. This discrepancy is present multiple timesin the data shown, but is distinctly found in Figure 11 (Competency 10.7.3). For thiscompetency—which concerns understanding the influence of environmental, social, political,ethical, health and safety, manufacturability, and sustainability constraints on engineeringsolutions—the student rating is approximately 3 while the instructor rating is almost 4.5 in theWinter 2003 semester. While the degree of separation diminishes in subsequent semesters, thestudent ratings continue to be lower than the instructor ratings up to the present time. Such Page 25.78.11discrepancies are also observed in Figure 7
Chemical Engineering within the School of Engi- neering & Technology, Dr. Dua worked as an Assistant Professor in the Department of Chemistry at Hampden-Sydney College, where he taught and supervised undergraduates on clinically translated re- search projects. He has been an active leader in promoting STEM fields and has chaired several scientific and ethics sessions at national conferences. His current research focuses on improving or finding solutions for the musculoskeletal system disorders that still exist clinically through biomimetics, chemical, and tis- sue engineering approaches. Dr. Dua’s research has been funded by several organizations, including the National Science Foundation (NSF
essentials into the ChE curriculum: ethics, professionalism, environmental health & safety in Proceedings of the 1998 Annual ASEE Conference, June 28, 1998 - July 1, 1998.4. Dixon D. J., and Kohlbrand, H.T. (2015). Lending Industrial Experience through Reactive Hazard Examples in University Safety Instruction. Process Safety Progress vol. 34 pp. 360– 367.5. Willey, R. J., Carter, T., Price, J., Zhang, B. (2020). Instruction of hazard analysis of methods for chemical process safety at the university level. Journal of Loss Prevention in the Process Industries, v 63, January 2020.6. Vaughen, B. K. (2019). An Approach for Teaching Process Safety Risk Engineering and Management Control Concepts Using AIChE’s Web-based Concept Warehouse
ethics requirements). Even though we have over500 students on our undergraduate degree course (approximately 140 per year), in total, 189students completed questionnaires, across all 4 years of the programme: year 1 (52), year 2(39), year 3 (40), year 4 (22) and did not state (36). An open-comments box was madeavailable following the survey questions for each of the 4 discrete topics for students to addtheir own comments if they so wished, which were also collated anonymously. Additionally,we have started conducting interviews with individual students. Again, an email was sent toall students across the 4-year programme seeking volunteers (they were reimbursed with £10vouchers). As students received a financial incentive and we were faced with
credits) Business (5 credits) Elective Modules Elective Modules (3 credits) (6 credits) Table 1. Enterprise minor and concentration curriculum. Project work credits can also be used as electives for students not pursuing the minor or concentration.CM/ENT3974 Fuel Cell Fundamentals (1)CM/ENT3977 Fundamentals of Hydrogen as an Energy Carrier (1)CM/ENT3978 Hydrogen Measurements Laboratory (1)CM4310 Chemical Process Safety / Environment (3)ENT3954 Enterprise Market Principles (1)ENT3958 Engineering Ethics in Design and Implementation (1)ENT3961 Enterprise Strategic Leadership (1)ENT3964 Project Management (1)ENT3971 Seven Habits of
Entrepreneurship (1) (1) ENG3971 Seven Habits (1) ENG4951 Budgeting (1) ENG 4951 Global Competition ENG2963 Electric Circuit (1) Design & Fab (1) ENG3955 Conceptual Design / ENG3956 Industrial Health and Problem Solving (1) Safety (1) ENG3957 / 3967 Product and Process ENG3958 Engineering Ethics Development (1) in Design (1) ENG3966 Design for ENG3968 Manufacturing Manufacturing (1
interests include effective teaching, conceptual and inductive learning, integrating writing and speaking into the curriculum and professional ethics. c American Society for Engineering Education, 2016 Why Not Ask Students to Explain Themselves? Enhancing Conceptual Testing with Technical Writing1. IntroductionRecently a great deal of exciting work has been performed on concept-based instruction inchemical engineering, in particular the efforts associated with the AIChE Concept Warehouse(AIChE-CW)1,2. The AIChE-CW provides chemical engineering educators with instruments forevaluating students’ conceptual understanding of course material. Conceptual learning is notwell-served by traditional
, 2012.[10] J. M. Basart, M. Farrús and M. Serra, "New Ethical Challenges for Today Engineering and Technology," Telematics and Informatics, vol. 32, no. 2, pp. 409-415, 2015.[11] A. Refern and P. Snedcker, "Creating Market Opportunities for Small Enterprises: Experiences of the Fair Trade Movement," International Labor Office, Geneva, 2002.[12] International Labor Rights Forum, "Cocoa Campaign," International Labor Rights Forum, [Online]. Available: http://www.laborrights.org/industries/cocoa. [Accessed 28 November 2014].[13] L. E. Nagle, "Selling Souls: The Effect of Globalization on Human Trafficking and Forced Servitude," Wisconsin International Law Journal, vol. 26, no. 1, pp. 131-162, 2008.[14] S. LaFraniere, "Africa's
is the recipient of the 2014 NCSU Outstanding Teacher Award, 2014 ASEE Southeastern Section Outstanding New Teacher Award, and currently serves as the ASEE Chemical Engineering Division’s newsletter editor. Dr. Cooper’s research interests include effective teaching, conceptual and inductive learning, integrating writing and speaking into the curriculum and professional ethics. Page 26.927.1 c American Society for Engineering Education, 2015 Improving Technical Communication in the Chemical Engineering Classroom via Student-Based FeedbackAbstractOne area
excellence and innovation in teaching, award- winning scholarship and sponsored research, and professional service at the national, regional and local levels. Creative activities encompass both technical research on geotechnical applications in transporta- tion, and interdisciplinary study of professionalism, ethics, and trust/ trustworthiness in professional-client relationships. A licensed engineer with over 35 years experience in engineering education and practice, Dr. Lawson has provided project management and technical oversight for geotechnical, construction ma- terials, transportation, environmental, and facilities projects nationwide. c American Society for Engineering Education, 2020
AC 2012-4335: IMPLEMENTING PROBLEM-SOLVING LEARNING EN-VIRONMENTS IN A KINETICS AND HOMOGENEOUS REACTOR DE-SIGN COURSEProf. Ramirez Apud Zaira, Universidad de las Amricas Puebla Zaira Ramrez is Science, Engineering, and Technology Education Ph.D. Student at Universidad de las Americas Puebla in Mexico. She teaches ethics and development complex thinking skills related courses. Her research interests include faculty development, outcomes assessment, and creating effective learning environments.Dr. Nelly Ramirez-Corona, Universidad de las Americas, Puebla Nelly Ramrez-Corona is currently a full-time professor of chemical engineering at the Chemical, Envi- ronmental, and Food Engineering Department, Universidad de las
traits encompasses principles of management of self, interactions with others, and Page 25.423.3organizational effectiveness. Table 1. Leadership Qualities of a BYU Chemical Engineer. A BYU chemical engineer is a leader in a globalized society because she/he: 1. Exhibits high ethical standards. 2. Is reliable and can be counted on to accomplish tasks in a manner that exceeds expectations. 3. Takes initiative rather than waits for assignments. 4. Follows as well as leads. 5. Identifies problems and solutions. 6. Takes time to evaluate personal
department initiated an independent research propositioncourse for all first year PhD candidates. Student performance in this spring semesterthree unit course was treated as a graduate qualifier exam, and both students and facultyhave been supportive of this requirement, as summarized earlier1. Over the last decade, our first year approach to research education hasbroadened. Peter Kilpatrick added a one unit fall course, Introduction to Research, aprofessional development course including research ethics, presentations, andpublications. While these two courses were satisfying as stand-alone efforts, recentfaculty and graduate student sentiment pushed for an earlier engagement of student withresearch advisor, PhD committee, and research itself
, natural gas, hydrogen, or batteries for transportation applications.Secondary emphasis is placed on understanding professional and ethical responsibility,understanding the global and social impact of engineering solutions, and demonstratingknowledge of contemporary issues. These are addressed by working on a project to find anaffordable future energy source. More details will be provided in the next section.It is noted that the final grade is determined from attendance (10%), individual summaries(10%), and a team report (80%) which is weighted by peer evaluations.Sample Enterprise ProjectsThe following is a brief summary of Alternative Fuels Group Enterprise projects related tohydrogen and fuel cells. Each semester there are at least three
applicationsto real world energy problems. Additional emphasis is placed on the need for domesticenergy independence and on worldwide energy availability, as well as in the ethical useof energy resources. As these modules are taught in our curriculum, assessment datawill be collected and reported on in a future article.Bibliography1. Bioengineering educational materials bank, http://www.bioemb.net, accessed January 2013.2. Materials digital library pathway, http://matdl.org, accessed January 2013.3. Massachusetts Institute of Technology open courseware site, http://ocw.mit.edu, accessed January2013.4. Multimedia Educational Resource for Learning and Online Teaching site, http://www.merlot.org,accessed January 2013.5. Hydrogen Education at Mississippi
, incorporating economics, process simulation, control, Proceedings of the 2008 American Society for Engineering Education Annual Conference & Exposition Copyright © 2008, American Society for Engineering Educationtransport, material and energy balances, thermodynamics, safety, and ethics (among otherelements). Due to the scope and scale of these projects, they are generally completedthrough calculation and simulation only.Senior design at Bucknell University is a two-semester sequence composed of two four-credit courses. In this paper, we describe how we moved from the traditional seniordesign sequence, in which both semesters focused on a single simulation-based design ofa styrene plant for a simulated company to one
long time at the end of the experiment? ‚ Did you keep track of time it has been sitting in the container? ‚ Did the viscosity of the slurry create mixing problems? ‚ What happened when you added potatoes to a pre-measured volume of water? ‚ What problems arose? These questions allowed discussions of the criteria necessary for good experimentalprocedures, the problems that may occur in experimental setups, and necessary data to provideadequate and sufficient information for experimental analysis. In addition, there was anopportunity for emphasizing the ethical aspect in reporting. One of the teams had forgotten toinclude a magnetic stirring rod and thus their solution was not well mixed
newsletter editor. Dr. Cooper’s research interests include effective teaching, conceptual and inductive learning, integrating writing and speaking into the curriculum and professional ethics. c American Society for Engineering Education, 2017No More Death By PowerPoint! Using an Alternative Presentation Model in a ChE Unit Operations Laboratory Course1. IntroductionIt is well-known that effective oral communication skills are critical to the success of chemicalengineering (ChE) graduates in the modern workplace1–8. With this in mind it is important thatChE instructors provide their students with numerous opportunities to practice oralcommunication skills through in-class presentations. However
, where she also serves as Head of the Department of Humanities and Arts. Her training is in nineteenth-century literature, but for the past 9 years she has taught engineering ethics, first-year en- gineering courses, and humanities for engineers. She has also worked with students and colleagues to develop role-playing games teaching engineering within its complex humanistic context. NOTE: this paper has co-authors.Dr. Leslie Dodson, Worcester Polytechnic Institute Leslie Dodson is a Faculty Teaching Fellow in Undergraduate Studies at WPI. She received her PhD from the University of Colorado-Boulder’s College of Engineering and Applied Science, ATLAS Institute. Her current research interests focus on the intersections
interacting with their textbook(s)? Select allthat apply.▢ Physical paper book ▢ e-book purchased from university bookstore / publisher ▢ Non-editable e-book accessed as an open educational resource (free) ▢ Editable e-book created by students, either in-whole or in-part ▢ Other ________________________________________________ Q2.3 What ABET (aside from technical competence) and/or university level outcomes areassessed within this course? Select all that apply.▢ Writing / communications ▢ Safety ▢ Ethics ▢ Regulatory understanding/compliance ▢ Knowledge of environmental / political / social impacts ▢ Evaluation of information sources ▢ Other
, club meetings may offer a social network and connection toother more senior students in the engineering program. They can encourage students to engagewith the development of interpersonal skills and work ethic. These experiences may also broadenstudent’s perspective, with the realization that more than high grades contribute towards hiringdecisions. Motivation Construct Engagement Mean Standard Deviation Significance Senior Design 4.02 0.77 Seminar 4.07 0.61 Intrinsic Motivation 0.94 Club Meeting 4.11 0.70 Total
& Environmental Engineering at Bucknell University (Lewisburg, PA, USA).Dr. Eliana Christou, University of North Carolina at CharlotteDr. Benjamin B Wheatley, Bucknell University Benjamin Wheatley was awarded a B.Sc. degree in Engineering from Trinity College (Hartford, CT, USA) in 2011 and a Ph.D. in Mechanical Engineering from Colorado State University (Fort Collins, CO, USA) in 2017. He is currently an Assistant Professor in the Department of Mechanical Engineering at Bucknell University (Lewisburg, PA, USA). His pedagogical areas of interest include active learning ap- proaches, ethics, and best practices as they relate to computational modeling. He runs the Mechanics and Modeling of Orthopaedic Tissues
progressed throughthe curriculum. These results were validated by student self-assessment (surveys) and bycooperative education employer.All chemical engineering students are required to take the standard battery ofmathematics courses and an introductory computing tools course (CSE 131). Thecomputing course was originally designed to provide students with an understanding ofproblem solving approaches, ethics, and the use of basic computing tools for in technicalproblem solving. The early version of the course emphasized the “engineer’s toolkit” andincluded coverage of Excel and MATLAB.In the 2003-04 academic year, a fairly large number of students voiced concern about theneed for the introductory computing course. That year, as part of the annual
, principles,and ‘tools’ learned from earlier courses. This review of material helps to strengthen students’knowledge in their core disciplines by increasing exposure to the foundation concepts. Second,students are applying both the old and new knowledge to an area outside of, but somewhatrelated to, their main field of study. This serves to demonstrate that they may use what theyalready have learned in new and interesting areas and that what they have learned to date doesnot exist in isolation.An additional benefit of these applied courses is the opportunity to include consideration anddiscussion of various social, political, ethical, and economic topics. Such issues include globalclimate change, atmospheric pollution, indoor air quality, and worker
widely used drug or consumer product.For example, one problem explores the role of active pharmaceutical ingredients (API) andexcipients (binders, filler, lubricants) in the formulation of drugs through unit conversions andmass/mole/volume composition problems. Other problems are made to convey course objectives Page 23.793.4in areas such as health, safety, and ethics. The problem (Figure 2) on diethylene glycolpoisoning is particularly interesting since it is based on the actual 1930’s case of a companydistributing a “drug” without proper testing. By using this problem, students learn about
Page 24.556.14 Education Conference 2011: Developing engineers for social justice: Community involvement, ethics & sustainability 5-7 December 2011, Fremantle, Western Australia, Engineers Australia, 2011, p. 448.13. M. Hall & K. M. Elliott, Journal of Education for Business, 2003, 78:6, 301-307, DOI: 10.1080/0883232030959861714. M.M. Jennings & D. J. Dirksen. Facilitating change: A process for adoption of web-based instruction. p. 111-116 in Web-based instruction Educational Technology Publications, Inc, Englewood Cliffs, New Jersey,1997.15. D. Gilbuena, C. Smith, B. Brooks, M. Miletic, & M. Koretsky, Research in Engineering Education Symposium, Kuala Lumpur, Malaysia, 2013
studies at the Instituto Tecnol´ogico de Celaya, M´exico. Her research interests are in the field of Process Systems Engineering, and include the analysis and design of thermally coupled and alternative distillation configurations, the design of nonideal distillation systems and the synthesis, optimization and control of chemical process with recycles streams.Prof. Ramirez Apud Lopez Zaira, Universidad de las Americas Puebla Zaira Ram´ırez is Science, Engineering, and Technology Education Ph.D. Student at Universidad de las Americas Puebla in Mexico. She teaches ethics and development complex thinking skills related courses. Her research interests include faculty development, outcomes assessment, and creating effective
division’s newslet- ter editor. Dr. Cooper’s research interests include effective teaching, conceptual and inductive learning, integrating writing and speaking into the curriculum, and professional ethics. Page 24.1236.1 c American Society for Engineering Education, 2014 The Paperless Lab – Streamlining a Modern Unit Operations Laboratory Course to Reduce Faculty Time Commitment1. IntroductionUnit Operations (UO) laboratory courses are important, required offerings in chemicalengineering curricula due to the similarities of required laboratory tasks to those relevant inindustry
industrial partners such asACUA (Atlantic County Utilities Authority), and ExxonMobil. Figure 1 illustrates ourundergraduate curriculum and highlights the clinic programs in purple borders. The first year andsophomore year engineering clinics focus on fundamental engineering skills and include diversetopics such as creative and scientific writing, technical presentation, convergent thinking,problem-solving, product development, ethics, engineering design, and statistics. For theJunior/Senior year the students choose their discipline-specific clinics depending on theircuriosity and area of interest Building on the foundation of PSE and Design Thinking, theProcess Dynamics & Control course and the two elective courses: Process Optimization
Figure 5 - average or “overall” engineering identity [15, Figs. 2, 5]. The authors reference the engineering identity as an ‘average’ in place of “overall” engineering identity. Instrument and interview (Kate & Dan) convergences: From the interviews, we found some student-reported experiences aligned with what was reported in the literature. Both participants identify an engineer as having a hard work ethic. This hard- working identity is reinforced by the high score of performance/competence on the engineering identity instrument. As reported by Godwin and Lee [15], a high score for this measure indicates having strong performance/competence beliefs or the self-beliefs to perform well and understand concepts in