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Sarah A. Wilson; Bradley J. Berron; Anastasia Hauser – Chemical Engineering Education, 2025
The bourbon production engineering course offers a comprehensive overview of chemical engineering to non-engineers. It emphasizes chemical engineering concepts such as material balances and mass transfer, making these concepts accessible and engaging. Students learn through targeted lessons on each unit operation and practical examples from grain…
Descriptors: Chemical Engineering, Agricultural Production, Engineering Education, Courses
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Natacha Souto-Melgar – Chemical Engineering Education, 2025
This paper describes the combination of problem-based learning (PBL) and simulation tools in the chemical engineering unit operation laboratory course, focusing on heat transfer concepts using a shell-and-tube heat exchanger experiment. This approach has significantly enhanced student learning outcomes by bridging theory with practice, fostering a…
Descriptors: Chemical Engineering, Heat, Problem Based Learning, Critical Thinking
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Samantha Yanosko; Grant Valentine; Matthew W. Liberatore – Chemical Engineering Education, 2025
An interactive textbook for a material and energy balances course measured over 1,300 reading interactions and hundreds of auto-graded problems per student each term. Specifically, seven cohorts and 601 students completed over 700,000 reading interactions and 150,000 auto-graded problems. Median reading participation was over 93%. Median correct…
Descriptors: Chemical Engineering, Textbooks, Computer Uses in Education, Grading
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Nicolas Dietrich; Gaëlle Lebrun; Kalyani Kentheswaran; Mathias Monnot; Patrick Loulergue; Carine Franklin; Florence Teddé-Zambelli; Chafiaa Djouadi; Sébastien Leveneur; Mallorie Tourbin; Yolaine Bessie`re; Carole Coufort-Saudejaud; Annabelle Couvert; Eric Schaer – Journal of Chemical Education, 2022
Women are increasingly present in the field of engineering, but despite a significant female presence, it has been found that the programs continue to make no reference to women scientists. In chemical engineering, for example, all the names of scientists mentioned in the programs belong to men only. To test this hypothesis of over-representation…
Descriptors: Females, Disproportionate Representation, Engineering, Engineering Education
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Stierle, Rolf; Fischer, Matthias; Braun, Thorsten; Gross, Joachim – Chemical Engineering Education, 2023
How is it possible to create and continuously improve a quality learning environment for our students? We present our one-year course on engineering thermodynamics as a case study in which we investigate the learning environment based on a competency model from the students' perspective. Based on the analysis of our course structure and exam…
Descriptors: Engineering Education, Thermodynamics, College Students, Student Attitudes
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Alexis N. Prybutok; Ayinoluwa Abegunde; Kenzie Sanroman Gutierrez; Lauren Simitz; Chloe Archuleta; Jennifer Cole – Chemical Engineering Education, 2024
Engineering curriculum often fails to connect content and decisions to impacts on diverse, particularly marginalized, communities. Given that integration of social justice ideas into curriculum is currently uncommon among most faculty, we provide resources in the form of a workshop to help catalyze these efforts by teaching faculty how to…
Descriptors: Chemical Engineering, Social Justice, Racism, Workshops
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Chenette, Heather C. S.; Neumann, Gregory T.; Anastasio, Daniel D. – Chemical Engineering Education, 2021
Unit operations laboratory courses culminate many topics from the curriculum and are often the first time students apply their knowledge in hands-on settings. However, many instructors do not directly assess key learning objectives, creating a disparity between desired and actual learning. Using multiple assessment tools, we analyzed student…
Descriptors: Chemical Engineering, Student Experience, Student Attitudes, Laboratories
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Robert J. Fisher – Chemical Engineering Education, 2025
Strategies are proposed that promote use of an Integrated Applied Mathematics (IAM) approach to enhance teaching of advanced problem-solving and analysis skills. Three scenarios of 1-dimensional transport processes are presented that support using Error Function analyses when considering short time/small penetration depths in finite geometries.…
Descriptors: Chemical Engineering, Mathematics, Problem Solving, Skill Development
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Yulianti, Ina; Hamidah, Ida; Komaro, Mumu; Mudzakir, Ahmad; Alias, Maizam – Journal of Technology and Science Education, 2021
The rapid development of technology and information has influenced students' learning styles and has led to a shift in information seeking from printed books to e-books. This study aims to measure students' knowledge and skills, attitude, and website knowledge competency on the ionic liquid material. The study involved 47 students of the Diploma…
Descriptors: Web Based Instruction, Chemical Engineering, Experiential Learning, College Students
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Glaucia H. C. Prado – Chemical Engineering Education, 2024
A chemical engineering degree offers the possibility of a variety of career paths including food and beverage industry. However, chemical engineering students are rarely exposed to food processing examples during their education. Therefore, a new elective food processing course was developed and offered for the first time in the department of…
Descriptors: Culturally Relevant Education, American Indian Students, American Indian Culture, American Indian Education
Esohe Fawole – ProQuest LLC, 2023
This dissertation is split into two objectives: (1) to better understand the effect of relative humidity (RH) on charge transfer between metal electrodes and water droplets and (2) to assess the impact of The Design of Coffee, a general education, introductory chemical engineering course, on non-STEM students' ability to understand fundamental…
Descriptors: STEM Education, Chemical Engineering, Food, Influences
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Scholes, Colin A.; Hu, Guoping – Chemical Engineering Education, 2021
A practical for students to experience a process plant is presented, based on operating a solvent absorption plant for carbon dioxide capture. The student must operate the plant in assigned roles that closely identify with a chemical plant environment, to achieve specific performance targets. Students must overcome technical challenges that…
Descriptors: Chemical Engineering, Engineering Education, Facilities, Chemistry
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Ford, Hayley; Wilding, Kristen M.; Bundy, Bradley C. – Chemical Engineering Education, 2021
Here we present our experience applying the principles of optimization and a wholistic student-centered engineering mindset to create an educational experience focused on long-term student success. Specifically, we have applied this approach to redesign a junior-level chemical engineering project that strives to develop student scholarship,…
Descriptors: Engineering Education, Student Centered Learning, Chemical Engineering, Holistic Approach
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Bradley A. Cicciarelli; Eric A. Sherer; Timothy C. Reeves; Steven R. Toaddy; Marisa K. Orr – Chemical Engineering Education, 2025
To address attrition early in the chemical engineering curriculum, we provided students the opportunity to attend a two-day workshop focused on the major. Workshop attendees received information about upcoming courses and career paths and interacted with upper-level students and faculty in the major. Surveys were administered to assess student's…
Descriptors: Chemical Engineering, Workshops, College Students, Majors (Students)
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Venkatasubramanian, Venkat – Chemical Engineering Education, 2022
The motivation, philosophy, and organization of a course on artificial intelligence in chemical engineering is presented. The purpose is to teach undergraduate and graduate students how to build AI-based models that incorporate a first principles-based understanding of our products, processes, and systems. This is achieved by combining…
Descriptors: Artificial Intelligence, Chemical Engineering, College Students, Teaching Methods
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