首页> 外文会议>International Conference on Mechanical Engineering >Numerical Study on In-Furnace Blending Coal Combustion Characteristics in a 625 MW Tangentially Fired Pulverized Coal Boiler
【24h】

Numerical Study on In-Furnace Blending Coal Combustion Characteristics in a 625 MW Tangentially Fired Pulverized Coal Boiler

机译:625 MW切向煤锅炉中炉内混合煤燃烧特性的数值研究

获取原文

摘要

The percentage of the coal-fired power plant in Indonesia is still dominant. Types of boilers used include boiler stockers, circulating fluidized bed boilers, and pulverized boilers. Based on the coal combustion burner layer, the pulverized boiler uses a front-rear and tangentially fired boiler type. The results of tangentially fired boilers are more perfect because the flow of turbulence is produced. Properties of coal also affect the level of perfection of the combustion process that occurs and the heat distribution in the boiler. The boiler initial design of Suralaya 8 Coal Fired Steam Power Plant that uses LRC will operate all boiler support equipment at full load, this will reduce boiler reliability. To improve the reliability of the boiler, it will be studied with LRC mixed with MRC which has a higher quality and calorific value so that at full load will reduce the load of boiler support equipment. So from that research is needed regarding the combination pattern and the entry of LRC and MRC coal at the proper burner elevation to produce more perfect combustion, there is no change in temperature distribution in the boiler, low unburn carbon without neglect the economical aspect of the plant operation. This numerical study uses the Computational Fluid Dynamics (CFD) method. Making boiler geometry using Gambit 2.4.6 software and numerical simulation using ANSYS Fluent 16.0. The simulation includes the standard turbulence k-ε model. The material uses LRC and MRC with the provision of MRC inclusion at the bottom burner and LRC elevation above. Boundary condition uses the inlet velocity for primary and secondary air nozzle, CCOFA, and SOFA. Coal injection as mass flow inlet. The outlet parameter is a pressure outlet, a heat exchanger as a porous medium that has a heat generation. Waterwall tubes as walls that have heat fluxes. The results of this study will show simulation results and analyze changes in heat distribution in boilers to boiler performance, exhaust e
机译:印度尼西亚燃煤发电厂的百分比仍然占主导地位。使用的锅炉类型包括锅炉储存器,循环流化床锅炉和煤粉锅炉。基于煤燃烧器层,粉碎的锅炉使用前后和切向燃烧的锅炉类型。切向燃烧锅炉的结果更加完美,因为产生了湍流流动。煤的性质也影响了燃烧过程的完善水平,锅炉中的热分布。使用LRC的Suralaya 8燃煤蒸汽发电厂的锅炉初始设计将在满载时操作所有锅炉支架设备,这将降低锅炉可靠性。为了提高锅炉的可靠性,将使用LRC与MRC混合的LRC进行研究,该MRC具有更高的质量和热值,以便在满载时将减少锅炉支撑设备的负荷。因此,从该研究是关于LRC和MRC煤的适当燃烧器升降的组合模式和MRC煤的进入,以产生更完美的燃烧,锅炉中的温度分布没有变化,低燃烧碳而不忽视经济方面工厂操作。该数值研究使用计算流体动力学(CFD)方法。使用GAMBIT 2.4.6软件和数值模拟进行锅炉几何和使用ANSYS FLUENT 16.0的数值模拟。模拟包括标准湍流K-ε模型。该材料使用LRC和MRC在底部燃烧器和上面的LRC高度处提供MRC夹杂物。边界条件使用初级和二次空气喷嘴,CCOFA和沙发的入口速度。煤注射为质量流入口。出口参数是压力出口,作为具有发热的多孔介质的热交换器。水墙管作为具有热通量的墙壁。本研究的结果将显示仿真结果,并分析锅炉锅炉热分布变化,以锅炉性能,排气e

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