Life cycle cost savings analysis on traditional drainage systems from low impact development strategies

被引:0
|
作者
Pengfei ZHANG
Samuel T.ARIARATNAM
机构
[1] School of Sustainable Engineering and the Built Environment
[2] Arizona State University
关键词
D O I
暂无
中图分类号
TU992.05 [施工];
学科分类号
摘要
Areas that are covered with natural vegetation have been converted into asphalt, concrete, or roofed structures and have increased surface impermeability and decreased natural drainage capability. Conventional drainage systems were built to mimic natural drainage patterns to prevent the occurrence of waterlogging in developed sites. These drainage systems consist of two major components: 1) a stormwater conduit system, and 2) a runoff storage system. Runoff storage systems contain retention basins and drywells that are used to store and percolate runoff, whereas conduit systems are combination of catch basins and conduit pipes used to collect and transport runoff. The construction of these drainage systems is costly and may cause significant environmental disturbance. In this study, low impact development(LID)methods that consist of extensive green roofs(GRs) and permeable interlocking concrete pavements(PICPs) are applied in real-world construction projects. Construction project documents were reviewed, and related cost information was gathered through the accepted bidding proposals and interviews of specialty contractors in the metropolitan area of Phoenix, Arizona. Results indicate that the application of both LID methods to existing projects can save an average of 27.2% in life cycle costs(LCC) for a 50-year service life and 18.7% in LCC for a25-year service life on the proposed drainage system,respectively.
引用
收藏
页码:88 / 97
页数:10
相关论文
共 50 条
  • [31] LIFE CYCLE DEVELOPMENT - A CLOSER LOOK AT STRATEGIES AND CHALLENGES FOR INTEGRATED LIFE CYCLE PLANNING AND UPGRADING OF COMPLEX SYSTEMS
    Cudok, Anja
    Huth, Tobias
    Inkermann, David
    Vietor, Thomas
    DS87-5 PROCEEDINGS OF THE 21ST INTERNATIONAL CONFERENCE ON ENGINEERING DESIGN (ICED 17), VOL 5: DESIGN FOR X, DESIGN TO X, 2017, : 209 - 218
  • [32] Reflection of sustainability issues in airline strategies and overview of life cycle cost analysis
    Akca, Zeliha
    INTERNATIONAL JOURNAL OF SUSTAINABLE AVIATION, 2018, 4 (02) : 133 - 146
  • [33] Highway life-cycle cost analysis with environment impact considered
    Zhang, Jie
    Wnag, Jing-Jing
    Liu, Kai
    Chang'an Daxue Xuebao (Ziran Kexue Ban)/Journal of Chang'an University (Natural Science Edition), 2014, 34 (03): : 128 - 132
  • [34] Electrical energy storage systems: A comparative life cycle cost analysis
    Zakeri, Behnam
    Syri, Sanna
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 42 : 569 - 596
  • [35] Environmental impact assessment of solar energy systems results from a life cycle analysis
    Gekas, V
    Frantzeskaki, N
    Tsoutsos, T
    PROTECTION AND RESTORATION OF THE ENVIRONMENT VI, VOLS I - III, PROCEEDINGS, 2002, : 1569 - 1575
  • [36] Life cycle cost analysis: an evaluation of renewable heating systems in Turkey
    Ates, Seyithan A.
    ENERGY EXPLORATION & EXPLOITATION, 2015, 33 (04) : 621 - 638
  • [37] Life cycle cost analysis of dairy production systems in Southern Brazil
    Ruviaro, Clandio Favarini
    de Leis, Cristiane Maria
    Florindo, Thiago Jose
    Florindo, Giovanna Isabelle Bom de Medeiros
    da Costa, Jaqueline Severino
    Tang, Walter Zhongzhong
    Pinto, Andrea Troller
    Soares, Sebastiao Roberto
    SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 741 (741)
  • [38] Life cycle cost from consumer side: a comparison between traditional and ecological vehicles
    Cicconi, Paolo
    Germani, Michele
    Landi, Daniele
    Mengarelli, Marco
    2014 IEEE INTERNATIONAL ENERGY CONFERENCE (ENERGYCON 2014), 2014, : 1440 - 1445
  • [39] The development of a model for the life-cycle cost analysis of road tunnels
    Thewes, M.
    Vogt, P.
    BAUINGENIEUR, 2014, 89 : 421 - 430
  • [40] Life Cycle Cost Analysis for Decision Support in Chemical Process Development
    Sell, Ina
    Ott, Denise
    Kralisch, Dana
    CHEMIE INGENIEUR TECHNIK, 2013, 85 (04) : 447 - 454