useLabVIEW as the computing platform for data acquisition. For the majority of the experiments inthe haptic paddle series, real-time computing is not required, and therefore a standard desktop PCwith a DAQ card is sufficient. Second, the PXI systems offer a versatile platform for use inother courses, in capstone projects, and in research. Therefore, it is felt that this investmentoffers additional capabilities to the department beyond education in this single course, and suchbenefits offset the cost. (a) (b)Figure 5. LabVIEW graphical programming environment for sensor calibration experiment. (a)Front panel for sensor calibration experiment (b) Wire diagram3.2. Computing softwareAn
are developed. The curriculumstresses analytical and communication skills, with particular emphasis placed on engineeringdesign throughout the curriculum. A capstone design experience in the senior year provides theopportunity to integrate design, analytical, and problem solving skills along with communicationskills in a team environment which emulates aerospace engineering practice.The mission1 of this Aerospace Engineering Department is accomplished by the following Page 11.1118.2learning objectives:1. Provide a strong foundation in the fundamentals of mathematics, basic physical sciences, andengineering sciences.2. Develop analytical and
penetration in the workplace of our graduates. In a biennialsurvey of recent engineering graduates from Penn State reported below, we have found distinctlymodest levels of importance in the respondents’ work assigned to “Importance of Working on anInternational Project.” Although this importance rating has been creeping up since the firstsurvey of 1993 graduates, it is still below a 3 on a 5 point scale. Conversely, the respondentsrated study abroad experiences highly (3.5 to 4.5) even if they did not have one, and most didnot. So those surveyed have very positive attitudes towards engagement with the rest of theworld, but they are not yet rating its significance to their work very highly. Both these findingswould seem to challenge the view that our
Page 11.557.12 Professional Engineer, The Institution of Engineers, Australia.5. Mann, L.M.W. and Radcliffe, D. 2003, 'Using a Tailored Systems Engineering Process within Capstone Design Projects to Develop Program Outcomes in Students', paper presented to ASEE/IEEE Frontiers in Education Conference, Boulder, CO.6. Noor, M.J.M.M., et al. 2002, 'A New Engineering Education Model for Malaysia', International journal of engineering education., vol. 18, no. 1, pp. 8-16.7. Noor, M.J.M.M., et al. 2005, 'Developing A Malaysian Outcome-Based Engineering Education Model', paper presented to The 4th Global Colloquium on Engineering Education GCEE 2005, Sydney, Australia, 26. - 29. Sept.8. Walther, J., Mann, L
polymers and semiconductors. He has co-developed a Materials Concept Inventory for assessing fundamental knowledge of students in introductory materials engineering classes. Most recently, he has been working on Project Pathways, an NSF supported Math Science Partnership, in developing modules for a courses on Connecting Mathematics with Physics and Chemistry and also a course on Engineering Capstone DesignChell Roberts, Arizona State University Chell A. Roberts is an associate professor of industrial engineering. He received his Ph.D. in Industrial Engineering and Operations Research from Virginia Tech in 1991. He has a MS in Industrial Engineering and a BA in Mathematics from the University
capstone experiences [69-70], specific components in courseworkdedicated to professionalism [71-72], topical seminars [73], as well as integration throughout theentire curriculum [74-76]. Ultimately, the inclusion of biorefinery concepts in undergraduateengineering education will be dependent upon individual faculty interest and implementation,and will be primarily influenced by the creativity of the instructor.ConclusionsThis paper has been intended to introduce engineering educators to the emerging field ofbiorefining. Essential definitions and concepts have been discussed, as have the relevance toengineering education and curriculum infusion techniques. Although it is not completelycomprehensive in nature, many references have been included, so
much more cost-effective than hiring high-priced outsideconsulting firms to develop programs, an ironic side effect of the mandated ethics andcompliance provision.Educational AppropriatenessIndustrial ethics games can be a boon to the classroom, for not only do they reinforce the notionwith students that business and industry care about ethics (indeed, now they are required to careabout ethics!), but the games offer insights into organizational structure, which, for mosttraditional-aged college students, is truly new information.As an eight-year veteran of using “The Ethics Challenge” in a variety of classes, including a civilengineering senior-level capstone design project, I can say with certainty that this game is adelight in the classroom
to favor some parts of their brain more than other parts in learning.Indeed, Kolb has devised a learning-styles inventory (LSI), which can determine the test-taker’spreferred learning style.1,23 Theoretically, this preference reflects something about the way inwhich a student would like to learn, but does not limit learning to only one part of the cycle.With this information in hand, it may be possible to determine why some students get excited byand excel at certain aspects of a project, whereas other aspects of the same project seem boringor too difficult. Since effective learning requires the whole brain,18 one goal of InnoWorks is tohelp students develop those parts of the learning cycle that they are less inclined to use.It can be a
projects provide this in a significant way, but a capstone course provides onlyone experience with a particular project. It is valuable to introduce the idea in smaller ways,when possible. Reciprocating engines provide a good vehicle for tying together manyengineering concepts. All students are familiar, at least as users, with piston engines. Theirpracticality is therefore obvious. Thermodynamics, heat transfer, combustion, fluid mechanics,mechanism design, material science, strength of materials, and electrical circuits are all needed toproduce an operating engine. Seeing this connection directly can provide motivation for study ofthe individual subjects, and a realization that required courses are not completely unrelated.Goals and Integration