Application of GE Low Load Package on an Existing District Heating Power Plant: A Case Study

Antonio Mambro, F. Congiu, F. Piraccini
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引用次数: 1

Abstract

The continuous increase of variable renewable energy and fuel cost requires steam turbine power plants to operate with high flexibility. Furthermore, the reduction in electricity price is forcing many existing and new district heating power plants to further optimize the heat production to maintain a sustainable business. This situation leads to low pressure steam turbines running at very low volume flow for an extended time. In this work, a case study of an existing 30 MWel district heating power plant located in Europe is presented. The customer request was the removal of the steam turbine last two stages along with the condenser to maximize steam delivery for district heating operations. However, based on the experience gained by GE on low load during the last years, the same heat production has been guaranteed without any significant impact on the existing unit, excluding any major modification of the plant layout such as last stage blading and condenser removal. Making use of the latest low flow modeling, the minimum cooling flow through the low-pressure turbine has been reduced by more than 90% compared to the existing unit. Optimization of the hood spray system and logic will reduce trailing edge erosion during low load operation leading to a significant extension in the last stage blade lifetime. These modifications, commercialized by GE as the Advanced Low Load Package (ALLP), provide a cheap, flexible and effective solution for the customer. With today’s knowledge, GE has the capability to guarantee low load operation minimizing the mass flow through the low-pressure turbine to the minimum required for safe operation. As a benefit to the customer, this option allows a gain in operational income of about 1.5 M€ per year.
GE低负荷机组在某既有集中供热电厂的应用
可变可再生能源和燃料成本的不断增加,要求汽轮机电厂具有较高的运行灵活性。此外,电价的下降迫使许多现有的和新的区域供热电厂进一步优化供热,以保持业务的可持续发展。这种情况导致低压汽轮机在非常低的体积流量下长时间运行。在这项工作中,介绍了一个位于欧洲的现有30兆瓦集中供热电厂的案例研究。客户的要求是拆除汽轮机最后两级以及冷凝器,以最大限度地为区域供热操作提供蒸汽。然而,根据GE在过去几年中获得的低负荷经验,在不影响现有机组的情况下,保证了相同的产热,不包括对工厂布局的任何重大修改,如最后一级叶片和冷凝器的拆除。利用最新的低流量模型,通过低压涡轮的最小冷却流量与现有机组相比减少了90%以上。发动机罩喷雾系统和逻辑的优化将减少低负荷运行时尾缘的侵蚀,从而显著延长最后一级叶片的使用寿命。这些改进被GE商业化,称为先进低负载封装(ALLP),为客户提供了一种廉价、灵活和有效的解决方案。凭借今天的知识,GE有能力保证低负荷运行,最大限度地减少低压涡轮机的质量流量,使其达到安全运行所需的最小值。对于客户来说,这一选项每年可增加约150万欧元的运营收入。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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