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A novel water heater using injected hydrogen combustion exhaust

机译:一种使用注入氢燃烧废气的新型热水器

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With the aim of mitigating the necessity of water storage when using electric heaters and the losses and pollutant emissions produced by natural gas heaters, this article proposes a water heater based on a gas turbine system, fed with hydrogen and oxygen obtained by electrolysis within the same unit. By applying a thermodynamic analysis to the whole process, a global energy efficiency of 100% can be obtained. This high efficiency makes sense because the electrolysis losses occur in the form of heat losses, which can be used by the cold water. Because the potential of the electrolysis increases, the heat generation due to the electrolysis heat losses increases and, although the electrolysis efficiency is reduced, the global energy efficiency of the water heater remains at 100%. However, the increase in the electrolysis potential also reduces the response speed of the heater, because of the switch in both convection and conduction heat transfer. Convection heat transfer takes place when the combustion exhaust is injected directly in the cold water flow, downstream of the turbine, avoiding the losses associated with a heat exchanger and a high-temperature exhaust. The electrolysis heat losses are transferred to the water by conduction through the electrolyser walls.
机译:为了减轻使用电加热器时储水的必要性以及由天然气加热器产生的损失和污染物排放,本文提出了一种基于燃气轮机系统的热水器,该热水器中充有通过电解获得的氢气和氧气单元。通过对整个过程进行热力学分析,可以获得100%的整体能源效率。这种高效率是有道理的,因为电解损失以热损失的形式出现,可以被冷水利用。因为电解的电势增加,所以由于电解热损失而产生的热量增加,并且尽管电解效率降低,但是热水器的整体能量效率仍保持在100%。然而,由于对流和传导传热的切换,电解电位的增加也降低了加热器的响应速度。当将燃烧废气直接注入涡轮机下游的冷水流中时,就会发生对流传热,从而避免了与热交换器和高温废气相关的损失。电解热损失通过通过电解槽壁的传导传递到水中。

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