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Analysis of Experimental Characteristics of Multistage Steam-Jet Electors of Steam Turbines

机译:汽轮机多级蒸汽喷射器实验特性分析

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A series of questions for specification of physical gas dynamics model in flow range of steam-jet unit and ejector computation methodology, as well as functioning peculiarities of intercoolers, was formulated based on analysis of experimental characteristics of multistage team-jet steam turbines. It was established that coefficient defining position of critical cross-section of injected flow depends on characteristics of the "sound tube" zone. Speed of injected flow within this tube may exceed that of sound, and pressure jumps in work-steam decrease at the same time. Characteristics of the "sound tube" define optimal axial sizes of the ejector. According to measurement results, the part of steam condensing in the first-stage coolant constitutes 70-80% of steam amount supplied into coolant and is almost independent of air content in steam. Coolant efficiency depends on steam pressure defined by operation of steam-jet unit of ejector of the next stage after coolant of steam-jet stage, temperature, and condensing water flow. As a rule, steam entering content of steam-air mixture supplied to coolant is overheated with respect to saturation temperature of steam in the mixture. This should be taken into account during coolant computation. Long-term operation causes changes in roughness of walls of the ejector's mixing chamber. The influence of change of wall roughness on ejector characteristic is similar to the influence of reverse pressure of the steam-jet stage. Until some roughness value, injection coefficient of the ejector stage operating in superlimiting regime hardly changed. After reaching critical roughness, the ejector switches to prelimiting operating regime.
机译:在分析多级团队喷射蒸汽轮机的实验特性的基础上,提出了一系列有关规范蒸汽喷射单元流量范围内的物理气体动力学模型和喷射器计算方法以及中间冷却器功能特性的问题。已经确定,限定喷射流的临界横截面的位置的系数取决于“声管”区域的特性。在该管内注入的流速可能会超过声音的流速,同时工作蒸汽中的压力跳跃会同时降低。 “声管”的特性定义了喷射器的最佳轴向尺寸。根据测量结果,第一级冷却剂中冷凝的蒸汽部分占供应到冷却剂中的蒸汽量的70-80%,并且几乎与蒸汽中的空气含量无关。冷却剂效率取决于蒸汽压力,该压力由蒸汽喷射级冷却剂之后的下一级喷射器的蒸汽喷射单元的运行,温度和冷凝水流量确定。通常,相对于混合物中的蒸汽的饱和温度,进入到冷却剂的蒸汽-空气混合物的进入蒸汽的含量过热。计算冷却剂时应考虑到这一点。长期运行会导致喷射器混合室壁的粗糙度发生变化。壁面粗糙度的变化对喷射器特性的影响类似于蒸汽喷射级的反向压力的影响。直到达到一定的粗糙度值,在超限状态下工作的喷射器级的喷射系数几乎不变。达到临界粗糙度后,弹出器将切换到限制运行状态。

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