Evaluating the Life Cycle Environmental Benefits and Trade-Offs of Water Reuse Systems for Net-Zero Buildings

被引:37
|
作者
Hasik, Vaclav [1 ]
Anderson, Naomi E. [1 ]
Collinge, William O. [1 ]
Thiel, Cassandra L. [1 ,2 ]
Khanna, Vikas [1 ]
Wirick, Jason [3 ]
Piacentini, Richard [3 ]
Landis, Amy E. [4 ]
Bilec, Melissa M. [1 ]
机构
[1] Univ Pittsburgh, Dept Civil & Environm Engn, 153 Benedum Hall,3700 OHara St, Pittsburgh, PA 15261 USA
[2] NYU, Sch Med, Dept Populat Hlth, 227 East 30 S St, New York, NY 10016 USA
[3] Phipps Conservatory & Bot Gardens, One Schenley Pk, Pittsburgh, PA 15213 USA
[4] Clemson Univ, Dept Civil Engn, Lowry Hall,306 South Palmetto Blvd, Clemson, SC 29634 USA
基金
美国国家科学基金会;
关键词
TREATING WASTE-WATER; CONSTRUCTED WETLAND; NITROUS-OXIDE; ENERGY USE; TREATMENT PLANTS; SUPPLY-SYSTEMS; UNITED-STATES; EMISSIONS; SCALE; SUSTAINABILITY;
D O I
10.1021/acs.est.6b03879
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Aging water infrastructure and increased water scarcity have resulted in higher interest in water reuse and decentralization. Rating systems for high-performance buildings implicitly promote the use of building-scale, decentralized water supply and treatment technologies. It is important to recognize the potential benefits and trade-offs of decentralized and centralized water systems in the context of high-performance buildings. For this reason and to fill a gap in the current literature, we completed a life cycle assessment (LCA) of the decentralized water system of a highperformance, net-zero energy, net-zero water building (NZB) that received multiple green building certifications and compared the results with two modeled buildings (conventional and water efficient) using centralized water systems. We investigated the NZB's impacts over varying lifetimes, conducted a break-even analysis, and included Monte Carlo uncertainty analysis. The results show that, although the NZB performs better in most categories than the conventional building, the water efficient building generally outperforms the NZB. The lifetime of the NZB, septic tank aeration, and use of solar energy have been found to be important factors in the NZB's impacts. While these findings are specific to the case study building, location, and treatment technologies, the framework for comparison of water and wastewater impacts of various buildings can be applied during building design to aid decision making. As we design and operate high-performance buildings, the potential trade-offs of advanced decentralized water treatment systems should be considered.
引用
收藏
页码:1110 / 1119
页数:10
相关论文
共 49 条
  • [41] Life cycle energy and environmental benefits of novel design-for-deconstruction structural systems in steel buildings
    Eckelman, Matthew J.
    Brown, Clayton
    Troup, Lucas N.
    Wang, Lizhong
    Webster, Mark D.
    Hajjar, Jerome F.
    BUILDING AND ENVIRONMENT, 2018, 143 : 421 - 430
  • [42] Addendum to: Understanding environmental trade-offs and resource demand of direct air capture technologies through comparative life-cycle assessment
    Kavya Madhu
    Stefan Pauliuk
    Sumukha Dhathri
    Felix Creutzig
    Nature Energy, 2023, 8 : 901 - 902
  • [43] Environmental trade-offs associated with intensification methods in a pasture-based dairy system using prospective attributional Life Cycle Assessment
    Chobtang, Jeerasak
    McLaren, Sarah J.
    Ledgard, Stewart F.
    Donaghy, Daniel J.
    JOURNAL OF CLEANER PRODUCTION, 2017, 143 : 1302 - 1312
  • [44] Environmental Trade-Offs of Downcycling in Circular Economy: Combining Life Cycle Assessment and Material Circularity Indicator to Inform Circularity Strategies for Alkaline Batteries
    Glogic, Edis
    Sonnemann, Guido
    Young, Steven B.
    SUSTAINABILITY, 2021, 13 (03) : 1 - 12
  • [45] Computational framework for evaluating risk trade-offs in costs associated with legionnaires' disease risk, energy, and scalding risk for hospital hot water systems
    Heida, Ashley
    Mraz, Alexis
    Hamilton, Mark T.
    Weir, Mark H.
    Hamilton, Kerry A.
    ENVIRONMENTAL SCIENCE-WATER RESEARCH & TECHNOLOGY, 2022, 8 (01) : 76 - 97
  • [46] Net-zero energy building design and life-cycle cost analysis with air-source variable refrigerant flow and distributed photovoltaic systems
    Kim, Dongsu
    Cho, Heejin
    Koh, Jaeyoon
    Im, Piljae
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 118
  • [47] Understanding environmental trade-offs and resource demand of direct air capture technologies through comparative life-cycle assessment (vol 6, pg 1035, 2021)
    Madhu, Kavya
    Pauliuk, Stefan
    Dhathri, Sumukha
    Creutzig, Felix
    NATURE ENERGY, 2023, 8 (08) : 901 - 902
  • [48] Environmental, economic and social trade-offs of membrane-based direct air capture technologies integrated with CO2 conversion using life cycle assessment
    Fan, Tianhui
    Shen, Siyu
    Sit, Chun Yat
    Kenis, Paul J.A.
    Chapman, Andrew
    Journal of CO2 Utilization, 2025, 91
  • [49] Environmental performance of building integrated grey water reuse systems based on life-Cycle Assessment: A systematic and bibliographic analysis
    Yoonus, Hamad
    Al-Ghamdi, Sami G.
    SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 712