Now showing items 1089-1108 of 2364

    • Kumar, A. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1983)
      The largest single area for industrial energy conservation is in the improvement of combustion efficiencies for heaters and boilers. A number of methods can be employed to recover heat. The most common are by use of ...
    • Kumar, A. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1982)
      The largest single area for industrial energy conservation is in the improvement of combustion efficiencies for heaters and boilers. A number of methods can be employed to recover heat. The most common are by use of ...
    • Kumar, A. (Energy Systems Laboratory (http://esl.tamu.edu), 1985-05)
      The largest single area for industrial energy conservation is in the improvement of combustion efficiencies for heaters and boilers. A number of methods can be employed to recover heat. The most common are by use of ...
    • Kumar, A. (Energy Systems Laboratory (http://esl.tamu.edu), 1986-06)
      The largest single area for industrial energy conservation is in the improvement of combustion efficiencies for heaters and boilers. A number of methods can be employed to recover heat. The most common are by use of ...
    • Pasquinelli, D. M.; Burns, E. D. (Energy Systems Laboratory (http://esl.tamu.edu), 1985-05)
      The design and integration of the heat recovery section, which includes the steam generation, auxiliary firing, and steam turbine modules, is critical to the overall performance and economics of cogeneration, systems. In ...
    • Darby, D. F. (Energy Systems Laboratory (http://esl.eslwin.tamu.edu), 1987-09)
      In 1980-81, the John Deere Foundry at East Moline underwent an expansion program that increased its capacity by over 60%. This expansion was centered around the melt department where the four existing 13MVA electric arc ...
    • Wen, H.; Lou, S. C. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1981)
      This paper deals with heat recovery from pressurized entrained and fixed bed coal gasifiers for steam generation. High temperature waste heat, from slagging entrained flow coal gasifier, can be recovered effectively in a ...
    • Underwood, O. W. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1981)
      More opportunity exists today for the successful implementation of resource recovery projects than at any other period. However, that doesn't mean that energy/resource recovery exists for everyone. You must have a favorable ...
    • Becker, F. E.; Zakak, A. I. (Energy Systems Laboratory (http://esl.tamu.edu), 1986-06)
      A significant reduction in distillation tower energy requirements can be achieved by mechanical vapor recompression. Three design approaches for heating a distillation tower reboiler by mechanical vapor recompression ...
    • Shingledecker, R. B. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1982)
      Department of Energy figures reveal that in 1979 the forging and stamping operations were the primary consumers of energy (27%) within the 'Fabricated Metals Products Industry' (SIC 34). Industrial furnaces utilized by the ...
    • Ganapathy, V. (Energy Systems Laboratory (http://esl.eslwin.tamu.edu), 1993-03)
      The paper discusses the applications of Heat Recovery Steam Generator Simulation. Consultants, plant engineers and plant developers can evaluate the steam side performance of HRSGs and arrive at the optimum system which ...
    • Singh, K. P. (Energy Systems Laboratory (http://esl.tamu.edu), 1979)
      The concept of a "Divided-flow" heat exchanger is generalized by locating the shell inlet (or outlet) nozzle off-center such that the two shell sub-streams are unequal and traverse unequal flow paths. The governing equations ...
    • Bergles, A. E.; Webb, R. L. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1984)
      This paper reviews current activity in the field of enhanced heat transfer, with the aim of illustrating the technology and typical applications. Guidelines for application of enhanced surfaces are given, and practical ...
    • Fricke, H. D.; Webster, D. J.; McIlroy, K.; Bartz, J. A. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1981)
      This paper describes an EPRI-funded experimental evaluation of advanced air-cooled ammonia condensers for a phase. Change dry/wet cooling system for power plants. Two condenser surfaces with different air-side augmentation ...
    • Lefevre, M. R. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1984)
      Almost every industrial process needs some form of cooling. Water is still the most extensively used fluid for cooling, but the days when plenty of it was available are gone forever. Water conservation is currently achieved ...
    • Kirol, L. D. (Energy Systems Laboratory (http://esl.tamu.edu), 1986-06)
      Chemical heat pumps utilize working fluids which undergo reversible chemical changes. Mechanically driven reactive heat pump cycles or, alternatively, heat driven heat pumps in which either heat engine or heat pump ...
    • Schilling, R. E. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 1984)
      This paper discusses basic considerations in designing a heat tracing system using either team or electrical tracing. Four basic reasons to heat trace are dealt with: water freeze protection, chemical freeze protection, ...
    • Bloomquist, R. G.; O'Brien, R. G. (Energy Systems Laboratory (http://esl.tamu.edu), 2000-04)
      HEATMAP©CHP is a software tool that can provide a comprehensive simulation of proposed and existing combined heat and power (CHP) plant and system applications, The software model provides a fully integrated analysis of ...
    • Williams, J.; Beames, B. (Energy Systems Laboratory (http://esl.tamu.edu), 1995-04)
      In 1993, industrial and large commercial (C&I) customers accounted for over 16.2 billions of kilowatt-hours sales for the Tennessee Valley Authority (TVA) and provided $472 millions in total annual revenues. The ...
    • Clark, S. (Energy Systems Laboratory (http://esl.tamu.edu); Texas A&M University (http://www.tamu.edu), 2015)