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BIOMASS BOUNDARY LAYER TURBINE POWER SYSTEM

机译:生物质边界层涡轮动力系统

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A "Boundary Layer Turbine" (BLT), with a specially designed multiple-disk rotor consisting of a number of closely packed parallel disks fixed to the shaft, was used to demonstrate direct conversion of biomass for small-scale distributed power generation. The turbine operates under the effect of skin friction drag exerted on the parallel plates, resulting from the flow of hot gases between the parallel plates. This concept is well known for its resistance to erosion when pumping viscous fluids, and the technology has been developed for commercial pump applications but not for a turbine. The turbine based on this concept is capable of encountering particle-laden gas and can accept ash-containing biomass fuels. In the present experiments, wood-derived sawdust (particle size ~ 1 mm) and natural oats were fired separately as the test fuels. These fuels were injected directly into the stream of vitiated hot air downstream of the combustor. The location of injection was based on a 1- to 3-second residence time for complete combustion. This paper discusses a performance study and assessment of deposition, erosion, and corrosion (DEC) effects on the working components of the BLT. The potential for cost-effective electricity production from biomass in distributed-generation applications is also explored. The BLT was operated for 40 hours, consuming 68 kg of biomass fuel. The testing included initial firing of 10% biomass (by heating value), increasing to 100%. Documented performance shows isentropic turbine efficiencies of 11% at 3.2 kW and 6284 rpm. Turbine inlet conditions averaged 2.8 bar and 645 K. Over the course of testing, no significant component degradation was observed. The hot components were coated with a small amount of soot, but no deposits were formed that would lead to plugging or buildup in the turbine housing. The results of the study represent the first step toward development of a biomass BLT. It has been demonstrated that no significant barriers should hamper the use of biomass fuels in the rotor; however, isentropic efficiencies will have to be improved to at least 50% to achieve meaningful overall cycle efficiency.
机译:“边界层涡轮”(BLT)具有经过特殊设计的多盘转子,该多盘转子由固定在轴上的许多紧密堆积的平行盘组成,用于演示生物质的直接转化,以进行小型分布式发电。涡轮在平行平板之间的热气流的作用下,在蒙皮摩擦作用下作用在平行平板上。该概念以其在泵送粘性流体时的抗腐蚀能力而闻名,该技术已开发用于商用泵应用,但不适用于涡轮机。基于此概念的涡轮机能够遇到充满颗粒的气体,并且可以接受含灰分的生物质燃料。在本实验中,分别燃烧木材衍生的锯末(粒径约1 mm)和天然燕麦作为测试燃料。这些燃料被直接注入燃烧室下游的热空气流中。喷射位置基于完全燃烧的1至3秒停留时间。本文讨论了性能研究以及沉积,腐蚀和腐蚀(DEC)对BLT工作组件的影响的评估。还探讨了在分布式发电应用中利用生物质进行具有成本效益的电力生产的潜力。 BLT运行了40小时,消耗了68千克生物质燃料。测试包括初始燃烧10%的生物质(按热值计),增加到100%。记录的性能显示,在3.2 kW和6284 rpm的转速下,等熵涡轮机效率为11%。涡轮进口条件平均为2.8 bar和645K。在测试过程中,未观察到明显的部件降解。热的部件上涂有少量的烟灰,但没有形成会导致堵塞或堆积在涡轮机壳体中的沉积物。研究结果代表了开发生物质BLT的第一步。已经证明,没有明显的障碍会阻碍转子中生物质燃料的使用。但是,等熵效率必须提高到至少50%,才能实现有意义的整体循环效率。

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