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Shao, Michael; Shiflett, Mark B. – Chemical Engineering Education, 2021
Simulation software has experienced growing interest in chemical engineering curriculums for its usage in commercial engineering practices. This article describes the ASPEN PlusĀ® version 10 (V10) simulations and a student teach students approach to integrate ASPEN in the chemical engineering curriculum at the University of Kansas (KU). Videos,…
Descriptors: Chemical Engineering, Teaching Methods, Computer Simulation, Computer Software
Battaglia, Onofrio Rosario; Di Paola, Benedetto; Persano Adorno, Dominique; Pizzolato, Nicola; Fazio, Claudio – Research in Science Education, 2019
Two 20-h modelling-based workshops focused on the explanation of thermally activated phenomena were held at the University of Palermo, Italy, during the Academic Year 2014-2015. One of them was conducted by applying an inquiry-based approach, while the other, still based on laboratory and modelling activities, was not focused on inquiry.…
Descriptors: Workshops, Engineering Education, Chemical Engineering, Undergraduate Students
Falconer, John L. – Chemical Engineering Education, 2016
More than 40 interactive "Mathematica" simulations were prepared for chemical engineering thermodynamics, screencasts were prepared that explain how to use each simulation, and more than 100 ConcepTests were prepared that utilize the simulations. They are located on www.LearnChemE.com. The purposes of these simulations are to clarify…
Descriptors: Thermodynamics, Simulation, Chemical Engineering, Engineering Education
Mendez, Sergio; AungYong, Lisa – Chemical Engineering Education, 2014
To help students make the connection between the concepts of heat conduction and convection to real-world phenomenon, we developed a combined experimental and computational module that can be incorporated into lecture or lab courses. The experimental system we present requires materials and apparatus that are readily accessible, and the procedure…
Descriptors: Heat, Thermodynamics, Scientific Concepts, Science Education
Foley, Greg – Chemical Engineering Education, 2014
A problem that illustrates two ways of computing the break-even radius of insulation is outlined. The problem is suitable for students who are taking an introductory module in heat transfer or transport phenomena and who have some previous knowledge of the numerical solution of non- linear algebraic equations. The potential for computer algebra,…
Descriptors: Chemical Engineering, College Science, Computation, Scientific Concepts
Nasri, Zakia; Binous, Housam – Chemical Engineering Education, 2009
A single equation of state (EOS) such as the Peng-Robinson (PR) EOS can accurately describe both the liquid and vapor phase. We present several applications of this equation of state, including estimation of pure component properties and computation of the vapor-liquid equilibrium (VLE) diagram for binary mixtures. We perform high-pressure…
Descriptors: Thermodynamics, Chemical Engineering, Chemistry, Equations (Mathematics)
Castier, Marcelo – Chemical Engineering Education, 2008
An Excel add-in--XSEOS--that implements several excess Gibbs free energy models and equations of state has been developed for educational use. Several traditional and modern thermodynamic models are available in the package with a user-friendly interface. XSEOS has open code, is freely available, and should be useful for instructors and students…
Descriptors: Thermodynamics, Chemistry, Chemical Engineering, Computer Software
Olaya, Maria del Mar; Ibarra, Isabel; Reyes-Labarta, Juan A.; Serrano, Maria Dolores; Marcilla, Antonio – Chemical Engineering Education, 2007
An exercise to compute LLE data is presented to illustrate the problems that can arise when the isoactivity equilibrium condition is used in the LLE calculations. A much more efficient condition is obtained when isoactivity is combined with the common tangent line criterion, avoiding false solutions that correspond with very low values of the…
Descriptors: Chemistry, Computation, Chemical Engineering, College Students

Charos, Georgios N.; And Others – Chemical Engineering Education, 1986
Previous work focused on use of computer graphics in teaching thermodynamic phase equilibria for classes I and II. Extends this work to include the considerably more non-ideal phase behavior shown by classes III, IV, and V. Student and instructor response has been overwhelmingly positive about the approach. (JN)
Descriptors: Chemical Engineering, Computer Graphics, Computer Software, Engineering Education

Naik, Chandrashekhar D.; And Others – Chemical Engineering Education, 1985
Describes an interactive graphics package which illustrates the phase behavior of binary mixtures. The package has been successfully used with graduate and undergraduate students in the chemical engineering curriculum at Cornell University. Features contributing to this success are noted. (JN)
Descriptors: Chemical Engineering, College Instruction, Computer Graphics, Computer Software

Sandler, Stanley I. – Chemical Engineering Education (CEE), 1997
Responds to the suggestion that computational tools be used in undergraduate thermodynamics courses. Argues that instead of using spreadsheets or specially prepared programs, students can quickly develop their own worksheets and solve problems using an equation-solving software program such as MATHCAD. Emphasis is on understanding the fundamentals…
Descriptors: Chemical Engineering, Computer Software, Computer Uses in Education, Educational Technology