首页> 外文期刊>Journal of Cleaner Production >Solar and wind assisted heat pump to meet the building air conditioning and electric energy demand in the presence of an electric vehicle charging station and battery storage
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Solar and wind assisted heat pump to meet the building air conditioning and electric energy demand in the presence of an electric vehicle charging station and battery storage

机译:太阳能和风能辅助热泵在有电动汽车充电站和电池存储的情况下满足建筑物的空调和电能需求

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The increasingly widespread use of heat pumps (HPs) for the air conditioning of environments and electric vehicles (EVs) in urban contexts will lead in the short term to an increase in required electricity both on a scale of agglomeration of buildings and of a single building. To address this issue, in this work, an efficient renewable hybrid trigeneration system (RHTS) is analysed to be employed for heating and cooling air conditioning and electricity production. The electric energy is produced by means of an electric renewable hybrid system (ERHS), composed by photovoltaic (PV) and wind systems with a battery storage, which is employed to power the HP, an EV charging station and building electric devices.A methodology that employs different indicators, to be used both in a deterministic and statistical system analysis, was proposed to quantify the average reliability and reliability uncertainty of a hybrid system. In particular, in the statistical analysis, each indicator was subdivided into the average and uncertainty contribution, defined with two different perspectives. The first set of indicators allows quantification of the ERHS capability: to satisfy the overall load by means of the overall PV-wind fraction; to utilize the entire renewable energy produced by means of the utilization factor, to operate in nominal conditions by means of the dimensionless manufacturability; to cover the overall load over time by means of the overall time contemporaneity factor. The second set of indicators permits the comparison of the three different electric loads among them in terms of: renewable energy sent by the ERHS to each load by means of the energy contemporaneity factors; satisfaction of each single load by means of the PV-wind fractions; satisfaction of each single load in relation to the overall load by means of the weighted PV-wind fractions; satisfaction of each single load over time by means of the time contemporaneity factors.For this issue, a dynamic simulation tool, containing sophisticated models and proper algorithms and made up of three subroutines respectively for the building, HP and ERHS systems, was developed. In particular, a new algorithm to simulate the performance of a reversible multi-stage air-source HP was created.By considering an RHTS employed for supplying an office building energy demand located in the Mediterranean area, a weekly deterministic analysis has allowed evaluation of the reliability of the ERHS in the presence and absence of electric storage, while a yearly statistical analysis has allowed the identification of the system configurations with the highest average reliability and lowest reliability uncertainty by varying of the battery capacity, PV and wind power. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在城市环境中,越来越多地将热泵(HP)用于环境空调和电动汽车(EV),这将导致建筑物和单个建筑物的集聚规模所需的电力增加。为了解决这个问题,在这项工作中,分析了一种有效的可再生混合动力三联产系统(RHTS),将其用于加热和冷却空调以及电力生产。电能是通过可再生能源混合动力系统(ERHS)产生的,该系统由光伏(PV)和带有电池存储装置的风能系统组成,可用于为HP,EV充电站和建筑电气设备供电。为了确定混合系统的平均可靠性和可靠性不确定性,提出了使用不同指标(用于确定性和统计系统分析)的方法。特别是,在统计分析中,每个指标都细分为平均值和不确定性贡献,并用两种不同的观点来定义。第一组指标允许量化ERHS能力:通过总的PV风分数满足总负荷;利用利用系数产生的全部可再生能源,通过无量纲可制造性在标称条件下运行;通过整个时间同时性因子覆盖整个时间的总负载。第二组指标允许比较以下三个方面的电力负荷:ERHS通过能源同期性因子将可再生能源发送给每个负荷;通过PV-风分数满足每个单个负载;通过加权的PV风分数满足每个单个负载相对于总负载的满意度;为此,开发了一种动态仿真工具,该工具包含复杂的模型和适当的算法,分别由建筑物,HP和ERHS系统的三个子例程组成,该仿真工具包含复杂的模型和适当的算法。特别是,创建了一种模拟可逆多级空气源HP性能的新算法。考虑到用于满足地中海地区办公楼能源需求的RHTS,每周进行的确定性分析可以评估在存在和不存在蓄电的情况下,ERHS的可靠性很高,而每年的统计分析允许通过改变电池容量,PV和风力来确定具有最高平均可靠性和最低可靠性不确定性的系统配置。 (C)2018 Elsevier Ltd.保留所有权利。

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