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Nodal-pressure-based heating flow model for analyzing heating networks in integrated energy systems

机译:基于节点压力的热流模型,用于分析集成能源系统中的加热网络

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District heating technology has prompted the development of integrated energy systems, where energy flow models have been widely used. However, as heating networks become complicated, the traditional mass flow model fails to provide efficient solutions. This study proposes a novel heating flow model based on nodal pressure in heating networks. First, transmission models based on nodal pressure are formulated. Subsequently, nodal conservation models of mass and heating flow are developed. Further, the transmission and nodal conservation models are combined, and thereby nodal pressure and user load are directly correlated. As the number of variables depends only on the nodes, the resulting model is more efficient at adapting to new network connections when the nodes do not change. Moreover, as loop pressure conservation equations are omitted in this model, fewer iterations are required. Owing to the small relative fluctuations of nodal pressure, initial iteration values can be set more effectively in the solution of the proposed model. A case study was conducted, and it was demonstrated that compared with the traditional mass flow model, the proposed model is more effective in adapting to varying network topologies, and the computational burden is significantly reduced. Moreover, the proposed model can be efficiently applied for analyzing energy transmission loss as well as system planning in integrated powergasheat energy systems.
机译:区域供热技术推动了集成能源系统的发展,其中能量流模型已被广泛使用。然而,随着加热网络变得复杂,传统的质量流量模型无法提供有效的解决方案。这项研究提出了一种基于加热网络中节点压力的新型加热流模型。首先,建立基于节点压力的传输模型。随后,建立了质量和热流的节律守恒模型。此外,传输和节点守恒模型相结合,从而节点压力和用户负载直接相关。由于变量的数量仅取决于节点,因此当节点不更改时,生成的模型在适应新的网络连接时会更有效。此外,由于在该模型中省略了回路压力守恒方程,因此所需的迭代次数更少。由于节点压力的相对波动较小,因此在提出的模型的解中可以更有效地设置初始迭代值。进行了案例研究,结果表明,与传统的质量流量模型相比,所提出的模型在适应变化的网络拓扑方面更为有效,并且显着降低了计算负担。此外,所提出的模型可以有效地用于分析能量传输损失以及集成的燃气-热能系统的系统规划。

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