发电技术 ›› 2022, Vol. 43 ›› Issue (2): 367-372.DOI: 10.12096/j.2096-4528.pgt.20007

• 发电及环境保护 • 上一篇    

尿素热解制氨工艺在1000MW燃煤电厂的应用与优化

喻小伟1, 匡萃杰2   

  1. 1.华电电力科学研究院有限公司, 浙江省 杭州市 310030
    2.中煤新集利辛发电有限公司, 安徽省 亳州市 236744
  • 收稿日期:2021-04-18 出版日期:2022-04-30 发布日期:2022-05-13
  • 作者简介:喻小伟(1987),男,硕士,工程师,研究方向为火电厂环保,xiaowei-yu@chder.com
    匡萃杰(1980),男,工程师,研究方向为火电厂生产管理,jxjakuangcuijie@126.com
  • 基金资助:
    中国华电集团科技项目(CHDKJ19-02-15)

Application and Optimization of Urea Pyrolysis Technology in 1000MW Coal-fired Power Plant

Xiaowei YU1, Cuijie KUANG2   

  1. 1.Huadian Electric Research Institute Co. , Ltd. , Hangzhou 310030, Zhejiang Province, China
    2.China Coal Group Xinji Lixin Power Plant Co. , Ltd. , Bozhou 236744, Anhui Province, China
  • Received:2021-04-18 Published:2022-04-30 Online:2022-05-13
  • Supported by:
    Science and Technology Program of China Huadian Corporation(CHDKJ19-02-15)

摘要:

尿素热解制氨工艺凭借其安全无毒的优势已经在多个电厂得到应用,但是在应用过程中存在沉积物堵塞等问题。国内某电厂1 000 MW机组的尿素热解装置在运行过程中由于脱硝增压风机磨蚀导致热解风量不足,电加热器出力受限,以及尿素溶液喷枪雾化效果差等原因,导致热解炉、出口管道以及喷氨格栅等被沉积物严重堵塞。通过定期检查清理、优化调整运行参数、增强系统控制等手段,解决了系统堵塞的问题,并且明显降低了尿素耗量,每年节省大宗物质消耗成本达130万元,提高了机组可靠性与经济性,可为国内外其他配置尿素热解工艺的电厂提供借鉴。

关键词: 燃煤电厂, 选择性催化剂还原(SCR), 尿素热解, 中间反应, 沉积物, 热一次风

Abstract:

Urea pyrolysis technology has been applied in many coal-fired power plants with it's advantages of safety and nontoxicity, but there are problems such as sediment plugging in the application. A 1 000 MW unit with urea pyrolysis system was seriously blocked in pyrolysis furnace, export pipeline and ammonia spraying grid, for pyrolytic air lacking caused by the abrasion of bofoster fans, electric heater output limiting, poor atomization effect of spraying guns and so on. According to regular inspection and cleaning, optimizing and adjusting operation parameters, enhancing system control, the problem of blocking was solved. The consumption of urea was reduced, 1.3 million yuan of cost was cut down every year. The reliability and economy of units were increased.

Key words: coal-fired power plant, selective catalytic reduction (SCR), urea pyrolysis, intermediate reaction, sediment, hot primary air

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