Energy and Environmental Analysis of Renewable Energy Systems Focused on Biomass Technologies for Residential Applications: The Life Cycle Energy Analysis Approach

被引:4
|
作者
Giama, Effrosyni [1 ]
Kyriaki, Elli [1 ]
Papaevaggelou, Athanasios [1 ]
Papadopoulos, Agis [1 ]
机构
[1] Aristotle Univ Thessaloniki, Dept Mech Engn, Proc Equipment Design Lab, GR-54124 Thessaloniki, Greece
关键词
Renewable Energy Systems; biomass technologies; solar thermal systems; Life Cycle Energy Analysis; energy efficiency; PERFORMANCE;
D O I
10.3390/en16114433
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Sustainability and resilience are major challenges for the building sector in order to meet energy efficiency and low carbon emissions goals. Based on the defined and quantified targets of the EU climate change policy, Renewable Energy Systems (RESs) are among the top-priority measures for accomplishing the target of decarbonization in buildings. Nevertheless, the choice of the type of RES is not a one-dimensional problem, and the optimal combination may not be unique. The aim of this paper is the energy and environmental evaluation of renewable energy technologies with emphasis on biomass and solar thermal systems for heating applications in residential buildings. More specifically, and aiming at the maximum possible contribution of renewable energy sources in the total final energy consumption for the needs of zero energy buildings, different scenarios are presented based on a Life Cycle Energy Analysis (LCEA) approach. The methodology is based on quantifying the environmental impacts (midpoint analysis), as well as endpoint analysis, in order to define the impact on human health, ecosystem damage, and resource depletion. The LCEA has been conducted, supported by the SimaPro tool, ensuring the environmental impact assessment result. A combination of RES technologies based on solar and biomass are examined and compared to conventional fossil fuel heating systems according to technical, energy, and environmental criteria. Finally, the energy system technologies were compared in correlation to a building's thermal insulation level. The first set of simulations fulfilled the minimum thermal insulation requirements, according to the national energy performance regulation, whilst the second set of simulations was based on increased levels of insulation. The point of this analysis was to correlate the impact of thermal insulation to RES technologies' contribution. The results determined that the best available energy solution, focusing on technical and environmental criteria, is the combination of biomass and solar thermal systems for covering the heating processes in residential buildings. More specifically, the combined biomass-solar system has a lower overall environmental impact, due to the reduction in gaseous pollutant emissions, as well as the reduction in the amount of used fuel. The reduction in the total environmental impact amounts to a percentage of approximately 43%.
引用
收藏
页数:22
相关论文
共 50 条
  • [31] Systems Analysis and Life-Cycle Assessment for energy and environmental sustainability Preface
    Gnansounou, Edgard
    Ganti, Murthy S.
    Singh, Anoop
    Gabrielle, Benoit
    BIORESOURCE TECHNOLOGY, 2020, 317 (317)
  • [32] Techno-Economic and Life Cycle Analysis for Energy Technologies
    Uhlrich, John
    ENERGY TECHNOLOGY, 2020, 8 (11)
  • [33] Life Cycle Energy Analysis
    Crawford, Robert
    ENVIRONMENT DESIGN GUIDE, 2012, (71)
  • [34] Energy Storage in High Variable Renewable Energy Penetration Power Systems: Technologies and Applications
    Zhu, Huan
    Li, Hu
    Liu, Guojing
    Ge, Yi
    Shi, Jing
    Li, Hai
    Zhang, Ning
    CSEE JOURNAL OF POWER AND ENERGY SYSTEMS, 2023, 9 (06): : 2099 - 2108
  • [35] Methodology of the Renewable Energy Sources Life Cycle Environmental Assessment
    Sosnina, Elena
    Masleeva, Olga
    Kryukov, Evgeny
    Erdili, Natalya
    2021 IEEE PES INNOVATIVE SMART GRID TECHNOLOGY EUROPE (ISGT EUROPE 2021), 2021, : 910 - 914
  • [36] Life cycle to Pinch Analysis and 100% renewable energy systems in a circular economy at sustainable development of energy, Water and Environment Systems 2017
    Puksec, Tomislav
    Foley, Aoife
    Markovska, Natasa
    Duic, Neven
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2019, 108 : 572 - 577
  • [37] Life Cycle Energy Analysis of Eight Residential Houses in Brisbane, Australia
    Guan, Lisa
    Walmsely, Madeleine
    Chen, Guangnan
    9TH INTERNATIONAL SYMPOSIUM ON HEATING, VENTILATION AND AIR CONDITIONING (ISHVAC) JOINT WITH THE 3RD INTERNATIONAL CONFERENCE ON BUILDING ENERGY AND ENVIRONMENT (COBEE), 2015, 121 : 653 - 661
  • [38] Life cycle energy and carbon analysis of commercial and residential buildings in India
    Rajasekharan, K. Ayeratharasu
    Porchelvan, P.
    GLOBAL NEST JOURNAL, 2023, 25 (01): : 134 - 140
  • [39] Towards a comprehensive life cycle energy analysis framework for residential buildings
    Stephan, Andre
    Crawford, Robert H.
    de Myttenaere, Kristel
    ENERGY AND BUILDINGS, 2012, 55 : 592 - 600
  • [40] Analysis and evaluation of a new renewable energy based integrated system for residential applications
    Panchal, Satyam
    Dincer, Ibrahim
    Agelin-Chaab, Martin
    ENERGY AND BUILDINGS, 2016, 128 : 900 - 910