Decentralized Energy Generation. Combined Heat & Power (CHP) and Organic Rankine Cycles (ORC).
Thermodynamic Availability Sources from Inertial Energy.
"THE HYDROSTATIC INERTIAL MIXING COOLING SYSTEM".
Part I. Application: Industrial gas turbines cooling. mini-Turbines. Shaft Power generators. Figure: 1 ) Illustrative interacting drawings. 2 ) Physical components arrangement. 3 ) Control Panel. Figure: 4 ) Centrifugal compressor train topologies. Figure: 5 ) Production strategy. Combined Heat and Power (CHP) processes. Product and Manufacturing Engineering. Projections: Technical. Financial.
Part II. Presentation: Figures. Photographs: 1 ) Test apparatus. Configuration. Introduction. 2 ) Phenomenological observations. Experimental tests. Preparation. Considerations. Conclusions. a ) Generalized mixing. Mass transfer. b ) Axial Momentum Transfer. 3 ) Origin of Hydrostatic mixing. Inertial forcing. 4 ) Physical configurations. Designs. - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -
"THE HYDROSTATIC INERTIAL MIXING COOLING SYSTEM".
1 ) Illustrative interacting drawings. 2 ) Physical components arrangement. 3 ) Control Panel.
Figure: Industrial Gas Turbine. "Energy Efficient Engine" (E3). Renewable Energies.
4 ) Centrifugal compressor train topologies.
The centrifugal compressor train configurations or stages topologies shown in this figure, are available for the mini-turbines shaft power range and for enhanced and improved co-generation applications (surplus pressures and temperatures in the industrial gas turbine exhaust gas).
Figure: Stages. Compressor topologies.
New mini-turbine models (over-cooled) will offer up to 19 MW (25480 HP) shaft-power plus improved co-generation efficiency and energy management.
5 ) Production strategy. Combined Heat and Power (CHP) processes. Product and Manufacturing Engineering. Projections: Technical. Financial.
Figure: Advanced Technologies. Innovations. Combined Cycles. Sustainable co-generation applications.
"THE HYDROSTATIC INERTIAL MIXING COOLING SYSTEM".
Figures. Photographs:
1 ) Test apparatus. Configuration. Introduction.
2 ) Phenomenological observations. Experimental tests. Preparation. Considerations. Conclusions. a ) Generalized mixing. Mass transfer. b ) Axial Momentum Transfer.
3 ) Origin of Hydrostatic mixing. Inertial forcing.
4 ) Cooling system. Physical configurations. Designs.
Further gas turbine-cogeneration cycles analyses, conceptual designs, new product engineering for sustainability, economics engineering, cash flows & ROI's viability analyses, energy management and efficiency numerical simulations, and experimental tests, are in development.
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Advanced Product Engineering. Technological projections.
Gas turbines (distributed generation. logistics optimization). Co-generation (massive homes heating. water. air). Electric Energy Storage (management). Electric (only) Vehicles viability (batteries recharging future methodologies).
New technologies integration. Innovative product engineering systems. Individualized projects and industrial scale processes financial viability.
New aero-thermodynamic (condensation shock waves) flames suppression. Vegetation wetting.
Advanced inertial cooling technologies, renewable energies, bio-fuels, and innovations in energy management & efficiency:
- NEW INDUSTRIAL GAS TURBINES FOR MARINE PROPULSION with COMBINED HEAT AND POWER COGENERATION ( CHP ) - NEW INDUSTRIAL GAS TURBINES FOR NAVAL ELECTRIC ENERGY with COMBINED ORGANIC CYCLES COGENERATION APPLICATIONS
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