首页> 外文会议>Power Conference >THE CHANGE IN BOILER AND STEAM TURBINE FAILURE MODES WITH MINIMUM LOAD OPERATION: USING MODELING TO PREDICT SUSCEPTIBILITY WITH VALIDATION THROUGH PLANT TESTING
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THE CHANGE IN BOILER AND STEAM TURBINE FAILURE MODES WITH MINIMUM LOAD OPERATION: USING MODELING TO PREDICT SUSCEPTIBILITY WITH VALIDATION THROUGH PLANT TESTING

机译:锅炉和蒸汽轮机故障模式的变化,最小负载操作:使用模型来通过植物测试预测验证的易感性

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Reducing the minimum load at which a unit can reliably operate is one method to manage changes in market demands and avoid inherent concerns over frequent on and off cycling. For this reason, it is now becoming common practice for plants to develop new lower minimum load levels that are well below conventional targets provided when the unit was first commissioned. For many plants, the criteria for successful operation were not based on optimizing minimum load levels. In fact, most conventional steam plants were commissioned during an era when full base load operation was expected throughout the life of the plant. Base load availability was the key driver not parameters that promoted unit flexibility. As a result, there are opportunities for plants to lower minimum load levels, but it is important for owners to understand the trade-offs and risks that come with such operation. TG Advisers (Turbine - Generator) and Tetra Engineering (Boiler) partnered on an analytical assessment and process simulation for a US site with four vintage boilers and steam turbines, the boilers having been converted from coal to gas-firing some years earlier. The boilers were modeled at different load points using boiler and power plant process simulation software. Key issues analyzed were superheat steam temperature, stability of natural circulation, and maintenance of minimum flow velocities. Secondary factors included cold end condensation and the potential for accumulation of dissolved solids in the circuit. Utilizing the results of Tetra's boiler model. TGA completed off-design modeling and calculations for the steam turbine and balance of plant equipment. Examples of primary interest was the impact of the predicted steam conditions and superheat, resulting thermal transient cycles, and LP blading concerns influenced by moisture content and back pressure control. Finally, balance of plant equipment was reviewed to ensure acceptable operating points for key equipment such as boiler feed pumps, feedwater heaters, and hood spray systems. Following computer simulations, a plant testing plan was developed, and plant testing was completed. The paper will review analytical predictions and actual plant testing as well as overall lessons learned from the project. Through these analytical and testing efforts the minimum load was reduced from the current practice of 65 MW to 31 MW.
机译:减少单位可以可靠地操作的最小负载是管理市场需求变化的一种方法,并避免在频繁上和关闭循环的固有问题。因此,现在正在成为植物开发新的最小载荷水平的常见做法,这些载重量远低于常规目标,该装置首次委托时提供。对于许多植物来说,成功操作的标准不是基于优化最小负载水平的标准。事实上,当在植物的整个寿命期间预期完全基地负荷运行时,大多数传统的蒸汽厂都在一次时代。基本负载可用性是关键驱动程序不是推广单位灵活性的参数。因此,有机会植物降低最小负载水平,但业主对拥有此类操作的权衡和风险非常重要。 TG顾问(涡轮发电机)和TETRA工程(锅炉)对美国网站的分析评估和流程模拟,锅炉几年前转换为燃气燃烧。锅炉使用锅炉和电厂工艺仿真软件在不同的负载点上进行建模。分析的关键问题是过热蒸汽温度,自然循环稳定性,以及最小流速的维持。次要因素包括冷端凝结和电路中溶解固体积累的可能性。利用Tetra锅炉模型的结果。 TGA完成了汽轮机和植物设备平衡的非设计建模和计算。主要兴趣的实例是预测的蒸汽条件和过热,产生的热瞬时循环和LP叶片受影响的影响,以及受水分含量和背压控制的影响。最后,审查了植物设备的平衡,以确保适用于锅炉供给泵,供给水加热器和罩喷涂系统等关键设备的可接受的操作点。在计算机模拟之后,开发了一种工厂测试计划,并完成了工厂测试。本文将审查分析预测和实际植物测试以及从项目中吸取的整体经验教训。通过这些分析和测试努力,最小载荷从目前的65 MW至31 MW降低。

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