Birgani Ali Ghanbari, Assareh Ehsanolah, Ghafouri Ashkan, Jozaei Ali Falavand
Department of Mechanical Engineering, Ahv.C., Islamic Azad University, Ahvaz, Iran.
Department of Mechanical Engineering, Dez.C., Islamic Azad University, Dezful, Iran.
Sci Rep. 2025 Apr 26;15(1):14623. doi: 10.1038/s41598-025-94519-8.
This study presents a detailed analysis of a Co-generation system specifically designed to fulfill energy (Electricity - Cooling - Heating) requirements of a Zero energy building (ZEB) school in Dubai. The proposed system integrates an electric compression chiller, which plays a crucial role in efficiently managing both heating and cooling demands within the educational facility. To generate clean electricity, the system utilizes a combination of advanced technologies, including a steam Rankine cycle turbine, an organic Rankine cycle turbine, and a gas turbine. The main goal of this research is to supply the definition of a ZEB by providing energy consumed by Zero Energy school building (ZESB) with a biomass system. To optimize energy consumption within the building, the innovative Building Energy Optimization Tool (BEopt) is employed, providing insights into energy efficiency improvements. Optimization of the biomass-based energy production system are executed applied EES software (Engineering Equation Solver) alongside the response surface methodology, ensuring a robust analytical framework for performance evaluation. The suggested co-generation consisted of modified Brayton cycle units (biogas fuel), steam Rankine cycle, organic Rankine cycle, and compression chiller for electricity generation, cooling, and heating. Annual energy consumption metrics for the school indicate a total electricity usage of 43,539.48 kWh, with a heating load of 0.94 kWh and a cooling load of 1,115.68 kWh. Through strategic optimization of energy consumption patterns, the system achieves a notable reduction in carbon dioxide emissions, amounting to 24,548.97 kg per year. The optimized energy system operates with an overall efficiency of 31.79% and incurs operational costs estimated at $88.02 per hour. In terms of output generation, the biomass energy system is projected to yield approximately 151,746,087 kWh of electricity, 194,610,878 kWh of heating bar, and 158,962,204 kWh of cooling bar annually. Comparative analysis demonstrates that this innovative biomass-based energy system can effectively meet the school's energy demands throughout the year while contributing to sustainability goals and reducing environmental impact. A comparison of the school's consumption and the system's production showed that 151,702,547.5 kWh of electricity, 194,609,762.3 kWh of heating, and 158,774,864.1 kWh of cooling could be saved in one year to offset costs of co-generation systems. This research underscores the potential for integrating diversified renewable energy technologies in educational settings, thereby promoting sustainable practices within the context of Dubai's commitment to supplying ZEB consumption in its ZEBs by 2050.
本研究详细分析了一种热电联产系统,该系统专为满足迪拜一所零能耗建筑(ZEB)学校的能源(电力 - 制冷 - 供暖)需求而设计。所提出的系统集成了一台电动压缩式冷水机组,该机组在有效管理教育设施内的供暖和制冷需求方面发挥着关键作用。为了产生清洁电力,该系统采用了多种先进技术的组合,包括蒸汽朗肯循环汽轮机、有机朗肯循环汽轮机和燃气轮机。本研究的主要目标是通过生物质系统为零能耗学校建筑(ZESB)所消耗的能源提供定义,从而给出零能耗建筑的定义。为了优化建筑内的能源消耗,采用了创新的建筑能源优化工具(BEopt),以深入了解能源效率的提高情况。应用EES软件(工程方程求解器)并结合响应面方法对基于生物质的能源生产系统进行优化,确保了一个用于性能评估的强大分析框架。所建议的热电联产系统由改进的布雷顿循环单元(沼气燃料)、蒸汽朗肯循环、有机朗肯循环和压缩式冷水机组组成,用于发电、制冷和供暖。该校的年度能源消耗指标显示,总用电量为43,539.48千瓦时,供暖负荷为0.94千瓦时,制冷负荷为1,115.68千瓦时。通过对能源消耗模式的战略优化,该系统实现了二氧化碳排放量的显著减少,每年减少量达24,548.97千克。优化后的能源系统整体运行效率为31.79%,运营成本估计为每小时88.02美元。在发电量方面,生物质能源系统预计每年可产生约151,746,087千瓦时的电力、194,610,878千瓦时的供暖量和158,962,204千瓦时的制冷量。对比分析表明,这种创新的基于生物质的能源系统能够在全年有效满足学校的能源需求,同时有助于实现可持续发展目标并减少环境影响。该校的能耗与系统产量的对比表明,一年内可节省151,702,547.5千瓦时的电力、194,609,762.3千瓦时的供暖量和158,774,864.1千瓦时的制冷量,以抵消热电联产系统的成本。本研究强调了在教育环境中整合多种可再生能源技术的潜力,从而在迪拜致力于到2050年在其零能耗建筑中满足零能耗建筑消费的背景下促进可持续实践。