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Development of a Coupled Air and Particle Thermal Model for Engine Icing Test Facilities

机译:发动机结冰试验设施的耦合空气和粒子热模型的研制

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This paper describes a numerical model that simulates the thermal interaction between ice particles, water droplets, and the flowing air applicable during icing wind tunnel tests where there is significant phase-change of the cloud. It has been previously observed that test conditions, most notably temperature and humidity, change when the icing cloud is activated. It is hypothesized that the ice particles and water droplets thermally interact with the flowing air causing the air temperature and humidity to change by the time it reaches the test section. Unlike previous models where the air and particles are uncoupled, this model attempts to explain the observed changes in test conditions by coupling the conservation of mass and energy equations. The model is compared to measurements taken during wind tunnel tests simulating ice-crystal and mixed-phase icing that relate to ice accretions within turbofan engines. The model simulates trends that were experimentally observed, but does not fully explain the measured values. Some possible explanations for this discrepancy are offered. This model, written in MATLAB, is based on fundamental conservation laws and empirical correlations.
机译:本文介绍了一种数值模型,用于模拟冰颗粒,水滴和流动空气之间的热相互作用,在冰风隧道试验期间适用的,其中云的显着相变。先前已经观察到测试条件,最值得注意的温度和湿度,当糖化云激活时变化。假设冰颗粒和水滴与流动空气热相互作用,导致空气温度和湿度随着它到达测试部分而变化。与以前的空气和粒子未耦合的模型不同,这种模型试图通过耦合质量和能量方程的守恒来解释观察到的测试条件的变化。将该模型与风洞试验期间的测量进行比较,模拟冰晶和混合相结合,其涉及涡轮机发动机内的冰累积。该模型模拟了实验观察到的趋势,但没有完全解释测量值。提供了对这种差异的一些可能的解释。在MATLAB中编写的该模型基于基础保护法和实证相关性。

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