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Optimizing Supply Air Temperature with ASHRAE 62.1

机译:使用ASHRAE 62.1优化送风温度

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ASHRAE 62 in its 2004 and 2007 has introduced among others two new concepts which are that the ventilation air rate now has two parts (one based on occupants and one based on floor area) and that this rate is now directly linked to the supply airflow to the critical space. On the other hand, design engineers have long been trying to optimize the supply air temperature and move away from the standard 55 °F. Some have opted for cold air supply while others have opted for higher supply temperature. If supply air temperature is reduced, this will surely decrease the supply fan horsepower and duct material. However, this now decreases the supply air to the critical space yielding an increase in the required ventilation rates at the system level for multiple zones VAV systems and subsequently a higher cooling load and energy consumption. The paper derives individual equations linking the ventilation rates to the supply air rates to the cooling capacities. Moreover, the paper will present the result obtained by using MATHEMATICA to differentiate these expressions to obtain the optimum supply temperature for either minimum power or minimum life cycle cost. The resulting equations are complicated in nature. However, they were programmed into a spreadsheet that will able to indicate to the designer the optimum supply temperature based on all of the above inputs.
机译:ASHRAE 62在其2004年和2007年引入了两个新概念,即通风空气速率现在分为两部分(一个基于乘员,一个基于建筑面积),并且该速率现在直接与通气量相关。关键空间。另一方面,设计工程师长期以来一直在尝试优化送风温度并远离标准的55°F。一些选择了冷气供应,而另一些选择了更高的供应温度。如果降低送风温度,则必定会降低送风机的功率和风道材料。然而,这现在减少了向关键空间的供应空气,从而导致多区域VAV系统在系统级别所需的通风率增加,并随后导致更高的冷却负荷和能耗。本文推导了将通风率与送风率与制冷量联系起来的各个方程。此外,本文还将介绍通过使用MATHEMATICA区分这些表达式以获得针对最小功率或最小生命周期成本的最佳电源温度所获得的结果。结果方程本质上很复杂。但是,它们被编程到电子表格中,该电子表格将基于所有以上输入向设计人员指示最佳电源温度。

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  • 来源
    《ASHRAE Transactions》 |2010年第2期|p.33-40|共8页
  • 作者单位

    Senior Engineer at Guttmann & Blaevoet, Sacramento, CA;

    SCEC-Khatib and Alami, Al-Khobar, Saudi Arabia;

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  • 原文格式 PDF
  • 正文语种 eng
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