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Measurement and modeling of heat transfer characteristics in a rapid compression machine

机译:快速压缩机中传热特性的测量与建模

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The study of autoignition characteristics of fuel-oxidizer mixtures in rapid compression machines (RCMs) requires accurate characterization of the core gas region, where most of the reaction occurs. In most RCMs the core temperature is not uniform, being disturbed by the roll-up of the thermal boundary layer. The present device was designed to avoid that effect by incorporating a crevice on the piston heat that can contain the thermal boundary layer and create well defined core conditions. In order to verify these assumptions, a heat transfer model has been developed that maintains simplicity while including the effects of heat transfer and piston crevice volume. This modal can be easily incorporated into chemical kinetic simulations to include the effect of heat transfer on the core temperatures in the study of autoignition. Comparison of model predictions and measurements of the pressure history in a rapid compression machine are presented. Results show that the simple heat transfer model is able to reproduce the measured pressure profiles prior to autoignition over a wide range of conditions for the specially designed piston, and that heat losses in the normal piston are larger than the stationary gas conduction model indicates.
机译:快速压缩机(RCMS)中燃料氧化剂混合物的自燃特性研究需要精确表征芯气区域,其中大部分反应发生。在大多数RCMS中,核心温度不均匀,受到热边界层的卷起干扰。本装置被设计成避免通过在活塞热上纳入缝隙来避免这种效果,这些缝隙可以包含热边界层并产生良好的定义核心条件。为了验证这些假设,已经开发了一种传热模型,其保持简单性,同时包括传热和活塞缝隙体积的效果。这种模态可以容易地结合到化学动力学模拟中,以包括传热对自燃研究中的核心温度的影响。提出了一种快速压缩机中压力历史的模型预测和测量的比较。结果表明,简单的传热模型能够在自燃之前再现测量的压力轮廓在特殊设计的活塞的宽范围条件下,并且正常活塞中的热损失大于固定气体传导模型。

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