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A comparative study between a Rankine cycle and a novel intra-cycle based waste heat recovery concepts applied to an internal combustion engine

机译:朗肯循环与基于循环的新型余热回收概念应用于内燃机的比较研究

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摘要

A novel intra-cycle waste heat recovery (ICWHR) methodology, applied to an internal combustion engine is presented in this study. Through a split type thermodynamic cycle design, quasi-isothermal compression of the charge air and isobaric combustion of the air/fuel mixture can be performed separately in two chambers. Within such a design, the exhaust heat can be recovered to the intake air flow between the compression chamber and combustion chamber. Consequently, the recovered energy can be re-utilized in the combustor directly, and an intra-cycle waste heat recovery process can be achieved. To investigate the fundamental aspects of this new methodology, a comparative study between the conventional Rankine based WHR and the new ICWHR was undertaken. Both theoretical and numerical analysis were applied to evaluate the performance characteristics of these two technologies. The ICWHR cycle differs from the Rankine cycle in that an energy conversion subsystem is not necessary since the recovered energy is sent back to the combustion chamber directly, and then the system efficiency is improved significantly. Furthermore, the theoretical results indicate that the full cycle efficiency of ICWHR system is determined by the regeneration effectiveness, the compression ratio and the fuel equivalence ratio, then the limitations of Rankine cycle, such as working fluid selection and system parameter calibration can be avoided mechanically. Finally, through a one dimensional system model, analysis of optimal operation range, system efficiency and the heat transfer behaviours of ICWHR system are discussed in this paper and comparisons made with a Rankine cycle WHR system. (C) 2016 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license.
机译:在这项研究中提出了一种新颖的循环内余热回收(ICWHR)方法,该方法应用于内燃机。通过分体式热力循环设计,增压空气的准等温压缩和空气/燃料混合物的等压燃烧可以在两个腔室内分别进行。在这种设计中,可以将废热回收到压缩室和燃烧室之间的进气流中。因此,回收的能量可以直接在燃烧器中重新利用,并且可以实现循环内废热回收过程。为了研究这种新方法的基本方面,进行了传统基于兰金的WHR和新ICWHR的比较研究。理论和数值分析均被用于评估这两种技术的性能特征。 ICWHR循环与Rankine循环的不同之处在于,不需要能量转换子系统,因为回收的能量会直接发送回燃烧室,从而大大提高了系统效率。理论结果表明,ICWHR系统的全循环效率取决于再生效率,压缩比和燃料当量比,从而可以机械地避免朗肯循环的局限性,如工作液选择和系统参数校准。 。最后,通过一维系统模型,对ICWHR系统的最佳工作范围,系统效率和传热性能进行了分析,并与朗肯循环WHR系统进行了比较。 (C)2016作者。由Elsevier Ltd.发行。这是CC BY许可下的开放访问文章。

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