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Solar thermal trigeneration system in a Canadian climate multi-unit residential building

机译:加拿大气候多单位住宅建筑中的太阳能散热系统

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This paper presents the comparison of several solar thermal, cogeneration and thermally driven heating/cooling central plant systems implemented into a typical mid-rise apartment, located in Calgary, Alberta, Canada. TRNSYS is used to model the system and predict the primary and secondary energy consumption, greenhouse gas (GHG) emissions and annual utility costs of the various systems and compared to the base case. The highest annual utility cost and GHG emission savings was attained by operating a cogeneration device in priority in a solar thermal, cogeneration with absorption heat pump plant, predicting a 21% reduction in the annual utility cost and a 16% reduction in GHG emissions. The system however has a higher secondary energy consumption, 10% above the base case. Operating the solar thermal collectors in priority over the cogeneration unit in the same central plant the greatest primary and secondary energy savings were attained achieving 16% and 18% savings compared to the base case. GHG emission savings of 16% was predicted with both operating strategies. Comparing this system to a cogeneration only system, secondary energy savings of 36% are predicted demonstrating the benefit of adding solar thermal collectors and a thermally driven heat pump to a cogeneration system. Extending the operating period of the solar thermal and cogeneration system by adding a thermally driven chiller did not yield significant primary energy, secondary energy, GHG emission or utility cost savings over a heating only system. This is attributed to extended operating period of the single stage boiler with poor part load performance. Finally, due to the low natural gas utility costs and higher electricity rates, the systems operating the cogeneration system in priority always resulted in the highest utility cost savings and the addition of solar thermal and thermally driven heating/cooling had limited economic benefit.
机译:本文介绍了多个太阳能热量,热电驱加热/冷却中央植物系统的比较,该植物系统进入典型的中间升起公寓,位于加拿大艾伯塔省的卡尔加里。 TRNSYS用于建模系统并预测各种系统的主要和二次能耗,温室气体(GHG)排放量和年度公用事业成本,并与基本情况相比。通过在太阳能热泵厂的太阳能热量的热电联产优先运行的最高年度实用费用和GHG排放节省,预测年度公用事业成本减少21%,温室气体排放减少了16%。然而,该系统具有更高的二次能耗,高于基础壳体的10%。在同一中央工厂的热电联产单位优先运行太阳能热收集器,达到了最大的初级和二次节能,与基本案例相比,储蓄达到了16%和18%。经营策略预测了16%的GHG排放节省。将该系统与电生成的系统相比,预测36%的二次节能36%,证明了将太阳能热收集器和热驱动热泵添加到热电联产系统中的益处。通过添加热电驱动的冷却器延长太阳能热和热电联产系统的运行周期并没有通过仅加热系统产生显着的主要能量,二次能量,温室气体排放或公用事业成本。这归因于单级锅炉的延长运行周期,部分负载性能差。最后,由于天然气公用事业成本低,电力速率较高,优先运行热电联产系统的系统总能节省最高的公用事业成本,并添加太阳能热驱动加热/冷却的经济效益有限。

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