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WATER-AMMONIA CYCLES FOR THE UTILIZATION OF LOW TEMPERATURE GEOTHERMAL RESOURCES

机译:用于利用低温地热资源的水 - 氨循环

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The research deals with the possibility of effective exploitation of low temperature geothermal energy resources, which are generally much more widespread worldwide compared to conventional high temperature ones, typically available only in limited areas of the Earth. The basic idea is the application of an advanced binary cycle, only thermally coupled to the primary endogen heat source. The selected reference-power cycle is the well-known Kalina, which gives the possibility of optimizing the matching between heat capacities of the geothermal fluid (i.e. typically hot water or saturated steam) and the cycle working fluid, which is a non azeotropic NH3-H20 mixture with variable vaporization temperature at a fixed pressure. The heat transfer diagrams of the main Kalina heat exchangers, namely the condenser and the evaporator, are analysed with the aim of minimizing the irreversibilities related to the heat transfer. At different fixed NH3-H2O composition and condenser pressures, the evaporator pressure shows an efficiency optimizing value between 40 and 55 bar, generally increasing at higher condenser pressure. At fixed geothermal heat source temperature, condenser/evaporator pressures and working mixture composition, the cycle efficiency increases with increasing evaporator temperature, because of the reduction in the approach temperature difference between the geothermal and the working fluid. Higher efficiencies are found at higher NH_3 concentrations. The proposed Water-Ammonia power cycle is further enhanced introducing a chiller (thus making the power cycle a CCP unit), thanks to the properties of the fluid mixture downstream the absorber, through an intermediate heat exchanger between the condenser and the evaporator. Mainly due to the better matching of heat capacities between the geothermal and the working fluid, the proposed power cycle offers the possibility of interesting improvements in electrical efficiency compared to traditionally proposed binary cycles using ORCs, at fixed temperature level of the heat source. In the investigated proposal, values of electric efficiency between 15 and 20% are found. An economic analysis is presented, demonstrating that the CCP system is able to produce electricity at decreased unit cost with respect to the power-only unit.
机译:该研究涉及有效利用低温地热能源资源,与传统的高温相比,通常在全球范围内的广泛普遍存在,通常仅在地球的有限区域可用。基本思想是应用高级二进制循环,只能热耦合到主要内部内的热源。所选的参考功率循环是众所周知的Kalina,其能够优化地热容量(即通常是热水或饱和蒸汽)和循环工作流体之间的热量之间的匹配,这是非共沸NH3- H20混合物,具有可变汽化温度的固定压力。通过最小化与传热相关的不缩义来分析主链唇换热器的传热图,即冷凝器和蒸发器。在不同的固定NH3-H2O组合物和冷凝器压力下,蒸发器压力显示出40至55巴之间的效率优化值,通常在更高的冷凝器压力下增加。在固定地热源温度,冷凝器/蒸发器压力和工作混合物组合物中,由于地热和工作流体之间的接近温差降低,循环效率随着蒸发器温度的增加而增加。在较高的NH_3浓度下发现更高的效率。由于流体混合物在吸收体下游的性质,通过冷凝器和蒸发器之间的中间热交换器,所提出的水氨功率循环进一步增强了冷却器(从而使电源循环成为CCP单元)。主要是由于地热容量与工作流体之间的热量匹配更好,所提出的电源循环提供了与传统提出的二进制循环相比,在热源的固定温度水平上相比,电效率的有趣改善的可能性。在调查的提案中,发现了15至20%的电效率值。提出了经济分析,证明CCP系统能够在仅电力单位的单位成本下减少电力。

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