career paths, while supporting the advancement of the both CETs and CEProfessionals (CEPs) and possibly influence salary scales. A TBoK will also distinguish CETsfrom technicians working in the civil engineering field. Table 112 includes grade descriptions forCEPs, CETs, and civil engineering technicians based on existing descriptions published byASCE and the National Institute for Certification Engineering Technologies (NICET)14. Bydistinguishing CETs, a cohort of similarly-minded career professionals can be identified, whichcould lead to the development of professional associations, common business practices, salaryscales, training of technical skills, and similar group dynamics that are characteristic of a groupof people working in the same
engineeringcourses if the proposal is funded. Infrastructure topics have grown in prominence in engineeringprograms as evidenced by an NSF to Clemson University for the establishment of a master ofscience program in Sustainable and Resilient Infrastructure (8) and the Sustainable and ResilientInfrastructures Program launched in 2012 at Illinois University (9). If asked over dinner or at the water cooler, a civil engineer is very likely to say,“Civilengineers have been building infrastructure for 2,000 years.” Even though this is true, the use,understanding, and interest in all things infrastructure has grown in the mind of the public in thepast ten years to the point that is a common element of public and private discourse. Academic,professional, and
Paper ID #6288Using Innovative Topics to Attract Future Engineers: Liquefaction and Sus-tainability Modules for Engineering CampDr. Jeffrey C. Evans P.E., Bucknell University Dr. Jeffrey Evans has been professor of Civil and Environmental Engineering at Bucknell University since 1985. Prior to entering academia he was at Woodward-Clyde Consultants (now URS) and in the U.S. Army Corps of Engineers (Reserves). He has been a visiting academic at the University of Nottingham and the University of Cambridge where he was an Overseas Fellow in Churchill College. He has a B.S. in Civil Engineering degrees from Clarkson University
, Mathematics, and Engineering Education, National Research Council (1996). From Analysisto Action. National Academy Press, Washington, D.C.9 Bransford, J. D., Brown, A. L., and Cocking, R. L., (1999), How People Learn: Brain, Mind, Experience, andSchool, National Academy Press, Washington, D.C.10 Committee on Undergraduate Science Education, (1999) Transforming Undergraduate Education in Science,Mathematics, Engineering, and Technology, Center for Science, Mathematics, and Engineering Education, NationalResearch Council.11 Kalabon, Amy E., Loescher, Eric S., Sommerville, Alice E., and Delatte, Norbert J. (2013), “Rise and Fall of theOhio and Erie Canal,” accepted for publication by the ASCE Journal of Professional Issues in EngineeringEducation and
results also rose with the incorporation of the Bridge Houselaboratory. Not only did student learning of key concepts in mechanical vibrations improve as aresult of the forced vibration testing, a healthy skepticism for computational model results wasforged in the students’ minds as well.References1. Okamura A.M. Feeling is Believing: Using a Force-Feedback Joystick to Teach Dynamic Systems. American Society for Engineering Education (ASEE) Journal of Engineering Education, 92(3), 2002.2. McDaniel, C.C., Archer, G. C. “Full-scale, Real-time Building Dynamics Laboratory.” 9th U.S. National and 10th Canadian Conference on Earthquake Engineering, Earthquake Engineering Research Institute, 2010.3. McDaniel, C.C., Archer, G. C
factors for attempting to mitigate the problem. Hearing from outside speakers helps to create an atmosphere of “reality” in students’ minds with respect to the project, and also is a good chance for students to learn more about the challenges faced in the ‘real world’ of engineering practice. The question that students sometimes ask, “is this really important?” is readily banished when an outside authority explains that sewage flowing into residential basements is the side-effect of undersized, failing combined sewers. 2. Review of available data. The sponsoring agency may have paper maps, GIS data, past studies, master plans, and/or reports for the subject area, and other information that can
skills, developabilities towards scientific inquiry and engineering design, and through these processes, refinetheir epistemological beliefs about engineering.7 Designing laboratory experiments that can meetall of these end results can be challenging and faculty often simply establish course goals asopposed to student learning objectives.8 With this in mind, this paper was put together todemonstrate a variety of ways in which inquiry-based experimentation can be implementedwithin different civil engineering laboratory courses and to provide ideas for other programsseeking the same efforts.There are numerous examples within the literature of efforts to improve the undergraduateengineering lab environment and generate more meaningful educational
experience.The paper summarizes both the advantages and disadvantages of the classroom flip from theinstructor’s perspective.IntroductionThe current challenge facing engineering educators goes well beyond conveying technicalinformation core to the discipline. While information transfer remains a part of the task, theneed to develop creative and innovative thinkers ready to engage in the challenging professionalmarketplace evolving due to “globalization, sustainability requirements, emerging technologies,and increased complexity”1 is paramount.Instructors must then consider the most effective classroom approach not only to transmittechnical subject matter, but also to foster creative and inquisitive minds that can somedayresearch complex problems and
Paper ID #6233Competition Based Learning in the ClassroomDr. Chris Carroll, University of Louisiana, Lafayette Dr. Carroll is an Assistant Professor in the Department of Civil Engineering at the University of Louisiana at Lafayette. His primary area of expertise is in reinforced and prestressed concrete. He also has an interest in engineering education at both the college and K-12 levels. Dr. Carroll serves as a voting member on ACI Committee S802 - Teaching Methods and Educational Materials and is a consulting member to the ASCE Pre-College Outreach Committee. He is also actively involved with engineering outreach at
Professorship for Effective Education in STEM for funding this research.References1. Friedman, T. L. (2007). The Power of Green. New York Times Magazine.2. Allen, D., C. Murphy, et al. (2006). "Sustainable engineering: a model for engineering education in the twenty- first century?" Clean Technologies and Environmental Policy 8(2): 70-71.3. Fox, M. A. and N. Hackerman (2003). "Evaluating and Improving Undergraduate Teaching in Science, Technology, Engineering, and Mathematics (Book)." Mathematics Teacher 96(8): 604-604.4. Donovan, S. and J. Bransford (2005). How Students Learn: History, Mathematics, and Science in the Classroom, {National Academies Press}.5. Bransford, J. D., A. L. Brown, et al. (2006). "How People Learn Brain, Mind
are only a few of the many groups that havedevoted an enormous amount of time to bringing communication into the minds of individuals Page 23.142.2who many times relegated writing and speaking to other majors. These efforts have opened up awide range of studies that have pinpointed the need to address communication issues outside ofthe English classroom.Instead of simply complaining about the lack of communication skill demonstrated by engineers,it is important that interested parties in engineering departments investigate the actualdeficiencies and concerns of those affected. These parties are comprised of students, faculty, andemployers
Paper ID #6826Development of a Framework for the Online Portaion of a Hybrid Engineer-ing CourseDr. Natalya A. Koehler, Iowa State University Dr. Natalya A. Koehler has a Ph.D. in Curriculum and Instructional Technology and Human Computer In- teraction. Dr. Koehler is currently the post-doctoral research associate in Iowa State University’s College of Engineering-Department of Civil, Construction and Environmental Engineering.Dr. Charles T. Jahren P.E., Iowa State University Dr. Charles T. Jahren is the W. A. Klinger teaching professor and the assistant chair for Construction Engineering in the Department of Civil