以尼斯的一栋办公楼为例,模拟潜在暖通空调系统的能源性能和可再生能源的实施情况,以实现 nZEB

Vladan Jovanović, Marko Ignjatović
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引用次数: 0

摘要

在现有建筑中实现能源消耗与整体舒适度之间的最佳平衡的关键方法之一,就是利用先进的模拟技术对暖通空调系统进行有效管理。建筑物能源性能建模和模拟是一种非常先进的技术,可以根据物理定律和原理预测复杂的系统行为。这些模拟可以精确求解热平衡方程,同时考虑到建筑物的所有基本物理特性、为其服务的机械系统的复杂性以及整个日历周期内的各种动态输入变量。影响建筑物能耗的关键因素是特定地区的气候条件,以及用户对室内温度、湿度和空气质量的个人期望。这项高级研究的方法基于最先进的模拟工具 Ener-gyPlus,它可以对建筑物的能源性能进行详细分析。这种整体方法可以提高现有建筑的能源效率,优化暖通空调系统的运行,从而显著节约能源,提高用户的整体舒适度。此外,这项研究旨在展示建筑系统本身的改进,以实现 nZEB 建筑和可再生能源的利用。与没有光伏板的模型相比,这项工作预计将利用模型模拟和附加系统,通过光伏板集成系统最大限度地减少现场净能耗。从基线模型中获得的结果已经表明能源需求较低,而使用光伏电池板预计会使能耗更低。满足建筑能源需求所需的总能耗为 41109.67 千瓦时,相当于建筑总面积的 36.41 千瓦时/平方米。本文还将展示与没有集成光伏板系统的模型相比,二氧化碳排放量的减少情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of the energy performance of potential HVAC systems and implementation of renewable energy sources to achieve nZEB on the example of an office building in Nis
One of the key approaches to achieving an optimal balance between energy consumption and overall comfort in existing buildings lies in the use of sophisticated simulations for efficient management of HVAC systems. Modeling and simulating the energy performance of buildings represent a highly advanced technique that enables the predic-tion of complex system behaviors based on physical laws and principles. These simulations allow for precise solving of thermal equilibrium equations, taking into account all essential physical characteristics of the building, the com-plexity of the mechanical systems serving it, as well as a wide range of dynamic input variables throughout the entire calendar cycle. Critical factors significantly influencing energy consumption in buildings are region-specific climatic condi-tions, as well as individual user expectations regarding indoor temperature, humidity, and air quality. The methodology of this advanced research is based on the use of the state-of-the-art simulation tool Ener-gyPlus, which enables a detailed analysis of the building's energy performance. This holistic approach enables the enhancement of energy efficiency in existing buildings and optimization of HVAC system operation, resulting in significant energy savings and improved overall user comfort. Furthermore, this study aims to demonstrate the improvement of building systems themselves to achieve nZEB buildings and the utiliza-tion of renewable energy sources. The work is expected to use simulations of the model, along with additional systems, to minimize the net site en-ergy through PV panel-integrated systems compared to the model without such systems. The results obtained from the baseline model already demonstrate low energy requirements, while the use of PV panels is expected to result in even lower consumption. The total energy required to meet the building's energy needs is 41,109.67 kWh, which translates to 36.41 kWh/m² of the total building area. The paper will also demonstrate a reduction in CO2 emissions compared to the model without PV panel-integrated systems.
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