采用分区法对带有变风量空调系统的办公环境进行热建模,以便于控制系统应用

IF 3.2 4区 工程技术 Q3 ENERGY & FUELS
Mahdi Rastegar-Moghadam, Yadollah Farzaneh, Seyed Mohammad Yasoubi
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引用次数: 0

摘要

适当的热建模是控制热舒适度和降低能耗的第一步。本文考虑了采用变风量(VAV)系统的办公房间的热建模问题。对各种热建模方法进行了综述,最后选择了分区法。所选方法的主要优点是表述简单,但结果仍然精确。此外,输出方程为状态空间形式,适合控制应用。热模型是通过考虑办公室内的气流模式获得的。所获模型的主要特点之一是适用于冬季和夏季条件。DesignBuilder 软件也用于验证热模型。结果表明,所获得的热模型在所有天气条件下都非常准确。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Thermal modeling of an office environment with variable volume air condition system using zonal method for control system applications

Thermal modeling of an office environment with variable volume air condition system using zonal method for control system applications

Thermal modeling of an office environment with variable volume air condition system using zonal method for control system applications

Appropriate thermal modeling is the first step in controlling thermal comfort and reducing energy consumption. In this article, the thermal modeling of an office room with a variable air volume (VAV) system is considered. Various thermal modeling methods are reviewed, and finally, the zonal method is selected. The main advantage of the selected method is its simple formulation but still accurate results. Furthermore, the output equations are in the state-space forms which are suitable for control applications. The thermal model is obtained by considering the airflow patterns in the office room. One of the key features of the obtained model is its applicability to winter as well as summer conditions. DesignBuilder software is also used to validate the thermal model. Results indicate the accuracy of the obtained thermal model in all weather conditions.

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来源期刊
Energy Efficiency
Energy Efficiency ENERGY & FUELS-ENERGY & FUELS
CiteScore
5.80
自引率
6.50%
发文量
59
审稿时长
>12 weeks
期刊介绍: The journal Energy Efficiency covers wide-ranging aspects of energy efficiency in the residential, tertiary, industrial and transport sectors. Coverage includes a number of different topics and disciplines including energy efficiency policies at local, regional, national and international levels; long term impact of energy efficiency; technologies to improve energy efficiency; consumer behavior and the dynamics of consumption; socio-economic impacts of energy efficiency measures; energy efficiency as a virtual utility; transportation issues; building issues; energy management systems and energy services; energy planning and risk assessment; energy efficiency in developing countries and economies in transition; non-energy benefits of energy efficiency and opportunities for policy integration; energy education and training, and emerging technologies. See Aims and Scope for more details.
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