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Influence of Cowl Surface Temperature On Air Conditioning Load

机译:牛仔表面温度对空调负荷的影响

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The current investigation focuses on the heat pick up by the air as it flows into the cowl from one end to the blower unit intake. Tests were conducted on a number of current production vehicles. The following are the major conclusions from this study: 1. A study of 8 current production vehicles revealed that the cowl surface was significantly heated resulting in an increased air temperature as it flows into the blower intake through the cowl. 2. Based on the wind tunnel data, the sheet metal cowl channel is heated up to 50~63°C at highway speeds and up to 85°C at idle. 3. Hence, in OSA mode the ambient air is heated up by the hot channel surface as it travels from the cowl inlet to the blower unit that result in increasing the evaporator loads by significant levels, thereby, increasing the vent outlet temperature. 4. Tests were conducted by removing the cowl cover to determine the maximum potential of improvements (to prevent air from being heated up in the cowl channel). This resulted in improvements of the vent outlet temperatures from 2.5~5°C. This shows that significant improvements of the vent temperatures can be realized by improving design of the cowl to minimize heat pickup. 5. Finally, attempts were made to insulate the cowl of a few vehicles by using commercially available insulation. This significantly reduced the effective flow area of the cowl resulting in an increased pressure drop and noise level. This is the first paper in the public domain that discusses the influence of the cowl surface temperature on the air conditioning load.
机译:目前的调查专注于空气中的热量,因为它从一端流入鼓风机单元摄入量。测试是在许多当前生产车辆上进行的。以下是本研究的主要结论:1。对8个当前生产车辆的研究表明,由于流入鼓风机进气量,导致涡流表面显着加热,导致通孔进入鼓风机的气温增加。 2.根据风洞数据,金属板电流通道在公路速度下加热至50〜63°C,怠速高达85°C。因此,在OSA模式下,在从罩口进入鼓风机单元的情况下,通过热通道表面加热环境空气,从而导致蒸发器负载增加,从而增加了通气口温度。 4.试验是通过除去前罩盖,以确定改进的最大电势进行(以防止空气从车颈通道被加热)。这导致从2.5〜5℃的通气出口温度改善。这表明通过改善罩的设计来实现通风温度的显着改进,以最小化热拾取。最后,尝试通过使用市售的绝缘来使少数车辆的罩绝缘。这显着降低了牛仔队的有效流动面积,导致压降和噪声水平增加。这是公共领域中的第一篇论文,讨论了牛仔表面温度对空调负荷的影响。

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