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Technology advances in compressor and turbine abradables

机译:压缩机和透平磨料的技术进步

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Abradable seals have been used in jet engines since the late 1960's. Today they are seeing applications in low pressure and high pressure sections of compressors as well as the high pressure turbine module of jet engines. Clearance control systems using abradable coatings are also gaining ever more attention in industrial and steam turbine applications. Thermal spraying is a relatively simple and cost effective means to apply abradable seals. Abradable coatings work by minimizing gaps between rotating and stationary components by allowing the rotating parts to cut into the stationary ones. Typically plasma and combustion spray processes are used for applying abradable coatings. The types of coatings employed in the HP turbine are zirconia based abradable material systems with polymer and, in some cases, solid lubricant additions such as hexagonal boron nitride. The coatings are designed to work at service temperatures of up to 1200℃. Types of matrix materials used in the low and high pressure sections of the compressor are aluminum-silicon, nickel and MCrAlY based systems. These compressor type systems typically also contain fugitive phases of polymer and/or solid lubricants such as hexagonal boron nitride or graphite. Operating temperature, depending on the material of choice, can be up to 750℃. Regardless of the specific application, fugitive phases and porosity are needed for abradable coatings. Polymers are used to create and control porosity in plasma sprayed coatings, a critical design reqirement in adjusting abradability and erosion properties of thermal spray coatings. Combustion spray coatings generate porosity through the lower deposition velocities and temperatures compared to plasma and typically do not need polymer phases. Solid lubricants are added to help weaken the structure of thermal spray coatings and reduce frictional heating and material transfer to the blade.
机译:自1960年代末以来,耐磨密封件已用于喷气发动机。今天,他们看到了在压缩机的低压和高压部分以及喷气发动机的高压涡轮模块中的应用。使用耐磨涂层的间隙控制系统也越来越受到工业和蒸汽轮机应用的关注。热喷涂是施加耐磨密封件的相对简单且具有成本效益的方式。可磨蚀的涂层通过允许旋转零件切成静止零件来最小化旋转零件和静止零件之间的间隙来工作。通常,等离子和燃烧喷涂工艺用于涂覆耐磨涂层。 HP涡轮机中使用的涂层类型是基于氧化锆的可磨耗材料系统,该系统具有聚合物,在某些情况下还添加了固体润滑剂,例如六方氮化硼。该涂料设计用于最高1200℃的工作温度。压缩机的低压和高压部分使用的基体材料类型为铝硅,镍和MCrAlY基系统。这些压缩机类型的系统通常还包含聚合物和/或固体润滑剂(例如六方氮化硼或石墨)的逸散相。根据所选材料的不同,工作温度最高可达750℃。不管具体应用如何,耐磨涂层都需要短效相和孔隙度。聚合物用于在等离子喷涂涂层中产生和控制孔隙率,这是调节热喷涂涂层的耐磨性和侵蚀性能的关键设计要求。与等离子体相比,燃烧喷涂涂层通过较低的沉积速度和温度产生孔隙,并且通常不需要聚合物相。添加固体润滑剂可帮助削弱热喷涂涂层的结构,并减少摩擦热和材料向叶片的转移。

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