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Operation optimization of variable frequency pumps in compound series‐parallel heat transfer systems based on the power flow method

机译:基于潮流法的复合串联-并联传热系统中变频泵的运行优化

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The optimal match of multiple operation parameters in heat transfer systems (HTSs) is the key to trade‐off heat transfer and flow resistance for energy conservation. For a compound series‐parallel HTS, this study applies the power flow model and the driving‐resistance model to build the heat transfer and fluid flow constraints of the whole system directly, instead of individual components. Utilizing these constraints together with the Lagrange multiplier method offers the optimal operating frequencies of each variable frequency pumps (VFP) with the minimum pumping power consumptions under different heat loads. Operating the experiment platform with the optimized parameters shows that the heat load increment in parallel branches only needs to increase the operating frequency of VFP in the related hot‐water loop, whereas the heat load increment in series branches needs to increases the operating frequencies of VSPs in both cold‐water and the corresponding hot‐water loops. When the heat load varies from 10 to 11 kW in the parallel branch, the downstream, and the upstream of the series branch, the total pumping power consumptions of all VFPs increase by 19.45%, 43.86%, and 39.99%, respectively. It means assigning the additional heat load in the parallel branch is more energy efficient.
机译:传热系统(HTS)中多个运行参数的最佳匹配是权衡传热和流动阻力以实现节能的关键。对于复合串联并联HTS,本研究应用功率流模型和行驶阻力模型直接建立了整个系统的传热和流体流动约束,而不是单个组件。将这些约束条件与拉格朗日乘数法一起使用,可以在不同热负荷下以最小的泵浦功率消耗为每个变频泵(VFP)提供最佳的工作频率。以优化的参数运行实验平台表明,并联分支中的热负荷增量仅需要增加相关热水环路中VFP的运行频率,而串联分支中的热负荷增量则需要提高VSP的运行频率。在冷水回路和相应的热水回路中。当并联分支机构,下游分支机构和上游分支机构的热负荷从10 kW变化到11 kW时,所有VFP的总泵浦功耗分别增加了19.45%,43.86%和39.99%。这意味着在并联支路中分配额外的热负荷更加节能。

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