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Integration of distributed generation systems into generic types of commercial buildings in California

机译:将分布式发电系统集成到加利福尼亚的普通类型的商业建筑中

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Distributed generation (DG) of combined cooling, heat, and power (CCHP) has been gaining momentum in recent years as an efficient, secure alternative for meeting increasing power demands in the world. One of the most critical and emerging markets for DG-CCHP systems is commercial and institutional buildings. The present study focuses analysis on the main economic, energy-efficiency, and environmental impacts of the integration of three types of advanced DG technologies (high-temperature fuel cells, micro-turbines, and photovoltaic solar panels) into four types of representative generic commercial building templates (small office building, medium office building, hospital, and college/school) in southern California (e.g., mild climate), using eQUEST as energy simulation tool. Detailed load profiles for the four commercial building types during times of peak electric and peak gas consumption were analyzed and complementary strategies to further increase overall building energy efficiencies such as energy efficiency measures (e.g., day lighting, exterior shading, improved HVAC performance) and thermally activated absorption cooling were also investigated. Results show that the high-temperature fuel cell (HTFC) performance is best matched with the hospital energy loads, resulting in a 98% DG capacity factor, 85% DG heat recovery factor, and $860,000 in energy savings (6 years payback). The introduction of thermally driven double-effect absorption cooling (AC) in the college building with HTFC reduces significantly the building electricity-to-thermal load ratio and boosts the heat recovery factor from 37% to 97%.
机译:近年来,作为冷却,热电联产(CCHP)的分布式发电(DG)作为满足世界上不断增长的电力需求的一种高效,安全的替代方案,其势头越来越大。 DG-CCHP系统的最关键和新兴市场之一是商业和机构建筑物。本研究重点分析将三种类型的先进DG技术(高温燃料电池,微型涡轮机和光伏太阳能电池板)整合为四种类型的代表性通用商业产品的主要经济,能效和环境影响使用eQUEST作为能源模拟工具,在加利福尼亚州南部(例如气候温和)构建建筑物模板(小型办公楼,中型办公楼,医院和学院/学校)。分析了在用电高峰和用气高峰期间四种商业建筑类型的详细负载曲线,并采取了补充策略以进一步提高建筑的整体能效,例如能效措施(例如,日间照明,外部遮阳,改善的HVAC性能)和热能。还研究了活化吸收冷却。结果表明,高温燃料电池(HTFC)的性能与医院的能量负荷最匹配,可实现98%的DG容量系数,85%的DG热回收系数以及860,000美元的能源节省(6年的回报)。在带有HTFC的大学建筑中引入热驱动双效吸收式制冷(AC)可以显着降低建筑物的电热负荷比,并将热回收率从37%提高到97%。

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