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Roman, Claudia; Delgado, Miguel A.; Garcia-Morales, Moises – Chemical Engineering Education, 2021
The benefits of using Microsoft Excel built-in functions in an undergraduate Multistage Separations course are analyzed based on 15 years of experience teaching mass transfer in Chemical Engineering programs at both the Bachelor's and Master's levels. Eight reasons for using spreadsheets in a Mass Transfer virtual course are given. Through the…
Descriptors: Computation, Spreadsheets, Undergraduate Students, Engineering Education
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Llanos, Javier; Pérez, Ángel; de Lucas-Consuegra, Antonio – Journal of Chemical Education, 2019
This work presents a laboratory to help chemical-engineering students understand the basic concepts of corrosion. This laboratory has been performed since academic year 2011-2012 in the framework of the subject "Design of equipment and installations" for the third year of the Chemical Engineering Degree of the University of Castilla-La…
Descriptors: Science Instruction, Chemical Engineering, Laboratory Experiments, Scientific Concepts
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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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Godwin, Allison; Boudouris, Bryan W. – Chemical Engineering Education, 2020
An introductory sophomore-level chemical engineering course was redesigned, and this redesign included cyber-assisted learning through online videos, team formation, and team evaluation software. We compared the traditional 2018 course (n = 48) with the redesigned 2019 course (n = 67) on student persistence (DFW rates), motivation, and course…
Descriptors: Student Motivation, Chemical Engineering, Engineering Education, College Students
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Cooper, Matthew; Bullard, Lisa G.; Spencer, Dan; Willis, Chris – Chemical Engineering Education, 2020
Direct and indirect assessments of student learning, motivation and course experience were completed for a two-semester online chemical engineering graduate bridging course. Both direct and indirect assessments showed students better accomplished learning objectives associated with material and energy balances, momentum/heat/mass transport,…
Descriptors: Chemical Engineering, Online Courses, Distance Education, Educational Technology
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Nielsen, Rudi P.; Sørensen, Jens L.; Simonsen, Morten E.; Madsen, Henrik T.; Muff, Jens; Strandgaard, Morten; Søgaard, Erik G. – Journal of Chemical Education, 2016
Chemical engineering is mostly taught using traditional classroom teaching and laboratory experiments when possible. Being a wide discipline encompassing topics such as analytical chemistry, process design, and microbiology, it may be argued that brewing of beer has many relations to chemical engineering topic-wise. This work illustrates how…
Descriptors: Chemical Engineering, Science Instruction, Scientific Principles, Microbiology
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Asogwa, Uchenna; Duckett, T. Ryan; Mentzer, Gale A.; Liberatore, Matthew W. – Chemical Engineering Education, 2021
The impact of solving novel video-inspired homework problems on learning attitudes toward chemical engineering was examined at beginning and end of an undergraduate material and energy balances course using a modified Colorado Learning Attitudes about Science Survey instrument. Mean overall attitude of participants improved by a normalized gain…
Descriptors: Homework, Student Attitudes, Video Technology, Problem Solving
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Davis, Robert H.; deGrazia, Janet – Chemical Engineering Education, 2021
An intensive course in heat transfer was created for the winter break between semesters to provide students with a "second chance" to learn the material and receive a grade of C- or better required to take the subsequent courses in the chemical engineering curriculum. It includes on-line and in-person instruction. Over the three years…
Descriptors: Chemical Engineering, Heat, STEM Education, Grades (Scholastic)
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Gautam, Satyen; Nagarajan, Karthiga; Loh, Kai Chee; Zhou, Kang; Yung, Lanry Lin Y.; Tong, Yen Wah; Li, Zhi – Chemical Engineering Education, 2020
The paper explores the effectiveness of hands-on learning (HOL) as a student-centered model to train first year chemical engineering undergraduates. The pedagogical design of the course uses laboratory sessions, lectures, reflection sessions, projects, and assessments to achieve the course learning outcomes. The adopted assessment methodology…
Descriptors: Experiential Learning, Chemical Engineering, Engineering Education, Undergraduate Students
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Wang, Xiaoyan; Zhang, Yao; Wu, Qiuying; Jin, Xinglong – Journal of Chemical Education, 2022
This essay assessed the chemical safety knowledge of students in the School of Chemistry and Chemical Engineering, Tianjin University of Technology, concerning chemical storage, heat operation, waste disposal, and emergency response. The results show that students' familiarity and understanding of safety knowledge is not satisfactory, especially…
Descriptors: Laboratory Safety, Chemistry, Knowledge Level, College Students
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Immethun, Cheryl M.; Daher, Tareq; Saha, Rajib – Chemical Engineering Education, 2019
The use of active learning techniques in engineering classrooms has been limited despite substantial evidence supporting their efficacy in helping students construct problem-solving expertise. A blended classroom, which combines online and in-class learning, was employed in a Chemical Engineering Computation class to address instructional…
Descriptors: Science Instruction, Teaching Methods, Chemical Engineering, Blended Learning
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Hirshfield, Laura J.; Mayes, Heather B. – Chemical Engineering Education, 2019
With the advance of engineering education research and scholarship, there has been an increased focus on amending chemical engineering courses to increase student learning, engagement and enjoyment. These approaches are often incorporated in project-based courses such as capstone design courses and laboratory courses, providing opportunities to…
Descriptors: Undergraduate Students, Chemical Engineering, Engineering Education, Inclusion
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Tabassum, Tahseen; Iloska, Marija; Scuereb, Daniel; Taira, Noriko; Jin, Chongguang; Zaitsev, Vladimir; Afshar, Fara; Kim, Taejin – Journal of Chemical Education, 2018
3D printing technology has an enormous potential to apply to chemical engineering education. In this paper, we describe several designs of 3D printed mesoreactors (Y-shape, T-shape, and Long channel shape) using the following steps: reactor sketching, CAD modeling, and reactor printing. With a focus on continuous plug flow mesoreactors (PFRs, i.d.…
Descriptors: College Science, Science Instruction, Undergraduate Study, Hands on Science
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Palit, Sukanchan – Journal on English Language Teaching, 2016
Scientific vision and scientific understanding in today's world are in the path of new glory. Chemical Engineering science is witnessing drastic and rapid changes. The metamorphosis of human civilization in this century is faced with vicious challenges. Progress of Chemical Engineering science, the vision of technology and the broad chemical…
Descriptors: Chemical Engineering, Periodicals, English (Second Language), Second Language Learning
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Lauri J. Partanen; Liisa Myyry; Henna Asikainen – Chemistry Education Research and Practice, 2024
We explored chemical engineering students' approaches to learning, study-related burnout, and perceptions of peer and self-assessment in a challenging physical chemistry thermodynamics course. Cluster analysis revealed three learning profiles based on students' approaches to learning: students who scored high in both organised studying and the…
Descriptors: Chemistry, Burnout, Peer Evaluation, Self Evaluation (Individuals)
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