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Inter-scalar Multivariable Decision Making Framework for the Architectural Envelope.

机译:建筑信封的标量间多变量决策框架。

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摘要

In this investigation, a design decision framework is developed linking local climate to device morphology using computational design tools in order to develop optimized geometry by balancing criteria based on initial design constrains, ranges of viable performance values, and material and technological limitations.;The tendency in modern building design towards full glass facades detracts from much of the energy efficiency advancements made in modern construction. As a result, further reductions in building energy use hinge on the need for a renewed interest in opaque facades in the building industry. The High-performance Masonry System (HpMS) as outlined by "Energy exchange building envelope" (Jason Vollen 2013) is the base case for this research, implementing energy exchange at the architectural envelope by harnessing bioclimatic energy flows through a modular ceramic masonry system to achieve a higher thermal performance. The system applies multi-scalar strategies of color, texture, and morphology that tune facade performance in response to the dynamic variability of local climatic conditions. HpMS seeks to achieve a built ecology of variable performance based on controlled topology and surface articulation rather than linear heat transfer through a uniform surface. Borrowing principles of bioanalytics, energy flows through the building enclosure are harnessed to offload excess thermal loads, and passively heat or cool internal load dominated structures. By conceiving the architectural envelope as a transition to the exterior environment rather than a sealed barrier, strategies tuned to respond to local conditions modulate exterior environment to meet interior demands. This research seeks to bridge the cultural and technological rifts of outdated building practices and accepted social norms by integrating new technologies in a geometrically complex, modular wall system with components that are easily customized to not only improve facade performance, but provide new possibilities for designers, clients, and users.;Through novel computational strategies for the development of variable geometries and complex surfacing set up for digital fabrication, an environmentally tuned ceramic envelope is used as a working example of a next generation building system. The modeling, simulation, and analysis of a variable response to a dynamic environmental condition are explored as a case study. By building a parametric framework for the design of climate specific envelope systems, a methodology for the integration of emerging environmentally responsive envelope systems is conceived in order to build upon existing data sets and generate knowledge iteratively. Rather than relying on packaged software platforms, closed models or singular analytical studies, this research explores a flexible methodology for the development of open-ended parametric models that can adapt to meet emerging challenges for design, introduce new model inputs, or integrate emerging toolsets interchangeably. By providing a versatile framework for design, multidimensional complexity is reintroduced into the architectural context in order to actively respond to dynamic natural systems sympathetically.
机译:在这项调查中,开发了一个设计决策框架,该框架使用计算设计工具将当地气候与设备形态联系起来,以便通过基于初始设计约束,可行性能值范围以及材料和技术限制的平衡标准来开发优化的几何形状。现代建筑设计朝着全玻璃幕墙的方向发展,不利于现代建筑在节能方面的许多进步。结果,建筑能耗的进一步减少取决于对建筑行业中不透明外墙的重新关注。 “能量交换建筑围护结构”(Jason Vollen,2013年)概述的高性能石工系统(HpMS)是该研究的基本案例,它通过利用通过模块化陶瓷砌体系统的生物气候能流来实现建筑围护结构的能量交换。实现更高的热性能。该系统采用颜色,纹理和形态的多标量策略,以响应局部气候条件的动态变化来调整立面性能。 HpMS寻求基于受控的拓扑结构和表面铰接,而不是通过均匀表面进行线性传热,从而实现可变性能的构建生态系统。利用生物分析的原理,通过建筑物围护结构的能量流来减轻多余的热负荷,并被动地加热或冷却以内部负荷为主的结构。通过将建筑围护构想为向外部环境而非密封屏障的过渡,经过调整以适应当地条件的策略可以调节外部环境以满足内部需求。这项研究旨在通过将新技术集成到几何形状复杂的模块化墙体系统中,并通过易于定制的组件不仅可以改善立面性能,而且为设计师提供新的可能性,以弥补过时的建筑实践和公认的社会规范的文化和技术鸿沟。客户和用户。通过用于数字制造的可变几何形状和复杂表面处理开发的新颖计算策略,经过环境优化的陶瓷外壳被用作下一代建筑系统的工作示例。作为案例研究,探讨了对动态环境条件的可变响应的建模,仿真和分析。通过建立用于设计特定气候包络系统的参数框架,可以构想一种集成新兴环境响应包络系统的方法,以便在现有数据集的基础上构建并迭代地产生知识。本研究探索了一种灵活的方法来开发开放式参量模型,该方法可以适应设计中出现的挑战,引入新的模型输入或可互换地集成新兴的工具集,而不是依赖于打包的软件平台,封闭的模型或单一的分析研究。 。通过提供通用的设计框架,多维复杂性被重新引入到架构环境中,以主动地对动态自然系统产生同感。

著录项

  • 作者

    Winn, Kelly Raymond.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Architecture.;Biology Ecology.;Design and Decorative Arts.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 226 p.
  • 总页数 226
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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