...
首页> 外文期刊>Renewable & Sustainable Energy Reviews >On-design pre-optimization and off-design analysis of hybrid Brayton thermosolar tower power plants for different fluids and plant configurations
【24h】

On-design pre-optimization and off-design analysis of hybrid Brayton thermosolar tower power plants for different fluids and plant configurations

机译:用于不同流体和植物配置的混合布雷顿热阳极塔电厂的设计前优化和非设计分析

获取原文
获取原文并翻译 | 示例
           

摘要

A working fluid performs a Brayton cycle that is fed by a heat input from a solar power tower and from a combustion chamber, which burns natural gas. This hybrid system is described by a complete model that includes all the main losses and irreversibility sources (optical and thermodynamic). Numerical implementation and validation is performed based on a Spanish commercial plant. On-design computations are carried out varying the pressure ratio for four working fluids (dry air, nitrogen, carbon dioxide, and helium), for different number of stages and for recuperative and non-recuperative configurations. When adjusting the pressure ratio, an improvement of about 7 % in overall thermal efficiency is predicted for a dry air single-stage recuperative configuration with respect to a standard commercial gas turbine. A study about the main energy losses in each plant subsystem for some particular plant layouts is accomplished. A two-compression and expansion stages recuperative Brayton cycle working with air is expected to give overall thermal efficiencies about 0.29 at design conditions, which is about a 47% increase with respect to the simplest single-stage configuration. It is stressing that fuel consumption from the reheaters maybe higher than that of the main combustion chamber for multi-stage layouts. Off-design hourly curves of output records for the four seasons throughout a day are analyzed. Greenhouse emissions are also analyzed. Specific carbon dioxide emissions are smaller for helium than for dry air, when they both work in a single-stage non-recuperative configuration.
机译:工作流体执行由来自太阳能电塔和燃烧室的热量输入而进料的Brayton循环,该燃烧腔室燃烧天然气。该混合系统由完整的模型描述,该模型包括所有主要损耗和不可逆转源(光学和热力学)。基于西班牙商业工厂执行数值实现和验证。在设计计算中,为不同数量的阶段和用于恢复和非恢复配置的四个工作流体(干燥空气,氮气,二氧化碳和氦气)的压力比而变化。当调整压力比时,预测相对于标准商业燃气轮机的干燥空气单级恢复配置,预测总热效率的约7%的提高。完成了对某些特定植物布局的每个植物子系统中的主要能量损失的研究。预计使用空气的双压缩和扩展阶段可恢复布雷顿循环,在设计条件下会在0.29处提供总体热效,这对于最简单的单级配置约为47%。它强调,从再升降器中的燃料消耗可能高于多级布局的主燃烧室的燃料消耗。分析了整个一天四季的输出记录的偏移量曲线。还分析了温室排放。当它们均以单级不恢复配置工作时,氦气的特定二氧化碳排放比干燥空气更小。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号