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Energy Systems for Multigeneration Purposes

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Energy Systems for Multigeneration Purposes ( energy-systems-multigeneration-purposes )

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Here, is the energy of hydrogen production, is the energy of hot water at 60 0C and is the energy of fresh water production. Table 6.19 lists the normalized cost for each multigeneration system. The results show that the normalized cost of the gas turbine multigeneration energy system is less those other systems; however, the CO2 emissions are relatively high. By contrast, the normalized cost of the integrated OTEC multigeneration system is higher than the other two, but does not have any CO2 emissions at all. In conclusion, the comparison between multigeneration systems strongly depends on the stated priorities of the designers and engineers. For example, if the priority is to have a system without any emissions and the location is close to the sea, the OTEC system is the best choice. If the plant is going to be installed in a rural area with sufficient biomass, the second multigeneration system is preferred. In addition, the amount of each useful output can help designers to decide which system they should select. For instance, the gas turbine multigeneration system can provide 10 MW of electricity, while OTEC system can only provide 100 kW of electricity. Table 6.19: Comparison of normalized cost for each multigeneration system. Name of system System I (Gas turbine based) System II (Biomass based) System III (OTEC based) Normalized cost ($/kWh) 0.06 0.08 0.77 In summary, the comparison of systems indicates that there are several criteria to be considered before undertaking the design of a multigeneration energy system:  Location of the plant.  Electricity, heating and cooling requirements of the system.  Budget for the system.  Environmental concerns and global warming mitigation.  Availability and cost of fuel for each system component. 216

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