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School of Architecture

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Now showing 1 - 10 of 75
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    PHPP2E+: Employing dynamic building simulation while pursuing passive house certification
    (Georgia Institute of Technology, 2021-12-15) Leite Goncalves, Vitor
    The building sector alone accounts for around 40% of the global GHG emissions, and aiming to decrease this percentage, various organizations are trying to address the energy load of buildings. European Passive Houses are characterized mainly by construction concepts that can greatly reduce the overall energy usage. During the Passive House certification process, modelers must utilize the Passive House Planning Package (PHPP), a steady-state monthly energy balance tool provided by the Passivhaus Institut (PHI) to verify the performance of the building according to the certification criteria, but nowadays due to climate change and the improvement of hourly dynamic simulations, more detailed analysis of the thermal processes within and around the building are also desired by many practitioners to better understand the indoor environment during the design process. The aim of this thesis is to 1) create a framework to facilitate the conversion of inputs of the PHPP into EnergyPlus, allowing for an easy and quick method of utilizing hourly dynamic building simulations and performing a more detailed analysis while pursuing Passive House certification; 2) investigate the difference in the results reported by the PHPP and by commonly utilized dynamic simulations tools, such as EnergyPlus, and 3) examine how different airflow modeling approaches in dynamic building simulation, such as the standalone BEM, Airflow Network Model (AFN), or Computational Fluid Dynamics (CFD) can affect the results of the simulation results in terms of overheating in Passive Houses. All dynamic simulations will be evaluated using Honeybee as a front-end interface for EnergyPlus, while relying on Rhino3D’s Grasshopper integration to facilitate the input translation between the PHPP and EnergyPlus.
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    An Application for Urban Analytics
    (Georgia Institute of Technology, 2021-12) Steinichen, Charlotte Jane
    The objective of this research was to develop a new, data-based methodology for analyzing urban environments. By combining graph-based street network data with socioeconomic data scraped from open sources such as Google Places and Foursquare, the application designed for this study provides a quantitative understanding of the urban landscape surrounding stadium projects. The application has been shown to be flexible and can be applied to urban environments across the globe. As a result, this study is a promising first step towards a comprehensive, data-based urban model that can be used to assist place-making professionals both in understanding existing urban development and in siting new projects.
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    Dreamers of the Day: Designing Possibilities
    (Georgia Institute of Technology, 2021-11-10) Deutsch, Randall S.
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    Computers, Craft, and Culture: Creative and Critical Inquiry into Computation Design
    (Georgia Institute of Technology, 2021-09-29) Noel, Vernelle A. A.
    Craft and cultural design practices are vehicles for people’s histories and knowledges, and are dependent on their social, cultural, and political contexts. On the other hand, software practices are often framed as neutral, independent - devoid of social, cultural, and political entanglements. Drawing from methods, concepts, and modes of inquiry in computing, craft, media studies, and science and technology studies, this lecture demonstrate (1) how software-based practices can reshape cultural and craft-based practices, ideas, and labors; and (2) how new investigations into craft can repair and reveal hidden entanglements in computational design.
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    Mechanicsville 2030: The Past, Present, and Possible Future of One of Atlanta's Oldest Neighborhoods
    (Georgia Institute of Technology, 2021-09-08) Roark, Ryan
    This lecture is an introduction to my upcoming exhibition of the same name at the Atlanta Preservation Center, opening September 24. The exhibition will feature a series of proposals—some by my spring 2021 senior studio and some of my own—for both renovation and new construction along Whitehall Street, a two-block stretch adjacent to South Downtown Atlanta and straddling the neighborhoods of Castleberry Hill and Mechanicsville. Bounded by railroad tracks to the north and I-20 to the south, the area is currently comprised of many empty lots and a variety of formerly industrial buildings—some disused, some partially used, and some functioning as residential lofts and warehouses. Whitehall’s development has been speculated for decades but has not yet begun. The work shown examines the role of history in architecture and blurs the lines between renovation and “ground-up” construction: even what appears to be an empty site has history, often still evidenced in foundations, material fragments, or even the soil. Reuse, especially in formerly industrial districts, all too often goes hand in hand with replacement of culture and displacement of residents; mitigating this relationship is not simple but was central to the development of the proposals in Mechanicsville 2030, which began with an in-depth study of the neighborhood and interviews with residents.
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    Reactivate: Preservation and Interpretation in 4D
    (Georgia Institute of Technology, 2021-09-01) Willkens, Danielle
    Exploring ongoing work from Selma, Atlanta, and additional sites, this lecture will examine how archives, digital documentation, and preservation planning can combine to make interactive and accessible platforms that honor erased histories and enliven critical conversations about space, agency, and memory.
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    Shape Machine: shape embedding and rewriting in visual design
    (Georgia Institute of Technology, 2021-07-27) Hong, Tzu-Chieh Kurt
    Shape grammar interpreters have been studied for more than forty years addressing several areas of design research including architectural, engineering, and product design. At the core of all these implementations, the operation of embedding – the ability of a shape grammar interpreter to search for subshapes in a geometry model even if they are not explicitly encoded in the database of the system – resists a general solution. It is suggested here that beyond a seemingly long list of technological hurdles, the implementation of shape embedding, that is, the implementation of the mathematical concept of the “part relation” between two shapes, or equivalently, between two drawings, or between a shape and a design, is the single major obstacle to take on. This research identifies five challenges underlying the implementation of shape embedding and shape grammar interpreters at large: 1) complex entanglement of the calculations required for shape embedding and a shape grammar interpreter at large, with those required by a CAD system for modeling and modifying geometry; 2) accumulated errors caused by the modeling processes of CAD systems; 3) accumulated errors caused by the complex calculations required for the derivation of affine, and mostly, perspectival transformations; 4) limited support for indeterminate shape embedding; 5) low performance of the current shape embedding algorithms for models consisting of a large number of shapes. The dissertation aims to provide a comprehensive engineering solution to all these five challenges above. More specifically, the five contributions of the dissertation are: 1) a new architecture to separate the calculations required for the shape embedding and replacement (appropriately called here Shape Machine) vs. the calculations required by a CAD system for the selection, instantiation, transformation, and combination of shapes in CAD modeling; 2) a new modeling calibration system to ensure the effective translation of geometrical types of shapes to their maximal representations without cumulative calculating errors; 3) a new dual-mode system of the derivation of transformations for shape embedding, including a geometric approach next to the known algebraic one, to implement the shape embedding relation under the full spectrum of linear transformations without the accumulated errors caused by the current algorithms; 4) a new multi-step mechanism that resolves all cases of indeterminate embeddings for shapes having fewer registration points than those required for a shape embedding under a particular type of transformation; and 5) a new data representation for hyperplane intersections, the registration point signature, to allow for the effective calculation of shape embeddings for complex drawings consisting of a large number of shapes. All modules are integrated into a common computational framework to test the model for a particular type of shapes – the shapes consisting of lines in the Euclidean plane in the algebra U12.
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    A FORMALIZED URBAN PROSUMER MODEL: SUPPORT OF AUTOMATED SIMULATION AND DESIGN OPTIMIZATION
    (Georgia Institute of Technology, 2021-07-26) Jung, Yun Joon
    Many global cities have announced ambitious net-zero energy consumption targets or net-zero CO2 emissions plans. It is well recognized that this can only be realized through a mix of measures such as efficiency improvements at the sites of consumption and decentralized energy generation, storage and delivery mechanisms. This transition will not happen without major changes to energy supply networks, especially in the way they enable frictionless inclusion of renewable energy sources and local supply, for instance through microgrids. At the urban scale, buildings constitute the major consumers of electricity and their integration through building-to-building and building-to-grid controls is crucial to realize efficient energy sharing in urban energy networks. Over the last decade, the building energy simulation domain has moved its focus from traditional local studies to urban energy studies. The main objective of this thesis is to make a contribution to this growing research domain, especially in enabling the simulation of energy supply networks in a robust manner and at a large scale. It is possible to simulate such networks with customized software but considering that there is no systematic way to specify urban energy models (especially with multiple concurrent control topologies), the simulation software has to be hand-customized which leads to opaque simulations that moreover are hard to use for rapid variant explorations. The thesis argues that this can be overcome by the development of an urban prosumer (UP) schema that facilitates the specification and automated mapping of an urban energy network into simulations, focusing on the effective specification of controls outside the software. At a high level, the UP schema is comprised of a physical and a logical layer. The physical layer conceptualizes existing urban energy networks using directed graphs for energy transport between nodes. The logical layer conceptualizes how the dynamic processing (reasoning) of sensor data leads to instructions to a set of actuators that execute the control. In doing so, two levels of control are distinguished: (a) “private” (mostly rule-based) control such as the internal HVAC system following temperature setpoints, (b) “public” control that is exposed to the rest of the network and thus within the scope of the UP schema. Public control can be either rule-based or optimal control, the latter driven by an appropriate optimality criterion, defined at a network scale. In design situations, the optimality criterion is not limited to control variables but can also include design parameters, such as building design parameters, solar installation sizes, community battery size, and the number of EV charging stations. Mixed-integer non-linear programming (MINLP) is used to solve optimal control problems. The genetic algorithm is employed to solve design optimization problems. The case studies using the UP schema for ten Georgia Tech campus buildings are presented. The purpose of the case studies is to prove that the UP schema can facilitate simulations involving different levels of controls. The simulations target optimal energy decisions for the selected campus buildings in the presence of PV and electricity battery. Additionally, three residential buildings in California are chosen to investigate how the design and control parameters act together to avoid the power outage situation with the embedded UP schema in the simulation platform.
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    Addressing Urban Building Energy Modeling (UBEM) Data Needs: A Case Study in a Low Resource Community
    (Georgia Institute of Technology, 2021-07-26) Heidelberger, Erin
    Urban Building Energy Modeling (UBEM) is a method of simulating the energy usage of a grouping of buildings, at the scale of a neighborhood or city, rather than the typical simulation of a single building. This can be a powerful tool to reduce current energy usage, through testing retrofit scenarios on the existing building stock, and to guide future planning efforts. This switch in simulation scales is crucial to move towards more sustainable and resilient cities. This thesis addresses data availability issues to inform UBEM studies, in all urban contexts, by establishing a list of readily available data sources as well as a multi-step, theoretical framework that can be used to gather the data required to run an accurate UBEM that considers the surrounding socioeconomic factors. This framework is demonstrated through a case study in the Grove Park neighborhood of Atlanta, Georgia. 110 single-family households were modeled. The results of the study analyze current energy use patterns, compare neighborhood-specific archetype definitions to default residential archetype templates, and investigate the neighborhood’s performance under future weather scenarios. The study shows that within a single neighborhood the energy use intensity (EUI) can vary by up to 92 kWh/m2 based on building envelope condition and occupancy patterns. Default archetype inputs can dramatically underestimate or overestimate the energy use of households in a low resource community. Investigating energy performance under both current and future weather scenarios allows for energy efficiency strategies that are beneficial to the neighborhood now while increasing future resiliency.
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    Jobs Justice Climate: Redevelopment Proposals for North Dekalb Mall and The Gallery at South Dekalb
    (Georgia Institute of Technology, 2021-06-21) Dunham-Jones, Ellen ; Jassu, Joel ; Alfali, Hala ; Barnum, Chris ; Heidelberger, Erin ; Kama, Prerana ; Goncalves, Vitor ; Nanda, Sakshi ; Patel, Harini ; Pham, Quynh ; Raytchev, Luben ; Rudder, Jennie Lynn ; Yu, Zhexin (Josie) ; Zhao, Haungzhe
    Hypothetical redevelopment and reinhabitation urban design proposals are presented for both shopping malls to help the local DeKalb County Commissioners and their constituents envision and discuss options of what change might look like guided by Green New Deal goals.