用于低速管道流的热质量气流传感器的研制

E. Eoin, Conor Macken, V. Egan
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引用次数: 0

摘要

-本研究旨在开发一种基于量热法的平板大质量气流传感器,该传感器能够测量通常在供暖、通风和空调(HVAC)系统中发现的低速气流。此外,开发一个数值模型,以准确预测传感器设计的流体和热行为。目前的研究结果表明,数值和实验结果非常吻合,预测的前缘温度与实验记录的温度相差在1-2%以内。然而,该误差在后缘增加到最大的8%;在数值模型中加入尾缘襟翼后,这一比例降至3%以下,表明尾翼在尾缘区域内产生了增强的冷却效果。数值模型预测的温度δ平均是实验值的两倍,但速度每增加1 m/s,平均温度变化仍小于0.03℃。结果表明,铜传感器设计不适合质量流量的测量。不锈钢传感器的数值结果表明,从0.069°C到0.49°C的最大温度增量增加了600%。这表明,随后的精度提高是由于不锈钢的热扩散率降低的结果,其比铜低96%。其他发现包括,当加热器尺寸减小时,温度δ值进一步增加,导致最大温度δ值为0.58°C,流速变化1 m/s平均变化0.49°C。由此可见,改进后的量热式气流传感器能够准确预测暖通空调管道系统内的质量流量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a Thermal Mass Airflow Sensor for Low Velocity Ducted Flow Applications
- This study was conducted to develop a flat plate, calorimetric based, mass airflow sensor capable of measuring low-speed flow typically found in heating, ventilation, and air conditioning (HVAC) systems. Moreover, to develop a numerical model that accurately predicts the fluidic and thermal behaviour of the sensor design. Current findings indicate that the numerical and experimental results were in close agreement, with the predicted leading-edge temperatures within 1-2% of those recorded experimentally. However, this error increased in the trailing edge to a maximum of 8%; inclusion of the trailing edge flap within the numerical model reduced this to less than 3%, suggesting that the flap generates enhanced cooling within the trailing region. The temperature deltas predicted by the numerical model were on average twice that of the experimental values, however, the average temperature change was still less than 0.03°C per 1 m/s increase in velocity. It was concluded that the copper sensor design was unsuitable for mass flow measurement. The numerical findings for the stainless-steel sensor indicate a 600% increase in the maximum temperature delta measured from 0.069°C to 0.49°C. Which suggests the subsequent increase in accuracy is a result of the decreased thermal diffusivity of stainless-steel, which is 96% lower than that of copper. Other findings include, a further increase in temperature delta values when the heater size is decreased, resulting in a maximum temperature delta value of 0.58°C and an average change of 0.49°C for a 1 m/s change in flow velocity. Thus, it can be implied that the modified calorimetric airflow sensor would accurately predict the mass flow rates within HVAC ducting systems.
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