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A Controlled Trajectory Rapid Compression and Expansion Machine (CT-RCEM) for Chemical Kinetic Investigations

机译:用于化学动力学调查的受控轨迹快速压缩和膨胀机(CT-RCEM)

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ABSTRACT In this work, we present a controlled trajectory rapid compression and expansion machine (CT-RCEM) for chemical kinetic investigations of fuels, with the unique capability of precise motion control of the piston in the combustion chamber. This capability allows the CT-RCEM to achieve a wider operating range and extreme flexibility of operation as changes in the piston trajectory are made electronically, unlike the conventional rapid compression machines (RCM) that require mechanical intervention. Also, precise motion control of the piston ensures high run-to-run repeatability of the piston trajectory, which in turn, naturally enables the CT-RCEM to achieve highly repeatable pressure and temperature profiles for compression and expansion over the entire operating range. The key novelty of CT-RCEM, however, lies in the new paradigm of experimental investigation that it provides for chemical kinetic studies. The thermodynamic path of the fuel mixture in the combustion chamber during an RCM investigation (essentially pressure and temperature history) is a function of the heat transfer characteristics of the chamber assembly as well as the piston trajectory. Hence, by suitable selection of the piston trajectory, the CT-RCEM allows not only the capability to set the end of compression thermodynamic state (compressed pressure and temperature), but also the flexibility to tailor the entire thermodynamic path, during and after the compression. In this paper, we demonstrate three novel research capabilities realized by tailoring the thermodynamic path – first, ability to systematically investigate the effect of changing the thermodynamic path of compression on the ignition delay of fuels for same end of compression pressure and temperature; second, ability to quench chemical reactions in the entire combustion chamber at any desired stage; and third, ability to investigate ignition delay of fuels for isobaric post-compression conditions by compensating the potential pressure drop due to heat loss with a unique creeping piston trajectory. We conclude with a discussion of the significance of these new research capabilities for chemical kinetic studies, especially autoignition investigations.
机译:摘要在这项工作中,我们提出了一种用于燃料的化学动力学研究的受控轨迹快速压缩和扩展机(CT-RCEM),具有燃烧室中活塞的精确运动控制的独特能力。这种能力允许CT-RCEM实现更宽的工作范围和操作的极端灵活性,因为活塞轨迹的变化是电子方式的,与需要机械干预的传统快速压缩机(RCM)不同。此外,活塞的精确运动控制确保活塞轨迹的高跳动可重复性,这又自然使得CT-RCEM能够实现高度可重复的压力和温度曲线,用于在整个操作范围内压缩和膨胀。然而,CT-RCEM的关键新颖性在于它提供了它提供化学动力学研究的实验研究的新范式。在RCM调查期间燃烧室中的燃料混合物的热力学路径(基本上压力和温度历史)是腔室组件的传热特性以及活塞轨迹的函数。 Hence, by suitable selection of the piston trajectory, the CT-RCEM allows not only the capability to set the end of compression thermodynamic state (compressed pressure and temperature), but also the flexibility to tailor the entire thermodynamic path, during and after the compression 。在本文中,我们展示了三种新的研究能力,通过定制热力学路径来实现,首先,能够系统地研究改变压缩热力学路径对燃料的点火延迟的效果,以在相同的压缩压力和温度结束的燃料的点火延迟;其次,能够在任何所需阶段在整个燃烧室中淬火化学反应的能力;并且第三,通过通过使用独特的爬行活塞轨迹来补偿由于热量损失引起的潜在压降来研究异释压缩条件的燃料点火延迟的能力。我们讨论了这些新的研究能力对化学动力学研究的重要性,尤其是自然调查的重要性。

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