活化类比,实现了热力学严谨性与直观理解的结合,厘清了焓变与熵变的博弈关系,以及吉布斯自由能与分子解离常数的定量关系。同时,本文系统梳理了吉布斯自由能在化学反应工程、化工分离、药物设计等化工核心领域的应用逻辑。在中山大学化工专业开展的教学实践表明,该教学方法能有效降低学生对抽象概念的理解难度,提升其运用热力学理论解决工程实际问题的能力。本研究为化工热力学中吉布斯自由能及其他抽象概念的教学优化,提供了可行的教学参考。

关键词: 吉布斯自由能, 化工热力学, 自发过程, 焓, 熵, 相平衡, 教学优化

Abstract: Gibbs free energy, a fundamental yet abstract concept in chemical engineering thermodynamics, serves as the pivotal criterion for determining the direction and extent of spontaneous processes under isothermal and isobaric conditions. To address students’ difficulties in comprehending the essence and applications of Gibbs free energy, this study proposes a four-tier teaching framework encompassing conceptual definition, criterion application, microscopic mechanisms, and engineering practice. The methodology integrates rigorous thermodynamic principles with intuitive understanding through standardized terminology, illustrative chemical engineering examples, visual diagrams, and relatable analogies. It elucidates the interplay between enthalpy and entropy changes, along with the quantitative relationship between Gibbs free energy and molecular dissociation constants. Furthermore, the study systematically examines the application of Gibbs free energy in core chemical engineering domains, including reaction engineering, separation processes, and pharmaceutical design. Teaching implementations at Sun Yat-Sen University’s Chemical Engineering program demonstrate that this approach significantly enhances students’ comprehension of abstract concepts and their ability to apply thermodynamic theories to solve practical engineering problems. This research provides valuable insights for optimizing the instruction of Gibbs free energy and other complex concepts in chemical engineering thermodynamics education.

Key words: Gibbs free energy, Chemical engineering thermodynamics, Spontaneous process, Enthalpy, Entropy, Phase equilibrium, Teaching optimization