Potential Performance Enhancement of a Solar Combisystem with an Intelligent Controller

M. Pichler, H. Schranzhofer, A. Heinz, R. Heimrath
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引用次数: 1

Abstract

Solar thermal systems in residential buildings are generally controlled by two-level controllers, which activate solar thermal or at times with low solar radiation auxiliary energy supply into a thermal storage. Simple controllers do not have any information on actual or expected solar radiation. This leads to interference of auxiliary- and solar heat supply, which reduces the share of solar thermal energy fed into the thermal storage. Increasing accuracy of weather forecast data suggests incorporation of this information in the control algorithm. This work analyzes the maximum potential performance enhancement when applying such an intelligent predictive control. Two solar thermal systems with one auxiliary source respectively are designed in TRNSYS – these systems represent the base case. Further, a number of simulations are conducted with minor variations for the plant parameters – this gives generic results for different system configurations. In addition, each system configuration is altered to mimic the behavior of a plant with intelligent predictive control. Comparison of results indicates an improvement potential up to 10% for annual solar fractions and up to 30% for monthly solar fractions. The performance bound with respect to the annual auxiliary energy savings is approximately 8%.
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具有智能控制器的太阳能组合系统的潜在性能增强
住宅建筑中的太阳能热系统一般由两级控制器控制,该控制器激活太阳能热或在低太阳辐射时将辅助能量供应到蓄热系统中。简单的控制器没有任何关于实际或预期太阳辐射的信息。这导致辅助热源和太阳能热源的干扰,从而减少了进入储热系统的太阳能热能的份额。提高天气预报数据的准确性建议将这些信息纳入控制算法。本文分析了应用这种智能预测控制时的最大潜在性能增强。在TRNSYS中分别设计了两个太阳能热系统和一个辅助热源,这些系统代表了基本情况。此外,进行了一些模拟,对工厂参数进行了微小的变化-这给出了不同系统配置的一般结果。此外,每个系统配置被改变以模仿具有智能预测控制的工厂的行为。结果比较表明,年度太阳能组分的改进潜力可达10%,月度太阳能组分的改进潜力可达30%。有关每年辅助能源节约的性能限制约为8%。
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