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Modern Geothermal Power: Binary Cycle Geothermal Power Plants

机译:现代地热发电:二元循环地热发电厂

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摘要

In the second part of the review of modern geothermal power plant technologies and equipment, a role, a usage scale, and features of application of binary cycle plants in the geothermal economy are considered. Data on the use of low-boiling fluids, their impact on thermal parameters and performance of geothermal binary power units are presented. A retrospective of the use of various low-boiling fluids in industrial binary power units in the world since 1965 is shown. It is noted that the current generating capacity of binary power units running on hydrocarbons is equal to approximately 82.7% of the total installed capacity of all the binary power units in the world. At the same time over the past 5 years, the total installed capacity of geothermal binary power units in 25 countries increased by more than 50%, reaching nearly 1800 MW (hereinafter electric power is indicated), by 2015. A vast majority of the existing binary power plants recovers heat of geothermal fluid in the range of 100-200℃. Binary cycle power plants have an average unit capacity of 6.3 MW, 30.4 MW at single-flash power plants, 37.4 MW at double-flash plants, and 45.4 MW at power plants working on superheated steam. The largest binary cycle geothermal power plants (GeoPP) with an installed capacity of over 60 MW are in operation in the United States and the Philippines. In most cases, binary plants are involved in the production process together with a steam cycle. Requirements to the fluid ensuring safety, reliability, and efficiency of binary power plants using heat of geothermal fluid are determined, and differences and features of their technological processes are shown. Application of binary cycle plants in the technological process of combined GeoPPs makes it possible to recover geothermal fluid more efficiently. Features and advantages of binary cycle plants using multiple fluids, including a Kalina Cycle, are analyzed. Technical characteristics of binary cycle plants produced by various manufacturers are considered, and data on the Russian pilot binary geothermal power unit in the Pauzhetskaya GeoPP is provided. Expediency of the use of binary cycle plants for autonomous power supply and energy extension of existing GeoPPs without drilling extra wells and in flowsheets of newly designed combined GeoPPs are noted.
机译:在对现代地热发电厂技术和设备的回顾的第二部分中,考虑了二元循环发电厂在地热经济中的作用,使用规模和应用特点。介绍了有关低沸点流体的使用,它们对热参数和地热二元动力装置性能的影响的数据。显示了自1965年以来在世界范围内的工业二元动力装置中使用各种低沸点流体的回顾。值得注意的是,在烃上运行的二元动力装置的当前发电量大约等于世界上所有二元动力装置的总装机容量的82.7%。在过去的5年中,在25个国家/地区中,地热二元机组的总装机容量到2015年增长了50%以上,达到了近1800 MW(以下表示电力)。现有的绝大部分二元发电厂回收地热流体的热量范围为100-200℃。二元循环发电厂的平均单位容量为6.3 MW,单闪发电厂为30.4 MW,双闪发电厂为37.4 MW,过热蒸汽发电厂为45.4 MW。美国和菲律宾正在运行最大装机容量超过60兆瓦的二元循环地热发电厂(GeoPP)。在大多数情况下,二元工厂与蒸汽循环一起参与生产过程。确定了确保使用地热流体热量的二元发电厂的安全性,可靠性和效率的流体要求,并显示了其工艺过程的差异和特征。二元循环工厂在联合GeoPP的工艺过程中的应用使更有效地回收地热流体成为可能。分析了使用多种流体(包括卡利纳循环)的二元循环设备的特点和优势。考虑了由不同制造商生产的二元循环设备的技术特性,并提供了有关俄罗斯Pauzhetskaya GeoPP中试二元地热发电装置的数据。指出了在不钻额外的井的情况下以及在新设计的组合GeoPP的流程图中,使用二元循环设备进行自动供电和现有GeoPP的能量扩展的便利性。

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