首页> 外文学位 >Simulating Network Structure, Layering Multi-layer Network Systems and Developing Network Block Configuration Models to Understand and Improve Energy Conservation in Residential Buildings.
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Simulating Network Structure, Layering Multi-layer Network Systems and Developing Network Block Configuration Models to Understand and Improve Energy Conservation in Residential Buildings.

机译:模拟网络结构,对多层网络系统进行分层,并开发网络块配置模型以了解和改善住宅建筑中的节能。

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摘要

The building sector is a major contributor to total energy consumption in most countries. Traditionally, researchers have focused on leveraging energy efficiency by improving building materials, in-house facilities and transmission equipment. More recently, however, there has been increased focus on research concerning demand-side energy consumption behavior. Current research suggests that energy efficient behavior of a building's occupants can be extensively enhanced through the sharing of energy consumption information among residents in a peer network. However, most of this research relies on experimental tests and does not theorize concepts related to peer network energy efficiency systematically. My dissertation addresses this research gap on two levels. First, I examined if and how the structure of peer networks can impact residents' conservation behaviors through network analysis by employing agent-based simulation techniques. Following confirmation of the impact that network structure has on user behavior, I created a layered network model to integrate information from various network layers and a block configuration model to reconstruct increasingly reliable random networks. In contrast to controlled energy efficiency experiments, real-world networks are large in size, heterogeneous in nature and regularly interact with other networks. By utilizing models developed in this dissertation, we are able to estimate the contribution of network structural coefficients to the energy consumption performance of peer networks. By comparing the layered network and block configuration model I developed with other conventional models, I prove the efficiency, accuracy and reliability of these improved models. These findings have implications for assessing network performance, creating accurate complex random networks for large-scale research, and developing strategies for network design to improve building energy efficiency. This research establishes a system to study residents' energy efficient behaviors from the perspective of peer networks and proposes some instructive models for further energy feedback system design.
机译:在大多数国家中,建筑部门是总能源消耗的主要贡献者。传统上,研究人员一直致力于通过改善建筑材料,内部设施和传输设备来提高能源效率。然而,最近,人们对与需求侧的能源消耗行为有关的研究越来越关注。当前的研究表明,通过在对等网络中的居民之间共享能耗信息,可以大大增强建筑物占用者的节能行为。但是,大多数研究依赖于实验测试,而没有系统地对与对等网络能效相关的概念进行理论化。本文从两个层面解决了这一研究空白。首先,我通过使用基于代理的模拟技术,通过网络分析研究了对等网络的结构是否以及如何影响居民的保护行为。在确认网络结构对用户行为的影响后,我创建了一个分层的网络模型来集成来自各个网络层的信息,并创建了一个块配置模型来重建越来越可靠的随机网络。与受控能效实验相反,现实世界的网络规模大,性质多样且定期与其他网络交互。利用本文开发的模型,我们可以估计网络结构系数对对等网络能耗性能的贡献。通过将我开发的分层网络和块配置模型与其他常规模型进行比较,我证明了这些改进模型的效率,准确性和可靠性。这些发现对评估网络性能,为大规模研究创建准确的复杂随机网络以及制定网络设计策略以提高建筑能效具有重要意义。这项研究建立了一个从对等网络的角度研究居民能源效率行为的系统,并为进一步的能源反馈系统设计提供了一些指导性模型。

著录项

  • 作者

    Chen, Jiayu.;

  • 作者单位

    Columbia University.;

  • 授予单位 Columbia University.;
  • 学科 Engineering Architectural.;Energy.;Engineering Civil.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 156 p.
  • 总页数 156
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:32

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