Publication

Integrated Thermo-economic Modeling of Geothermal Resources for Optimal Exploitation Scheme Identification

2009
Student project
Abstract

To be profitable, a geothermal energy system must effectively and economically convert a given resource into useful energy services to be delivered to the consumer during different periods of the year. These services include electricity, district heating, and cooling. The performance of the system depends not only on the specific climate conditions and resource characteristics, but also on multiple interdependent decision variables that affect the thermodynamic and economic performance of the system. These decision variables include the conversion technologies and their associated operating conditions, as well as the different resources that are potentially exploitable at a given location. Therefore, the optimal exploitation schemes of geothermal resources are best identified using thermo-economic modeling which integrates models for the resources, the conversion technologies, and multiple demand profiles. This paper proposes a strategy to identify optimal exploitation schemes of geothermal resources using a multi-period approach, integrating the superstructure of exploitable resources with the superstructure of conversion technologies and multiple demand profiles. A general case study is considered for the validation of the approach. The superstructure of resources consists of an enhanced geothermal system, a deep aquifer, and a shallow aquifer. Organic Rankine cycles and both single and double flash steam cycles, which can be used for combined heat and power production, are considered within the conversion technology superstructure. Heat pumps are also considered. A back-up boiler is also included in case the geothermal resources alone cannot fully satisfy the demand. Periods identified for the demand profiles of district heating and cooling are summer, winter, inter- seasonal, and extreme winter and summer conditions. Considering thermodynamic and economic objectives, process integration techniques in conjunction with an evolutionary algorithm are employed to determine the optimal exploitation schemes and system configuration across the multiple periods. The proposed strategy can be adjusted for specific locations and conditions, and could potentially serve as a tool for evaluating the exploitation potential of a variety of geothermal resources and aid in future decision-making processes.

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Related concepts (34)
Geothermal power
Geothermal power is electrical power generated from geothermal energy. Technologies in use include dry steam power stations, flash steam power stations and binary cycle power stations. Geothermal electricity generation is currently used in 26 countries, while geothermal heating is in use in 70 countries. As of 2019, worldwide geothermal power capacity amounts to 15.4 gigawatts (GW), of which 23.9 percent or 3.68 GW are installed in the United States.
Geothermal heating
Geothermal heating is the direct use of geothermal energy for some heating applications. Humans have taken advantage of geothermal heat this way since the Paleolithic era. Approximately seventy countries made direct use of a total of 270 PJ of geothermal heating in 2004. As of 2007, 28 GW of geothermal heating capacity is installed around the world, satisfying 0.07% of global primary energy consumption. Thermal efficiency is high since no energy conversion is needed, but capacity factors tend to be low (around 20%) since the heat is mostly needed in the winter.
Geothermal energy
Geothermal energy is thermal energy in the Earth's crust. It combines energy from the formation of the planet and from radioactive decay. Geothermal energy has been exploited as a source of heat and/or electric power for millennia. Geothermal heating, using water from hot springs, for example, has been used for bathing since Paleolithic times and for space heating since Roman times. Geothermal power, (generation of electricity from geothermal energy), has been used since the 20th century.
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