computer science at California Polytechnic State University (Cal Poly) in San Luis Obispo, and president of Simex, a software consulting and training company. Previously he worked on telecommunications fraud detection systems at Sprint, and taught at Bethel College in Kansas. His teaching and research interests focus on software engineering with an emphasis on agile methodologies and practices, empirical software engineering, software architecture, and software metrics. He holds a PhD in computer science from the University of Kansas. Page 13.715.1© American Society for Engineering Education, 2008
Laurie K. Laird is the Director of Corporate and Alumni Relations and Assistant Professor of Mechanical Engineering at ONU. She received a masters degree in Aerospace Engineering from the University of Cincinnati. At ONU, she teaches primarily freshman engineering courses. In addition to freshman programs, one of her areas of interest includes outreach to K-12 students. Prior to teaching, she served as a design engineer for GE Aviation.John-David Yoder, Ohio Northern University John-David Yoder is an Associate Professor of Mechanical Engineering at ONU, and serves as Chair. His Doctorate is from the University of Notre Dame. Research interests include education, controls, robotics, and
associations between students’ perception of the importance of the faculty teaching techniques [in terms of lectures, use of a variety of technological teaching tools, use of PowerPoint, use of a variety of teaching strategies, coordinating laboratory work with lecture, organization and preparation of class/laboratory activities, use of group presentations, use of individual laboratory projects, and providing timely feedback on class/laboratory projects] and student’s self-reported success/learning (expressed in terms of self-reported technical competency and GPA), as perceived by seniors in the EET program? 4. Are there associations between students’ perception of the
communications,and senior capstone design project courses, teaching laboratories and projects helpedimprove student participation, got the students actively involved and excited about theprojects and the material being taught, motivated the students to better master coursecontent and taught the students to learn to think and reason more clearly, accurately,relevantly, logically, rationally, ethically and responsibly.This paper discusses how the judicious, sensible and affable use of the Socratic Methodin the aforementioned educational settings facilitated the development of students whoare learning to possess the basic skills of thought and reasoning such as the ability to:identify, formulate and clarify questions; gather relevant data; identify key
teachers who are: ‚ engineers according to IGIP principles and have studied according to the ‚ IGIP curriculum studies at accredited institutes ‚ plus have one year of teaching experience.2.2.2 Curriculum overview and recognitionIGIP has established a curriculum for engineering pedagogy which is used in several countries.This curriculum is a modular system which consists of core modules (8 Credit Points), theorymodules (4 Credit Points) and practice modules (8 Credit Points). The core modules includetheoretical and practical engineering pedagogy as well as laboratory methodology. The theorymodules include psychology, sociology, ethics, and intercultural competencies. The practicemodules consists of oral communication skills, scientific
, SecondReiff Implementation: http://www.manuelglasl.de/index.php?article_id=1/.[8] Virtual Chemistry at the Brigham Young University: http://chemlab.byu.edu/Tour.php.[9] Freitas, S. D., (2006), “Learning in immersive worlds: a review of game-based learning”, Prepared for the JISC e-Learning Program.[10] Wang, G. G., “Bringing games into the classroom in teaching quality control”, Online document at: http://www.umanitoba.ca/faculties/engineering/mech_and_ind/prof/wang/index_files/Game-8-25-03.pdf.[11] “Source” game engine: http://www.valvesoftware.com/.[12] Arango, F., Chang, C., Esche, S. K. & Chassapis, C., (2007), “A scenario for collaborative learning in virtual engineering laboratories”, Proceedings of the 37th ASEE/IEEE
. She has received her Ph.D. in Electrical Engineering from Georgia Tech in 2005. In addition, she has worked for over 6 years as a hardware designer and communications analyst at IBM and Compaq Computer respectively. Her research has been on communication networks and protocols, including wireless networks and Internet telephony. Page 13.854.1© American Society for Engineering Education, 2008 Life-long Learning Starts In ClassroomsAbstract This paper presents the result of our experiment in a sophomore Circuit Analysiscourse using the learning-through-teaching method. The main goals of
Mississippi State University and his MS and PhD degrees from the California Institute of Technology. Prof. Koenig teaches introductory courses in aerospace engineering and flight mechanics, and upper division courses in aerodynamics and propulsion. His research areas include rocket and scramjet propulsion and sports equipment engineering.Christopher Hamm, Mississippi State University Chris Hamm is a first year graduate teaching assistant in the aerospace engineering laboratories. He obtained his BS degree in aerospace engineering from Mississippi State University, and is currently enrolled as a candidate for a master of science degree. He assists in teaching upper division laboratory classes and
technology program graduates. This paper studies industry need for graduate knowledge and skill in fluid mechanics area and presents an ongoing curriculum reform process to transform an existing fluid mechanics course to a fluid power course. A multi-mode student learning process is developed and course is reformed to support an interactive pedagogical methodology. Beyond current teaching methods, tools are developed to foster a flexible inductive learning through hands-on applications. A multipurpose laboratory equipped with fluid power process, sensors, data acquisition system, and application programs is being developed. A series of laboratory practices based on use of fluid mechanics principles in industrial applications would
Student Participation in EE Lab Teams as a Predictor of Acquired Skills and Knowledge E. Carl Greco, Jim D. Reasoner, Ronald E. Nelson Electrical Engineering Department – Arkansas Tech UniversityAbstractIn a fundamental electrical engineering laboratory course, the current model utilizing laboratory groupsof two or more students to perform assignments reduced the student's ability to learn rudimentarylaboratory skills and knowledge and the ability to apply them to a basic circuits analysis application. Thestudents' performance on the laboratory final exam provided an indicator of their individually acquiredknowledge and skills. Several factors were investigated as
Engineering Program from 1993-97, and starting in January 2008, he is serving as Director of the Computer Engineering Program. From 1990-92, he was a Program Director in the Division of Undergraduate Education at the National Science Foundation in Washington, D.C. He worked for TRW in Redondo Beach, CA for 11 years, primarily on signal processing projects. He is a member of IEEE, ASEE, ACM, AAAS, and SHOT.Dominic Dalbello, Allan Hancock College Dominic J. Dal Bello received his B.S. and M.S. degrees in Mechanical Engineering from UC Santa Barbara. He is currently Assistant Professor of Engineering at Allan Hancock College, a California community college in Santa Maria, where he teaches Statics
Laboratory 11. My knowledge of wave-particle duality helps me to solve problems in the Nanotechnology Laboratory 12. Nanotechnology Laboratory teaches me to measure parameters and determine parameter error in nanostructures 13. The Nanotechnology Laboratory will help me appreciate the multidisciplinary nature of nanotechnology 14. Would you recommend this Nanotechnology Laboratory to other students Page 13.385.7APPENDIX 2Descriptive Statistics of Formative Evaluation of Lab ExperimentsAbbreviations of Lab Experiments:3 – Study of the Highly Oriented Pyrolytic Graphite (HOPG) Surface Using STM6 – Diffraction of Electrons from
. Felder R M, and Brent R Designing a Teaching Courses to Satisfy the ABET Engineering Criteria J. of Eng. Education, 7-25, 2003.16. Hercog D., B Gergi·c, S Uran, and K Jezernik. A DSP- Based Remote Control Laboratory. IEEE Trans on Industrial Electronics, 54(6):3057-3068, 2007.17. Hassan H., C. Dominguez, J.M. Martinez, and J. Albaladejo. Remote Laboratory Architecture for the Validation of Industrial Applications Control. IEEE Trans on Industrial Electronics, 54(6):3094-3102, 2007.18. Hough M, Word E, Yip S, and Marlin T. A Web Site to Support Active Student Learning in Process Control American Society for Eng. Education. Proceedings of the ASEE 2002 Annual Conference & Exposition, 2002.19. Irawan R., M. Ooi, G. Yeung, E. Weyer
equipment used in the laboratory. These are the textbooks that are used inindustry. These documents are sometimes inconvenient when used as a teaching textbook, butthe solution carries an added benefit that the students are well trained in using technical manualsand sorting their way through datasheets after having gone through the curriculum. In someinstances supplemental material must be provided as a datasheet does not give attention to allissues. One such issue is that of EOAT selection. If an angular finger gripper is required whatforce must be used to maintain hold on the payload? If a vacuum cup is required, how muchvacuum is required? Another issue is communication networks. How does DeviceNet work?What are the priority levels in the
Education in Software Defined Radio Design Engineering Abstract— Software Defined Radio (SDR), an interdisciplinary emerging technology,presents new challenges for communications engineers and engineering educators. In SDR,signal modulation and information coding are defined in the system's software, nothardware. The authors have incorporated SDR design into their respective curricula bothto support the growing demand for SDR engineering and to teach widely applicablesystems engineering concepts. SDR-oriented curricular changes include new courses,laboratories, and software design tools. Software radio design is taught as aninterdisciplinary systems engineering undertaking, emphasizing the importance of
AC 2008-2024: USING MICROTUBULES TO ILLUSTRATE POLYMERPROPERTIESYoli Jeune, University of Florida Yoli Jeune is currently a PhD candidate at the Department of Materials Science and Engineering of the University of Florida. She has received a Bachelors degree in Clinical Laboratory Sciences (1999) and a Masters degree in Secondary Science Education with a concentration in Biology (2002) from the University of South Florida. She worked for 3.5 years at the Hillsborough County School District in Florida teaching Biology and Chemistry to High School students. She is a recipient of the McKnight Doctoral Fellowship, Alfred P. Sloan, and Alliance for Graduate Education and the Professoriate
diverse with public and private, research and teaching oriented and large andsmall institutions all represented. Forty-six of the fifty assessed programs grant a Bachelor ofScience in Civil Engineering or Bachelor of Science in Engineering and are ABET accredited.The other four schools grant Bachelor of Science in Engineering or similar degrees withconcentrations in civil engineering or related fields.The information collected from each program was: 1) total credits in the curriculum 2) total credits in the mechanics courses 3) degree title 4) innovative aspects 5) general notes on the curriculum 6) required or elective status of each mechanics course 7) credits per course 8) lecture hours 9) laboratory hours 10) semester
A Professional Development Program for Graduate Students at North Carolina State UniversityI. Introduction The traditional engineering graduate school experience involves taking courses, selectinga dissertation or thesis advisor and project, performing the research under the advisor’ssupervision, and completing and defending the dissertation. Such an experience trains graduatestudents to carry out research on a problem someone else has defined and gotten funded. It doesnot, however, prepare them for anything else they might be called upon to do in graduate schooland in their professional careers, including: • Teaching assistant responsibilities. Grade assignments, projects, and tests; supervise laboratories
AC 2008-931: ELECTRIC MACHINES PROJECT ACTIVITIES USING MATHCADE-BOOKIlya Grinberg, Buffalo State CollegeCarl Spezia, Southern Illinois University-CarbondaleHerbert Hess, University of Idaho Page 13.476.1© American Society for Engineering Education, 2008 Electric Machines Project Activities Using a MathCAD® E-BookAbstractRecent software advances have made a wide variety of computer-based learning tools availablefor teaching induction motor theory. These tutorials and visualizations typically target specificfundamental topics, require detailed knowledge of the development software to produce, andprovide a rudimentary connection with other relevant practical topics like
pedagogical concepts to support teaching of mathematics for mathematicians, engineers and natural scientists - at the TU Berlin in 2001, as a research assistant at SFB609 in Dresden from 2002-2004, and is now part of the Team of the MuLF (Center for Multimedia in Education and Research) at the TU Berlin). In the past three years, Olivier Pfeiffer focused on the organization and coordination of the involved teams and contributed to several other eLTR related projects. He is also involved in the planning and application of future eLTR projects at the Berlin University of Technology and the local coordinator at the TU Berlin of the EMECW3 project. His research interest focuses on the
NDT applications and automated thermocouple welder.The laboratory- and project-based instruction will help provide a strong background in AppliedEngineering Technology to fill important roles in industry in the future. It will also stimulate andinstitutionalize innovative developments and will create a model for leveraging high-endinstrumentation in undergraduate education.4. Bibliography 1. R.M Felder and R. Brent. The Intellectual development of Science and Engineering students. Part 2: Teaching to Promote Growth. Journal of Engineering Education. Vol. 93, No. 4, p. 279, 2004. 2. Workforce 2002: Measuring what matters. The Reinvestment Fund. October 2002. 3. V. Genis, D. Spang, A. Genis, T. Midora. Development of NDE Laboratory for
Laboratories with the School of Electrical and Computer Engineering of Purdue University since July 1999. He received his PhD in 1998 from the School of Electrical and Computer Engineering of Purdue University, West Lafayette, Indiana. He teaches Application Specific Integrated Circuit (ASIC) design, advises senior design project teams, supervises teaching assistants in several laboratories, develops computer engineering laboratory curricula, manages design automation software for instruction and research, and is chair of an ECE committee for instructional innovation. Dr. Johnson served as proceedings chair for Microelectronic Systems Education 2003, program chair for Microelectronic Systems
hardware, software and courseware learning ecosystem that has beencreated to capture student attention and develop a broader skill set. Laboratory and in-classexercises use POGIL (Process Oriented Guided Inquiry Learning) – based laboratory modules toengage students in learning through exploration, critical thinking, and team and cooperativeparticipation exercises. Laboratory and in-class exercises are designed to teach the student howto explore a new technology to be able to learn more about it. In fact, learning how to learn is akey outcome. Laboratory hardware is designed to provide easy connection to real-world devicesand allow students to extend their explorations from classroom theory to the practical applicationof technology they are
AC 2008-1809: A PROGRESS REPORT ON A HANDS-ON INTERDISCIPLINARYPROGRAM FOR SEVERE WEATHER AND NEXT-GENERATIONMULTI-FUNCTION RADARMark Yeary, University of Oklahoma Dr. Mark Yeary is an Assistant Professor in the School of Electrical and Computer Engineering at the University of Oklahoma. He has many years of experience as a teaching assistant, lecturer, and assistant professor. Since January of 1993, he has taught many students in various laboratories and lecture courses, culminating in approximately 13 years of teaching experience. For the 1999-00 academic year, he received the Outstanding Professor Award, given by the Texas A&M student chapters of IEEE and Eta Kappa Nu, and IBM in Austin. His
Prototyping CourseAbstractManufacturing and Industrial Technology (MIT) is one of the well-known majors at the Collegeof Engineering of Tennessee Tech University (TTU) located in Cookeville, TN. MIT studentsgraduate with a BS in Industrial Technology and take 121 credit-hour coursework to completetheir degrees.During the Fall 2007 semester MIT4450--Rapid Prototyping course has been re-structured tooffer fully online laboratory component for students’ practice. Students were able to prototypetheir parts through remotely accessible Rapid Prototyping Laboratory.Web-enhanced MIT4450 course students were also able to interact with students in WesternNevada College and prototype joint project parts with the campus engineering students. AnotherK-12 school
Signal Processing Applied to Image Processing. He is a member of ASEE and senior member of IEEE.Chandra Sekhar, Purdue University Calumet CHANDRA R. SEKHAR is a member of the faculty of the Electrical and Computer Engineering Technology at Purdue University Calumet. Professor Sekhar earned a Bachelor’s Degree in Chemistry from the University of Madras (India), a Diploma in Instrumentation from Madras Institute of Technology and Master’s Degree in Electrical Engineering from University of Pennsylvania. Professor Sekhar’s primary teaching and research focus is in the areas of Biomedical and Process Control Instrumentation and Clinical Engineering.Essaid Bouktache, Purdue University Calumet
. Biol. Educ. 32, 7-10.7. Hesketh, R.P., Slater, C.S., Farrell, S., and Carney, M. (2002). Fluidized bed polymer coating experiment.Chem. Eng. Ed. 36, 138-143.8. Burrows, V.A. (2004). Experiments and other learning activities using natural dye materials. Chem. Eng. Ed.38, 132-135, 141.9. Komives, C., Rech, S., and McNeil, M. (2004). Laboratory experiment on gene subcloning for chemicalengineering students. Chem. Eng. Ed. 38, 212-215, 221.10. Wankat, P. (2001). Teaching separations: why, what, when, and how. Chem. Eng. Ed. 35, 168-171.11. Lefebvre, B.G, Farrell, S., and Dominiak, R.D. (2007). Illustrating chromatography withcolorful proteins. Chem. Eng. Ed. 41, 241-246.12. Lefebvre, B.G. and Farrell, S. (2005). Illustrating bioseparations with
course (WTSN 103: Technical Communication I), and acalculus course (MATH 221: Calculus I). Of these courses, WTSN 111 and WTSN 103 are linked coursesconsisting of a joint lecture that meets twice a week, and activity sections that each meet once a week(fourteen WTSN 111 laboratory sections and eleven WTSN 103 guided discussion sections). The jointlecture of the WTSN 111 and the guided discussion sections of WTSN 103 are taught by facultymembers, while the WTSN 111 laboratory sections are taught by the teaching assistants. MATH 221, alsotaught by teaching assistants, consists of thirty separate discussion sections that each meet for four and ahalf hours a week. Since all of the students are required to take these three courses during the semester
Pedagogical and Andragogical Validity of Capstone Projects,” http://www.asee.org/acPapers/20476.pdf. 4. S. Brookfiel, “Understanding and Facilitating Adult Learning,” San Francisco, CA. Jossey-Bass, 1986. 5. R. Zemke, “In Search of Self-Directed Learners” Training, May 1998. 6. J.E. Stice, “A First Step Toward Improved Teaching,” Engineering Education, 1976 7. W. Ibrahim, R. Morsi, “Online Engineering Education: A Comprehensive Review,” Proceedings of the 2005 ASEE Annual Conference 8. L.D. Feisel, A. J. Rosa, “The role of the laboratory in undergraduate engineering education,” Journal of Engineering Education, vol. 94, No. 1, January 2005. 9. N.Y. Bengiamin, A. Johnson, M. Zidon, D. Moen, D., and D.K. Ludlow, “The
IMPARTING CONSUMMATE INSTRUCTIONS IN MICROELECTRONICS ENGINEERING AND VLSI TECHNOLOGY AT THE UNIVERSITY OF MASSACHUSETTS, LOWELL Kanti Prasad Ph.D.; P.E. Professor/Founding Director Microelectronics/VLSI Technology Electrical and Computer Engineering Department University of Massachusetts Lowell Kanti_Prasad@uml.eduAbstract:For consummate VLSI program, theoretical instructions must be complemented withadequate laboratory facilities in order to validate the design from its conception to thefinished chip along with its real time testing. This comprises of