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Thermodynamic based environmental and sustainability assessments of gas flow in a curved annular channel

机译:弯曲环通道中气流的热力学环境和可持续性评估

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The main objective of this research paper is to perform a parametric comparison of gas flow (air and hydrogen) through a curved channel in terms of thermodynamic based environmental and sustainability analysis. For this analysis, the following sustainability indicators which are i) exergetic efficiency (ee), ii) waste exergy ratio (wer), iii) environmental effect factor (eef) and iv) exergetic sustainability index (esi) are defined and estimated in terms of the channel aspect ratio (AR), Dean Number (De) and reference temperature (T-0). Consequently, it is found that ee and esi rise with the increment of De and AR of the curved channel and with the decrease of T-0. However, wer and eef show the opposite behavior. As an important conclusion, air flow through the channel is found to be more exergetic than that of hydrogen under the boundary conditions assumed for the problem. The ee and esi increases with the rise of De while rising with the decrement of T-0. For air, maximum ee and esi values are obtained to be 99.9% and 751.69 incase De is 207.1 and T-0 is 243 K. Adding that, for hydrogen, the maximum ee and esi values have been estimated to be 99.8% and 710.5 while De is 202.3 and T-0 is 243 K. The ee and esi increase with the rise of AR. For air, the maximum ee and esi values are found to be 97.9% and 45.8 while De is equal to 207.1 and AR is 5.5. Also, for hydrogen, the maximum ee and esi values have been calculated to be 97.5% and 38.6 while De is 202.3 and AR is 5.5. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本研究论文的主要目的是在热力学的环境和可持续性分析方面通过弯曲通道进行气流(空气和氢气)的参数比较。对于这种分析,以下可持续性指标是i)exergetic效率(EE),ii)废弃效率(WER),iii)环境效应因子(EEF)和IV)确定和估计了exergets可持续性指数(ESI)信道纵横比(AR),院长(DE)和参考温度(T-0)。因此,发现EE和ESI随着弯曲通道的DE和AR的增量而上升,并且随着T-0的降低。但是,WER和EEF表现出相反的行为。作为一个重要的结论,发现通过通道的空气流动比在假定的边界条件下更省略而不是氢气。 ee和ESI随着DE的升高而随着T-0的衰减而增加。对于空气,获得最大EE和ESI值为99.9%和751.69 INCASE DE是207.1和T-0是243 K.加入氢气,最大EE和ESI值估计为99.8%和710.5 DE是202.3,T-0是243 K. EE和ESI随着AR的升高而增加。对于空气,发现最大EE和ESI值为97.9%和45.8,而DE等于207.1则为5.5。而且,对于氢,最大EE和ESI值已经计算为97.5%和38.6,而DE为202.3和Ar是5.5。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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