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An innovative ORC power plant layout for heat and power generation from medium- to low-temperature geothermal resources

机译:创新的ORC电厂布局,用于中低温地热资源的热力发电

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摘要

Medium temperature (up to 170 ℃), water dominated geothermal resources are the most widespread in the world. The binary geothermal-ORC power plants are the most suitable energy conversion systems for this kind of resource. Specifically, combined heat and power (CHP) systems have the potential to improve the efficiency in exploiting the geothermal resources by cascading the geothermal fluid heat carrier to successively lower temperature users, thus increasing first and second law efficiency of the entire power plant. However, geothermal CHPs usually extract heat from the geofluid either in parallel or in series to the ORC, and usually provide only low temperature heat, which is seldom suitable for industrial use. In this paper, a new CHP configuration, called Cross Parallel CHP, has been proposed and analyzed. It aims to provide higher temperature heat suitable for industrial use, allowing the exploitation of geothermal resources even in areas where district heating is not needed. The proposed CHP allows the reduction of the irreversibilities in the heat exchangers and the loss to the environment related to the re-injection of geofluid, thus producing higher electric power output while satisfying, at the same time, the heat demand of the thermal utility for a wide range of temperatures and mass flow rates (80-140 ℃; 3-13 kg/s). Several organic fluids are investigated and the related optimizing working conditions are found by a built in procedure making use of genetic algorithms. The results show that the optimal working fluids and conditions vary with the temperature level and heat load of the thermal utility.
机译:中等温度(高达170℃),以水为主导的地热资源是世界上最广泛的。二元地热ORC电厂是最适合此类资源的能源转换系统。具体来说,热电联产(CHP)系统具有潜力,可以通过将地热流体热载体级联到依次降低的温度用户,从而提高开发地热资源的效率,从而提高整个电厂的第一定律和第二定律效率。但是,地热CHP通常以与ORC并联或串联的方式从地热流体中提取热量,并且通常仅提供低温热量,这很少适合于工业用途。在本文中,已经提出并分析了一种新的CHP配置,称为交叉并行CHP。它旨在提供适合工业用途的高温热量,即使在不需要区域供热的地区也可以开发地热资源。拟议的热电联产可以减少换热器中的不可逆性,并减少与土流再注入有关的环境损失,从而产生更高的电力输出,同时满足热电厂的热需求。温度和质量流量范围广(80-140℃; 3-13 kg / s)。通过使用遗传算法的内置程序研究了几种有机流体,并找到了相关的优化工作条件。结果表明,最佳的工作流体和条件随热电厂的温度水平和热负荷而变化。

著录项

  • 来源
    《Energy Conversion & Management》 |2014年第12期|883-893|共11页
  • 作者单位

    Universita degli Studi di Firenze, Dipartimento di Ingegneria Industrials, Viale Morgagni 40/44, 50134 Firenze, Italy;

    Universita degli Studi di Firenze, Dipartimento di Ingegneria Industrials, Viale Morgagni 40/44, 50134 Firenze, Italy;

    Universita degli Studi di Firenze, Dipartimento di Ingegneria Industrials, Viale Morgagni 40/44, 50134 Firenze, Italy;

    Universita degli Studi di Firenze, Dipartimento di Ingegneria Industrials, Viale Morgagni 40/44, 50134 Firenze, Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Organic Rankine cycle; Geothermal energy; Combined heat and power systems; Cycle optimization;

    机译:有机朗肯循环;地热能;热电联产系统;周期优化;

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