Literatura académica sobre el tema "Cincinnati Industrial Exposition"

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Artículos de revistas sobre el tema "Cincinnati Industrial Exposition"

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Krupar, Jason. "Preserving the Innovative Legacy of John P. Parker". Public Historian 38, n.º 1 (1 de febrero de 2016): 48–68. http://dx.doi.org/10.1525/tph.2016.38.1.48.

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John P. Parker played a prominent role in the Underground Railroad network that operated in southwest Ohio. Additionally, Parker held three known patents and displayed his products at regional/national industrial expositions. Parker’s engineering skills and business acumen, however, have largely been overlooked. A coalition comprised of faculty and students from the University of Cincinnati, members of the John P. Parker Historical Society, and corporate donors formed in 2006 to preserve the industrial legacy of this African American entrepreneur. This project demonstrates some of the benefits and pitfalls of such complicated undertakings.
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Libros sobre el tema "Cincinnati Industrial Exposition"

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Conference, Society for Human Resource Management (U S. ). National. 1991 perspectives in human resources: Cincinnati, Society for Human Resouce Management National Conference and Exposition, June 23-26, 1991 : 43rd National Conference proceedings. Alexandria, Va. (606 N. Washington St., Alexandria 22314): The Society, 1991.

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Ontario. Commission, Centennial Exposition of the Ohio Valley and Central States, Cincinnati, Ohio (1888) y Centennial Exposition of the Ohio Valley and Central States (1888 : Cincinnati, Ohio), eds. Ontario's exhibit at the Centennial Exposition of the Ohio Valley and Central States: Report of Hon. Timothy W. Anglin. [Toronto?: s.n.], 1993.

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Catalogue of Paintings, Engravings, Sculpture and Household Art in the Seventh Cincinnati Industrial Exposition 1879. Creative Media Partners, LLC, 2018.

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Anonyma. Catalogue of Paintings, Engravings, Sculpture and Household Art in the Seventh Cincinnati Industrial Exposition, 1879. Franklin Classics Trade Press, 2018.

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Beowulf. Catalogue of Paintings, Engravings, Sculpture and Household Art in the Seventh Cincinnati Industrial Exposition 1879. Creative Media Partners, LLC, 2022.

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Exhibition of Paintings, Engravings, Drawing, Aquarelles, and Works of Household Art in the Cincinnati Industrial Exposition. Creative Media Partners, LLC, 2021.

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Exposition, Cincinnati (Ohio) Industrial. Exhibition Of Paintings, Engravings, Drawings, Aquarelles, And Works Of Household Art : In The Cincinnati Industrial Exposition: 1874. Franklin Classics, 2018.

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Exposit, Cincinnati (Ohio) Industrial. Exhibition of Paintings, Engravings, Drawings, Aquarelles, and Works of Household Art : In the Cincinnati Industrial Exposition: 1874. Creative Media Partners, LLC, 2022.

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Exposition, Cincinnati (Ohio) Industrial. Exhibition of Paintings, Engravings, Drawings, Aquarelles, and Works of Household Art : In the Cincinnati Industrial Exposition: 1874. Creative Media Partners, LLC, 2018.

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Exposition, Cincinnati (Ohio) Industrial. Exhibition of Paintings, Engravings, Drawings, Aquarelles, and Works of Household Art : In the Cincinnati Industrial Exposition: 1874. Franklin Classics Trade Press, 2018.

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Actas de conferencias sobre el tema "Cincinnati Industrial Exposition"

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Dave, Janak y Janet Dong. "An Industry-University Collaboration Experience on a Senior Project". En ASME 2010 International Mechanical Engineering Congress and Exposition. ASMEDC, 2010. http://dx.doi.org/10.1115/imece2010-37456.

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Students working toward a baccalaureate degree in Mechanical/Electrical Engineering Technology at the University of Cincinnati are required to complete a “Design, Build, and Test” senior capstone design project. Some of these capstone design projects are done in collaboration with industries to meet their needs. One of the projects during 2009–2010 academic year is to meet the needs of the packaging industry. The student team will design and recommend a specialized End of Arm Tool for palletizing applications. They will build a scaled model and the industrial sponsor may build the full product at the later date. A team of three students from Mechanical Engineering Technology at the University of Cincinnati are working on this project, which gives them an opportunity to showcase the knowledge and skills learned in their coursework and during the co-op (cooperative) experience, as well as to develop the additional skills needed to be successful in a team oriented business world. This team is working on a technically complex project from concept-to-design, build, test, and then to have the possibility of their product being used in commercial applications. This paper will give a description of the MET senior capstone design course sequence at University of Cincinnati and the list of pre-requisites for the capstone design sequence. It will also describe the design of 2009–2010 End of Arm Tool (EOAT) project and the plans for building a scaled model. Included too, is a description of how Industry-University Collaboration can improve student learning.
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Boronkay, Thomas G. y Janak Dave. "Design-Build-Test Senior Design Project". En ASME 2001 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2001. http://dx.doi.org/10.1115/imece2001/met-25503.

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Abstract Every student in the Mechanical Engineering Technology Department must complete a Senior Capstone Design Project course sequence as a requirement for the partial fulfillment of the Bachelor of Science in Mechanical Engineering Technology degree. Mechanical Engineering Technology students at the University of Cincinnati must design, build, and test their product for the satisfactory completion of the Senior Design Project course sequence. At many institutions the capstone projects do not include the build and test components. This paper gives a short description of the Senior Design course sequence, the list of pre-requisite design courses, the design process used by the students to complete their projects. It addresses issues, such as, team versus individual projects, industrial versus personal projects, etc. It also describes typical projects, two of which are being used in industry with minor modifications.
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Smith, Jeffrey, John Scheibel, Daniel Classen, Scott Paschke, Shane Elbel, Kirk Fick y Doug Carlson. "Thermal Barrier Coating Validation Testing for Industrial Gas Turbine Combustion Hardware". En ASME Turbo Expo 2014: Turbine Technical Conference and Exposition. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/gt2014-26359.

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As gas turbine (GT) temperatures have increased, thermal barrier coatings (TBCs) have become a critically important element in hot section component durability. Ceramic thermal barrier coatings permit significantly increased gas temperatures, reduced cooling requirements, and improve engine fuel efficiency and reliability. TBCs are in use throughout the GT hot section with turbine blades, vanes, and combustion hardware, now being designed with TBCs or upgraded with TBCs during component refurbishment1, 2. While the industry standard 6–9 Wt. % Yttria Stabilized Zirconia (7YSZ) has been the preferred ceramic composition for the past 30+ years, efforts have been underway to develop improved TBCs3, 4. The principal development goals have been to lower thermal conductivity, increase the sintering resistance and have a more stable crystalline phase structure allowing use above 1200° C (2192° F)5, 6. NASA has developed a series of advanced low conductivity, phase stable and sinter resistant TBC coatings utilizing multiple rare earth dopant oxides7. One of the coating systems NASA developed is based on Ytterbia, Gadolinia and Yttria additions to ZrO2 (YbGd-YSZ). This advanced low conductivity (low k) TBC is designed specifically for combustion hardware applications. In addition to lower thermal conductivity than 7YSZ, it has demonstrated thermal stability and sintering resistance to 1650° C (3000° F). The Electric Power Research Institute (EPRI) and Cincinnati Thermal Spray (CTS) have teamed together in a joint program to commercialize the YbGd-YSZ TBC coating system for GT combustion hardware. The program consists of validation of coating properties, establishment of production coating specifications and demonstration of coating performance through component engine testing of the YbGd-YSZ TBC coating system. Among the critical to quality coating characteristics that have been established are a) coating microstructure b) TBC tensile bond strength c) erosion resistance d) thermal conductivity and sintering resistance and e) thermal cycle performance. This paper will discuss the coating property validation results comparing the YbGd-YSZ TBC to baseline production combustor coatings and the status of coating commercialization efforts currently underway.
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