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Developing and testing a generic micro-combined heat and power model for simulations of dwellings and highly distributed power systems

机译:开发和测试用于住宅和高度分散的电力系统模拟的通用微型热电组合模型

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摘要

This paper elaborates an approach to the modelling of domestic micro-combined heat and power (μ-CHP) using a building simulation tool that can provide a detailed picture of the environmental performance of both the μ-CHP heating system and the dwelling it serves. The approach can also provide useful data for the modelling of highly distributed power systems (HDPS). At the commencement of the work described in this paper no μ-CHP device model that was compatible with a building simulation tool was available. The development of such a model is described along with its calibration and verification. The simulation tool with the device model was then applied to the analysis of a dwelling with a Stirling engine-based heating system. Different levels of thermal insulation and occupancy types were modelled. The energy and environmental performance of the μ-CHP device was quantified for each case; additionally, the potential for its participation in the control and operation of an HDPS was assessed. Analysis of the simulation results indicated that the parasitic losses associated with the μ-CHP system balance of plant reduced the overall heating system efficiency by up to 40 per cent. Performance deteriorated with increasing levels of insulation in the dwelling, resulting in reduced thermal efficiency and increased cycling, though overall fuel use was reduced. The analysis also indicated that the device was generally available to participate in HDPS control for greater than 90 per cent of the simulation time. The potential length of the participation time ranged from 1 to 800+min and depended upon the state of the μ-CHP system thermal buffer and prevailing heat loads. Probabilities for different participation times and modes were calculated.
机译:本文阐述了一种使用建筑模拟工具对家用微型热电联产(μ-CHP)进行建模的方法,该工具可以提供μ-CHP加热系统及其所服务住宅的环境性能的详细信息。该方法还可以为高分布式电源系统(HDPS)建模提供有用的数据。在本文所述的工作开始之初,没有与建筑物模拟工具兼容的μ-CHP设备模型。描述了这种模型的开发及其校准和验证。然后将带有设备模型的仿真工具应用于基于斯特林发动机的加热系统的住宅分析。对不同级别的隔热和居住类型进行了建模。每种情况下都对μ-CHP装置的能量和环境性能进行了量化;此外,评估了其参与HDPS控制和操作的潜力。对模拟结果的分析表明,与工厂的μ-CHP系统平衡相关的寄生损失使整个供热系统效率降低了多达40%。随着住宅中绝热水平的提高,性能下降,导致热效率降低,循环次数增加,尽管减少了总燃料使用量。分析还表明,该设备通常可以在90%以上的仿真时间内参与HDPS控制。参与时间的潜在长度范围为1至800 + min,并取决于μ-CHP系统热缓冲液的状态和主要的热负荷。计算了不同参与时间和方式的概率。

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