Exploring the Benefits and Limitations of Digital Twin Technology in Building Energy

IF 2.5 4区 综合性期刊 Q2 CHEMISTRY, MULTIDISCIPLINARY Applied Sciences-Basel Pub Date : 2023-07-30 DOI:10.3390/app13158814
F. Tahmasebinia, Lin Lin, Shuo Wu, Yifan Kang, S. Sepasgozar
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引用次数: 3

Abstract

Buildings consume a significant amount of energy throughout their lifecycle; Thus, sustainable energy management is crucial for all buildings, and controlling energy consumption has become increasingly important for achieving sustainable construction. Digital twin (DT) technology, which lies at the core of Industry 4.0, has gained widespread adoption in various fields, including building energy analysis. With the ability to monitor, optimize, and predict building energy consumption in real time. DT technology has enabled sustainable building energy management and cost reduction. This paper provides a comprehensive review of the development and application of DT technology in building energy. Specifically, it discusses the background of building information modeling (BIM) and DT technology and their application in energy optimization in buildings. Additionally, this article reviews the application of DT technology in building energy management, indoor environmental monitoring, and building energy efficiency evaluation. It also examines the benefits and challenges of implementing DT technology in building energy analysis and highlights recent case studies. Furthermore, this review emphasizes emerging trends and opportunities for future research, including integrating machine learning techniques with DT technology. The use of DT technology in the energy sector is gaining momentum as efforts to optimize energy efficiency and reduce carbon emissions continue. The advancement of building energy analysis and machine learning technologies is expected to enhance prediction accuracy, optimize energy efficiency, and improve management processes. These advancements have become the focal point of current literature and have the potential to facilitate the transition to clean energy, ultimately achieving sustainable development goals.
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探索数字孪生技术在建筑能源中的优势与局限
建筑物在其整个生命周期中消耗大量的能源;因此,可持续能源管理对所有建筑都至关重要,控制能源消耗对实现可持续建筑变得越来越重要。数字孪生(DT)技术是工业4.0的核心,已在包括建筑能源分析在内的各个领域得到广泛采用。具有实时监控、优化和预测建筑能耗的能力。DT技术实现了可持续建筑能源管理和降低成本。本文对DT技术在建筑节能中的发展和应用进行了综述。具体论述了建筑信息模型(BIM)和DT技术的产生背景及其在建筑能源优化中的应用。此外,本文还综述了DT技术在建筑能源管理、室内环境监测、建筑能效评价等方面的应用。它还研究了在建筑能源分析中实施DT技术的好处和挑战,并强调了最近的案例研究。此外,本文还强调了未来研究的新趋势和机会,包括将机器学习技术与DT技术相结合。随着优化能源效率和减少碳排放的努力不断进行,DT技术在能源领域的应用正在获得动力。建筑能源分析和机器学习技术的进步有望提高预测准确性,优化能源效率,改善管理流程。这些进展已成为当前文献的焦点,并有可能促进向清洁能源的过渡,最终实现可持续发展目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Applied Sciences-Basel
Applied Sciences-Basel CHEMISTRY, MULTIDISCIPLINARYMATERIALS SCIE-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.30
自引率
11.10%
发文量
10882
期刊介绍: Applied Sciences (ISSN 2076-3417) provides an advanced forum on all aspects of applied natural sciences. It publishes reviews, research papers and communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files and software regarding the full details of the calculation or experimental procedure, if unable to be published in a normal way, can be deposited as supplementary electronic material.
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