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Modelling of waste heat recovery of a biomass combustion plant through ground source heat pumps-development of an efficient numerical framework

机译:生物质燃烧厂的废热回收利用地源热泵 - 高效数值框架的造型

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摘要

Development of a reliable and convenient dynamic modelling approach for ground source heat pumps remains as an important unresolved issue. As a remedy, in this work a novel, computationally-efficient modelling framework is developed and rigorously validated. This is based upon an implicit computational modelling approach of the ground together with an empirical modelling of heat and fluid flow inside U-tube ground heat exchangers and waste heat calculations. The coupled governing equations are solved simultaneously and the influences of parameters on the performance of the whole system are evaluated. The outcomes of the developed framework are, first, favorably compared against two different existing cases in the literature. Subsequently, the underground storage and recovery process of the waste heat through flue gases generated by a biomass combustion plant are modelled numerically. This reveals the history of temperature distributions in the ground under different configurations of the system. The results show that for a biomass combustion plant generating flue gases at 485.9 K as waste heat with the mass flow rate of 0.773 kg/s, the extracted heat from the ground is increase by 7.6%, 14.4% and 23.7% per unit length of the borehole corresponding to 40 degrees C, 50 degrees C and 60 degrees C storage temperatures. It is further shown that the proposed storage system can recover a significant fraction of the thermal energy otherwise wasted to the atmosphere. Hence, it practically offers a sizable reduction in greenhouse gas emissions.
机译:开发用于地源热泵的可靠和方便的动态建模方法仍然是一个重要的未解决问题。作为补救措施,在这项工作中,开发并严格验证了一种新颖的计算有效的建模框架。这是基于地面的隐式计算建模方法以及U形管接地热交换器内部的热和流体流动的经验建模和废热计算。耦合的控制方程同时解决,评估参数对整个系统性能的影响。首先,发达框架的结果是在文献中的两种不同现有病例中比较。随后,通过生物质燃烧厂产生的烟道气体的废热的地下储存和恢复过程在数值上进行了建模。这揭示了在系统的不同配置下地面温度分布的历史。结果表明,对于生物质燃烧植物,在485.9 k下产生烟道气,随着物质流量为0.773kg / s的废热,来自地面的提取热量为每单位长度为7.6%,14.4%和23.7%对应于40℃,50℃和60摄氏度的钻孔的钻孔。进一步示出了所提出的存储系统可以恢复诸如浪费在大气中的显着的热能分数。因此,它实际上提供了温室气体排放的大量减少。

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