Paper ID #30635A Project Based Online Experimentation CourseProf. Ahmet Can Sabuncu, Worcester Polytechnic Institute Dr. Sabuncu holds a Ph. D. in Aerospace Engineering from Old Dominion University. Dr. Sabuncu’s professional interests circles thermo-fluids engineering and microfluidic technology. His teaching and research interests span from engineering design to in vitro diagnostics where he uses microfluidic tech- nology to build cost-effective devices for early diagnosis of diseases.Prof. John M Sullivan Jr, Worcester Polytechnic Institute Professor John Sullivan joined WPI in 1987. He has had continuous external
logic elements.While many engineering programs have already implemented PLC courses in their curricula,instruction remains lacking in many others. Since engineering students with some PLC trainingmay have better career opportunities than those who do not, this may represent an area forimprovement for some programs.Introduction to Projects and Tools is a freshman level course offered to electrical engineeringstudents at [XXX University]. This one-credit laboratory course serves to provide students withhands-on experience with a variety of projects such as the implementation of 555 timers, basiclogic circuits, and measurements of electrical quantities.A two-week PLC module was developed and implemented in the Introduction to Projects andTools
advanced, the field of mechatronics has expandedto include mechanical engineering, electronics, computer engineering, and controls engineering.This multidisciplinary nature of mechatronics makes it an ideal basis from which to constructnew capabilities and knowledge. Within the mechatronics course at The Citadel, manymechanical engineering students comprehend some basics of the mechatronic disciplines, butnow must integrate these areas while implementing new devices for the labs. The suggestedapproach in the mechatronics course is a progressive project that builds on the previous iteration.Students can choose their own mechatronics application project. This paper briefly describesseveral hands-on labs that progress in difficulty. Students are
. Cali - Colombia AbstractThis work presents a description of activities and results achieved from the implementation of a"hands-on" training program in the field of manufacturing of fiber reinforced composite materialsfor aerospace applications within the framework of the Fulbright Specialist program. The hostinstitution for the program was the Universidad del Valle in Cali, Colombia and the Specialistwas Dr. Ronald Sterkenburg from Purdue University. The implemented process to fulfill thedefined objectives is shown as well as some of the work developed after the specialist visit,which is related to what was called project AVE. Finally, some general conclusions were drawnalong with the lessons learned
drastically affect filtration speed. Considering a model with a larger height could help tooptimize the filtration process and improve efficiency of the system. A taller frustum with amore gradual taper and a smaller radius may also result in improved hydraulic head which inturn can lead to improved flow rates.Student InvolvementBeginning in the undergraduate Fluid Mechanics course, the five students dedicated to work onthis project have gained new and improved skills for designing and analysing an experimentwith CWFs. The prerequisites courses needed for Fluid Mechanics included: Calculus 1,Calculus 2, Physics 1, Heat and Thermodynamics, and Applied Thermodynamics. Some of theskills acquired include 3D modeling and simulations through ANSYS Fluent
(UGA) College of Engineering Capstone Syllabus, acapstone is a “two-semester sequence course that is project based and focused on problemframing, stakeholder analysis, concept generation, and project management skills.” The goal “isto review concepts in the design process and tools in design methodology with a focus onengineering systems development cycle. Students working in multidisciplinary teams areassigned to design problems that are open-ended, requiring creativity and involving iterativesolutions.” It continues to state that “Design systems will work independently with a facultymentor and adopts the design that can be rapid prototyped or manufactured and evaluated againstthe design requirements. Student teams present their design
://belabs.seas.upenn.edu) in the Department of Bioengineering at the University of Pennsylvania. American c Society for Engineering Education, 2020 Under the Hood of a Bio-MakerSpace: Automating Lab OperationsIntroduction Can academic MakerSpaces and open educational laboratories, serving both structuredclasses as well as general project work, be efficiently staffed, managed, and operated?Traditionally, these spaces are regularly staffed by part-time student employees with regularturn-over. In addition, such lab spaces must quickly switch between different lab courses duringthe day, as well as open lab use, in a schedule that may vary from day to day. These constantchanges may
motions.The implemented prototype has the ability to move in 4 axis directions with 4 servo motors. Thevoltage across variable resistors is not completely linear rather a noisy one. Capacitors are used acrosseach resistor to filter out this noise, as shown in figure 1. This voltage represents the control positionand is fed into four ADC channels of Arduino to get corresponding digital values. The Arduino UNOADC has a resolution of 10 bit, means it maps input voltages between 0 and 5V into digital valuesbetween 0 and 1023; in other words, 4.9mV per unit. This project is very helpful for beginners whowant to make a robotic arm with low cost.Objectives Create artificial arms for different inhuman situation Motivate new students in robot
, group learning, etc. However, one type of PL, group-to-group peer learning(GGPL) is not addressed in literature. GGPL can be defined as a learning method where two ormore peer groups interact to increase the knowledge of all members. Here, the scope of the workis limited to only classmates working in pairs on their lab design projects and receiving help onlyfrom other classmate pairs. This pair-to-pair peer learning (PPPL) represents the simplest form ofGGPL where group size includes only two members per group.This paper mainly addresses students’ experiences with a novel PPPL method as it is implementedin a lab setting during a lab design project encompassing two different engineering programs,mechatronics and industrial engineering. The lab
accomplish more than 40 various types of scientific and technological innovation projects, 6 of which won the first prize in China. Moreover, he won the first prize of the Beijing Teaching Achievement Award in China. In addition, he published 12 papers and obtained 6 invention patents.Dr. Xiaofeng Tang, The Ohio State University Xiaofeng Tang is an Assistant Professor of Practice in the Department of Engineering Education at the Ohio State University. He worked as a postdoctoral fellow in engineering ethics at Penn State University. He received his Ph.D. in Science and Technology Studies from Rensselaer Polytechnic Institute.Prof. Zhonglian Zhang, Beijing Institute of TechnologyProf. Hai Lin, BeiJing Institute of Technology
- DELOS Division – BYOE SessionSummaryThe development of Remotely Operated Vehicles used in ocean explorations has posed many challengesover the years [1]. The opportunity from past experiences at the Marine Advanced Technology Educationcompetitions inspired the student to create a small scale ROV(reduced price). The purpose is to educatestudents in learning the concepts of robotics. The robot will have a mixture of analog and digitalapplications. This project will help educate students on how robotics can apply in the marine and geospatialenvironments [2, 3]. Underwater robotics will show a different and challenging approach compared toconventional robotic systems. There is a great demand for technicians and engineers in the area of
taking lectures andphysical lab experiments. With the advance of virtual reality (VR) technologies in terms of bothsoftware and hardware, there is a need to advance the education with adopting advanced VRtechnologies. In this project, we present our latest results of developing new VR modules in AMcurriculum. Specifically, the developed VR modules for fusion deposition modeling and fatiguetesting will be presented. In the on-going research, students will be required to use the VR modulesin comparison with the physical lab experiments. The focus will be understanding the effectivenessof VR technology on engineering curriculum.1. IntroductionAt Indiana University – Purdue University Indianapolis (IUPUI), a strong focus on providingeducation and
) through activelearning than passive learning. Throughout our evolution, technology has been passed down bypupils imitating their mentors. This natural preference for learning is reflected in the genericlearning pyramid that was first proposed by National Teaching Laboratory Institute at theirBethel, Maine campus in the early 1960’s and the related work have been proposed by severalother researchers [31-34]. Though rightly criticized, the pyramid provides a measure of contentretention from lectures (5%), laboratory experiments (70%), and design projects (90%). Thisdisparity in content retention was recognized by the 5th century B.C Chinese proverb, “What Ihear, I forget. What I see, I remember. What I do, I understand.” ENDEAVOR harnesses
experimentationskills such as data acquisition and uncertainty analysis. In this class, students also write a singledetailed lab report on an experiment that undergoes an two-stage peer review process.. Both ofthe first two labs include a small group project that challenges students teams creativity to design,execute, and communicate their own experiments. For the final course, Mechanical EngineeringLab, students work in teams throughout the semester to design, execute, and write a full report onmore complex experiments.The new experiential lab sequence began in Spring 2019 with the first offering of the MechanicsLab. The succeeding sections of the paper specifically discuss the design of this course, highlight-ing a few specific modules and how they align
mechanical engineering in WPI.Prof. John M Sullivan Jr, Worcester Polytechnic Institute Professor John Sullivan joined WPI in 1987. He has had continuous external research funding from 1988 thru 2013. He has graduated (and supported) more than 100 MS and PhD graduate students. He has served as the ME Department Head and in 2012 was elected Secretary of the Faculty through 2015. Prof. Sullivan has always maintained a full teaching load. He strongly supports the WPI project-based undergraduate philosophy. c American Society for Engineering Education, 2020BYOE: Determining Pressure inside Thin Walled Vessels usingStrain MeasurementsABSTRACTThe objective of this Bring Your Own Experiment session is to
research interests include numerical heat transfer, fluids, and magnetohydrodynamic simulations and facilitating undergraduate students to engage in similar projects. He is also focused in the implementation of engineering freshman design experiences.Mr. Joshua Rudaitis, University of Florida Mr. Joshua Rudaitis is currently an undergraduate student at the University of Florida. He is pursuing a degree in Computer Engineering and is expected to graduate in December of 2020. He is performing undergraduate research at his University, focusing on Networking and Remote Systems. His main areas of professional interest within the field of Software Engineering include Embedded Systems, Networking, and Application Development
building blocks as a prerequisite for building agrasp of larger-scale system design issues.The authors actively seek collaborations on projects such as this. All of our designs are opensource, and we will provide full manufacturing and course materials.References[1] H. C. Powell and B. Hayt, “Developing a Low-voltage Microgrid for Experiments in Renewable Energy Distribution,” presented at the 2018 ASEE Annual Conference & Exposition, Jun. 2018, Accessed: Feb. 01, 2020. [Online]. Available: https://peer.asee.org/developing-a-low-voltage-microgrid-for-experiments-in-renewable- energy-distribution.[2] “Power Management.” https://university.ti.com/en/faculty/teaching-materials-and- classroom-resources/ti-based-teaching-kits-for
-survey” was conducted two months later followed bya “very distant post-survey” another seven months after that, to further re-examine knowledge,skills, and attitudes.Statistically significant differences were found between TrussVR© and the other groups (p < .01)for recognition and recall of truss types two months and nine months afterwards. Likewise, thevirtual lab experience was highly rated in most respects.1.0 IntroductionAbout two and a half years ago, the authors of this study had the opportunity to engage in somevirtual reality (VR) demonstrations. Emerging from that experience with a belief that part of thefuture of engineering education lay in the application of VR for teaching and learning, a softwaredevelopment project was
there was an LCT. It was a relationship between SFL and codetheory as it was first proposed by Basil Bernstein [15]. LCT represents a further development ofBernstein’s original code theory. A recent instance of collaboration between the LCT and SFL isthe DISKS (Disciplinary, Knowledge and Schooling) Project. The DISKs Project “was anationally-funded, three-year research study” located at the University of Sydney [4]. The aimswere to “analyze the bases of knowledge-building” across a range of secondary school subjectsand “develop pedagogical practices” that might better promote cumulative knowledge-building[4]. Indeed, the studies cited just above also represent examples of that relationship andcollaboration.So what is SFL exactly and why is
function. For example, the edX course on electrical circuits listsas learning objectives: designing and analyzing circuits; lumped circuit models and abstraction;construction of simple digital gates; and measurement of circuit variables [1]. This paper is abouta course designed to enable the novice learner to begin using foundational understanding todesign simple instrumentation circuits that can sense and measure physical phenomena that areconcrete to the novice learner, such as angle, weight, temperature, relative humidity, distance,and one’s own heartbeat, pulse, and blood pressure. After completing the modules, students aregiven an opportunity to design a final project involving sensing, measurement, andinstrumentation. As a first-semester
Paper ID #29040Perspectives and practices of undergraduate/graduate teaching assistantson writing pedagogical knowledge and lab report evaluation inengineering laboratory coursesDr. Dave Kim, Washington State University, Vancouver Dr. Dave (Dae-Wook) Kim is Associate Professor and Mechanical Engineering Program Coordinator in the School of Engineering and Computer Science at Washington State University Vancouver. He has been very active in pedagogical research and undergraduate research projects, and his research interests include writing transfer of engineering students and writing pedagogy in engineering lab courses. His