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Panebianco, Christopher J.; Iatridis, James C.; Weiser, Jennifer R. – Chemical Engineering Education, 2022
Due to the COVID-19 pandemic, many universities have switched to online learning platforms, which inhibits engineering students from completing formative hands-on experiments. To address this, we developed at-home experiments for an undergraduate biomaterials course. These inquiry-based learning experiments were well received by students and…
Descriptors: COVID-19, Pandemics, Inquiry, Laboratory Experiments
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Geeta Verma; Sogol Asaei; Jacob D. Hostert; Rebecca Ahn; Julie N. Renner – Chemical Engineering Education, 2024
A synergetic approach to combine service learning at the university level with a high school outreach program is described. A holistic view is presented by discussing the importance of outreach and service learning, survey results, and outcomes. Overall, it was found that the unique program increased the self-efficacy (belief about one's…
Descriptors: Outreach Programs, Females, Service Learning, Self Efficacy
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Vernengo, Jennifer; Purdy, Caitlin; Farrell, Stephanie – Chemical Engineering Education, 2014
This paper describes a biomedical engineering experiment that introduces students to rheology. Healthy and sickle-cell blood analogs are prepared that are composed of chitosan particles suspended in aqueous glycerol solutions, which substitute for RBCs and plasma, respectively. Students study flow properties of the blood analogs with a viscometer…
Descriptors: Science Instruction, Chemical Engineering, Scientific Concepts, Concept Formation
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Parker, Robert S.; Doyle, Francis J.; Henson, Michael A. – Chemical Engineering Education, 2006
The evolution of the chemical engineering discipline motivates a re-evaluation of the process dynamics and control curriculum. A key requirement of future courses will be the introduction of theoretical concepts and application examples relevant to emerging areas, notably complex biological systems. We outline the critical concepts required to…
Descriptors: Chemical Engineering, Biology, Science Curriculum, Scientific Concepts
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Harrison, Roger G.; Nollert, Matthias U.; Schmidtke, David W.; Sikavitsas, Vassilios I. – Chemical Engineering Education, 2006
Students in four biochemical and biological engineering courses for upper-­level undergraduates and graduate students were required to write a research proposal. Breaking the requirements down into segments (such as a summary with specific aims, rough draft, and final draft) due on different dates helped make the assignment more manageable for the…
Descriptors: Biomedicine, Engineering Education, Undergraduate Students, Graduate Students
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Allam, Yosef; Tomasko, David L.; Trott, Bruce; Schlosser, Phil; Yang, Yong; Wilson, Tiffany M.; Merrill, John – Chemical Engineering Education, 2008
A micromanufacturing lab-on-a-chip project with a nanotechnology component was introduced as an alternate laboratory in the required first-year engineering curriculum at The Ohio State University. Nanotechnology is introduced in related reading and laboratory tours as well as laboratory activities including a quarter-length design, build, and test…
Descriptors: Science Laboratories, Computer Storage Devices, Biomedicine, Engineering Education
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Moghe, Prabhas V.; Roth, Charles M. – Chemical Engineering Education, 2006
A wide range of biotechnological and biomedical processes and products involves the design, synthesis, and analysis of biological interfaces. Such biointerfaces mediate interactions between living cells or intracellular species and designed materials or biologics. Incorporating the experiences of a NSF-­sponsored IGERT (Integrative Graduate…
Descriptors: Graduate Students, Graduate Study, Interdisciplinary Approach, Science Curriculum
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Ross, Julia M.; Bayles, Taryn M. – Chemical Engineering Education, 2003
Describes an undergraduate-level introductory course in biomedical engineering introduced at the University of Maryland, Baltimore County which allows students to delve deeply into an area of interest not covered in the lecture material and provide a forum for students to hone their presentation and group interaction skills through outreach…
Descriptors: Biomedicine, Chemical Engineering, Higher Education, Outreach Programs
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San, Ka-Yiu; McIntire, Larry V. – Chemical Engineering Education, 1989
Presents an introduction to the Biochemical and Biomedical Engineering program at Rice University. Describes the development of the academic and enhancement programs, including organizational structure and research project titles. (YP)
Descriptors: Biochemistry, Biomedicine, College Science, Engineering
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Peppas, Nicholas A.; Mallinson, Richard G. – Chemical Engineering Education, 1982
An analysis of trends in biomedical education within chemical education is presented. Data used for the analysis included: type/level of course, subjects taught, and textbook preferences. Results among others of the 1980 survey indicate that 28 out of 79 schools responding offer at least one course in biomedical engineering. (JN)
Descriptors: Biomedicine, Chemical Engineering, College Curriculum, Course Content
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Madihally, Sundararajan V.; Maase, Eric L. – Chemical Engineering Education, 2006
REACH (Reaching Engineering and Architectural Career Heights) is a weeklong summer academy outreach program for high school students interested in engineering, architecture, or technology. Through module-­based instruction, students are introduced to various engineering fields. This report describes one of the modules focused on introducing…
Descriptors: High School Students, Biomedicine, Chemical Engineering, Science Programs
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Stroeve, Pieter – Chemical Engineering Education, 1981
Describes an undergraduate research program in biomedical engineering at the State University of New York at Buffalo. Includes goals and faculty comments on the program. Indicates that 58 percent of projects conducted between 1976 and 1980 have been presented at meetings or published. (SK)
Descriptors: Biomedicine, Chemistry, College Science, Engineering
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Wise, Donald L.; And Others – Chemical Engineering Education, 1990
The need to give high school students a more pragmatic grasp and understanding of technology, in addition to guidance concerning their career paths, is discussed. Described are the design, initiation, methods, topics and evaluation of this exploratory program. Recommendations for future implementation of similar programs are provided. (CW)
Descriptors: Biochemistry, Biological Sciences, Biomedicine, Chemistry