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Multiple integrated applications for low-to medium-temperature geothermal resources in Iceland

机译:冰岛中低温度地热资源的多种集成应用

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There is an increasing global demand for a faster, more expansive development in the energy sector, in order to improve the standard of living of the world's population by the creation of more jobs and better living conditions. The public is, however, well aware of the damage that has been done to the environment, in the form of deforestation, despoiling of lakes and rivers and, in particular, greenhouse effects, and it is unwilling to further sacrifice its natural environment. This decision puts pressure on scientists, engineers and developers to find ways and means of attaining "sustainable energy development". In other words, the challenge now is to achieve the sustainable development of alternative renewable energy resources. Sustainability may be achieved in a number of ways, but the one most likely to result in a rapid increase in energy output without a deleterious impact on the environment is the revamping and integration of what we already have. This paper attempts to address sustainability as it applies to geothermal energy. We describe the concept of a multiple integrated use of geothermal energy, including the tenable benefits that can be obtained from applying this concept, such as a longer reservoir lifespan, a lower specific environmental impact, and greater marketing flexibility and profitability. The paper also emphasises the importance of achieving a maximum effective temperature drop across the application, commensurate with a minimum flow rate, optimal pumping characteristics and minimal fluid extraction from the geothermal reservoir. In geothermal house heating systems this means using large and effective radiators, dual-pipe heating systems, and thermostatic controls on each radiator. Where modifications to existing house heating systems are not feasible, e.g. by conversion from a single-pipe to a dual-pipe system or installation of larger radiators, an alternative solution is to adopt a cascaded flow of the geothermal fluid through a combination of heating systems operating at different temperature levels. For economic reasons it is always better to use the geothermal water directly if its chemical quality permits us to do so, otherwise heat exchangers made of resistant materials will be needed to isolate the geothermal fluid from the heating fluid in order to avoid corrosion or scaling in the pipes and radiators. The heat exchangers should be designed in such a way as to obtain a maximum temperature drop of the geothermal fluid. The paper also describes some heating system configurations, the characteristics of geothermal heating systems and their automatic control systems, as well as recommended geothermal field management and monitoring systems. The paper also includes a few examples of existing projects to demonstrate what has already been achieved and what could be done in the future; some suggestions are also made for new developments and innovations to make geothermal energy more generally attractive and useful worldwide.
机译:全球对能源部门更快,更广泛的发展的需求不断增长,以通过创造更多的就业机会和更好的生活条件来改善世界人口的生活水平。但是,公众充分意识到以森林砍伐,湖泊和河流的破坏以及特别是温室效应的形式对环境造成的损害,并且它不愿意进一步牺牲其自然环境。该决定给科学家,工程师和开发人员带来压力,要求他们寻求实现“可持续能源发展”的方式方法。换句话说,现在的挑战是实现替代可再生能源的可持续发展。可持续性可以通过多种方式实现,但是最有可能导致能源输出快速增长而又不对环境造成不利影响的一种方式就是对现有产品进行改造和整合。本文试图解决适用于地热能的可持续性问题。我们描述了地热能源的多种综合利用的概念,包括应用该概念可获得的长期利益,例如更长的油藏寿命,更低的特定环境影响以及更大的市场灵活性和盈利能力。本文还强调了在整个应用中实现最大有效温降,与最小流速,最佳泵送特性和从地热储层中抽取流体最少相称的重要性。在地热房屋供暖系统中,这意味着在每个散热器上使用大型且有效的散热器,双管加热系统以及恒温控制。如果无法对现有的房屋供暖系统进行改造,例如通过从单管系统转换为双管系统或安装较大的散热器,另一种解决方案是通过在不同温度水平下运行的加热系统的组合采用地热流体的级联流。出于经济原因,如果化学性质允许我们直接使用地热水,总会更好,否则,将需要用耐高温材料制成的热交换器将地热流体与加热流体隔离开,以避免腐蚀或结垢。管道和散热器。热交换器的设计方式应能使地热流体的温度下降最大。本文还介绍了一些加热系统配置,地热加热系统及其自动控制系统的特性,以及推荐的地热田间管理和监视系统。该文件还包括一些现有项目的例子,以说明已经取得的成就和将来的成就。对于新的发展和创新,也提出了一些建议,以使地热能在全球范围内更具吸引力和更加实用。

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