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Evaluation of fats and oils & their derivatives as potential phase change materials (PCM) for thermal energy storage /Lopes, Shailesh M. January 2003 (has links)
Thesis (M.S.)--University of Missouri-Columbia, 2003. / Typescript. Includes bibliographical references. Also available on the Internet.
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Evaluation of fats and oils & their derivatives as potential phase change materials (PCM) for thermal energy storageLopes, Shailesh M. January 2003 (has links)
Thesis (M.S.)--University of Missouri-Columbia, 2003. / Typescript. Includes bibliographical references. Also available on the Internet.
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Condensation heat transfer in microchannel /Siu, Billy Chin Pang. January 2004 (has links)
Thesis (M. Phil.)--Hong Kong University of Science and Technology, 2004. / Includes bibliographical references (leaves 43-46). Also available in electronic version. Access restricted to campus users.
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Analysis of heat and mass transfer between air and falling film desiccant for different flow configurations in the presense [i.e. presence] of ultrafine particlesAli, Ahmad A., January 2003 (has links)
Thesis (Ph. D.)--Ohio State University, 2003. / Title from first page of PDF file. Document formatted into pages; contains xix, 130 p.; also includes graphics. Includes abstract and vita. Advisor: K. Vafai, Dept. of Mechanical Engineering. Includes bibliographical references (p. 128-130).
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Analysis of a technique of measuring the thermal diffusivity of poor conductors /Ohlwiler, Robert William. January 1964 (has links)
Thesis (M.S.)--Ohio State University, 1964. / Available online via OhioLINK's ETD Center
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Heat conduction in polycrystalline metal films.Chung, Yip-wah. January 1973 (has links)
Thesis (M. Phil.)--University of Hong Kong, 1974. / 'Discussion of points raised in the oral examination' inserted: after p.73.
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Convection of magma in volcanic conduits as a degassing mechanism at active volcanoes /Witter, Jeffrey Bruce. January 2003 (has links)
Thesis (Ph. D.)--University of Washington, 2003. / Vita. Includes bibliographical references (leaves 235-250).
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Drain water heat recovery in a residential buildingGavilán del Amo, Asier, Alonso Lopez, Ana January 2015 (has links)
Numerous of energy saving measures have been carried out in the Swedishhousing stock since the energy crisis in the 70’s. Additionally, there have been manylow-energy housing projects. However, so far few of these have been followed up aftersome years in operation concerning the energy use. That the energy use stays on a lowlevel is important from a sustainable perspective. The objectives of this study are find a system capable of reduce energy demandand minimize the environmental impact, make the minimum investment with themaximum results and maintain the actual infrastructure of the building. This report looks into the potential for saving energy and money with greywastewater. This potential depends on both the quantity available and whether thequality fits the requirement of the heating load. To recover heat from waste water inresidential buildings is hard to achieve in quality because of its low temperature range.Nevertheless, efforts to recycle this waste energy could result in significant energysavings. To implement this system the method used is to gather all the information aboutthis system, compare all the options available and calculate how much energy can besaved and how much time is the payback. The building studied is on Maskinisten Brynäs in Gävle with 23 apartments onfive different floors and a total living area of 400 m2 in each floor. In the case building used in this report the 60% of the total water used is hotwater. Installing a heat recovery system can be saved up to 23% of the energy used forheating water. This energy can be used for the preheating of the hot water. In this report is given two different solutions to save energy with this systems,the first one is to use a heat exchanger only in the drain of the showers saving up to7.045 MWh or using a centralized heat exchanger saving up to 23.16 MWh. After analysing the results the best option is to use the centralized heatexchanger system, it can be saved more energy and the total investment is lower thanusing a heat exchanger in each shower.
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The influence of frosting on the optimum design of finned-tube evaporatorsAl-Sahaf, Jamal A. January 1989 (has links)
No description available.
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Heat and mass transfer characteristics of a wiped film evaporatorLopez-Toledo, Jacinto 28 August 2008 (has links)
Not available / text
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