create a new project. Next, produce schematics. The component selector isused to match schematic symbols with the corresponding device artwork or footprint. Artworkproduced by the layout tool can be viewed in two or three dimensions. The layout tool alsoproduces industry standard Gerber files and drill files so that you are free to choose your own PCboard manufacturer.Our University recently purchased a PC board milling machine that I intend to make use of withKiCad. Faculty in our Electronic Engineering Technology program also expressed an interest inpossibly using KiCad and the milling machine in technology courses.Figure 1 is of the schematic capture tool showing the detail of a schematic. With buttons alongthree sides of a window, the tools
of writing iscurrently emphasized in this discipline pedagogically? Two, are there significant writing styledifferences in the discipline that that require faculty in the discipline to guide the student thoughtand writing process? The current emphasis in engineering and engineering technology programsis placed on highly formatted technical and scientific laboratory reports.1 The problem with thistype of technical writing in the discipline is that it doesn't really prepare students to communicate1 It is interesting to note that students have had a difficult time writing the conclusions in their laboratory reports. Page
. Mayadas and J.O. Campbell, “Asynchronous learning networks: an information-technology-basedinfrastructure for engineering education”, Proc. IEEE, vol. 88, pp. 63-71, Jan. 2000.9. A. P. Sanoff, “Long-distance relationship”, ASEE Prism, pp. 22-26, Sept. 1999.10. P. Brusilovsky, “Web lectures: electronic presentations in web-based instruction”, Syllabus, pp. 18-23, Jan. 2000. Page 7.575.6 Proceedings of the 2002 American Society for Engineering Education Annual Conference & Exposition Copyright Ó 2002, American Society for Engineering Education11. K. Betts, “Why do faculty participate in distance
requirements ofthe science and engineering education, including current Engineering Criteria and Objectives bythe Accreditation Board for Engineering and Technology (ABET). In its current form, it consistsof two “tandem” courses, EBME 313 (fall) and EBME 314 (spring), in the junior year, andincludes a number of educational components. These two courses are part of the BiomedicalEngineering Core, and traditionally are among students’ most favorite courses. 1. The course offers unique opportunities for the students to acquire hands-on experience in “real” research in a variety of biomedical engineering areas. Students perform experiments using the equipment and employing techniques that researchers use in their studies. 2. Students are
Session 2260 The U.S.-China REU Program On Marine Science and Engineering Hung Tao Shen, Hayley Shen Department of Civil and Environmental Engineering Clarkson University, Potsdam, NY, USA 13699-5710 Qianjin Yue Department of Engineering Mechanics, Dalian Univeristy of Technology, Dalian, China 116023 Peifung Guo College of Environmental Oceanography
University. Thispaper focuses on understanding the impacts of introducing such a course into the curriculum.The course covers the three main pillars of Electrical Engineering: Electromagnetic fields andwaves, Circuit theory and linear systems, and semiconductors and micro/nano-technology. Agoal of this approach is to expose students to foundational concepts in critical ECE areasincluding wireless communications, micro/nano-technology, computer chips, biotechnology,robotics, power, signal processing, and photonics earlier in the ECE curriculum. The curriculuminnovation captures the primary focus of assisting students in understanding and realizing thebroader scope of ECE. The laboratory component of the course emphasizes the creation of acontext that
year (VIPs)[12]-[13] or replacing an entire team every year [14]. There is a VIP Consortium led by the GeorgiaInstitute of Technology consisting of forty-eight mostly large research-intensive educationalinstitutions [15].Unmanned aerial systems (UAS) comprising UAVs, ground stations, communication systems, andlaunch/retrieve systems are slowly coming of age. The eVTOL developmental ecosystem isimproving rapidly due to the commercialization efforts of companies like Joby Aviation [16].Moreover, the Federal Aviation Administration (FAA), through their Urban Air Mobility concept,is developing new standards that include eVTOLs [17].In engineering education, faculty of the Department of Mechanical and Aerospace Engineering atWest Virginia
1 The Case for Leadership Skills Courses in the Engineering Curriculum Kaylea Dunn Olsson Associates, Lincoln, NEAbstractLeadership courses are often encouraged, but not mandatory for an undergraduate engineeringdegree. The research presented here focuses on implementing specific undergraduate leadershipcourses as part of an American Board of Engineering and Technology (ABET) accreditedprogram at a Midwestern University.The purpose of this study is to identify what professional skills engineering companies expectstudents to develop through coursework before
SecPro app as an educational tool for teaching engineering mechanics Nicolas Ali Libre Civil, Architectural and Environmental Engineering Department Missouri University of Science and Technology Rolla, MO, USA libren@mst.edu Abstract—Incorporation of educational apps into classroom curriculum includinggamification, collaboration, self-learning and assessment apps is a major trend in engineeringeducation. Educational applications either in desktop or mobile devices enable students to learnin a modern context when
positively in the training.In engineering, we have long had Accreditation Board for Engineering and Technology (ABET)requirements for undergraduate engineering ethics training. These requirements focus onengineers as practicing professionals working primarily in design and development rather thanresearch. Undergraduate engineering curricula rarely cover topics typical of responsible conductof research (RCR) such as paper authorship, peer review, and research funding management andrather focus on issues such as employer-client-employee relations, human health, safety andwelfare in design, and intellectual property. Conversely, most responsible conduct of researchcourses and materials have been developed around the biomedical and clinical health
Paper ID #44688A Summer Engineering Internship Program Offered at a Liberal Arts UniversityDr. Liya Grace Ni, Biola University Dr. Grace Ni is a Professor of Engineering and the Program Chair of Physics and Engineering in the School of Science, Technology and Health at Biola University. She has over seventeen years of teaching experience in undergraduate engineering education, mainly in electrical and computer engineering. Her research interests include mechatronics, control system, robotics, and engineering education. Dr. Ni is a senior member of IEEE and a member of ASEE.Elaine Wong, Biola University Dr. Elaine Wong
, ConstructionMethods, Construction Project Management, Soil Mechanics, Hydraulics, Fluid Mechanics, PlaneSurveying, Chemistry and Physics need laboratories to teach effectively. Spring 2016 Mid-Atlantic ASEE Conference, April 8-9, 2016 GWULaboratory sessions should be taught in conjunction with corresponding classroom lessons sostudents can relate course materials to real world applications. For the courses studied in this paper,it can be seen that the disadvantages of using online courses in Civil Engineering outweigh anyadvantages. Often times, students should work in a team climate to achieve success in variousprojects that they may have to undertake in the real world. As online education advances, it is aconcern that technology will
TheUniversityofTexasatArlington,Arlington,TX Copyright ã 2025, American Society for Engineering Education 2abilities and needs, implementing good teaching practices, and student independence in theirlearning process. Development and use of Agile principles have continued with a particular focusin Science, Technology, Engineering, and Mathematics (STEM), with some applications in non-STEM fields. As the use of Agile has expanded, the incorporation of other related processimprovement tools has been seen. The use of continuous process improvement methodologies withAgile has resulted in the development of Extreme Pedagogy7 which puts an emphasis on learningby continuous doing, learning by continuous
2221 Developing a European Master in Construction IT E. Dado1, R. Beheshti21) Assistant Professor. Delft University of Technology, Faculty of Civil Engineering and Geosciences, Designand Construction Processes, Building Informatics Group, Stevinweg 1, 2628 CN, Delft, The Netherlands.E-mail address: e.dado@ct.tudelft.nl / 2) Associate Professor. Delft University of Technology, Faculty of CivilEngineering and Geosciences, Design and Construction Processes, Building Informatics Group, Stevinweg 1,2628 CN, Delft, The Netherlands. E-mail address: r.beheshti@ct.tudelft.nl1
) reflect this reversescoring, as noted. In addition, we assessed the Cultural Competence (CC) scale for internalconsistency (reliability) using Cronbach’s alpha statistic. In so doing, we discovered that two ofthe items (7 and 10) detracted from the overall reliability of the scale, and so removed them fromthe calculation of the composite CC score. The resulting alpha reliability coefficient is .75 (forthe Grainger students) which represents an acceptable level internal consistency.The 12 Items 1. The technology that is used in the United States is likely the best technology to use to solve similar technical problems in other countries. 2. There is a single best solution to every engineering problem. 3. It is important for engineers to
representations (e.g., gesture-language, concrete-language) within the engineering process. In addition, we observed four purposes for the use ofrepresentational fluency of mathematics and science concepts between caregiver-childinteractions throughout the engineering design process. The significance of this study lies in thenew possibilities for children’s development of mathematics and science concepts in out-of-school contexts while positioning caregivers in the role of educator.IntroductionIt is common for science, technology, engineering, and mathematics (STEM) concepts to beunderstood as distinct disciplines as opposed to transdisciplinary in nature. As such, researchhighlights the challenges involved with connecting the learning of concepts
knowledge learned in their STEM courses to solve integrated and ill-structuredproblems. The report by the President’s Council of Advisors on Science and Technology [2]emphasizes the need for developing important 21st Century workplace skills. One of the majorrecommendations from the Next Generation Science Standards [6] along with the Technologyand Engineering Literacy Framework [7] is that integrating science courses with engineeringdesign facilitates students' learning of scientific and engineering practices The incorporation of engineering design in science classrooms also enables students torealize the relevance of science to everyday problems [8] – [11]. By integrating physicslaboratories with engineering design problems, students are
emphasis on teaching technical standards.Additionally, there is concensus that a technical standards course would be beneficial to students,new hires, and new professional engineers, but also to engineers at more experienced levels.Course content was the primary (81.9%) course feature of interest to survey participants with themost desirable topics including technical standards basics (84.1%), practical applications ofstandards (70.1%), and how to read standards (69.7%).IntroductionThe incorporation of technical standards into engineering program curriculums has been listedwithin the ABET (Accreditation Board for Engineering and Technology) criteria for accreditingengineering programs since 2001 when the ABET criteria underwent a reevaluation
engineering choices.As an art form, film has inherent value in: the richness of the human experience captured in itthat is shared by its audience; the pleasure and insight the experience of viewing film brings tothe audience; the creative integration of narrative, composition, perspective, and techniquecommanded by a team of producer(s), director(s), writers, actors, cameramen, film editors, setdesigners, etc.; the cultural moment it expresses and reveals as it is created and produced; and, itsstaying power as it is viewed, experienced and interpreted over time. Film enables this artisticand technical collective to transform moving image, creating symbols and exploring themes andmyth which mirror other art forms, all of which depend upon technologies
through the use of technology is the way to maintain the U.S. edge inthe global market place.1 An argument for the second perspective is the belief that the U.S. leadsin creativity and innovation and has the best universities in the world to pilot the way.2Regardless of the viewpoint taken, it is apparent that we must transition more high schoolstudents into engineering to be competitive; having a clear picture of the current state of themarket factors that may influence our youth as they make their career choice is imperative.According to the U.S. Department of Education5 it was estimated that in the fall of 2008 nearly49.8 million students attended public schools in the U.S. with an additional 6.2 million attendingprivate schools. Of those
one student). They also noted that computer programming is “efficient” and can be usedto speed up calculations and analysis compared to methods by hand. To address RQ3, twoadditional themes were included: experimental data and simulations. Representative quotes forthese four themes are given below: • Technological era: “Literally every engineering field needs some amount of coding or programming now.” • Efficiency: “An engineer can whip up a program to do something in ten minutes that would have taken 5 hours manually.” • Experimental Data: “This is a technological era, everything depends on programming to quickly and accurately process and analyze data.” • Simulations: “To model
research consulting firm. Her expertise and interests focus on education and workforce development in engineering and science fields. Previous and current clients include the American Chemical Society, the Anita Borg Institute for Women and Technology, California Institute of Technology, the College of Natural Sciences and Mathematics at California State University Fullerton, the Office of the Vice Provost for Graduate Education at Stanford University, the School of Medicine at Stanford University, and the School of Fisheries and Ocean Sciences at the University of Alaska, Fairbanks. c American Society for Engineering Education, 2020 Analyzing Innovative Behavior Outcomes of Early
, sustainability and appropriate technology, and engineering education reform. From 2004 to 2010 he served as a Senior Science Fellow of the Association of American Colleges and Universities.Paula Quinn, Quinn Evaluation Consulting Paula Quinn is an independent evaluation consultant with Quinn Evaluation Consulting. She specializes in the field of education and has worked on projects funded by the National Science Foundation, U.S. Department of Education, state departments of education, and private colleges and universities. She holds an M.A. in Developmental Psychology from Clark University and a B.A. in Psychology from Case Western Reserve University
AC 2007-889: ACCIDENTAL COMPETENCY FORMATION: ANINVESTIGATION OF BEHAVIORAL LEARNING IN ENGINEERINGEDUCATIONJoachim Walther, University of Queensland JOACHIM WALTHER graduated from The Darmstadt University of Technology (Germany) with a Bachelor in Mechanical and Process Engineering and a “Diplom” in General Mechanical Engineering. As a PhD student he is now member of the Catalyst Research Centre for Society and Technology at the University of Queensland. His research interests lie in the areas of cognitive and social aspects of engineering competence.David Radcliffe, University of Queensland DAVID RADCLIFFE is the Thiess Professor of Engineering Education and Professional Development in the
programs from LAC institutions have sought substantialequivalence. This is to deep concern for the region.The Latin American and Caribbean Consortium of Engineering Institutions (LACCEI) organizedtwo workshops to advance strategies for increasing the number of accredited engineeringprograms in the region. The workshops were sponsored by the Organization of American States(OAS), and brought together 40 deans and rectors from the region and societies that haveinitiatives. These organizations included the Iberoamerican Science and Technology EducationConsortium (ISTEC), the Asociación Iberoamericana de Instituciones de Enseñanza de laIngeniería (ASIBEI – in English: Iberoamerican Association of Engineering EducationInstitutions) and Engineering for
an Assistant Professor of Electrical and Computer Engineering at the United States Air Force Academy and the Chief of the Electronic Systems Division. He received his BS degree in Electrical Engineering from Cornell University in 1989. He completed his MS degree in Systems Engineering at the Air Force Institute of Technology in 1992. In 2000, he completed his PhD in Electrical Engineering at the University of Illinois at Urbana-Champaign. His graduate work and research have focused on nonlinear control theory, automated path planning, and decision making. His current research is exploring the control aspects of multiple unmanned aerial vehicles. In 2004, he completed a one-year exchange
(US Army) is an Academy Professor in the Department of Systems Engineering at the United States Military Academy at West Point. He has a B.S. degree from USMA in Organizational Leadership and an M.E. degree in Systems Engineering from the University of Virginia. He also holds a PhD in Management Science (System Dynamics) from the Massachusetts Institute of Technology. His research interests include systems design, new product development, system dynamics, decision support systems, project management and curriculum development. He has taught and served as the course director for numerous engineering courses in Systems Design, System Dynamics and Production Operations Management. He
2004, American Society for Engineering Education • “Prepare students for a broad range of careers and lifelong learning … feature multidisciplinary, collaborative, active learning and take into account students’ varied learning styles,” 1 • “Include early exposure to ‘real’ engineering and more extensive exposure to interdisciplinary, hands-on, industrial practice aspects, team work, systems thinking and creative design” 2, and • “Create an intellectual environment where students can develop an awareness of the impact of emerging technologies, an appreciation of engineering as an integral process of societal change, and an acceptance of responsibility for civilization’s progress.” 3More
Paper ID #41398Analyzing Attrition: Predictive Model of Dropout Causes among EngineeringStudentsMs. Cristian Saavedra-Acuna, Universidad Andres Bello, Concepcion, Chile Cristian Saavedra is an assistant professor at the School of Engineering at the University Andres Bello in Concepcion, Chile. He holds a bachelor’s degree in Electronics Engineering and a master’s degree in Technological Innovation and Entrepreneurship. Cristian is certified in Industrial Engineering, University Teaching, Online Hybrid and Blended Education, and Entrepreneurship Educators. He teaches industrial engineering students and carries out academic
championed more than 20 STEM outreach programs, impacting over 500 K-12 students. His contributions to education have been lauded with awards, including the College Educator of the Year by the Technology Alliance of Central New York (TACNY). A staunch advocate for hybrid teaching, Prof. Yung promotes a holistic learning environment rich in hands-on projects, experiential activities, and peer collaboration, a marked shift from conventional pedagogies. ©American Society for Engineering Education, 2024 Enhancing Engineering Capstone Design Preparedness: A Systematic Curriculum ApproachIntroductionEngineering education is pivotal in equipping students with the technical and