Exploring the Application of Digital Twin Technology in the Energy Sector using MEREC and MAIRCA Methods

Asmaa Elsayed, Bilal Arain, Karam M. Sallam
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Abstract

Smart city sustainability initiatives prioritize creating environmentally, economically, and socially sustainable urban environments. Digital Twin (DT) technology creates precise digital replicas of physical assets, systems, or processes. These digital twins play a crucial role in advancing the goals of smart city sustainability. This paper explores the development and application of DT technology for integrated regional energy systems in smart cities, emphasizing its potential to optimize energy consumption, reduce costs, and enhance overall system performance. The CloudIEPS platform, an energy internet planning platform based on digital twin technology, is a great example of how digital twin technology can be applied in practice, helping optimize energy efficiency and reduce costs. Integrating digital twin technology with the Multi-Criteria Decision-Making (MCDM) methods offers a novel approach to managing and optimizing energy systems in smart cities. The paper aims to create a consistent and robust approach to determining the best digital twin solution for energy systems in smart cities. The paper identifies critical factors for decision-making and establishes a method for assessing the significance of criteria using Triangular Neutrosophic Sets (TNS) through the MEthod based on Removal Effects of Criteria (MEREC) and the Multi-Attributive Ideal Real Comparative Analysis (MAIRCA) approach. These methods are used to evaluate and prioritize multiple criteria in decision-making processes. Furthermore, the methods are combined with Triangular Neutrosophic Sets (TNS) to support decision-making for smart cities' energy systems, better accounting for the complex and uncertain nature of energy systems. A case study is conducted to apply and validate the developed methodology and perform a sensitivity analysis of the experimental results. The research outcomes indicated that the proposed methodology is robust and effective in handling the uncertainty and complexity inherent in smart cities' energy systems. The sensitivity analysis further confirms the stability and adaptability of the proposed methodology across different scenarios, making it a valuable tool for policymakers and stakeholders in the energy sector. 
利用 MEREC 和 MAIRCA 方法探索数字孪生技术在能源领域的应用
智能城市可持续发展倡议优先考虑创造环境、经济和社会可持续发展的城市环境。数字孪生(DT)技术可以创建物理资产、系统或流程的精确数字复制品。这些数字孪生在推进智慧城市可持续发展目标方面发挥着至关重要的作用。本文探讨了 DT 技术在智慧城市综合区域能源系统中的开发和应用,强调其在优化能源消耗、降低成本和提高系统整体性能方面的潜力。基于数字孪生技术的能源互联网规划平台 CloudIEPS 是一个很好的例子,说明了数字孪生技术如何应用于实践,帮助优化能源效率和降低成本。将数字孪生技术与多标准决策(MCDM)方法相结合,为管理和优化智慧城市的能源系统提供了一种新方法。本文旨在创建一种一致而稳健的方法,以确定智慧城市能源系统的最佳数字孪生解决方案。本文确定了决策的关键因素,并通过基于标准移除效应的方法(MEREC)和多属性理想真实比较分析(MAIRCA)方法,建立了一种使用三角中性集(TNS)评估标准重要性的方法。这些方法用于评估决策过程中的多个标准并确定优先次序。此外,这些方法还与三角中性集(TNS)相结合,以支持智慧城市能源系统的决策,更好地考虑能源系统的复杂性和不确定性。通过案例研究,应用并验证了所开发的方法,并对实验结果进行了敏感性分析。研究结果表明,所提出的方法在处理智慧城市能源系统固有的不确定性和复杂性方面是稳健而有效的。敏感性分析进一步证实了所提出的方法在不同情况下的稳定性和适应性,使其成为能源领域政策制定者和利益相关者的宝贵工具。
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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