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A 1-dimensional continuous and smooth model for thermally stratified storage tanks including mixing and buoyancy

机译:用于热分层储罐的一维连续平滑模型,包括混合和浮力

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To mitigate the effects of the intermittent generation of renewable energy sources, reliable and efficient energy storage is critical. Since nearly 80% of households energy consumption is destined to water and space heating, thermal energy storage is particularly important. In this context, we propose and validate a new model for one of the most efficient heat storage systems: stratified thermal storage tanks. The novelty of the model is twofold: first, unlike the non-smooth models from the literature, it identifies the mixing and buoyancy dynamics using a smooth and continuous function. This smoothness property is critical to efficiently integrate thermal storage vessels in optimization and control problems. Second, unlike models from literature, it considers two types of buoyancy: slow, linked to naturally occurring buoyancy, and fast, associated with charging/discharging effects. As we show, this distinction is paramount to identify accurate models. To show the relevance of the model, we consider a real tank that can satisfy heat demands up to 100 kW. Using real data from this vessel, we validate the proposed model and show that the estimated parameters correctly identify the physical properties of the vessel. Then, we employ the model in a control problem where the vessel is operated to minimize the cost of providing a given heat demand and we compare the model performance against that of a non-smooth model from literature. We show that: (1) the smooth model obtains the best optimal solutions; (2) its computation costs are 100 times cheaper; (3) it is the best alternative for use in real-time model- based control strategies, e.g. model predictive control.
机译:为了减轻间歇性产生可再生能源的影响,可靠和有效的能量存储至关重要。由于将近80%的家庭能耗用于水和空间供暖,因此热能存储尤为重要。在这种情况下,我们提出并验证了最有效的储热系统之一的新模型:分层储热罐。该模型的新颖性有两个方面:首先,不同于文献中的非光滑模型,它使用平滑和连续的函数识别混合和浮力动力学。这种光滑度特性对于有效地将储热容器整合到优化和控制问题中至关重要。其次,与文献模型不同,它考虑了两种类型的浮力:慢速(与自然发生的浮力有关)和快(与充电/放电效果相关)。正如我们所展示的,这种区别对于识别准确的模型至关重要。为了显示模型的相关性,我们考虑一个可以满足高达100 kW热量需求的真实储罐。使用该船的实际数据,我们验证了提出的模型,并表明估计的参数正确地识别了船的物理特性。然后,我们在控制问题中采用该模型,在该问题中,对容器进行操作以最大程度地降低提供给定热量需求的成本,并且将模型性能与文献中的非光滑模型进行了比较。我们证明:(1)平滑模型获得最佳的最优解; (2)计算成本便宜100倍; (3)这是用于基于模型的实时控制策略的最佳选择。模型预测控制。

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