groups to uncover their own thought and biases before discussing difficult orcontroversial topics surrounding engineering innovation with the class as a whole. While thecourse is taught specifically with engineering design in mind, the course has attracted studentsfrom varying majors which has fostered collaboration and creativity in idea generation. Thecombination of critical thinking methodology with innovation concepts has led students to notonly expand their knowledge of potential applications of engineering, but has lead severalstudents to initiate communication with faculty members regarding their ideas for researchopportunities, innovation competitions, and initiated their own projects via applying forUniversity Innovation Fellows
Engineering at Arizona State University. He teaches in the areas of introductory materials engineering, polymers and composites, and capstone design. His research interests include evaluating conceptual knowledge, mis- conceptions and technologies to promote conceptual change. He has co-developed a Materials Concept Inventory and a Chemistry Concept Inventory for assessing conceptual knowledge and change for intro- ductory materials science and chemistry classes. He is currently conducting research on NSF projects in two areas. One is studying how strategies of engagement and feedback with support from internet tools and resources affect conceptual change and associated impact on students’ attitude, achievement, and per
attendance ischecked in every class with considerable penalty for unexcused absences. The course was taughtin two separate sections by two instructors.Summary of activitiesThe weekly activities listed in Table 2 are described in more detail in this section.Week 1 - A presentation was given to introduce students to mechanical engineering as adiscipline and the numerous career opportunities in the field. Students were also introduced tothe Department of Mechanical Engineering, including faculty members, research areas, thecurriculum, minors, advising resources, student clubs, and previous Capstone projects. Theassociated assignment asked students to write a short report (using Word) in which they (1)explain their choice of ME as a major, (2) select a
only did the students benefit from ourcollaboration, I learned much from the experience.Lastly, my involvement with our senior capstone design course is as part of a faculty team. I havethe ability to unpack and discuss design decisions with my more experienced, licensed colleagues.This co-teaching experience provides not only a rich learning experience for the students; I againlearn much from the process. Little do the students know how much homework I do. Senior designpushes me beyond what I know every year. Even a colleague with consulting experience reflectedthat this is the case for him as well. With a mentor (academic and/or practitioner) to vet approachesand assumptions, I think each capstone project is the ultimate learning experience
new engineering education strategies as well as the technologies to support the 21st century classroom (online and face to face). He also has assisted both the campus as well as the local community in developing technology programs that highlight student skills development in ways that engage and attract individuals towards STEAM and STEM fields by showcasing how those skills impact the current project in real-world ways that people can understand and be involved in. As part of a university that is focused on supporting the 21st century student demographic he continues to innovate and research on how we can design new methods of learning to educate both our students and communities on how STEM and STEAM make up
understand theinfluences of positions and other critical factors and their interaction effects. Due to the variedapplication of RFID, the authors have incorporated the experimental set up in undergraduate,Senior Project capstone course with team members drawn from both Mechanical andMechatronics Engineering technology.IntroductionRadio frequency identification (RFID) is a broad term that is used to describe a system thattransmits the identity (in the form of a unique serial number) of an object wirelessly, using radiowaves and categorized as an automatic identification technology. RFID is designed to enablereaders to capture to capture data on tags and transmit it to a computer system- without needing aperson to be involved. The different components
capstone design courses, including the longstanding core senior design sequence and the recently launched interdisciplinary medical product development course. She also serves as co-Director of the Freshman Engineering Success Program, and is actively involved in engineering outreach for global health. Miiri received her Ph.D. in Bioengineering and M.S. in Mechanical Engineering from the University of Illinois at Chicago and a B.S. in General Engineering from the University of Illinois at Urbana Champaign.Dr. Jennifer D. Olson, University of Illinois at Chicago Jennifer Olson is a clinical assistant professor in the College of Education at University of Illinois at Chicago. She coordinates the Secondary Education
-EWB participants. A higherpercentage of those with internship experiences rated teamwork in the top five importantoutcomes, and a lower percentage rated attitudes among the five least important outcomes. Thosewith future career interests in construction engineering rated project management in the top fiveimportant outcomes with higher frequency; students with structures career interests believeddesign to be more important; fewer students with water and/or environmental career aspirationsrated globalization among the least important outcomes. Content analysis of an open-endeddiscussion of the BOK2 found that the majority of students (93%) had overall positivestatements. Some promoted the inclusion of creativity and innovation as a new outcome
,and striving to form symbiotic partnerships between local industry and academiathrough: capstone projects, theses work with practical overtones, and applied researchprojects in selected domains, is extremely desirable and beneficial. Today, with theengineering profession undergoing dramatic changes on many fronts - there is realneed for faculty and students, to become involved with practical problems and toshare in providing solutions. We owe it to our students to prepare them to meet thechallenges ahead by focusing on real issues derived from tangible situations. Thesurest road to having a working college-industry relation is to come to a mutualunderstanding that both parties would gain from such a relationship.The discussion noted above may
can build self-efficacy directly and encourage moremastery experiences.Contextual examples of each of Bandura’s four sources of self-efficacy in undergraduateengineering education: first, mastery experiences could consist of completing practice problemsto master theory, engaging in project work and hands-on activities to build engineering skills,and successfully working in teams and giving technical presentations. Second, role models whoshare a similar identity in populations of upper year students, alumni, outside speakers, or facultymay provide vicarious experiences. Third, classmates, teaching assistant, professors, mentors,friends and family may all provide social persuasion, and fourth, an individual's’ personal orextra-curricular
realized how time intensive and expensivethe test would be. She decided to adjust her proposed method of analysis to the readily accessibleHACH Method. She put together the list of materials for testing and ordered it. Not longafterward, she realized she had ordered double what she needed. Luckily, with the help of facultyhere in the department, that mistake turned into an advantage for Melissa and three other studentsto use that extra testing material for capstone projects. She went through lab safety training, andprepared herself for experiments to be completed in the lab. For the first three lab meetings, hermentor was doing the experiments with her; after these supervised experiments, she felt ready toconduct the following procedures
mentoring and guiding student teams through the senior design capstone course and a translational course following senior design. To promote biomed- ical/bioengineering, Marcia works with Women in Engineering to offer outreach activities and served at the national level as Executive Director of the biomedical engineering honor society, Alpha Eta Mu Beta, from 2011-2017.Mrs. Madeline R Darling, University of Illinois at Urbana-Champaign Maddie is an Undergraduate Programs Coordinator for the Department of Bioengineering at the University of Illinois at Urbana-Champaign. She holds a M.S. in College Student Affairs from Eastern Illinois University (2016). Her research interests include student academic success, retention
in the department of biomedical engineering at The Ohio State University. He holds a B.S. in industrial engineering from the University of Puerto Rico Mayag¨uez, and a M.S. and PhD in biomedical engineering from The Ohio State University. His current position entails teaching measurements and instrumentation courses, leading micro and nano educational labs, as well as mentoring students in their senior capstone projects. His current projects include indus- try integration in the curriculum, undergraduate professional development, and entrepreneurial minded learning in the classroom.Amena Shermadou, Ohio State University Amena Shermadou is an Engineering Education graduate student at The Ohio State University. She
Paper ID #23172Sketching, Assessment, and Persistence in Spatial Visualization Training Ona TouchscreenProf. Nathan Delson, University of California, San Diego Nathan Delson’s interests include mechatronics, biomedical devices, human-machine interfaces, and en- gineering education. He isCo-founder and Past President of Coactive Drive Corp., which develops novel actuators and control methods for use in force feedback human interfaces. Medical device projects include an instrumented mannequin and laryngoscope for expert skill acquisition and airway intubation training. He received his undergraduate degree in mechanical
± 0.78 learn. The class discussions helped me explore the class content. 4.29 ± 0.66 The Concept Questions and Practice Problems helped me learn. 4.49 ± 0.64 Homework problems and test questions helped me assess my progress learning 4.12 ± 0.62 the course content. The structure of this course encouraged me to explore outside resources to help 3.94 ± 1.07 me learn. I can relate what I learned in this course to other courses, my Capstone/Thesis 4.12 ± 0.88 project, and topics in the fields of biomedical engineering and medicine.Learning EnvironmentStudent perceptions of the learning environment were assessed using a series of seven Likert-type questions encoded on a
is a multidisciplinary design intensive vertical curriculumsupported at the 200-level, 300-level, and capstone levels by three newly developed coursesfocused on engineering design. Grounded in human-centered design and design thinking, thesecourses will focus on developing the skills necessary to understand users’ experiences andidentify and develop appropriate solutions for design problems. The addition of these threedesign courses, along with engineering design activities in our established First-YearEngineering program, introduces a “design spine” in the curriculum that emphasizes problem-based learning across all four years of the engineering degree program. While this curriculumsupports contemporary students’ desire for flexibility and
must betaught in the core courses [8]. According to a Summer/Fall 2015 survey of chemical engineeringprograms, only 23% of the 148 programs required a chemical process safety course [10]. Morerecent ASEE course surveys of Material and Energy Balances, Kinetics and Process Controlcourses indicate that 60-80% of those courses include a safety topic in the course [11, 12, 13].Core capstone courses are a natural fit for safety outcomes, as are upper level courses such asUnit Operations (UO) laboratories [7]. UO laboratories, as a core course that has designexperience and/or experiments within it, is an optimal place for safety outcomes to be covered. It should be noted that the need for process safety education is not new; the challenge is
molecular biology. The secondpart of the day students explored nature’s pharmacy through a taste, touch, and feel experience.Computer Science -- Participants learned the basics of programming in Java, as they created botsthat played a video game. At the end of the session, students pitted their bots against each otherin a Bot!Battle! tournament. The Bot!Battle! system was developed by Computer Sciencestudents at Penn State University-Harrisburg as part of their Senior Capstone projects.Civil Engineering -- Past, present, and future of construction materials: Think the GeneralMotor’s commercial “It’s not your father’s Oldsmobile.” First, students learned how materialshave evolved. They explored materials used in today’s construction through hands-on
introductory materials engineering, polymers and composites, and capstone design. His research interests include evaluating conceptual knowledge, mis- conceptions and technologies to promote conceptual change. He has co-developed a Materials Concept Inventory and a Chemistry Concept Inventory for assessing conceptual knowledge and change for intro- ductory materials science and chemistry classes. He is currently conducting research on NSF projects in two areas. One is studying how strategies of engagement and feedback with support from internet tools and resources affect conceptual change and associated impact on students’ attitude, achievement, and per- sistence. The other is on the factors that promote persistence and
. Sirinterlikci, K. G. Jr. Moran, C. S. Kremer, B. A. Barnes, J. Cosgrove, and S. A. III Colosimo, “A Capstone Project on Design and Development of a Digital Light Processing 3D Printer, 2015 American Society for Engineering Education Annual Conference and Exposition Proceedings, Seattle, WA, June 14-17, 2015. Paper ID 14128[33] N. Jaksic, “MAKER: 3-D–Printing Evolution in Engineering Education: The Things We Make,” 2016 American Society for Engineering Education Annual Conference and Exposition Proceedings, New Orleans, LA, June 26-29, 2016. Paper ID 16253[34] Anon, Thingiverse, Accessed on Feb. 4, 2018. from https://www.thingiverse.com/[35] A. Bandura, Self-Efficacy: The Exercise of Control, W. H. Freeman and Company, NY, 1997.
, 2018Leveraging the power of Matlab, SPSS, EXCEL and Minitab for Statisticalanalysis and inferenceAbstractFor many undergraduate and graduate engineering technology students, data collectionand data analysis—including methodology, statistical analysis, and data preparation—is the most daunting and frustrating aspect of working on capstone senior projects andmaster’s theses. This paper provides an introduction to a number of statisticalconsiderations, specifically statistical hypotheses, statistical methods, appropriateanalytic techniques, and sample size justifications. Statistical analysis of data utilizingstatistical software packages, including MATLAB, SPSS, Minitab, EXCEL, and R,will be shown for scientific applications, quality assurance, corporate
assignment concluded with presentations at a local high school andthen completing a reflection assignment based on that experience. This crossover activity incorporates many learning theories and proven pedagogicalteaching and learning strategies including. Interdisciplinary Experiential Collaborative Service-learning (for the nanotechnology students)At its core, the rationale for creating the assignment was to enhance engagement with the coursecontent, create deeper learning, and develop lasting appreciation for the fields.Pedagogical Background Engineering students encounter new technologies in capstone projects, in theircoursework, and in internships. The current technologies
as a project management consultant. Her research contributes to the advancement of labor and personnel issues in engineering broadly and specifically in the construction industry through two research areas: untangling the complex relationship between activities people become involved in — operationalized as engagement — and the technical and professional out- comes gained — operationalized as competencies. The broader impact of this work lies in achieving and sustaining productive, diverse and inclusive project organizations composed of engaged, competent peo- ple. Dr. Simmons’ research is supported by awards from NSF, including a CAREER award. She oversees the Simmons Research Lab (www.denisersimmons.com), which
simulation of materials. He participate in multiple projects, including the Development of a Model for The Metal Laser Powder Bed Fusion Additive Manufacturing Process. Dr. Ahmed Cherif Megri is currently the chair of the NCAT CAM’s Education subcommittee. He contributed to the outreach CAM since 2015.Mr. Ismail Megri Is a rising junior at Northwest Middle in Greensboro, has begun taking 3D printing and design courses at North Carolina A&T State University. He participated to 2017 Appalachian Energy Summit Poster Competition.Dr. Sameer Hamoush P.E., North Carolina A&T State University Professor and Chair of Civil and Architectural Engineering DepartmentDr. Taher M. Abu-Lebdeh c
of Me- chanical & Aerospace Engineering. Abell received her BS in Mechanical Engineering from Valparaiso University and a MFA in Design Research & Development from The Ohio State University with an em- phasis on Industrial Design. She teaches project-based, product design courses to senior-level and grad- uate engineering students, team-based capstone design courses for mechanical engineering students, as well as an interdisciplinary product development course for entrepreneurship students who come from across OSU. c American Society for Engineering Education, 2018 Characterizations and Portrayals of Intuition in Decision-Making: A Systematic Review of
inspire young women to be leaders in engineering and medicine, while Project Lead the Way works to bring engineering and medicine to teachers and students in K through 12 programs. Hannah was a four year club sports athlete for the Clemson University Women’s Ultimate team. She was captain for two years, which taught her team-centered leadership. Hannah used these skills to lead her senior design capstone team to develop and create a functional sports rehabilitation device. Hannah found her drive for design and engineering education during the development of this device and is working to instill students with the same drive and initiative through experimental learning.Dr. John D. DesJardins, Clemson University Dr
additional mathematics courses (e.g., Community College Transfer Plans 2016-2017).Once a student is accepted to the engineering major, their access to advanced content courseswithin the major is determined by their GPA (Electrical Engineering Self-Study Report). It isimportant to note that students need only be admitted to the university in order to start anelectrical, computer, or software engineering major; in other words, students do not have toapply and be admitted to both the university and the college of engineering. Throughout the electrical engineering major, the focus on specific professionalcompetencies are at the heart of the seminar and capstone courses. These competencies include:“communication, teamwork, project management
these are to occur in upper years, students would be so much more prepared to handle teamwork for [our Capstone Project].”The most significant criticisms of the event were to make the project more exciting, and to makethe presentation of results more meaningful/involved, as the demonstrations “really killed thebuildup of the entire event”. Based on the above observations, the organizers have mademodifications to the event for its subsequent offerings.3.4 Tron Days 2017Following the lead set forth by the other programs, Tron Days in 2017 was re-designed to focuson a single hands-on project. This change was needed both to address student interest, but also toease facilitation during the event. The students were tasked with building a
be.” As a result, the department for which he is the chair changedtheir approach to ethics education by integrating it into capstone design in the context of thestudent projects instead of teaching it through isolated modules. Another educatorexperienced similar pushback and stated, “once in a while, a student will raise kind of anobjection on principle that this is not engineering, ‘I’m in engineering, this is notengineering stuff that we’re doing’”. This perception is not unique to students, anotherinterviewee explained as the only educator in the department integrating ESI intoengineering classes, “it ends up being stigmatized… the person that ends up doing it, at leastin my case, ends up getting labeled not a real engineer.” To shift the
. Students in the BSME program complete a rigorous,project-based curriculum [7] designed to engage students in the engineering design-build-testprocess during all four years of undergraduate study. Program highlights include small classsizes, access to faculty, and an integrated study abroad option.The University of Evansville has implemented both admissions processes mentioned in theintroduction. Students entering the program directly from high school must meet admissioncriteria for ME Lower Division. After completing the required Lower Division courses with agrade of C- or better, students must apply for ME Upper Division status to complete the final twoyears of study.Lower DivisionLower Division is classified as the first two years of