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Thermodynamic and thermal comfort optimisation of a coastal social house considering the influence of the thermal breeze

机译:考虑热风影响的沿海社区热力和热舒适优化

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Tropical coastal areas are characterised by high levels of wind and solar resources with large potentials to be utilised for low-energy building design. This paper presents a multi-objective optimisation framework capable of evaluating cost-efficient and low-exergy coastal building designs considering the influence of the thermal breeze. An integrated dynamic simulation tool has been enhanced to consider the impacts of the sea-land breeze effect, aiming at potentiating natural cross-ventilation to improve occupants thermal comfort and reduce cooling energy demand. Furthermore, the technological database considers a wide range of active and passive energy conservation measures. As a case study, a two-storey/two-flat detached social house located in the North-Pacific coast of Mexico has been investigated. The optimisation problem has considered the minimisation of: i. annual exergy consumption, ii. life cycle cost, and iii. thermal discomfort. Optimisation results have shown that adequate building orientation and window opening control to optimise the effects of the thermal breeze, combined with other passive and active strategies such as solar shading devices, an improved envelope's physical characteristics, and solar assisted air source heat pumps have provided the best performance under a limited budget. Compared to the baseline design, the closest to utopia design has increased thermal comfort by 93.8% and reduced exergy consumption by 10.3% whilst increasing the life cycle cost over the next 50 years by 18.5% (from US$39,864 to US$47,246). The importance of renewable generation incentives is further discussed as a counter effect measure for capital cost increase as well as unlocking currently high-cost low-exergy technologies.
机译:热带沿海地区的特点是高水平的风和太阳能资源,具有大潜力,可用于低能量建筑设计。本文介绍了一种多目标优化框架,可评估考虑热风的影响的成本效益和低出低的沿海建筑设计。综合动态仿真工具已得到提高,以考虑海上微风效应的影响,旨在提高自然交叉通风,以提高乘员热舒适度,降低冷却能源需求。此外,技术数据库考虑了广泛的主动和被动节能措施。以案例研究为例,研究了位于墨西哥北太平洋海岸的两层/双平分拆社区。优化问题被认为是最小化:i。年度漏光消费,II。生命周期成本和III。热不适。优化结果表明,适当的建筑方向和窗口开口控制,优化热风的效果,结合其他被动和活动策略,如太阳遮阳装置,改进的包络的物理特性和太阳能辅助空气源热泵提供了在有限预算下的最佳表现。与基线设计相比,最接近乌托邦设计的热舒适度提高了93.8%,减少了10.3%,而未来50年的生命周期成本增加18.5%(从39,864美元到47,246美元)。再生生成激励措施的重要性进一步讨论了资本成本增加的反效应措施,以及解锁目前高成本的低漏洞技术。

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