Selecting a Suitable Sustainable Construction Method for Australian High-Rise Building: A Multi-Criteria Analysis

被引:7
作者
Navaratnam, Satheeskumar [1 ]
机构
[1] RMIT Univ, Sch Engn, Melbourne, Vic 3001, Australia
关键词
automated building construction; aluminium formwork construction; off-site construction; analytical hierarchy process; multi-criteria analysis; OFFSITE CONSTRUCTION; DIGITAL FABRICATION; UK HOUSEBUILDERS; CONCRETE; PRODUCTIVITY; PERFORMANCE; MANAGEMENT; FRAMEWORK; SYSTEM; MODEL;
D O I
10.3390/su14127435
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The evolution of innovative construction technology and automation has rapidly transformed the construction industry over the last few decades. However, selecting the most efficient and sustainable construction technology for high-rise building construction is a critical factor in completing the project successfully. This requires a multiple-judgment-decision process relevant to cost, time, environment, sustainability, quality, etc. Thus, this research aims to identify the most suitable sustainable construction method for high-rise building construction in Australia. Three construction methods (i.e., automated building construction, aluminium formwork construction, and off-site construction) and robotic construction technology are reviewed in terms of economic, equity and environmental performance. A detailed multi-criteria analysis is conducted concerning the weighting calculated for each construction method, which aids in recommending a sustainable and cost-effective method. The analytical hierarchy process (AHP) is used as a multi-attribute decision-making tool to determine the weighting factors. The results show that the off-site construction method and robotic construction technique significantly improve the construction performance of high-rise construction in Australia. However, the finding is based on data obtained from a limited number of experts. Thus, a detailed case study with a greater number of expert opinions is needed to ensure the significance of the finding. However, the AHP-based approach method can be used to select sustainable construction alternatives for high-rise buildings.
引用
收藏
页数:17
相关论文
共 83 条
  • [1] Hybrid prequalification-based, innovative contracting model using AHP
    Abudayyeh, Osama
    Zidan, Saad J.
    Yehia, Sherif
    Randolph, Dennis
    [J]. JOURNAL OF MANAGEMENT IN ENGINEERING, 2007, 23 (02) : 88 - 96
  • [2] Potential benefits of digital fabrication for complex structures: Envitonmental assessment of a robotically fabricated concrete-wall
    Agusti-Juan, Isolda
    Muller, Florian
    Hack, Norman
    Wangler, Timothy
    Habert, Guillaume
    [J]. JOURNAL OF CLEANER PRODUCTION, 2017, 154 : 330 - 340
  • [3] Al-Subhi Al-Harbi K. M., 2001, International Journal of Project Management, V19, P19, DOI 10.1016/S0263-7863(99)00038-1
  • [4] Effects of exoskeleton design and precision requirements on physical demands and quality in a simulated overhead drilling task
    Alabdulkarim, Saad
    Kim, Sunwook
    Nussbaum, Maury A.
    [J]. APPLIED ERGONOMICS, 2019, 80 : 136 - 145
  • [5] Alazzaz F., 2014, INT J CIVIL ENV ENG, V8, P1219
  • [6] Anandan T.M., 2018, PLANT ENG, V72, P33
  • [7] [Anonymous], 2018, Sustainable Construction and Building Materials
  • [8] AN AHP FRAMEWORK FOR PRIORITIZING CUSTOMER REQUIREMENTS IN QFD - AN INDUSTRIALIZED HOUSING APPLICATION
    ARMACOST, RL
    COMPONATION, PJ
    MULLENS, MA
    SWART, WW
    [J]. IIE TRANSACTIONS, 1994, 26 (04) : 72 - 79
  • [9] Life cycle greenhouse gas emissions and energy analysis of prefabricated reusable building modules
    Aye, Lu
    Ngo, T.
    Crawford, R. H.
    Gammampila, R.
    Mendis, P.
    [J]. ENERGY AND BUILDINGS, 2012, 47 : 159 - 168
  • [10] Improving performance of additive manufactured (3D printed) concrete: A review on material mix design, processing, interlayer bonding, and reinforcing methods
    Baduge, Shanaka Kristombu
    Navaratnam, Satheeskumar
    Abu-Zidan, Yousef
    McCormack, Tom
    Nguyen, Kate
    Mendis, Priyan
    Zhang, Guomin
    Aye, Lu
    [J]. STRUCTURES, 2021, 29 : 1597 - 1609