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ADVANCED STEAM TURBINE TECHNOLOGY FOR UNIQUE DOUBLE REHEAT STEAM POWER PLANT LAYOUT

机译:高级汽轮机技术,独特双重再热蒸汽发电厂布局

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Environmental aspects have increased the pressure on the fossil power generation industry to reduce carbon dioxide (CO_2) emissions. One way to achieve this is by increasing the overall plant efficiency, which also fosters an economical plant operation. How can the efficiency of a next generation coal fired ultra super critical (USC) steam power plant (SPP) be increased significantly in the nearest future while maintaining its familiar reliability and availability at the same time? In China's national USC SPP demonstration project, Pingshan Phase II, this challenge is met by a double reheat cross compound turboset with one elevated and one conventional turbine layout, together with increased steam parameters of up to 325 bar and steam temperatures of up to 630°C. The nominal electrical capacity of the plant will be 1350 megawatts (MW). With this set up, a 'half-net' efficiency of more than 52.2 percent is expected ['half-net' = gross efficiency with generator power reduced by boiler feed water pump power consumption]. The first, elevated turbine train consists of two high-pressure modules having different pressure stages and one generator and it is located close to the main headers of the boiler at a height of appr. 83 meters. This unique turbine arrangement allows the expensive high-temperature pipes to be shortened, leading to substantially reduced pipe pressure losses and costs. The second turbine train will be installed on a conventional turbine deck at a height of appr. 17 meters and consists of two intermediate pressure and three low pressure turbine modules as well as a second generator. In this paper, the advanced steam turbine technology for this power plant concept is presented and discussed in detail. To achieve the next level of efficiency with an SPP today, the application of the 700°C material class is not possible to due to the slow progress of the associated technology development. It is more expedient to exploit the limits of the 600°C material class to the highest possible extent in USC conditions i.e. to the pressures and temperatures mentioned above. Design concept studies have shown that 52.2% 'half-net ' efficiency cannot be achieved with a single reheat layout, so a double reheat (DRH) layout has been chosen. In addition, 1350 MW cannot be achieved with one turbine train (tandem compound), but only with two turbine trains (cross compound). In order to achieve the highest reliability possible, proven turbine design topologies and features have been used. The major change to the Siemens barrel type VHP turbine was a material change from 10% Chromium steels to FB2 and CB2. The HP turbine received increased wall thicknesses as well as a similar material change compared to a standard USC design. In order to control the oxidation at these elevated temperatures, oxidation protection measures have been applied where required. The startup procedure has been tailored specifically to the needs of a double reheat cross compound configuration.
机译:环境方面增加了化石发电行业的压力,以减少二氧化碳(CO_2)排放。实现这一目标的一种方法是通过提高整体植物效率,这也促进了经济的工厂操作。如何在最近的未来在最近的未来显着增加下一代燃煤超超级关键(USC)蒸汽发电厂(SPP)的效率,同时保持其熟悉的可靠性和可用性?在中国国家USC SPP示范项目中,Pingshan第二阶段,这一挑战通过双重再热横向化合物涡轮机满足,其中一个升高和一个传统的涡轮布局,以及高达325巴的蒸汽参数增加,蒸汽温度高达630° C。工厂的标称电气容量将是1350兆瓦(MW)。通过这套设置,预计“半净”效率超过52.2%,预计锅炉供给水泵功耗降低了发电机功率的总效率。首先,升高的涡轮机火车由具有不同压力级的两个高压模块和一个发电机组成,并且它位于锅炉的高度靠近锅炉的主标题。 83米。这种独特的涡轮装置允许缩短昂贵的高温管,从而显着降低管腔压力损失和成本。第二个涡轮机火车将安装在传统的涡轮机甲板上,其高度。 17米,由两个中间压力和三个低压涡轮模块以及第二发电机组成。在本文中,详细介绍和讨论了该发电厂概念的先进汽轮机技术。为实现下一代效率,目前达到了下一级效率,因此不可能应用700°C物料课程的应用,因为相关技术开发的进展缓慢。更有利的是利用600°C材料类的限制在USC条件下的最高程度上,即对上述压力和温度。设计概念研究表明,使用单一的再加热布局不能实现52.2%的“半净”效率,因此选择了双重再加热(DRH)布局。此外,通过一个涡轮机火车(串联化合物)不能实现1350兆瓦,但只能达到两个涡轮机列车(交叉化合物)。为了实现最高的可靠性,已经使用了验证的涡轮机设计拓扑和特征。西门子桶式VHP涡轮机的主要变化是从10%铬钢到FB2和CB2的材料变化。与标准USC设计相比,HP涡轮机接收到增加的壁厚以及类似的材料变化。为了控制这些高温下的氧化,已在需要的情况下应用氧化保护措施。启动程序专门针对双重再热交叉复合配置的需求量身定制。

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