predictive microbial growth/death mod- els for food safety risk assessment. Every fall, he teaches a large sophomore-level class on engineering properties of biological materials, which consists of both lectures and laboratory sessions with an enroll- ment of more than 70 students. Every spring, he teaches a junior-level course on principles of bioprocess engineering which has an enrollment of about 25 students. Page 25.511.1 c American Society for Engineering Education, 2012 Electronic Student Homework Management Systems for Continuous Improvement and Program
ingreenhouse gas emissions. In order to implement renewable energy in projects, qualifiedpersonnel take a very important role in planning and design prior to project implementation.Education and training of workforce who will be involved in the projects is important and shouldbe taken into account when investments are considered to execute projects, so that there will bequalified personnel. In preparing students for their future career, real-world experiences andhands-on training is an important part of their education. Research projects and laboratories areexcellent teaching aids for providing students with opportunities to implement the theory theylearn in class. Educating the younger generations about sustainable and clean energy sources isvital to
current state of industrial education in institutions ofhigher learning in America. The influence of earlier apprentice programs, which provided youngpeople with an education that prepared them to become gainfully employed in a trade, seems tobe evident in the values and views of modern day industrial education programs, particularlythose in community colleges. Indeed, it may not be a stretch to suggest that many programs incolleges and universities still see value in “hands-on” or “experiential learning,” a desired featureof the modern curriculum.Current Challenges Facing Technology ProgramsGiven the high cost associated with using and maintaining industrial equipment, 8 many schoolshave begun replacing existing laboratories with newer modular
motivation and learning can be achieved by making the students moreactive and in charge of their learning, which for example can be stimulated by involvement in“hands-on” activities like experiments and laboratory work 2. A project focusing on humanbody thermodynamics was developed as a complement to the traditional content of classicalengineering thermodynamics. The underlying idea was to exploit the general interest inhealth, food, fare and workout shared by many students, thus making the subject moreinteresting while at the same time extending the course to a wider arena. The project was usedin engineering thermodynamics courses for 4 different engineering programs at LinköpingUniversity, Sweden.During the project, the students worked in groups
questions and assistance forinstructors.Keywords: Distributed lab, active learning, finite state machineIntroduction:Laboratory experiments are an essential source for instructors who want to include activelearning instructional methods in their engineering courses, yet the format is often not well suitedto incorporate into lecture-based courses. Lab experiments are generally performed in labcourses in centralized locations. A new extension to the laboratory experience is distributedlaboratories, which consist of experiments that can be conducted in a variety of locations such asa standard classroom, common area, or even a dorm room. As such, they can be incorporatedinto traditional lecture courses or distributed from decentralized locations.The
Wooster (Ohio) and his Ph.D. in mathematics from Michigan State University. He has taught and worked at the Uni- versity of Nebraska, Lincoln, University of Wisconsin, Madison, Swiss Federal Institute of Technology, Argonne National Laboratory, Karlsruhe Institute of Technology (Germany), Compuware Corp., and Mar- quette University, as well as in several industrial and consulting positions. His research interests include scientific computation and mathematical modeling, guaranteed enclosures of the solutions of ordinary differential equations, industrial applications of mathematics and scientific computation, numerical opti- mization, automatic differentiation, and software engineering. He teaches courses in
software engineering.OverviewThe Teaching Artificial Intelligence as a Laboratory Science †1 (TAILS) project is designed todevelop a new paradigm for teaching introductory artificial intelligence (AI) concepts byimplementing an experiment-based approach modeled after the lab sciences. It explores whetherstructured labs with exercises that are completed in teams before students leave the classroomcan build a sense of accomplishment, confidence, community, and collaboration among students,characteristics which have been shown to be critical to retain women and non-traditionalcomputer science students in the field.TAILS presents to students an array of fundamental AI algorithms as a set of hands-on activitiesmade available through a database of lab
Department at Wash- ington University in St. Louis. She received her B.S. degree in electrical engineering from the University of Illinois, Urbana-Champaign, and her M.S. degree in biomedical engineering from Washington Univer- sity in St. Louis. Prior to her current position, she worked as an instrumentation and controls engineer for Monsanto, Co. Page 25.816.1 c American Society for Engineering Education, 2012 Integration of a Computational Lab Sequence Into a Junior-Level Quantitative Physiology CourseAbstractWe have built a computational laboratory sequence
instrumentation, piezoelectric transducers, and engineering education. Results of his research work were published in scientific journals and presented at national and interna- tional conferences. Genis has five U.S. patents.Mr. M. Eric Carr, Drexel University Eric Carr is currently the Laboratory Technician for Drexel University’s Engineering Technology pro- gram. Eric assists faculty members with the development and implementation of various engineering technology courses and enjoys finding innovative ways to use microcontrollers and other technologies to enhance Drexel’s engineering technology course offerings. Carr holds an M.S. in computer engineering from Drexel University and is an author of several recent technical
examines some of the challenges presented inoffering a predominantly laboratory-intensive curriculum at a distance. Some preliminaryenrollment data is also presented that provides an early indication as to the future viability of thearticulated programs.I. IntroductionSouthern Polytechnic State University (SPSU) is a Science, Technology, Engineering, and Math(STEM) focused university located in Marietta, Georgia. It is an urban institution with apopulation of approximately 5,400 students. For many years since its inception, the university Page 25.352.2offered a number of Engineering Technology programs in Civil CET), Computer (CpET),Electrical
generation on campus. There hasbeen an increase on number of students and interest to renewable energy systems and relatedprojects. This increase brought a demand to increase capacity and size of the solar-wind energysystem and laboratory activities on renewable energy technology. In addition, the universityadministration has been supporting renewable energy projects on campus since initial system hasbeen established. The capacity of existing solar-wind hybrid power system was increased andimproved to 10kW system by the technology (electrical engineering technology, andmanufacturing technology) students and faculty. This work was supported by the State of Iowaand University administration as part of renewable energy promotion in the state and
Page 25.417.6online and library resources, submission of an outline and annotated bibliography for review andfeedback, peer review of first drafts, formative feedback on the revised draft, and finally the finaldraft of the report and an oral presentation to the rest of the class. The second major componentis a team-based self-directed laboratory project. Student teams ideate around laboratory projects,then draft a research proposal including a description, timeline, and budget. The project isscheduled for approximately one month, and teams use both in- and out-of-class time to work onthe project (12 hrs/week). Benchside mentorship is provided by both the instructor and bylaboratory assistants, normally students with advanced laboratory skills
, Superconducting Super Collider Laboratory, Associate Director, Eisenhower National Clearinghouse for Math & Science Education, the Ohio State University. and Associate Professor of physics and chemistry, Our Lady of the Lake University, retired. Page 25.482.1 c American Society for Engineering Education, 2012 E 4 E: Engineering for EducatorsAbstractK-12 science and math education is part of the Administration’s American CompetitivenessInitiative (ACI). As one part of the larger initiative that seeks to encourage research anddevelopment, innovation, and global competitiveness
joint projects at this time.With the establishment of the campus wide fiber optic program funded by NATO NIG programat Herat University in the near future, such joint projects will be undertaken.Computers have been placed in the library for access to digital library resources such asengineering and academic research databases through the e-Quality alliance (funded by USAID).This resource is available at this time on a limited basis and once the fiber optics network isoperational, they will be used more widely by students and faculty.Laboratory facilities at HU include: • Soil laboratory • Asphalt laboratory • Concrete and metals laboratory • Surveying laboratory • Hydraulics laboratory • Computer laboratoriesUH assisted HU in
-1984, full-time. He was also Faculty Fellow at Argonne National Laboratory, to work on finite element analysis of polycrystalline arrays to determine grain boundary mechanics, Summer 1985; Faculty Fellow at Argonne National Labo- ratory, to work on finite element analysis of shipping casks in edge-drop impact tests, Summer 1987; and Faculty Fellow at Argonne National Laboratory, to work on finite element stress analysis of solid breeder blanket of tokamak fusion reactors – ITER (International Thermo-Nuclear Experimental Reactor) Pro- gram, Summer 1988. He won the Faculty Research Leave Award (Sabbatical Leave) at Argonne National Laboratory, to work on finite element stress analysis of Tokamak fusion reactor first
AC 2012-5166: PHYSICAL EXPERIMENTS TO ENHANCE MODEL-ELICITINGACTIVITY IMPLEMENTATIONDr. Andrew Kean, California Polytechnic State UniversityDr. Brian P. Self, California Polytechnic State University Brian P. Self obtained his B.S. and M.S. degrees in engineering mechanics from Virginia Tech, and his Ph.D. in Bioengineering from the University of Utah. He worked in the Air Force Research Laboratories before teaching at the U.S. Air Force Academy for seven years. Brian has taught in the Mechanical Engineering Department at Cal Poly, San Luis Obispo since 2006. During the 2011-12 academic year he participated in a professor exchange, teaching at the Munich University of Applied Sciences. His engineering education
designing experiments to demonstrate performance of adevice they designed or developed in order to prove a physical phenomenon. Hence, it comes asno surprise that ABET has embraced this criterion for close to a decade.Introduction to Thermodynamics requires that students learn basic, yet complicated concepts,such as determining properties of pure substances, calculating heat and work exchanged during aprocess, and the first and second law of thermodynamics, before they can tackle complexapplications, such as thermodynamic cycles or combustion systems. These basic concepts areconducive to simple, conceptually oriented laboratory assignments that parallel the classroominstruction. Those laboratory assignments are an ideal place to implement
doped amplifiers, wireless security, and nanotech- nology for wireless communications. He is a member of ASEE and a Senior Life Member of IEEE.Mr. Robert C. Decker, Mohawk Valley Community College Robert Decker is a professor in the Center for Math, Physical Science, Engineering, and Applied Tech- nology at Mohawk Valley Community College in Utica, N.Y. He holds a master’s degree in electrical engineering and is a member of IEEE. Decker was a Co-principal Investigator in the NSF-CCLI project ”Instructional Laboratory for Visualization & Manipulation of Nanoscale Components for Engineering Technology Students” with Professor Salahuddin Qazi of the SUNY Institute of Technology, Utica-Rome
first semester graphics class modeland extract shop drawings of a miniature steam engine, then they fabricate it in a team in the Page 25.1076.2second semester machine tool laboratory. In this same period the MET faculty also soughtimproved civility, and a spirit of inclusion, in the classroom. As a faculty we now moreconsistently communicate to students that by practicing professionalism skills in the classroomstudents are more competitive when seeking internships and early career positions. Successfulstudents recognize this relationship, and this student buy-in offers an improved academicenvironment for both students and faculty.UMaine MET
National Academy of Engineering at least half requiredesign and development of new materials1, 2. Making solar energy more economical, forexample, requires the development of photovoltaic semiconducting materials with broaderabsorption ranges3. Fusion power generation is even more challenging as sustained andcontrolled release of fusion energy has yet to be demonstrated even at the laboratory scale. Evenif the many technological and scientific hurdles related to controlled fusion power can beovercome, practical deployment of this possibly game-changing technology requires thedevelopment of materials capable of withstanding unprecedented operating conditions4, 5. In thebiomedical field, materials science has emerged as an essential tool for the
design process at least 1.2 times per week throughout the term of the project.IntroductionFreshman engineering design coursework, now widely termed “Cornerstone” experiences, beganwide adoption in the 1990’s and into the new millennium through the National ScienceFoundation’s eight Engineering Education Coalitions, among other efforts. These first-year Page 25.1141.2engineering design laboratories serve to complement the already established seniorundergraduate level, or “Capstone” design experiences widely adopted in the 1980’s atengineering colleges across the United States. The combination of the Cornerstone and Capstonecoursework for beginning
processes hasbeen identified as one of the major competency gaps in engineering & technology education.Models such as Learning Factory and Manufacturing Integrated Learning Laboratory (MILL) aredesigned to improve students’ learning through hands-on experiences. The MILL model,developed by the Wayne State University, focuses on integrated learning. The core of the MILLconcept is the use of projects spanning multiple courses to help students gain hands‐onexperiences in design and manufacturing. It involves the coordination of realistic hands-onactivities in targeted courses around the unifying theme of designing and fabricating a functionalproduct. These activities are suited for easy implementation in a typical design andmanufacturing teaching
Facilities Layout course wasredeveloped to incorporate the use of the software. The newly designed course is currently beingtaught, so the paper will also discuss the students’ evaluations of the new software and theredeveloped course.IntroductionIn the mid-nineties, the Engineering Technology Department at the University of Dayton decidedto eliminate certain laboratory courses and integrate the laboratory exercises into the associatedlecture course. The Facilities Layout Design lecture/laboratory courses were the first courses toimplement this initiative. One of the reasons for implementing this initiative was the lowenrollment in the combination lecture/laboratory courses since the courses had to be taken as co
“Interactiveand Collaborative Learning model”. The course is conducted in a lab or studio like settings, thatintegrates both lecture and laboratory work in the same settings, with students working in teams.I. IntroductionIntegration of RF principles with that of embedded systems principles provide to the class rooman added interest and the content area that provides relevance to content of the subject area. Thefast changing field of radio frequency (RF) communication technology is one of the disciplinesstrongly emphasized within the electronics and computer engineering technology (ECET)programs. The approach taken by our institute is to integrate communication theory inconjunction with Embedded System classes. The material presented here is a link in
given paper glider glidethe longest distance possible?”, can be used to introduce the concept of aerodynamic drag andhence lead to various ways in which aerodynamic drag can be quantified through pressure andvelocity measurements. This challenge-question gives the instructor an opportunity to embed inthe minds of students the importance and the concepts of pressure and velocity measurements. Aseries of such challenge-questions were developed for the various chapters in the syllabus ofM&I.Several metrics were used to measure student learning including; homework, in-class-quizzes(both formative and summative), laboratory exercises, and midterm and final exams. The“average performance scores” of the students from two different semesters, one
Engineering Group in the Summer Bridge 2011Program designed and built an underwater ROV (remotely-operated vehicle) to performunderwater exploration of, for example, local ponds and lakes. The duration for the project wasfour weeks in July and the first part of the Fall semester. The students were given instruction in thebasic electrical and mechanical principles associated with the project, and introduced to a set ofcomponents that would be available in the completion of the project, through a sequence learningactivities that included lectures and laboratory exercises. Students were also given instruction onthe engineering design process paradigm. The separate elements of the course were integrated asthe students designed, constructed, tested, and
MEPdrawings are then highlighted and the procedures for their analysis are presented in a systematicorder including the differentiating aspects of various systems. The laboratory portion of themodule concentrates on performing quantity takeoff, digital or manual, where the results aretranslated into work scope sheets. The paper further explains the detailed scope identificationmethodology for each system and their integration into estimating course context.IntroductionConstruction science and management graduates are expected to work in a dynamic workenvironment performing various tasks including planning, estimating, scheduling, and managingthe construction process. The graduates are also expected to be familiar with work scopes for allconstruction
? Page 25.1475.3These were the questions being asked in spring of 2011 when it was found thatthree senior level students, acting as a team, turned in reports that were not theirown work. After consultation with all involved it was learned that the three hadelectronically stolen the documents from someone previously enrolled in theclass. The class, an upper level laboratory, is a one-credit laboratory. The studentswork in the first portion of the class was not in question but later assignmentswere plagiarized. All three students were given a failing grade in the class; eachhad just one semester until graduation. The one credit course is only offered in thespring semester meaning the students would have to put off graduation one termto repeat the
. Page 25.917.1 c American Society for Engineering Education, 2012 Mathematical Modeling and Simulation using LabVIEW and LabVIEW MathScriptAbstractThere are numerous uses of simulation, starting from simulation of simple electric circuits tocomplex tasks such as electromagnetic fields, heat transfer through materials, networking,computer circuits, game programming, electron flow in semiconductors, or beam loading withthe ultimate objective of providing illustrations of concepts that are not easily visualized anddifficult to understand. Simulators are also used as an adjunct to and, in some cases such asdistance learning courses, as a substitute for actual laboratory experiments
Process.” This introduces the students to the machine shop environment and hands-on engineering. Page 25.1416.1 c American Society for Engineering Education, 2012 Using a pair of iPods to Measure Angle of Twist in a Torsion ExperimentIntroductionEvery mechanical engineering undergraduate student at our university must take a sophomorelevel one quarter-credit hour course titled “Mechanics of Materials Lab”. A four quarter-credithour Mechanics of Materials course is a co-requisite to this laboratory course. One of the fiveexperiments in the laboratory course focuses on the study of elastic and plastic