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Hybrid CHP/Geothermal Borehole System for Multi-Family Building in Heating Dominated Climates

机译:加热主导气候中多家庭建筑的混合CHP /地热钻孔系统

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摘要

A conventional ground-coupled heat pump (GCHP) can be used to supplement heat rejection or extraction, creating a hybrid system that is cost-effective for certainly unbalanced climes. This research explores the possibility for a hybrid GCHP to use excess heat from a combined heat power (CHP) unit of natural gas in a heating-dominated environment for smart cities. A design for a multi-family residential building is considered, with a CHP sized to meet the average electrical load of the building. The constant electric output of the CHP is used directly, stored for later use in a battery, or sold back to the grid. Part of the thermal output provides the building with hot water, and the rest is channeled into the GCHP borehole array to support the building’s large heating needs. Consumption and weather data are used to predict hourly loads over a year for a specific multi-family residence. Simulations of the energies exchanged between system components are performed, and a cost model is minimized over CHP size, battery storage capacity, number of boreholes, and depth of the borehole. Results indicate a greater cost advantage for the design in a severely heated (Canada) climate than in a moderately imbalanced (Ohio) climate.
机译:传统的地面耦合热泵(GCHP)可用于补充散热或提取,从而产生一种具有成本效益的混合系统,对于肯定不平衡的渠道。本研究探讨了混合GCHP在用于智能城市的加热主导的环境中使用来自自然气体的组合热功率(CHP)单元的多余热量。考虑了多户住宅建筑的设计,CHP尺寸为满足建筑物的平均电荷。 CHP的恒定电气输出直接使用,存储在电池中以后使用,或销售回电网。部分热量输出为建筑物提供热水,其余部分被引导到GCHP钻孔阵列中,以支持建筑物的大量供暖需求。消费和天气数据用于预测特定的多家庭住所的一年多的每小时负载。执行系统组件之间交换的能量的模拟,并且通过CHP尺寸,电池存储容量,钻孔数和钻孔的深度最小化成本模型。结果表明,在严重加热的(加拿大)气候中的设计方面具有更高的设计优势而不是中等不平衡(俄亥俄州)气候。

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