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Energy Efficient Building Systems For Urban Transformation Projects:Case Study
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作者 Vail Karakale Ismail Eekmekci Nevzat Sadoglu 《Journal of World Architecture》 2020年第4期1-9,共9页
In last decades uncontrolled rapid urbanization in Turkey led to existence of squatter areas and disaster-vulnerable building stocks.After 1999 Marmara earthquake urban renewal has become the base of urbanization poli... In last decades uncontrolled rapid urbanization in Turkey led to existence of squatter areas and disaster-vulnerable building stocks.After 1999 Marmara earthquake urban renewal has become the base of urbanization politics and planning agenda in Turkey.Turkish building industry usually uses RC buildings in the urban renewal projects.In recent years cold formed steel CFS and 3D panel building systems due to its lightweight,fast constructed,energy efficient,and economy start to be used as an alternatives to reinforced concrete buildings especially in seismic areas.In this paper energy performance of three building systems were investigated on a case study school building.Analysis results shows that 3D panel and CFS buildings systems will established with 59%and 36%less energy requirements with respect to traditional reinforced concrete non-insulated buildings. 展开更多
关键词 building systems Energy efficiency CFS buildings 3D panel.
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Low-Carbon Scheduling for Multi-Energy Building Systems With Electricity-Carbon Incentive Compensation
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作者 Shunan Yao Hui Hou +5 位作者 Zhaoyang Dong Feng Li Ziyin He Bo Yuan Peng Xia Yingxiang Wang 《Energy Internet》 2025年第4期328-339,共12页
As a frontier topic in the field of architecture,multi-energy building systems hold great significance in balancing the relationship among energy,environment and economy,as well as in promoting the green-and low-carbo... As a frontier topic in the field of architecture,multi-energy building systems hold great significance in balancing the relationship among energy,environment and economy,as well as in promoting the green-and low-carbon transformation of the construction industry.This study proposes a low-carbon scheduling strategy incorporating electricity-carbon incentive compensation.Firstly,a theoretical model of multi-energy buildings is established,enabling the coordinated regulation of distributed electricity-cooling-heating energy conversion devices to improve the energy utilisation efficiency and reduce both integrated operational and carbon trading expenses.Meanwhile,a price transmission model of electricity-carbon market is developed by combining a tiered carbon pricing scheme with reward-penalty attributes and the Chinese certified emissions reduction(CCER)mechanism,thereby facilitating system optimisation and effective control of carbon emissions.Furthermore,a multi-stakeholder game strategy with electricity-carbon incentive compensation is introduced to stimulate active engagement in energy conservation and carbon emissions reduction across various stakeholders within the system.The simulation results indicate that the proposed theoretical framework has significant advantages in enhancing the economic performance of multienergy building systems,curtailing operational expense and expanding carbon market profit,demonstrating the great potential and value for the low-carbon operation of the system to be applied and widely promoted. 展开更多
关键词 electricity-carbon market incentive compensation multi-agent Stackelberg game multi-energy building systems optimal scheduling
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International Comparison of Training Goals in Wooden Construction Education:Focusing on the Contents of Wooden Construction Systems for Housing,Commercial,and Public Buildings
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作者 Miho Akita Rio Shibata +2 位作者 Shin Murakami Norie Kawano Satoka Takahashi 《Journal of Civil Engineering and Architecture》 2025年第11期513-522,共10页
This study aims to examine the challenges and future directions of large-scale wooden construction education at universities in Japan and Finland.It compares the wooden construction curricula at universities and the a... This study aims to examine the challenges and future directions of large-scale wooden construction education at universities in Japan and Finland.It compares the wooden construction curricula at universities and the architectural education initiatives undertaken by firms specializing in large-scale wood construction design in both countries.The target applications for large-scale wooden construction are residential,commercial,and public buildings.Comparing university education revealed many commonalities between the two countries,allowing them to be classified into two types:“seminar-centered”and“lecture-centered”.Japanese universities are categorized by building type and scale for educational purposes.Finnish universities focus their education on the properties and functions of wood.Based on these results,we infer that incorporating both Japan’s architecture-planning-focused education and Finland’s materials-focused education into teaching,using familiar housing buildings as a theme,will lead to the wider adoption of large-scale wooden construction. 展开更多
关键词 Wooden construction education large-scale wooden buildings systems housing buildings commercial buildings public buildings
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Virtual sample diffusion generation method guided by large language model-generated knowledge for enhancing information completeness and zero-shot fault diagnosis in building thermal systems
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作者 Zhe SUN Qiwei YAO +7 位作者 Ling SHI Huaqiang JIN Yingjie XU Peng YANG Han XIAO Dongyu CHEN Panpan ZHAO Xi SHEN 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 2025年第10期895-916,共22页
In the era of big data,data-driven technologies are increasingly leveraged by industry to facilitate autonomous learning and intelligent decision-making.However,the challenge of“small samples in big data”emerges whe... In the era of big data,data-driven technologies are increasingly leveraged by industry to facilitate autonomous learning and intelligent decision-making.However,the challenge of“small samples in big data”emerges when datasets lack the comprehensive information necessary for addressing complex scenarios,which hampers adaptability.Thus,enhancing data completeness is essential.Knowledge-guided virtual sample generation transforms domain knowledge into extensive virtual datasets,thereby reducing dependence on limited real samples and enabling zero-sample fault diagnosis.This study used building air conditioning systems as a case study.We innovatively used the large language model(LLM)to acquire domain knowledge for sample generation,significantly lowering knowledge acquisition costs and establishing a generalized framework for knowledge acquisition in engineering applications.This acquired knowledge guided the design of diffusion boundaries in mega-trend diffusion(MTD),while the Monte Carlo method was used to sample within the diffusion function to create information-rich virtual samples.Additionally,a noise-adding technique was introduced to enhance the information entropy of these samples,thereby improving the robustness of neural networks trained with them.Experimental results showed that training the diagnostic model exclusively with virtual samples achieved an accuracy of 72.80%,significantly surpassing traditional small-sample supervised learning in terms of generalization.This underscores the quality and completeness of the generated virtual samples. 展开更多
关键词 Information completeness Large language models(LLMs) Virtual sample generation Knowledge-guided building air conditioning systems
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EMERGENT PERMITTING STRATEGIES FOR NATURAL BUILDING SYSTEMS IN ONTARIO
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作者 Craig Brown 《Journal of Green Building》 2011年第4期17-25,共9页
INTRODUCTION Lowering the carbon intensity of the built environment is one of many tasks that must be undertaken in order to address climate change and to encourage sustainability.The siting,design,construction,occupa... INTRODUCTION Lowering the carbon intensity of the built environment is one of many tasks that must be undertaken in order to address climate change and to encourage sustainability.The siting,design,construction,occupancy,renovation,and disposal of single-family homes are all factors that contribute to the large carbon emissions generated by the sector.There are numerous strategies that seek to minimize the amount of emissions generated by a house during its lifecycle.This paper explores the use of so-called natural building systems in building envelope construction. 展开更多
关键词 Ontario building Code alternative solutions natural building systems home construction permit
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Comparative Analysis of Building Rating Systems and Occupant Rating Systems
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作者 Rana Al Kady Salah El-Haggar Ahmed El-Gendy 《Journal of Environmental Protection》 CAS 2023年第4期285-296,共12页
To begin with, rating systems are a beneficial tool in determining the efficiency of a building’s ability to utilise its resources effectively. In this study, the two elements under comparison are the Building Rating... To begin with, rating systems are a beneficial tool in determining the efficiency of a building’s ability to utilise its resources effectively. In this study, the two elements under comparison are the Building Rating Systems (BRSs) and Occupant Rating Systems (ORSs). The main objective of this paper is to be able to examine the most commonly applied international and national BRS and ORS and, based on that, discover the possibility of developing an integration of both the BRS and ORS into one rating system. Quite simply, a BRS is a method by which buildings are assessed and given a score based on numerous features such as the efficiency of each of the services, total energy consumption, and alternate options of consumption. There are various BRSs that are implemented globally, each with its own set of criteria and specifications. Thus, based on the analysis of the benefits and drawbacks of both types of rating systems, it could be deduced that a well-rounded rating system with all technical and non-technical aspects combined would be beneficial to both the efficiency of the building as well as the building occupants’ health and well-being. 展开更多
关键词 building Rating systems Energy Efficiency Net-Zero buildings OCCUPANCY Rating systems Renewable Energy Technologies
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Hybrid physics-neural-network MPC with stochastic disturbance forecasting for high-inertia thermally activated building systems
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作者 Xiaochen Yang Xiaoke Lian +2 位作者 Zhenya Zhang Ping Wang Shuo Ma 《Building Simulation》 2025年第10期2677-2695,共19页
Thermally activated building system(TABS)embeds heat exchanging tubes inside the building structure.The high thermal inertia possesses significant energy flexibility potential but also results in challenges for effect... Thermally activated building system(TABS)embeds heat exchanging tubes inside the building structure.The high thermal inertia possesses significant energy flexibility potential but also results in challenges for effective control,especially for the situations with unmeasurable stochastic thermal disturbances.This study presents an innovative hybrid model predictive control(MPC)framework that synergistically combines grey-box modeling with neural network-based disturbance prediction,specifically designed to overcome the control challenges of high-thermal-inertia TABS subject to unmeasurable stochastic disturbances.The framework is validated by experimental tests and supports both single and multiple disturbance scenarios.Concerning occupancy and outdoor solar global irradiance as the key stochastic disturbances,different control strategies including the rule-based control(RBC),conventional MPC without disturbance prediction,MPC with single disturbance prediction,MPC with multiple disturbances prediction,are established and systematically compared.Performance metrics including the temperature regulation accuracy,energy consumption,operation cost,and energy flexibility are quantitatively investigated.The results demonstrate that all MPC strategies outperform RBC.Compared to conventional MPC,the disturbance-prediction-coupled MPC reduces temperature constraint violations by 20%–42%,achieves 6%cost savings,and improves energy flexibility by 3.1%–8.6%.The multi-disturbanceprediction MPC shows optimal performance in temperature control,cost savings and energy flexibility enhancement.The proposed framework improves the accuracy of building load forecasting and the control performance of high thermal inertia systems,providing a pathway for optimizing building energy consumption and the coordinated operation efficiency of renewable energy in practical engineering applications. 展开更多
关键词 model predictive control stochastic disturbance prediction thermally activated building systems grey-box model hybrid physics-NN model
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Smart Buildings for A Sustainable Development 被引量:2
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作者 Starlight Vattano 《Economics World》 2014年第5期310-324,共15页
The use of sustainable technologies for buildings, with the goal of creating an environment for living and working that uses fewer resources and generates less waste, also aims to retrofit existing buildings to be mor... The use of sustainable technologies for buildings, with the goal of creating an environment for living and working that uses fewer resources and generates less waste, also aims to retrofit existing buildings to be more efficient in terms of energy and water. Many cities are following this way targeting both commercial and municipal buildings. These cities are called smart cities where all life processes and nerve centers of social life are read, in order to radically improve quality of life, opportunity, prosperity, social and economic development, thanks to the use of technology. This paper deals with the study of smart buildings within smart cities, namely the use in an integrated project of computer and telematics tools with automation organized systems and passive bioclimatic strategies in architecture, determining a socio-technical management of intelligent building. The article is the result of a research carded out within the framework of intelligent buildings in the last generation cities, such as those ones with zero emissions that are taking place in the Middle East countries (Dubai, Masdar, Tiajin, and Kochi). The topic deals with the issues of building automation as a form of technological intelligence and the study of those smart technologies integrated into the building envelope that improve its performances, making it more sustainable. The research methodology has provided a bibliographic retrieval on the state of the art and the latest technological trends in the building field, later has followed a theoretical and comparative approach of the examined technologies, which led to the development of reasoning on operation, performance and functional capabilities of a building that is both sustainable and home automation, to arrive at the final concept of sustainable intelligent building, able to combine the artificial intelligence, home automation, and technological devices of the architectural project to enhance the building energy performance. In conclusion, the proposed result is that of an integrated intelligent building in which artificial intelligence will become part of the shell-building in order to achieve high levels of energy efficiency and thus environmental sustainability. 展开更多
关键词 smart building sustainable development smart city RETROFIT building Energy Management systems(BEMS)
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A Practical Approach to Representation of Real-time Building Control Applications in Simulation
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作者 Azzedine Yahiaoui 《International Journal of Automation and computing》 EI CSCD 2020年第3期464-478,共15页
Computer based automation and control systems are becoming increasingly important in smart sustainable buildings,often referred to as automated buildings(ABs),in order to automatically control,optimize and supervise a... Computer based automation and control systems are becoming increasingly important in smart sustainable buildings,often referred to as automated buildings(ABs),in order to automatically control,optimize and supervise a wide range of building performance applications over a network while minimizing energy consumption and associated green house gas emission.This technology generally refers to building automation and control systems(BACS)architecture.Instead of costly and time-consuming experiments,this paper focuses on development and design of a distributed dynamic simulation environment with the capability to represent BACS architecture in simulation by run-time coupling two or more different software tools over a network.This involves using distributed dynamic simulations as means to analyze the performance and enhance networked real-time control systems in ABs and improve the functions of real BACS technology.The application and capability of this new dynamic simulation environment are demonstrated by an experimental design,in this paper. 展开更多
关键词 Distributed dynamic simulation networked control systems building performance applications smart buildings building automation and control systems(BACS)architecture
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A Mirror for the Global South
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作者 BUSANI NGCAWENI 《ChinAfrica》 2025年第7期14-15,共2页
A new book urges leaders and intellectuals in the Global South to think for themselves,and to build systems that work for them rather than importing them from elsewhere A s the unipolar world goes through rupture,with... A new book urges leaders and intellectuals in the Global South to think for themselves,and to build systems that work for them rather than importing them from elsewhere A s the unipolar world goes through rupture,with national discontents like slow growth and de-industrialisation,coun-tries are searching for pathways out of the deadlock.This is true of the Global South countries as much as it is for the Global North.In the latter. 展开更多
关键词 INTELLECTUALS build systems work slow growth systems building national discontents global south independent thinking LEADERS
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A real-time abnormal operation pattern detection method for building energy systems based on association rule bases 被引量:3
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作者 Chaobo Zhang Yang Zhao +2 位作者 Yangze Zhou Xuejun Zhang Tingting Li 《Building Simulation》 SCIE EI CSCD 2022年第1期69-81,共13页
Expert systems are effective for anomaly detection in building energy systems.However,it is usually inefficient to establish comprehensive rule bases manually for complex building energy systems.Association rule minin... Expert systems are effective for anomaly detection in building energy systems.However,it is usually inefficient to establish comprehensive rule bases manually for complex building energy systems.Association rule mining is available to accelerate the establishment of the rule bases due to its powerful capability of discovering rules from numerous data.This paper proposes a real-time abnormal operation pattern detection method towards building energy systems.It can benefit from both expert systems and association rule mining.Association rules are utilized to establish association rule bases of abnormal and normal operation patterns.The established rule bases are then utilized to develop an expert system for real-time detection of abnormal operation patterns.The proposed method is applied to an actual chiller plant for evaluating its performance.Results show that 15 types of known abnormal operation patterns and 11 types of unknown abnormal operation patterns are detected successfully by the proposed method. 展开更多
关键词 building energy systems building energy conservation expert systems association rule mining anomaly detection
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A review of data mining technologies in building energy systems:Load prediction,pattern identification,fault detection and diagnosis 被引量:26
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作者 Yang Zhao Chaobo Zhang +2 位作者 Yiwen Zhang Zihao Wang Junyang Li 《Energy and Built Environment》 2020年第2期149-164,共16页
With the advent of the era of big data,buildings have become not only energy-intensive but also data-intensive.Data mining technologies have been widely utilized to release the values of massive amounts of building op... With the advent of the era of big data,buildings have become not only energy-intensive but also data-intensive.Data mining technologies have been widely utilized to release the values of massive amounts of building operation data with an aim of improving the operation performance of building energy systems.This paper aims at making a comprehensive literature review of the applications of data mining technologies in this domain.In general,data mining technologies can be classified into two categories,i.e.,supervised data mining technologies and unsupervised data mining technologies.In this field,supervised data mining technologies are usually utilized for building energy load prediction and fault detection/diagnosis.And unsupervised data mining technologies are usually utilized for building operation pattern identification and fault detection/diagnosis.Comprehensive discussions are made about the strengths and shortcomings of the data mining-based methods.Based on this review,suggestions for future researches are proposed towards effective and efficient data mining solutions for building energy systems. 展开更多
关键词 Supervised data mining Unsupervised data mining Big data building energy efficiency building energy systems
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Optimal coordination of zero carbon building energy systems 被引量:2
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作者 Wangyi Guo Zhanbo Xu +4 位作者 Jinhui Liu Yaping Liu Jiang Wu Kun Liu Xiaohong Guan 《National Science Open》 2024年第3期13-28,共16页
Optimal scheduling of renewable energy sources and building energy systems serves as a pivotal strategy for achieving zero carbon emission.However,the coordination of zero carbon building energy systems(ZCBS)is still ... Optimal scheduling of renewable energy sources and building energy systems serves as a pivotal strategy for achieving zero carbon emission.However,the coordination of zero carbon building energy systems(ZCBS)is still challenging due to the complicated interactions among multi-energy hybrid storage and the complex coordination between seasonal and daily scheduling.Therefore,this study develops a coordination scheduling approach for ZCBS.An operation model and a seasonal-daily scheduling approach are developed to optimize the operation of hydrogen,geothermal,and water storage devices.The performance of the developed method is demonstrated using numerical case studies.The results show that the ZCBS can be achieved by using renewable energy sources with the system flexibility provided by hydrogen,geothermal,and water storage devices.It is also found that the developed scheduling approach reduces operation costs by more than 43.4%under the same device capacity,compared with existing scheduling approaches. 展开更多
关键词 zero carbon building energy systems seasonal-daily scheduling multi-energy storage two-stage robust optimization
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Exergy Analysis of Single and Multi-Step Thermal Processes 被引量:1
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作者 Gudni Albert Johannesson Marco Molinari 《Journal of Civil Engineering and Architecture》 2012年第10期1384-1391,共8页
The present paper introduces the concepts of exergy and treats it applications to analysis of the gain in exergy efficiency between one-step and multi-step thermal processes. The analysis, which is carried out with th... The present paper introduces the concepts of exergy and treats it applications to analysis of the gain in exergy efficiency between one-step and multi-step thermal processes. The analysis, which is carried out with the Excel-based SEPE program, is exemplified with the comparison between single-step and two-steps heat pump setup for providing heat to a floor heating system and for domestic hot water. The paper discusses the use of the concept of exergy efficiency as a measure of success for design of a heat pump application and how the use of information on exergy destruction and temperature levels in different parts of the system add a new perspective to the analysis and the evaluation of the system performance. The paper shows how this information can be used to improve the system configuration and also the operation of the system for given boundary conditions. This is especially useful when the energy from the low temperature sources can be utilized at different temperature or quality levels such as for space heating and domestic hot water. 展开更多
关键词 EXERGY energy management buildings systems performance.
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Safe operation of online learning data driven model predictive control of building energy systems 被引量:1
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作者 Phillip Stoffel Patrick Henkel +2 位作者 Martin Ratz Alexander Kumpel Dirk Muller 《Energy and AI》 2023年第4期536-549,共14页
Model predictive control is a promising approach to reduce the CO 2 emissions in the building sector.However,the vast modeling effort hampers the widescale practical application.Here,data-driven process models,like ar... Model predictive control is a promising approach to reduce the CO 2 emissions in the building sector.However,the vast modeling effort hampers the widescale practical application.Here,data-driven process models,like artificial neural networks,are well-suited to automatize the modeling.However,the underlying data set strongly determines the quality and reliability of artificial neural networks.In general,the validity domain of a machine learning model is limited to the data that was used to train it.Predictions based on system states outside that domain,so-called extrapolations,are unreliable and can negatively influence the control quality.We present a safe operation approach combined with online learning to deal with extrapolation in data-driven model predictive control.Here,the k-nearest neighbor algorithm is used to detect extrapolation to switch to a robust fallback controller.By continuously retraining the artificial neural networks during operation,we successively increase the validity domain of the artificial neural networks and the control quality.We apply the approach to control a building energy system provided by the BOPTEST framework.We compare controllers based on two data sets,one with extensive system excitation and one with baseline operation.The system is controlled to a fixed temperature set point in baseline operation.Therefore,the artificial neural networks trained on this data set tend to extrapolate in other operating points.We show that safe operation in combination with online learning significantly improves performance. 展开更多
关键词 Data-driven model predictive control Online learning Novelty detection Artificial neural networks building energy systems
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Identifying the validity domain of machine learning models in building energy systems
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作者 Martin Rätz Patrick Henkel +2 位作者 Phillip Stoffel Rita Streblow Dirk Müller 《Energy and AI》 EI 2024年第1期328-341,共14页
The building sector significantly contributes to climate change.To improve its carbon footprint,applications like model predictive control and predictive maintenance rely on system models.However,the high modeling eff... The building sector significantly contributes to climate change.To improve its carbon footprint,applications like model predictive control and predictive maintenance rely on system models.However,the high modeling effort hinders practical application.Machine learning models can significantly reduce this modeling effort.To ensure a machine learning model’s reliability in all operating states,it is essential to know its validity domain.Operating states outside the validity domain might lead to extrapolation,resulting in unpredictable behavior.This paper addresses the challenge of identifying extrapolation in data-driven building energy system models and aims to raise knowledge about it.For that,a novel approach is proposed that calibrates novelty detection algorithms towards the machine learning model.Suitable novelty detection algorithms are identified through a literature review and a benchmark test with 15 candidates.A subset of five algorithms is then evaluated on building energy systems.First,on two-dimensional data,displaying the results with a novel visualization scheme.Then on more complex multi-dimensional use cases.The methodology performs well,and the validity domain could be approximated.The visualization allows for a profound analysis and an improved understanding of the fundamental effects behind a machine learning model’s validity domain and the extrapolation regimes. 展开更多
关键词 Extrapolation detection Validity domain Novelty detection Machine learning Artificial neural network Data-driven model predictive control building energy systems
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Need for a Holistic Approach to Assessing Sustainable,Green,and Healthy Buildings 被引量:1
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作者 Nishchaya Kumar Mishra Sameer Patel 《Environment & Health》 2025年第3期218-226,共9页
With the rising global population,economic development,and urbanization,building stock is bound to grow,warranting measures for optimizing their embodied and operational energy and resource consumption.Further,a build... With the rising global population,economic development,and urbanization,building stock is bound to grow,warranting measures for optimizing their embodied and operational energy and resource consumption.Further,a building’s indoor environment quality significantly affects occupants’health,productivity,and well-being since people spend almost 90%of their time indoors.Buildings safeguard occupant’s well-being by shielding them from the outdoor air pollution and increasing climate extremes.However,buildings can also lead to acute and chronic exposure to pollutants trapped inside.The recent pandemic has demonstrated that indoor environments can prevent and promote airborne disease transmission depending on buildings’design and operation.The current segregated rating systems and regulations to gauge buildings’sustainability,health and safety,and energy efficiency have led to a fragmented approach hampering sustainable and healthy buildings’design,construction,and operations.This work discusses the environmental sustainability of buildings,their impacts on occupants’health and productivity,and if and how the existing global policies and frameworks regulate and promote the same.Developing a holistic and comprehensive framework is critical to ensure buildings’sustainability,occupants’health,and energy efficiency. 展开更多
关键词 sustainable and healthy buildings building codes energy-exposure trade-offs health and well-being green building rating systems
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Development of a Long-Term Operational Optimization Model for a Building Energy System Supplied by a Geothermal Field 被引量:1
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作者 KÜMPEL Alexander STOFFEL Phillip MÜLLER Dirk 《Journal of Thermal Science》 SCIE EI CAS CSCD 2022年第5期1293-1301,共9页
In order to reduce energy consumption and CO_(2) emissions in the building sector, more and more renewable energy sources are integrated into energy systems. Especially geothermal fields combined with heat pumps are a... In order to reduce energy consumption and CO_(2) emissions in the building sector, more and more renewable energy sources are integrated into energy systems. Especially geothermal fields combined with heat pumps are able to supply buildings with heat and cold at low carbon emissions. However, using geothermal fields as heat and cold source influences the ground temperature. Consequently, the ground temperature can change dramatically over a building’s lifetime, leading to less efficient operation of the energy system. Therefore, a sustainable operation is required to ensure the long-term efficiency of geothermal fields. In this paper, we develop an optimization model to derive operating strategies for an efficient long-term operation of a building energy system coupled to a geothermal field. The investigated energy system is the main building of the E.ON Energy Research Center in Aachen, Germany, which includes a heat pump, two boilers, a combined heat, and power unit, a glycol cooler, and a geothermal field with 41 probes. For each component, we develop energy-based sub-models, which are connected to form the overall system. The geothermal field is modeled by using a g-functions approach as well as a simplified resistance-capacitance approach. To achieve short computing times and realize an optimization horizon of several years, the optimization problem is formulated as mixed-integer linear programming(MILP). The developed model is optimized regarding two different objectives: the minimization of energy costs and the minimization of long-term temperature changes in the ground. Conclusions for an efficient and sustainable operation of the field, especially for the cooling supply, can be derived from the optimization results. It is shown that a state of equilibrium should be aimed to achieve an energy-efficient operation, in which the temperature of the field is close to the initial ground temperature. 展开更多
关键词 geothermal energy building energy systems operational optimization long-term operation
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SUSTAINABILITY RATING SYSTEMS 被引量:1
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作者 Roshan Mehdizadeh Martin Fischer 《Journal of Green Building》 2012年第2期177-203,共27页
There are five different publications that establish guidelines for sustainable building development that are examined in this report:(1)Leadership in Energy and Environmental Design(“LEED”);(2)CalGreen;(3)the Inter... There are five different publications that establish guidelines for sustainable building development that are examined in this report:(1)Leadership in Energy and Environmental Design(“LEED”);(2)CalGreen;(3)the International Green Construction Code(“IGCC”);(4)ASHRAE Standard 189.1(“Standard 189.1”);and(5)The San Francisco’s Green Building Ordinance(“SFGBO”).Having multiple publications can cause confusion among building developers,architects,engineers,building consultants,or various jurisdictions on what publication to follow,use,or reference in building development projects.This article will provide various parties involved in building development a thorough understanding of each publication and the similarities or differences between them,which will ultimately assist in identifying areas for all publications to improve.Specifically,this article demonstrates that the Material and Energy sections for all the publications must advance beyond the current requirements.Also,the comparison validates that CalGreen’s Tier 2 is similar to LEED’s local ordinances,like the SFGBO.This may mean two things:(1)LEED will need to advance its gold or platinum certification requirements,or potentially become less relevant;or(2)local ordinances should reference or adopt CalGreen Tier 2 so that there is common language between local and state regulations.This article identifies that LEED has the most stringent guidelines under the Building Site section out of all the publications.Likewise,the IGCC and Standard 189.1 have provisions under the Water Use section,that goes beyond other publications.Additionally,similar language between LEED and Standard 189.1 was found,which was unsurprising as both publications are authored by the USGBC. 展开更多
关键词 sustainable building development local ordinances jurisdictions local and state regulations voluntary&involuntary green building rating systems LEED CalGreen IGCC ASHRAE 189.1 and SFGBO
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AI in HVAC fault detection and diagnosis:A systematic review
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作者 Jian Bi Hua Wang +4 位作者 Enbo Yan Chuan Wang Ke Yan Liangliang Jiang Bin Yang 《Energy Reviews》 2024年第2期88-116,共29页
Recent studies show that artificial intelligence(AI),such as machine learning and deep learning,models can be adopted and have advantages in fault detection and diagnosis for building energy systems.This paper aims to... Recent studies show that artificial intelligence(AI),such as machine learning and deep learning,models can be adopted and have advantages in fault detection and diagnosis for building energy systems.This paper aims to conduct a comprehensive and systematic literature review on fault detection and diagnosis(FDD)methods for heating,ventilation,and air conditioning(HVAC)systems.This review covers the period from 2013 to 2023 to identify and analyze the existing research in this field.Our work concentrates explicitly on synthesizing AI-based FDD techniques,particularly summarizing these methods and offering a comprehensive classification.First,we discuss the challenges while developing FDD methods for HVAC systems.Next,we classify AI-based FDD methods into three categories:those based on traditional machine learning,deep learning,and hybrid AI models.Additionally,we also examine physical model-based methods to compare them with AI-based methods.The analysis concludes that AI-based HVAC FDD,despite its higher accuracy and reduced reliance on expert knowledge,has garnered considerable research interest compared to physics-based methods.However,it still encounters difficulties in dynamic and time-varying environments and achieving FDD resolution.Addressing these challenges is essential to facilitate the widespread adoption of AI-based FDD in HVAC. 展开更多
关键词 Fault detection and diagnosis(FDD) Systematic review building energy systems HEATING Ventilation And air conditioning(HVAC) AI-Based methods Physical model-based methods
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