Prospects of development of highly mineralized high-temperature resources of the Tarumovskoye geothermal field

被引:3
作者
Alkhasov A.B. [1 ]
Alkhasova D.A. [1 ]
Ramazanov A.S. [1 ]
Kasparova M.A. [2 ]
机构
[1] Institute for Problems in Geothermy, Dagestan Scientific Center, Russian Academy of Sciences, pr. I. Shamilya 39a, Makhachkala
[2] Dagestan State University, pr. Gadzhieva 43a, Makhachkala
关键词
binary geothermal power plant; extraction; geothermal energy; lithium carbonate; low-boiling working substance; temperature; thermodynamic supercritical cycle; valuable chemical components;
D O I
10.1134/S004060151606001X
中图分类号
学科分类号
摘要
The promising nature of integrated processing of high-temperature geothermal brines of the Tarumovskoye geothermal field is shown. Thermal energy of a geothermal brine can be converted to the electric power at a binary geothermal power plant (GPP) based on low-boiling working substance. The thermodynamic Rankine cycles are considered which are implemented in the GPP secondary loop at different evaporation temperatures of the working substance―isobutane. Among them, the most efficient cycle from the standpoint of attaining a maximum power is the supercritical one which is close to the so-called triangular cycle with an evaporation pressure of рe = 5.0 MPa. The used low-temperature brine is supplied from the GPP to a chemical plant, where main chemical components (lithium carbonate, burnt magnesia, calcium carbonate, and sodium chloride) are extracted from it according to the developed technology of comprehensive utilization of geothermal brines of chloride-sodium type. The waste water is delivered to the geotechnological complex and other consumers. For producing valuable inorganic materials, the electric power generated at the GPP is used. Owing to this, the total self-sufficiency of production and independence from external conditions is achieved. The advantages of the proposed geotechnological complex are the full utilization of the heat potential and the extraction of main chemical components of multiparameter geothermal resources. In this case, there is no need for reverse pumping, which eliminates the significant capital costs for building injection wells and a pumping station and the operating costs for their service. A characteristic of the modern state of the field and estimated figures of the integrated processing of high-temperature brines of well no. 6 are given, from which it follows that the proposed technology has a high efficiency. The comprehensive development of the field resources will make it possible to improve the economic structure of the region and fully meet the needs of Russia in lithium carbonate and sodium chloride. © 2016, Pleiades Publishing, Inc.
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页码:404 / 408
页数:4
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