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Hydrogen Blending into the Gas Distribution Grid: The Case Study of a Small Municipality

机译:将氢气混合到气体分配网格中:小型市的案例研究

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Hydrogen blending into the gas network may offer an alternative concept for the storage of the exceeding energy from renewable power sources, improving the flexibility of the energy system through the integration of the electricity and gas networks. This scenario foresees the use of electrolyzers to convert power into hydrogen gas. The gas grid could both provide storage and act as the transport facility of the produced gas, taking advantage of the robustness and extensiveness of an already existing energy infrastructure. In this work, a steady state and multi-species thermal-fluid-dynamic model of the gas network is applied to a portion of the Italian distribution network, located in Emilia-Romagna, covering a surface of 2,900 ha and having a throughput of 8.25 MSm3/year of natural gas. The receiving potential capacity of the existing infrastructure is assessed with respect to hydrogen injection. Fluid-dynamic effects of the hydrogen blending are considered and commented. The maximum allowable percentage of injectable hydrogen is calculated on a nodal basis, referring to the actual gas network configuration. The current Italian regulation on distributed injection (DM 19/02/2007) of gases into the natural gas network only allows injecting gases having nearly the same quality of natural gas (UNI-EN 437), thus excluding any blending practice. However, in the simulated scenario here proposed, it is assumed that gas quality requirements are on the network as a whole (i.e., after blending of hydrogen in the grid) rather than at the single injection point. By exploiting the quality-tracking feature of the model, the constraint of quality assessment at the injection point is thus relaxed.
机译:混合到气体网络中的氢气可以提供从可再生电源的超出能量的存储,通过电力和气体网络的集成来提高能量系统的灵活性。这种情况预计使用电解器将功率转换为氢气。气体网格均可提供储存并充当所生产的气体的运输设施,利用已经现有的能源基础设施的稳健性和广泛性。在这项工作中,将气体网络的稳态和多种热流体动态模型应用于位于艾米利亚 - 罗马纳的意大利分配网络的一部分,覆盖2,900公顷的表面并具有8.25的吞吐量天然气的MSM3 /年。关于氢气注射评估现有基础设施的接收势能。考虑并评论了氢共混的流体动态效应。参考实际气体网络配置,在节点基础上计算可注射氢的最大允许百分比。目前对天然气网络中的气体分布式注射(DM 19/02/2007)的意大利法规仅允许注入具有几乎相同的天然气质量(UNI-EN 437)的气体,从而排除任何混合实践。然而,在这里提出的模拟场景中,假设气体质量要求在网络上作为整体(即,在网格中混合后的氢)而不是在单个注射点。通过利用模型的质量跟踪特征,因此放松了注射点的质量评估的约束。

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