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Effects of piston speed, compression ratio and cylinder geometry on system performance of a liquid piston

机译:活塞速度,压缩比和气缸几何形状对液体活塞系统性能的影响

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摘要

Energy storage systems are being more important to compensate irregularities of renewable energy sources and yields more profitable to invest. Compressed air energy storage (CAES) systems provide sufficient of system usability, then large scale plants are found around the world. The compression process is the most critical part of these systems and different designs must be developed to improve efficiency such as liquid piston. In this study, a liquid piston is analyzed with CFD tools to look into the effect of piston speed, compression ratio and cylinder geometry on compression efficiency and required work. It is found that, increasing piston speeds do not affect the piston work but efficiency decreases. Piston work remains constant at higher than 0.05 m/s piston speeds but the efficiency decreases from 90.9 % to 74.6 %. Using variable piston speeds has not a significant improvement on the system performance. It is seen that, the effect of compression ratio is increasing with high piston speeds. The required power, when the compression ratio is 80, is 2.39 times greater than the power when the compression ratio is 5 at 0.01 m/s piston speed and 2.87 times greater at 0.15 m/s. Cylinder geometry is also very important because, efficiency, power and work alter by L/D, D and cylinder volume respectively.
机译:能量存储系统对于补偿可再生能源的不规则性和产生更大的投资收益变得越来越重要。压缩空气能量存储(CAES)系统提供了足够的系统可用性,然后在世界范围内找到了大型工厂。压缩过程是这些系统中最关键的部分,必须开发不同的设计以提高效率,例如液体活塞。在这项研究中,使用CFD工具分析了液体活塞,以研究活塞速度,压缩比和气缸几何形状对压缩效率和所需工作的影响。已经发现,增加活塞速度不会影响活塞工作,但是效率会降低。活塞工作在高于0.05 m / s的活塞速度时保持恒定,但效率从90.9%降低到74.6%。使用可变的活塞速度对系统性能没有显着改善。可以看出,压缩比的影响随着高活塞速度而增加。当压缩比为80时,所需功率是在0.01 m / s活塞速度下压缩比为5时的功率的2.39倍,在0.15 m / s时是2.87倍时的功率。气缸几何形状也非常重要,因为效率,功率和功分别受L / D,D和气缸体积的影响。

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