-University Unmanned Systems Capstone Design ProjectAbstractIn this paper we discuss the assessment methods for a senior capstone design project involvingteams from three geographically separated universities, as well as the challenges the studentsfaced and lessons learned. The project title was the Joint Cooperative Unmanned SystemsInitiative (JCUSI). Each team was tasked with developing an unmanned autonomous systemoperating in a different medium (air, water, and ground) to cooperatively work together tocomplete a mission of protecting a harbor. JCUSI is unique in that the customer funding theproject will most likely employ the students involved either as engineers implementing futureunmanned systems or as operators
Florida Atlantic University Boca Raton, FL 33431 Zhuang@fau.eduAbstractWe report on a multi-year project to use engineering capstone designs to aid elderly and personswith disabilities; and to enhance undergraduate engineering education through multidisciplinarycollaboration and hands-on experience. In their capstone project, students utilize and adaptavailable technologies to create devices to assist persons with disabilities from the users’perspective. To this end, at the first course of the Engineering Design sequence, students are firstreferred to healthcare facilities and local schools that host students with learning disabilities inorder to gather information
and electronic imaging. She is a member of ASEE, SWE, Tau Beta Pi and Eta Kappa Nu. Page 23.944.1 c American Society for Engineering Education, 2013 One Last Tool for Their Toolbox: Preparing Students for Capstone DesignIntroduction:In many electrical engineering programs, students are required to demonstrate the success oftheir capstone design project by building and testing a prototype. Depending on the nature andcomplexity of the design specifications, the final product may be a composite of analog anddigital, hardware and software, discrete
students who have very good GPA struggle during senior capstone design. This is duemainly to the lack of system-level integrating experience. When given a real-life project,students have challenges of linking it with what they have learned from different courses inprevious years. “It seems that all the course projects we completed previously in individualcourse have nothing to do with the senior design” said one student.One of the student outcomes evaluated by ABET for engineering programs accreditation is “anability to design a system, component, or process to meet desired needs…”1. Among the most-favored pedagogical models to help students attaining this ability are integrated curricula2,project-based learning (PBL), problem-based learning, and
. Page 23.469.1 c American Society for Engineering Education, 2013 Electric Vehicle Circuit and Electrical System Senior Lab ProjectAbstractAs part of a multidisciplinary team, electrical engineering students worked with computer andmechanical engineering students to create a small-scale electric vehicle. The major tasks of theteam were design and performance prediction; fabrication of the vehicle, control circuits, andcomputer data acquisition board; system integration and testing; racing the vehicles against otherteams; and comparing performance data to predictions. This paper will discuss the electricalengineering students’ design efforts for the project. The
are given table thatlists various costs such labor rates, use of the lab space, and an overhead rate. Thecreation of the budget is a pre-lab task. A post-lab task that is included in the lab report acost report. The cost report details the actual cost of performing the experiment andcomparing the actual costs with the predicted costs.The lecture-based courses all have at least one design project. Modifications were madeto the current design project to include the components that would typically be found in abusiness setting (for example, cost proposals). Students are required to bid on theproject. Students must submit a final report which includes the cost report – including ananalysis of the bid cost versus the actual cost. The professor
. Coast Guard Academy Received Ph.D. from University of Wyoming in 1986 and started his academic carrier at University of Wisconsin-Milwaukee (UWM) right after graduation. He was with UWM until recently and since August 2011 is a Professor of Electrical Engineering at U.S. Coast Guard Academy. Dr. Reza’s main research area is in signal and image processing. He has over ninety publications in refereed journals and conference proceedings. Page 23.1062.1 c American Society for Engineering Education, 2013 Collaborative Advising of Capstone: a Project in the Development of
that finding such an appropriate balancebetween depth and breadth of education, especially one with complementary aspects, is anongoing challenge. The balance point is not stagnant, but varies from time-to-time and place-to-place depending on societal needs and technological developments.The focus of this paper is to summarize our curricular changes, with their rationale, beginningwith the ones that apply to all of our School's curricula. The major changes include reinstituting acommon first-year of study to aid students in selecting a major, enhancing the capstone designsequence to encourage and facilitate more multi-disciplinary projects, and designating ninesemester hours of existing credits as "professional electives" that can be, for
studentoutcomes. The College of Engineering at Temple University has four academic departments,including the Department of Civil and Environmental Engineering (CEE) and a newly establishDepartment of Bioengineering (BE).The Director of the General Engineering degree program has the responsibility to insure allaspects of the Program including continuous improvement of the interdisciplinary curriculum.The Director is also the single interface between the Program and industry for co-operative workstudy assignments, internships, capstone design projects and professional employment. Providingan identified Director on point assures that the General Engineering degree maintains visibilityand creditability within the College.Faculty advisors from both ECE and ME
12:37 PM problem Wed, Oct Their standards should be put on the website of IEEE or other organizations so that26. 31, 2012 students could have access for their capstone projects. 10:42 AM Using ASTM 42 as a model. Educators are taking part in developing standards for Wed, Oct27. Additive Manufacturing and educational
then significant changes have been made to this course in order to make itmore enjoyable and effective in retaining students. Some of these changes include theestablishment of a departmental template used to prepare the materials that are distributed to thestudents, the inclusion of virtual instruments such as the NI myDAQ and Labview, and thereplacement of PSpice with NI Multisim and Ultiboard. The last two software utilities have madethe fabrication of PCBs easier for the students and faculty. Furthermore, the students are requiredto use the NI myDAQ in some of their laboratories and in the final project which some of themalso include the use of Labview. This paper will present the data collected as a part of the courseoffering over four
embedded hard core processors (available in the Virtex 5 board) or the downloadable soft core processors available to all boards to optimize the performance of the designed application.The skills gained from performing the above steps will enable students to: i) developprofessional capstone design projects and Master-level theses; ii) improve their researchcapabilities and their long-life learning skills; iii) enable student to design entire system (speechcoding, adaptive noise canceller, echo suppressor, etc.) from the built-in and designed blocks; iv)improve their marketability and enhance their professional careers.4. Adaptive Noise Cancellation systemIn adaptive noise cancellation, the adaptive filter is usually designed as a transversal
benefits accrue equally to students who have followed a full-time academic Page 23.576.11 program and those whose educational progress has been interrupted by jobs, family or transfers. The efficiency with which experimental competency can be applied later in unscripted applications such as capstone projects. The extent to which faculty and student-generated experiments can be openly distributed to act as a platform on which to build a customized practical learning experience. Can the appeal of Mobile Studio and Lab-in-a-box to students underrepresented in STEM education be scaled up? Does