石油炼制与化工 ›› 2026, Vol. 57 ›› Issue (3): 145-151.

• 设备及防腐 • 上一篇    下一篇

DMTO再生器主风分布管磨损机制分析及应对措施

陈海辉   

  1. 国能包头煤化工有限责任公司
  • 收稿日期:2025-08-11 修回日期:2025-09-25 出版日期:2026-03-12 发布日期:2026-03-02
  • 通讯作者: 陈海辉 E-mail:10513482@ceic.com

MECHANISM ANALYSIS AND COUNTERMEASURES FOR THE WEAR OF MAIN AIR DISTRIBUTION PIPE IN THE DMTO REGENERATOR

  • Received:2025-08-11 Revised:2025-09-25 Online:2026-03-12 Published:2026-03-02

摘要: 针对甲醇制烯烃(DMTO)装置再生器主风分布管的严重磨损问题,以某公司DMTO工业装置再生器主风分布管为研究对象,结合现场运行数据与数值模拟结果,揭示了其磨损机制在于:在树枝状分布管内,主风从支管至分支管的流向突变使气流贴壁受阻并局部脱离管壁,形成典型的流动分离现象,此时迎风侧流速高于背风侧,压降异常形成的低压回流区卷吸外部催化剂颗粒倒流,在正向气流和逆向回流协同作用下,催化剂颗粒对喷嘴形成冲蚀磨损。针对上述磨损对工艺的危害,采取以下改进措施:①分支管采用椭圆形截面设计,支管与分支管连接处采用渐扩结构;②陶瓷喷嘴增加包边厚度并改变固定方法,喷涂高硬度涂层减缓冲蚀。结果表明,采取上述措施后,有效抑制了催化剂倒流,恢复了主风分布管设计压降特性,保障了再生器的流化稳定性。

关键词: 甲醇制烯烃, 主风分布管, 磨损机制, 催化剂倒流, 数值模拟

Abstract: In response to the severe erosion problem of the main air distribution pipe in the Methanol to Olefins (DMTO) unit regenerator, this study focuses on the industrial system at a certain company. By integrating field operating data with numerical simulation results, the underlying erosion mechanism is elucidated. Within the branched distribution pipes, the abrupt change in airflow direction from branch to sub-branch causes the near-wall flow to be hindered and locally detached, giving rise to a typical flow separation phenomenon. Under these conditions, the velocity on the windward side exceeds that on the leeward side, and pressure drop anomalies create low-pressure recirculation zones that entrain external catalyst particles back into the pipes. The entrained particles, subjected to the combined action of forward airflow and reverse recirculation, impinge upon and erode the nozzle surfaces. To mitigate this effect, structural optimization strategies were introduced, including elliptical cross-section design and gradually expanding transitions for the sub-branches, reinforcement of ceramic nozzle edges, and the application of high-hardness protective coatings. The results demonstrate that these measures effectively suppress catalyst backflow, restore the designed pressure drop characteristics of the main air distribution pipe, and ensure stable fluidization within the regenerator.

Key words: methanol to olefins, main air distribution pipe, erosion mechanism, catalyst particle backflow, numerical simulation