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首页> 外文期刊>Applied Energy >Sensitivity analysis of Double Transmission Double Expansion (DTDE) systems for assessment of the environmental impact of recovering energy waste in exhaust air from compressed air systems
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Sensitivity analysis of Double Transmission Double Expansion (DTDE) systems for assessment of the environmental impact of recovering energy waste in exhaust air from compressed air systems

机译:从压缩空气系统评估恢复排气中恢复能量垃圾环境影响的双传输双膨胀(DTDE)系统的敏感性分析

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This paper focuses on energy savings from compressed air that is removed (expanded) through muffles into the ambient environment. We present a novel analysis of the Double Transmission Double Expansion (DTDE) approach as part of thermodynamic cycles, a new collector system and a significant improvement in the internal construction of our Energy Harvester Unit (EHU). It means necessary research tests that will improve the environmental impact of any pneumatic machine operating on an industrial scale, and will also guarantee that the introduction of back pressure will not interfere with the normal operation of the machine. In this way, we are able to compensate for the over-scaling of the pneumatic machine. Analysis of DTDE thermodynamic cycles reveals a decrease in gauge pressure in dead volumes, which reduces "dead work" in the operating cylinders within the associated devices. To connect our EHU with an operating machine, we need to develop a collector system. Such system is an intermediate installation that automatically starts the pressure level in the back pB to an acceptable level when the pneumatic machine operates in the same way as mentioned earlier. Thus, the waste of power pBYB is constant, so the volumetric flow ?VB should also work automatically. In this way we can adapt any operating condition of the exhaust part of the pneumatic machine to the necessary condition required by the EHU. Finally, the DTDE approach has been assessed using two environmental factors that analyse electricity consumption and decrease the operation time of the compressor. To prove this concept, industrial tests on a small scale have been carried out. We are also changing the internal construction of the EHU by introducing a slide-crank mechanism instead of the gear system (gear wheel rack) used previously. This modification ensures a significant improvement in electricity savings achieved, from 4% to 11%. Short calculations of annual cost savings (ACS) for the DTDE indicate savings of about 1/3 of the compressor's operating costs. It brings more benefits in terms of practical solutions for energy management systems. According to the results, we are able to propose and analyse Closed Cycle (CC) and Exhaust Air Recirculation (EAR) methods that manage the air power which exits through the machine outputs, i.e. mufflers. We were surprised by the amount of annual cost savings (ACS) for the new CC and EAR concepts compared to DTDE. However, we want to emphasise that CC and EAR calculations did not take into account losses due to leakages, friction along the length of the pipeline, as well as the low efficiency of the booster. Therefore, in practice, the real savings of the CC and EAR concepts are unknown and are still waiting for confirmation.
机译:本文侧重于从压缩空气中节省的节能(扩展)通过悬位数进入周围环境。我们提出了对热力学循环的一部分的双重传输双重扩展(DTDE)方法的新型分析,新的收集器系统和我们能源收割机单元内部建设的重大改进。这意味着需要改善在工业规模上运行的任何气动机器的环境影响的必要研究测试,也将保证背压的引入不会干扰机器的正常运行。通过这种方式,我们能够弥补气动机器的过度缩放。 DTDE热力学循环分析显示死体积中的测量压力降低,这减少了相关装置内的操作缸中的“死效”。要将我们的EHU与操作机器连接,我们需要开发收集系统。这种系统是一种中间安装,当气动机器以与前面提到的方式操作时,自动启动背部PB中的压力水平到可接受的水平。因此,浪费PyB是恒定的,因此体积流量?VB也应该自动工作。通过这种方式,我们可以将气动机器的排气部分的任何操作条件适应EHU所需的必要条件。最后,使用两个环境因素评估了DTDE方法,这些因素分析了电力消耗并降低了压缩机的操作时间。为了证明这一概念,已经进行了小规模的工业测试。我们还通过引入先前使用的齿轮系统(齿轮架)来改变EHU的内部结构。该改造确保了实现的电力节省的显着提高,从4%到11%。 DTDE的年度成本节约(ACS)的简短计算表明,节省了大约1/3的压缩机运营成本。它对能源管理系统的实用解决方案带来了更多的好处。根据结果​​,我们能够提出和分析闭环(CC)和排气再循环(耳)方法,该方法管理通过机器输出的空气电力,即消声器。与DTDE相比,我们对新CC和耳朵概念的年度成本节省(ACS)的数量感到惊讶。然而,我们希望强调CC和耳朵计算由于泄漏而未考虑损失,沿管道长度的摩擦,以及助推器的低效率。因此,在实践中,CC和EAR概念的实际储蓄是未知的并且仍在等待确认。

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