利用地热发电增加土耳其的可再生发电量

艾达山地热发电厂项目概述详细介绍了土耳其最新的地热装置之一。

Yerka 的 12 MWe Mount Ida 地热发电厂位于土耳其脟anakkale 省。(来源:耶尔卡)

提出者:

勘探与生产标志

编者注:本文出现在新的 E&P 时事通讯中。请在此处订阅勘探与生产通讯 。 


近年来,土耳其政府将能源安全作为其能源战略的关键支柱之一。该国为此做出的部分努力包括实现能源结构多元化,利用包括地热在内的可再生能源发电。虽然土耳其的地热资源丰富,但其大部分地热潜力尚未开发。 

过去十年政府通过上网电价补贴的支持刺激了该国地热发电的增长。今年早些时候,土耳其可再生能源支持机制 (YEKDEM) 延长了地热发电厂的上网电价补贴,为该资源在未来十年成为该国可再生能源总量的主要贡献者铺平了道路。

土耳其最新达到商业运营日期的地热项目之一是 Yerka 发电公司的艾达山地热发电厂 (GPP),位于脟anakkale 省图兹拉村附近。该发电厂于 4 月投入运行,发电量为 12 兆瓦电力 (MWe),使该国地热总装机容量达到 1.613 吉瓦电力 (GWe)。  

Yerka 的艾达山项目目标是经济地开发其许可区域内的地热资源,为区域电网增加可靠的可再生发电来源。然而,由于这是 Yerka 的第一个地热装置,它面临着一些未知因素,因此选择寻求领域专家的支持,他们可以帮助该项目按时、按预算上线,同时开发资源的全部容量。  

2015 年,Yerka 开始与斯伦贝谢旗下多学科地热咨询和服务公司 GeothermEx 合作。在安装过程中,GeothermEx 与 Yerka 团队密切合作,为资源容量评估、钻井和建井、油藏评估和风险表征、油井干预和增产以及人工举升服务的运行性能监测提供技术支持。 

地质概况

土耳其西南部是一个异常高热流的地区,它是由于地壳构造延伸区域的地壳变薄而形成的,与大陆聚合有关。图兹拉地区是该地区的一部分,该地区的背景温度梯度升高至经济水平;即使在没有强热液对流的情况下,这种梯度也允许钻井过程中遇到高温。 

图兹拉地区的第三系覆盖层下面是一个由古生代大理石、片岩和蛇绿岩组成的变质基底。在艾达山许可证中钻探的井显示,蛇绿岩下方至井底交替存在大理石和片岩。在 Yerka 遇到基岩的每一口井中,大理石都是主要的流体生产区,并持续超出这些井的总深度,这表明这些大理石分布广泛且厚度足够,可以作为艾达山许可证生产的目标。

表征资产

详细的资源描述是任何地热开发至关重要的第一步。艾达山项目开始时,对地热资源的主要特征进行了表征,包括地下温度的分布、控制流体流动的地质层位和结构的特征以及资源的容量。这对于确定资源是否适合开发和定义风险至关重要。 

艾达山项目的钻探计划的设计依赖于对地下条件的清晰了解。钻井和完井的详细规划对于生产和注入性能以及项目的长期运行稳定性至关重要。 

钻孔和测试

Yerka 于 2016 年开始钻探活动,并已在 Mount Ida 许可证中成功完成了八口全直径深井。 

斯伦贝谢能源转型土耳其地热
Yerka Mount Ida 项目进行钻井和套管固井作业。(来源:耶尔卡)

在 GeothermEx 的指导下,Yerka 于 2017 年进行了两次干扰测试,以表征井间连接以及油田在生产和注入负载下的整体行为。这些测试表明,油田任何地方的生产和注入都可以作为所有井中的压力响应可见。这表明,艾达山地区的油井适当地相互连接,并且预计注入将支持生产储层压力,尽管油井之间的连接足够小,以避免注入导致生产冷却。作为示例,下图显示了第二次干扰测试的压力响应,其中在 Yerka-1 和 Yerka-6 中进行生产和/或注入,并在 Yerka-3、Yerka-4 和 Yerka-5 中监测井下压力。

斯伦贝谢能源转型 土耳其地热
显示了每口 Yerka 井在 Mount Ida GPP 进行的 2 号干扰测试期间的压力响应。(来源:斯伦贝谢)

用于增产和抽油生产的连续油管

Mount Ida 油田钻探的所有全直径井均通过连续油管装置 (CTU) 进行酸化增产。根据酸化前和酸化后产能的比较,油井在这次增产中表现出明显的改善。通过 CTU 进行的酸增产结果表明,每口处理过的井均实现了测得的井产能或注入量值的显着增加,每口井均实现了 19 吨/小时巴或更高的商业价值。

油井调查和测试数据表明,每口生产井都需要人工举升,以保持稳定的生产率并提供更大的操作控制措施。斯伦贝谢的四套 REDA Hotline 高温电潜泵系统 (ESP) 于 2020 年 10 月和 12 月安装。这些系统目前每口井在 126°C 下平均产油 260 吨/小时。产出的流体在塔中沸腾ESP 上方的管道。ESP 设计采用了井下阻垢剂,以避免泵上方和地面设施中结垢。

结果  

通过初始钻井和完井后的酸化,单井产能得到显着提高。油井测试表明,该项目拥有足够的生产和注入能力,可用于地热发电厂,估计总容量为 12 MWe,超过 Yerka 最初 10 MWe 的预期容量。 

Yerka 依靠 ESP 来实现土工液生产所需的流量,而如果没有泵送,这是不可能实现的。干扰和单井测试结果证实,Mount Ida 许可证中的所有井均实现水力连通,但井间压力干扰量较小,表明预期生产场景的资源适应性良好。

促进可再生电力增长

随着土耳其继续实现可再生能源发电能源结构多元化,艾达山 GPP 等项目对于帮助该国缩小能源安全差距将变得越来越有价值。 

每个地热项目都面临着地下资源勘探和开发所隐含的挑战。成功的项目需要风险描述和多学科经验丰富的地球科学和工程专业知识,才能经济地使项目上线,并在 20 年或更长时间内保持生产力,以取得商业成功。


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原文链接/hartenergy

Increasing Renewable Electricity Generation in Turkey with Geothermal Power

A project overview of the Mount Ida Geothermal Power Plant details one of Turkey’s latest geothermal installations.

Yerka’s 12-MWe Mount Ida Geothermal Power Plant is located in Çanakkale Province, Turkey. (Source: Yerka)

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In recent years, the Turkish government has prioritized energy security as one of the key pillars of its energy strategy. Part of the country’s efforts toward this end involve diversifying its energy mix for electricity generation from renewable sources, including geothermal. While Turkey is rich in this resource, much of its geothermal potential has yet to be developed. 

Government support from feed-in-tariffs over the last decade has helped spur the growth of geothermal power in the country. Earlier this year, Turkey’s Renewable Energy Sources Support Mechanism (YEKDEM) extended feed-in-tariffs for geothermal power plants, paving the way for this resource to be a key contributor to the country’s total renewable energy mix over the next decade.

One of Turkey’s latest geothermal projects to reach its commercial operating date is Yerka Electricity Generation Co.’s Mount Ida Geothermal Power Plant (GPP) located near the village of Tuzla in Çanakkale Province. The plant, commissioned in April, generates 12 megawatts electric (MWe), increasing the total installed geothermal capacity in the country to 1.613 gigawatts electric (GWe).  

Yerka’s objective for the Mount Ida project was to economically develop the geothermal resources within its license area to add a reliable source of renewable electricity generation to the regional grid. Because this was Yerka’s first geothermal installation, however, it faced several unknowns and chose to seek support from domain experts who could help bring the project online on time and on budget while developing the full capacity of the resource.  

In 2015 Yerka began working with GeothermEx, a Schlumberger company and multidisciplinary geothermal consulting and services firm. Over the course of the installation, GeothermEx worked closely with the Yerka team, providing technical support for resource capacity assessment, drilling and well construction, reservoir evaluation and risk characterization, well intervention and stimulation, and operational performance monitoring for artificial lift services. 

Geologic overview

Southwestern Turkey is a region of anomalously high heat flow that developed as a result of crustal thinning in an area of tectonic extension of the earth’s crust, in association with continental convergence. The Tuzla area is part of this region, where the regional background temperature gradient is elevated to economic levels; this gradient allows for elevated temperatures to be encountered during drilling, even in the absence of strong hydrothermal convection. 

Beneath the tertiary cover in the Tuzla area is a metamorphic basement made up of Paleozoic marbles, schists and ophiolites. Wells drilled in the Mount Ida license show alternating marbles and schists beneath ophiolites to the bottom of the well. In each of Yerka’s wells that encounter basement rock, marbles host the primary zones of fluid production and continue beyond total depth of these wells, indicating that these marbles are sufficiently widespread and thick enough to be targeted for production across the Mount Ida license.

Characterizing the asset

Detailed resource characterization is a crucial first step for any geothermal development. At the start of the Mount Ida project, key features of the geothermal resource were characterized, including the distribution of subsurface temperatures, the characteristics of geological horizons and structures that control fluid flow, and the capacity of the resource. This was essential to determining suitability of the resource for development and defining risks. 

Design of the drilling program for the Mount Ida project relied on this clear understanding of subsurface conditions. The detailed planning for drilling and completing the wells was vital for production and injection performance, and therefore the long-term operational stability of the project. 

Drilling and testing

Yerka began its drilling campaign in 2016 and has successfully completed eight full-diameter deep wells in the Mount Ida license. 

Schlumberger energy transitions geothermal Turkey
Drilling and casing cementing operations take place at the Yerka Mount Ida project. (Source: Yerka)

With GeothermEx’s guidance, Yerka conducted two interference tests in 2017 to characterize the interwell connections and overall behavior of the field under production and injection loads. These tests showed that production and injection anywhere in the field were visible as pressure responses in all wells. This indicated that wells in the Mount Ida area are suitably interconnected and injection can be expected to support production reservoir pressures, though the connections between wells were small enough to avoid cooling of production by injection. As an example, the figure below shows the pressure responses from the second interference test, with production and/or injection in Yerka-1 and Yerka-6, and monitoring of downhole pressure in Yerka-3, Yerka-4, and Yerka-5.

Schlumberger energy transition geothermal Turkey
Pressure responses during Interference Test No. 2 at Mount Ida GPP are displayed for each Yerka well.(Source: Schlumberger)

Coiled tubing for stimulation and pumped production

All the full-diameter wells drilled in the Mount Ida field were stimulated via acidizing with a coiled-tubing unit (CTU). Based on comparisons of pre- and post-acidizing production capacity, wells have shown marked improvement from this stimulation. Results of acid stimulations via a CTU indicate that each treated well realized a significant increase in measured well productivity or injectivity values, with each well achieving a commercial value of 19 tons/hr-bar or better.

Well survey and test data have indicated that artificial lift is required for each production well to maintain steady production rates and provide a greater measure of operational control. Four of Schlumberger's REDA Hotline high-temperature electric submersible pump systems (ESPs) were installed in October and December 2020. These systems currently produce an average of 260 tons/hr per well at 126 C. The produced fluid is allowed to boil in the column pipe above the ESPs. The ESP design incorporates the use of a downhole scale inhibitor to avoid scaling above the pumps and in the surface facilities.

Results  

Individual well capacities were markedly improved by acidizing following initial drilling and completion. Well testing indicated that the project has sufficient production and injection capacity for a geothermal plant with an estimated capacity of 12 MWe gross, exceeding Yerka’s initial capacity expectations of 10 MWe. 

Yerka relies on ESPs to achieve the required flow rates for geofluid production, which would not otherwise be possible without pumping. Results of interference and individual well testing confirmed that all wells in the Mount Ida license are hydraulically connected, but the amount of pressure interference between wells is small, indicating good resource suitability for the intended production scenario.

Enabling renewable electricity growth

As Turkey continues to diversify its energy mix for electrical generation from renewable sources, projects such as the Mount Ida GPP will be increasingly valuable to help the country close the gap toward becoming more energy secure. 

Every geothermal project faces the challenges implicit to subsurface resource exploration and development. Successful projects require risk characterization and multidisciplinary experienced geoscience and engineering expertise to bring projects online economically and to maintain their productivity over terms of 20 years or more for commercial success.


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