description of thesecourses to include the topics covered in the training sessions, thus making them an essential partof the course content.What We Hope to Achieve: We want to expose our students, faculty, and staff to inclusion anddiversity issues of which they might not be aware. By requiring students to go through training inboth the sophomore and seniors years, we hope to achieve maximum impact. The early exposureas sophomores will give the students a chance to apply the concepts they learn throughout theiracademic careers, while the second round of training as seniors will serve as a refresher coursebefore they begin their team-based senior projects and, later, enter the engineering workforce.We specifically designed this training curriculum to
language-learning [10], and the adoption of CPthrough humanistic lenses [11] as a means of contributing to the development and well-being oflearners in these contexts [12]. Throughout this paper, we describe our experience building fromprior work and applying CP elements in the curriculum. We also describe student and courseoutcomes as a result of our integration of CP elements. As this is a classroom application study, we have broad objectives (not empirical researchquestions) that we address in this paper. The first objective is: (1) What aspects of theintroductory engineering course (intended outcomes, assessments, and activities) werecontextually aligned to opportunities and constraints in the Azraq refugee camp? The tworemaining
forEPICS students to work on international projects and enable these experiences by incorporatingthem into their design challenges. The Purdue faculty is dedicated to working with otheruniversities to support their goals and implement an infrastructure similar to that of EPICS.Actionable changes for leveraging strengths - Between partnerships:Partial incentives for students on each partnership were to engage internationally. Overall, a centralfocus would be to create more opportunities for bidirectional international engagement for bothteams. Currently the EPICS students get both the experience to interact with international peers,and learn about community members in India by centering them in design missions. Creating anew integrated design team
with states and institutions to improve student success in college, particularly with Complete College America (CCA). At University of Colorado Boulder, Heidi is a Senior Research Associate in Ethnography & Evaluation Research, a center focused on STEM education. She recently was the project lead in transforming teaching evaluation practices in the College of Arts & Sciences. A fourth-generation Coloradoan and educator, she lives in Denver with her husband, two college-aged children, and rescue dog.Mr. Nick Stites, University of Colorado Boulder Nick Stites is the Director of the Integrated Teaching and Learning Program at CU Boulder and an instructor with the Integrated Design Engineering program. Dr
supported by United Consulting (local Civil Engineeringcompany). They provide funding for the equipment. Design and fabrication of the drone is doneby the research team. The in-house facilities include 3D printers, CAD software, and otherfabrication facilities. These and other required facilities are available in the AERO (AerospaceEducation and Research Organization) lab at the host institution. There are currently 9undergraduate students actively working on the project under the guidance of one facultymember. This is an interdisciplinary project. Currently, students working on the project comefrom Mechanical Engineering, Civil Engineering, Mechatronics and Computer Engineeringprograms. The research team is divided into three main groups. The
Paper ID #29698To Be, or Not to Be, a Professor: Views of Engineering PostdoctoralScholarsDr. Sylvia L. Mendez, University of Colorado at Colorado Springs Dr. Sylvia Mendez is an Associate Professor and Chair of the Department of Leadership, Research, and Foundations at the University of Colorado Colorado Springs. She earned a PhD in Educational Leadership and Policy Studies from the University of Kansas, a MS in Student Affairs in Higher Education from Colorado State University, and a BA in Economics from Washington State University. Dr. Mendez’s research centers on the educational attainment and schooling experiences
Nanosystems Engineering Research Center for Advanced Self-Powered Systems of Integrated Sensors and Technologies (ASSIST).Dr. Michael Escuti, North Carolina State University Dr Michael Escuti is Associate Professor in the Department of Electrical and Computer Engineering at North Carolina State University. He earned his PhD’02 and MS’99 degrees at Brown University and BS’97 degree at Drexel University. He has taught a wide range undergraduate classes, including in cir- cuits, electromagnetics, photonics, organic electronics and nanotechnology, and since 2010 serves as Chair of the ECE Course and Curriculum Committee.Prof. Mehmet C. Ozturk, North Carolina State University Mehmet C. Ozturk received his BS degree in
sure they go just above the knee. We don’t want short skirts; those aren’t business appropriate at all.As highlighted above, and in a presentation slide used by the TAs, students wereexplicitly encouraged to integrate an “attention getter” into their presentations; the class’sTA’s described these attention getters on their slide as a “fact, joke, or greeting.” Page 26.880.10Of the six groups, three chose to begin with a joke; of the remaining three groups, twobegan with a fact and one did not include any of the three possible attention getters.Because of the relative prevalence of humor, and because of humor’s role
Stories Reveal Gendered Perceptions of What it Means to be Innovative in EngineeringAbstractFocus on the role of motivation and emotions as part of engineering entrepreneurial definitionspose an intriguing question: Might understanding how college students characterize a newgraduate’s entrepreneurial action be crucial for expanding a definition of innovation andinfusing new elements in the curriculum? In this paper, we utilized students’ interpersonalperceptions of another to parse out the definition of innovativeness, finding that gender mattersfor achievement motivation and affiliation motivation in conceptualizing anengineer/founder/CEO. The study included two independent elements (gender cue prompt andgender of participant) and
Paper ID #18609Work in Progress: Increasing Interest in STEM and Improving Retention forAt-Risk Students - A Two-Year StudyDr. Melissa Danforth, California State University, Bakersfield Melissa Danforth is an Associate Professor and the Chair of the Department of Computer and Electrical Engineering and Computer Science at CSUB. Dr. Danforth is the PI for a NSF Federal Cyber Service grant (NSF-DUE1241636) to create models for information assurance education and outreach. Dr. Danforth is the Project Director for a U.S. Department of Education grant (P031S100081) to create engineering pathways for students in the CSUB service
Quality Based on Team that could be useful for training Chinese engineers Spirit Training. Research in Higher working in the global context Engineering Education, (6), 103-108. Duan Guijiang, & Xu Shixin. (2012). Reported experience of an instructional team in the Improving students' teamwork ability by program Manufacturing Management Information reforming a capstone design course. Systems in reforming a mandatory capstone design course Research in Higher Engineering by integrating various team training tools and modules and Education, (1), 132-137. teamwork assessments Wan Baikun, Li Qing, Yang Chunmei, & Reported a course reform project in a biomedical
Paper ID #26019Creativity Activities in a Design Course Fail to Elicit Gains in Creativity Overand Above those Elicited by the Design Course ItselfDr. William H. Guilford, University of Virginia Will Guilford is an Associate Professor of Biomedical Engineering at the University of Virginia. He is also the Assistant Dean for Undergraduate Education in the School of Engineering. He received his B.S. in Biology and Chemistry from St. Francis College in Ft. Wayne, Indiana and his Ph.D. in Physiology from the University of Arizona. Will did his postdoctoral training in Molecular Biophysics at the University of Vermont. His
learning environments. Dr. Swanson received her PhD in Curriculum and Instruction in Science Education from the University of Colorado Boulder, and a BA in Molecular, Cellular, and Developmental Biology from University of California, Santa Cruz. Prior to graduate school, she was an elementary science educator for a small children’s science center in California. c American Society for Engineering Education, 2020“Because I’m not always constantly getting everything right”: GenderDifferences in Engineering Identity Formation in Elementary Students (FUNDAMENTAL) I IntroductionEngineering is a relatively new addition to elementary school classrooms, a
College • Collaborative Projects (2007-2013) – Orange, Lake, Sumter, Seminole and Osceola County Public Schools, Lockheed Martin, Electronic Arts, Girl Scouts, Junior Achievement, Prism, Orlando Science Center, University of Central Florida, Valencia, Seminole and Lake Sumter Colleges • Coordinator of Industry Expert Review Committee: 2008 Math Sunshine State Standards • Member of the Strategic Planning Committee (2011-2012) - Florida Center for Research in Math and Science Education • Medical Scholars Program (2014-present) – Florida A&M University, MCAT prep curriculum developer c American Society for Engineering Education, 2017
curriculum overview • Mandatory items - travel documents, weekly progress report, survey responses Korea - weather, packing tips, arrival information, meeting point at the airport, safety tips, must- have apps, getting around, accommodation • Research - expectations, lab culture in Korea • Professional Development workshop while in KoreaStudents were assigned homework for orientation II (picking an attraction to visit and explaininghow to get there using the recommended app) and orientation III (uploading questions to a livedocument on Dropbox).Summer 2019 Cohort: In-country ActivitiesAll the students arrived in Korea on June 15 (Sat), were greeted at the airport and shown to theiraccommodations by Prof. Kim. Students
pedagogy for problem based courses. He created and co-teaches a multi-year integrated system design (ISD) project for mechanical engineering students. He is a mentor to mechanical engineering graduate teaching fellows and actively champions the adoption and use of teaching technologies.Dr. Michele J. Grimm, Michigan State University Michele J. Grimm is the Wielenga Creative Engineering Endowed Professor of Mechanical Engineering. In addition to her scientific research, Dr. Grimm has spent a large part of her career focused on curriculum development and enhancement of student learning in engineering. She served on the faculty of Wayne State University for 25 years, where she developed and implemented both undergraduate
Paper ID #34808Introducing Engineering Principles in a Diverse InterdisciplinaryVirtual Summer Camp for Underrepresented 9th - 12th Graders in RuralLouisiana (Evaluation, Diversity)Dr. Mehmet Emre Bahadir, Southeastern Louisiana University Mehmet Emre Bahadir is an Assistant Professor of Industrial Technology at Southeastern Louisiana Uni- versity. His teaching and research interests are in the field of product design, industrial ecology, sustain- able manufacturing, and additive manufacturing.Dr. Ahmad Fayed, Southeastern Louisiana University Ahmad Fayed is an Assistant Professor of Engineering Technology, a former member
Paper ID #34826Introducing Multidisciplinary Engineering in a Diverse InterdisciplinaryVirtual Summer Camp for Underrepresented 9th - 12th Graders in RuralLouisiana (Evaluation, Diversity)Dr. Deborah Athas Dardis, Southeastern Louisiana UniversityDr. Ahmad Fayed, Southeastern Louisiana University Ahmad Fayed is an Assistant Professor of Engineering Technology, a former member of the Experiential Learning team, and the Teaching Excellence Team at Southeastern Louisiana University. Ahmad holds a Ph.D. in Mechanical Engineering from the University of Nevada Las Vegas (UNLV) and taught several engineering classes at multiple
Education, 2024“Someone has invested in me to do this”: Supporting Low-Income Students to Persist in STEM through an NSF S-STEM grantThere have been numerous, widespread national efforts to address the challenge of a growingneed for STEM professionals. In a 2012 report, the President’s Council of Advisors on Scienceand Technology suggested that the United States needed to produce one million additionalcollege graduates in STEM fields by 2022 in order to keep up with the expected growth inSTEM positions [1]. Between 1970 and 2018, STEM occupations grew 79% [2] and areexpected to continue to grow 10.8% between 2021 and 2031 [3]. Evidence suggests that thenumber of STEM degrees is increasing, as is the diversity of those obtaining STEM
physical activity levels to travel modes, transportation mobility for the transportation disadvantaged, and the development of planning and transit performance measures for access to opportunities, integrating sustainability into the engineering curriculum and creating an engi- neering sustainability minor. He has published several articles in the Transportation Research Record, other journals and conferences on these and other related topics. He is currently serving on the Transportation Research Board (TRB) Committee on Aircraft/Airport Compatibility and is a past member of the TRB Committees on Traffic Flow and Characteristics and Transportation Network Modeling. Stephen is also a member of the Ameri- can Society
and practices. The preliminary findings revealed that manydeveloped resources and curricula focused on secondary education, specifically middle school.However, recently there has been an increase in curriculum development for primary education.IntroductionArtificial Intelligence (AI) has gained significant attention in recent years across all sectors andfields [1]. In the past, AI was traditionally limited to industry. However, the integration ofengineering and computer science (CS) in pre-college education has led AI to emerge as the nextimperative topic in K-12 education [1], [2], [3]. With new technologies emerging rapidly, such asAlexa and Tesla’s self-driving cars, students must understand these tools and their utilizationstarting in
curriculum basedon its potential to be supportive of learning for all students. PBL is an educational designapproach which guides learners to “conduct research, integrate theory and practice and applyknowledge and skills to develop a viable solution to a defined problem” [29]. PBL has beenshown to increase long term knowledge retention, the motivation of learners and their ability tosolve authentic problems [30]. More specifically, PBL has been shown to be effective in helpingthe persistence of underrepresented students in STEM. For example, in a case study of at-riskfemale students in a physics classroom, the use of a PBL curriculum was shown to have positiveeffects on both student collaboration and self-efficacy [31]. An additional exploratory
principles of Universal Design for Learning and Culturally Responsive/Sustaining Pedagogies.Tanvir Hossain, The University of KansasDr. Swarup BhuniaDr. Pavlo Antonenko Pavlo ”Pasha” Antonenko is an Associate Professor of Educational Technology at the University of Florida. His interests focus on the design of technology-enhanced learning environments and rigorous mixed-method research on the effective conditions for tec ©American Society for Engineering Education, 2024 Supporting Hardware Engineering Career Choice in First-Year Engineering StudentsIntroductionThe semiconductor and digital electronics field is undergoing rapid changes with continuousprogress in integrating
studycreativity, design thinking, teaming, or problem solving in the context of Additive Manufacturingeither with respect to students or practicing engineers. The following sections review educationalefforts to date, summarize main directions for AM education, and promote areas for inclusion ofengineering education research within the emergence of AM education.Chronological Review of AM Education EffortsThe literature on Additive Manufacturing Education is scarce, likely due to the recent emergenceof both the disciplines of AM and Engineering Education. The first effort and suggestion ofincluding Rapid Prototyping into the engineering curriculum was proposed by Bohn in 1997 [6].The emphasis on the need for integrating aggressive prototyping into the
basis – either employing them part time while they study by distance, oremploying them every summer between teaching semesters at an on campus university. Thisworkforce demand allows us the opportunity of embedding our student engineers in industrywhile they learn, and to provide them with real (rather than realistic or authentic) learningenvironments. The benefits of co-op programs are widely known; extending from a six-monthplacement to four years’ work experience will only deepen the value of the learning. This alsoprovides an inherent solution to the imminent problem of many engineering students strugglingto find adequate workplace experience in order to graduate.An Innovative curriculum. Building a new program from the ground up allows us
complete the entire curriculum (expected in Spring 2023), the summative levelassessment can evaluate the overall effectiveness of the vertical integration of CPS/IoT. At thattime, through the analysis of the amount of CPS/IoT materials implemented in respectivecourses, number of students participated, grades, graduation rates, and specific aspects of projectactivities, how successful the CPS/IoT infusion could improve student learning and motivate thestudents to pursue advanced studies and careers in CPS/IoT areas will be revealed.Conclusions and future workThis paper presents an on-going effort that enhances undergraduate training in EE programthrough curriculum integration of CPS/IoT and improves the presentation of minorities in high-demand
instructional approachesfor open-ended design and learning. Specifically, how can faculty developers engage in coursedevelopment when the development process is inherently complex and ambiguous? What does itmean for course development when the ability to navigate complexity and ambiguity are explicitcourse learning objectives? This paper is based on the author’s experience as an engineeringeducation researcher, curriculum developer, and instructor of record, leading the developmentand instruction of a new course offered in an undergraduate multidisciplinary engineeringprogram. As part of the course development, the author participated in a six-day intensiveSummer Course Design Institute offered through the Center for Instructional Excellence atPurdue
methods.Figure 1. Instructors participating in the soda straw (top-left), mechatronics (top-right), balloon dropactivity (bottom-left and bottom-right).2.2 Developing the First-Year Course and Integrating Spiral Curriculum After an introduction to experiences in first-year course activities and projects, the focus wasturned to developing an implementation plan for the first offering of the first-year course at KLETechnological University in the fall 2015 semester. This included mapping activities from the workshopto course objectives and desired outcomes of the course as well as developing a week-by-weekorganization of course materials. Adopted components from the workshop included soda straw towers,balloon drops, mechatronics, ethics, and
. Jennifer 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 program and teaches curriculum, instruction, & as- sessment courses to undergraduate and graduate secondary education students. Jennifer’s research focus on urban high school reform is informed by nine years of teaching in Chicago Public Schools, giving her an informed perspective of how policy moves from theory to practice. Dr. Olson’s current research interests include urban teacher preparation, teacher professional development and student voice. Her most recent publication in Journal of Urban Learning
, we provide an overview of the BEADLE curriculum, and report onthe results of its evaluation using a remotely accessible FPGA lab. Additionally, we highlight thevarious features integrated into the remote lab platform, aimed at enhancing students'understanding of the curriculum content.IntroductionThe COVID-19 pandemic highlighted equity challenges for engineering students in remotelearning, including limited access to suitable hardware and stable internet connections.Innovative solutions were needed to offer lab-based courses with strong learning outcomes to allstudents. Providing remote access to hardware was a cost-effective alternative to shippinglaboratory kits worldwide and allowed for global access to a small number of