用于早期建筑设计的不断发展的多目标优化框架:提高能源效率、采光、景观质量和热舒适度

IF 6.1 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY Building Simulation Pub Date : 2024-09-16 DOI:10.1007/s12273-024-1178-6
Lingrui Li, Zongxin Qi, Qingsong Ma, Weijun Gao, Xindong Wei
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引用次数: 0

摘要

计算性能驱动的优化设计(CPDDO)可为早期建筑设计决策提供信息,提高项目对当地气候的响应能力。本文回顾了最近的 CPDDO 研究,指出了普遍存在的差距,并提出了一个完善的优化框架。该框架的突出之处在于(1) 将视野质量与能源、日照和热舒适度等因素结合起来,并采用基于矢量模拟的指标,考虑内容、可达性和清晰度;(2) 在模拟中纳入用户的适应性行为模式;(3) 采用混合加权法,以适应不同的项目需求并支持稳健的设计决策。本研究应用该框架优化了广州、重庆、青岛、兰州和长春中型办公建筑的形状和外立面变量,分别代表炎热、温暖、混合、凉爽和寒冷气候。研究结果表明,几何特征(长宽比、朝向、窗墙比(WWR)和遮阳设备)以及窗户和百叶窗的结构对能源、日照、热舒适度和景观质量都有显著影响。不同的气候条件、目标重点和外立面朝向要求对设计变量进行量身定制。此外,某些研究结果对传统建议提出了挑战;例如,在寒冷气候条件下,由于利用太阳辐射的潜力增强,视野开阔,建筑物可从增加 WWR 中获益,而高性能的围护结构热设置可减轻热传递。这些发现强调了在早期设计阶段进行详细、有针对性的研究的必要性。事实证明,所开发的 CPDDO 框架既有效又方便用户使用,为优化建筑性能提供了新的可能性,因此有可能在各种实际应用中促进绿色、舒适和可持续建筑的发展。
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Evolving multi-objective optimization framework for early-stage building design: Improving energy efficiency, daylighting, view quality, and thermal comfort

Computational performance-driven design optimization (CPDDO) informs early building design decisions, enhancing projects’ responsiveness to local climates. This paper reviews recent CPDDO studies, identifies prevalent gaps, and proposes a refined optimization framework. The framework stands out by: (1) integrating view quality alongside energy, daylight, and thermal comfort considerations, with a vector-simulation-based metric considering content, access and clarity; (2) incorporating users’ adaptive behavior patterns in simulations; and (3) employing a hybrid weighting method to accommodate diverse project demands and support robust design decisions. This study applies the framework to optimize the shape and facade variables of a medium-sized office building in Guangzhou, Chongqing, Qingdao, Lanzhou, and Changchun, representing hot, warm, mixed, cool, and cold climates, respectively. Results highlight that geometry features (aspect ratio, orientation, window-to-wall ratio (WWR), and shading devices), as well as window and blinds constructions significantly impact energy, daylight, thermal comfort and view quality. Different climatic conditions, objective priorities, and facade orientations necessitate tailored design variables. Furthermore, certain findings challenge conventional recommendations; for instance, buildings in colder climates benefit from increased WWR, due to enhanced potential to harness solar radiation and improved view access, while high-performance envelope thermal settings mitigate heat transfer. These findings underscore the need for detailed, targeted research in early-stage design. The developed CPDDO framework proves effective and user-friendly, offering new possibilities for optimizing building performance, thus holds the potential to foster green, comfortable, and sustainable architecture in various practical applications.

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来源期刊
Building Simulation
Building Simulation THERMODYNAMICS-CONSTRUCTION & BUILDING TECHNOLOGY
CiteScore
10.20
自引率
16.40%
发文量
0
审稿时长
>12 weeks
期刊介绍: Building Simulation: An International Journal publishes original, high quality, peer-reviewed research papers and review articles dealing with modeling and simulation of buildings including their systems. The goal is to promote the field of building science and technology to such a level that modeling will eventually be used in every aspect of building construction as a routine instead of an exception. Of particular interest are papers that reflect recent developments and applications of modeling tools and their impact on advances of building science and technology.
期刊最新文献
Evolving multi-objective optimization framework for early-stage building design: Improving energy efficiency, daylighting, view quality, and thermal comfort An integrated framework utilizing machine learning to accelerate the optimization of energy-efficient urban block forms Exploring the impact of evaluation methods on Global South building design—A case study in Brazil Mitigation of long-term heat extraction attenuation of U-type medium-deep borehole heat exchanger by climate change Developing an integrated prediction model for daylighting, thermal comfort, and energy consumption in residential buildings based on the stacking ensemble learning algorithm
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