Publication Date
In 2025 | 0 |
Since 2024 | 1 |
Since 2021 (last 5 years) | 1 |
Since 2016 (last 10 years) | 1 |
Since 2006 (last 20 years) | 11 |
Descriptor
Chemical Engineering | 17 |
Computer Uses in Education | 17 |
Teaching Methods | 17 |
College Science | 11 |
Chemistry | 8 |
Engineering Education | 7 |
Higher Education | 7 |
Science Instruction | 7 |
Educational Technology | 6 |
Computer Software | 5 |
Science Experiments | 5 |
More ▼ |
Author
Abdel-Jabbar, Nabil | 1 |
Aikens, Christine M. | 1 |
Al-Dahhan, Muthanna | 1 |
Alnaizy, Raafat | 1 |
Andrew Teixeira | 1 |
Armstrong, Matt | 1 |
Biaglow, Andrew | 1 |
Binous, Housam | 1 |
Clark, William M. | 1 |
Comitz, Richard L. | 1 |
Cruz, A. J. G. | 1 |
More ▼ |
Publication Type
Journal Articles | 17 |
Reports - Descriptive | 12 |
Guides - Classroom - Teacher | 4 |
Reports - Research | 2 |
Opinion Papers | 1 |
Reports - Evaluative | 1 |
Education Level
Higher Education | 10 |
Postsecondary Education | 4 |
Audience
Practitioners | 4 |
Teachers | 3 |
Researchers | 1 |
Students | 1 |
Location
Illinois | 1 |
Tunisia | 1 |
United Arab Emirates | 1 |
Laws, Policies, & Programs
Assessments and Surveys
What Works Clearinghouse Rating
Max Chen; Yichen Li; Hilson Shrestha; Noe¨lle Rakotondravony; Andrew Teixeira; Lane Harrison; Robert E. Dempski – Journal of Chemical Education, 2024
Industrial and academic laboratories are undergoing a paradigm shift in process technology from batch to modular flow. Implementation of modular flow processes can enable more efficient operation with superior throughput, scalability, and safety factors owing to superior transport and reaction kinetics. However, both fine chemical and…
Descriptors: Chemical Engineering, Chemistry, Undergraduate Students, Science Instruction
Alnaizy, Raafat; Abdel-Jabbar, Nabil; Ibrahim, Taleb H.; Husseini, Ghaleb A. – Chemical Engineering Education, 2014
Introductions of computer-aided software and simulators are implemented during the sophomore-year of the chemical engineering (ChE) curriculum at the American University of Sharjah (AUS). Our faculty concurs that software integration within the curriculum is beneficial to our students, as evidenced by the positive feedback received from industry…
Descriptors: Computer Software, Computer Simulation, College Science, Chemical Engineering
Kaushik, V. V. R.; Ghosh, S.; Das, G.; Das, P. K. – Chemical Engineering Education, 2011
This paper deals with the use of commercial CFD software in teaching graduate level computational fluid dynamics. FLUENT 6.3.26 was chosen as the CFD software to teach students the entire CFD process in a single course. The course objective is to help students to learn CFD, use it in some practical problems and analyze as well as validate the…
Descriptors: Computer Software, Computer Uses in Education, Graduate Study, Educational Technology
Simeon, Tomekia; Aikens, Christine M.; Tejerina, Baudilio; Schatz, George C. – Journal of Chemical Education, 2011
The Northwestern University Initiative for Teaching Nanosciences (NUITNS) at nanohub.org Web site combines several tools for doing electronic structure calculations and analyzing and displaying the results into a coordinated package. In this article, we describe this package and show how it can be used as part of an upper-level quantum chemistry…
Descriptors: Chemistry, Engineering, Teaching Methods, Computation
Clark, William M.; Jackson, Yaminah Z.; Morin, Michael T.; Ferraro, Giacomo P. – Chemical Engineering Education, 2011
Laboratory experiments and computer models for studying the mass transfer process of removing CO2 from air using water or dilute NaOH solution as absorbent are presented. Models tie experiment to theory and give a visual representation of concentration profiles and also illustrate the two-film theory and the relative importance of various…
Descriptors: Chemical Engineering, Laboratory Experiments, Science Experiments, Science Instruction
Heldt, Caryn L. – Chemical Engineering Education, 2012
Inter-group peer evaluation through wikis was implemented as a method for senior capstone design teams to improve writing and the critical evaluation of data. Each group was evaluated by peers using a qualitative discussion and evaluated quantitatively by instructors. Students had an increased interest in contributing to online knowledge centers,…
Descriptors: Lifelong Learning, Curriculum, Chemical Engineering, Peer Evaluation
Koretsky, Milo D.; Kelly, Christine; Gummer, Edith – Chemical Engineering Education, 2011
The instructional design and the corresponding research on student learning of two virtual laboratories that provide an engineering task situated in an industrial context are described. In this problem-based learning environment, data are generated dynamically based on each student team's distinct choices of reactor parameters and measurements.…
Descriptors: Engineering Education, Research Design, Instructional Design, Problem Based Learning
Le Roux, G. A. C.; Reis, G. B.; de Jesus, C. D. F.; Giordano, R. C.; Cruz, A. J. G.; Moreira, P. F., Jr.; Nascimento, C. A. O.; Loureiro, L. V. – Chemical Engineering Education, 2010
This paper describes the use of weblabs--web based experiments--for cooperative learning by students working together from two different locations to conduct experiments and write reports.
Descriptors: Cooperative Learning, Chemical Engineering, Teaching Methods, Educational Technology
Binous, Housam – Chemical Engineering Education, 2008
We show a new approach, based on the utilization of Matlab and Mathematica, for solving liquid-liquid extraction and binary distillation problems. In addition, the author shares his experience using these two softwares to teach equilibrium staged separations at the National Institute of Applied Sciences and Technology. (Contains 7 figures.)
Descriptors: Computation, Teaching Methods, Chemical Engineering, Educational Technology
Armstrong, Matt; Comitz, Richard L.; Biaglow, Andrew; Lachance, Russ; Sloop, Joseph – Chemical Engineering Education, 2008
A novel approach to the Chemical Engineering curriculum sequence of courses at West Point enabled our students to experience a much more realistic design process, which more closely replicated a real world scenario. Students conduct the synthesis in the organic chemistry lab, then conduct computer modeling of the reaction with ChemCad and…
Descriptors: Organic Chemistry, Chemical Engineering, Science Instruction, Science Laboratories
Guo, Jing; Kettler, David J.; Al-Dahhan, Muthanna – Chemical Engineering Education, 2007
A common undergraduate chemical engineering experiment has been modified for on-line operation over the Internet. By adopting rapidly changing Internet and object component technologies, we developed a novel approach combining the Internet and regular laboratory equipment. The client-server applications use a Visual Basic and Labtech programming…
Descriptors: Laboratory Equipment, Chemical Engineering, Internet, College Science

Shacham, Mordechai; Cutlip, Michael B. – Chemical Engineering Education, 1988
Presents three specific examples of chemical engineering problems which can be interactively solved on personal computers with commercially available software. Illustrates the potential impact of interactive problem solving on chemical engineering. Discusses how this has been accomplished at Ben Gurion University (Israel) and the University of…
Descriptors: Chemical Engineering, Chemistry, College Science, Computer Software

Roberge, P. R. – Chemical Engineering Education, 1990
Discussed are expert systems development and teaching, the representation and processing of knowledge, knowledge representation in chemical engineering, and expert systems in chemical engineering. The seven phases of expert system development are illustrated. (CW)
Descriptors: Artificial Intelligence, Chemical Engineering, Chemistry, Cognitive Development

Taylor, David G. – Chemical Engineering Education (CEE), 1999
Describes how to combine computer-assisted learning with collaborative learning in an introductory chemical engineering course in process dynamics and control. Discusses participants' impressions regarding the effectiveness of the approach. (WRM)
Descriptors: Chemical Engineering, Computer Assisted Instruction, Computer Simulation, Computer Uses in Education

Davis, Richard A.; Sandall, Orville C. – Chemical Engineering Education, 1991
Described is a membrane experiment that provides students with experience in fundamental engineering skills such as mass balances, modeling, and using the computer as a research tool. Included are the experimental design, theory, method of solution, sample calculations, and conclusions. (KR)
Descriptors: Chemical Engineering, Chemistry, College Science, Computer Uses in Education
Previous Page | Next Page »
Pages: 1 | 2