Onsite Non-potable Reuse for Large Buildings: Environmental and Economic Suitability as a Function of Building Characteristics and Location

被引:13
|
作者
Arden, Sam [1 ]
Morelli, Ben [1 ]
Cashman, Sarah [1 ]
Ma, Xin [2 ]
Jahne, Michael [2 ]
Garland, Jay [2 ]
机构
[1] Eastern Res Grp, Lexington, MA USA
[2] US EPA, Ctr Environm Solut & Emergency Response, Cincinnati, OH 45268 USA
关键词
NEWR; non-potable reuse; decentralized treatment; life cycle assessment; life cycle cost analysis; regional availability;
D O I
10.1016/j.watres.2020.116635
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Onsite non-potable reuse (NPR) is a way for buildings to conserve water using onsite sources for uses like toilet flushing, laundry and irrigation. Although early case study results are promising, aspects like system suitability, cost and environmental performance remain difficult to quantify and compare across broad geographic contexts and variable system configurations. In this study, we evaluate four NPR system types - rainwater harvesting (RWH), air-conditioning condensate harvesting (ACH), and source-separated graywater and mixed wastewater membrane bioreactors (GWMBR, WWMBR) - in terms of their ability to satisfy onsite non-potable demand, their environmental impacts and their economic cost. As part of the analysis, we developed the Non-potable Environmental and Economic Water Reuse Calculator (NEWR), a publicly available U.S. EPA web application that allows users to generate planning-level estimates of system cost and environmental performance using location and basic building characteristics as inputs. By running NEWR for a range of scenarios, we find that, across the U.S., rainfall and air-conditioner condensate are only able to satisfy a fraction of the non-potable demand typical of large buildings even under favorable climate conditions. Environmental impacts of RWH and ACH systems depend on local climate and were comparable to the ones of MBR systems where annual rainfall exceeds approximately 10 in/yr or annual condensate potential exceeds approximately 3 gal/cfm. MBR systems can meet all non-potable demands but their environmental impacts depend more on the composition of the local energy grid, owing to their greater reliance on electricity inputs. Incorporation of thermal recovery to offset building hot water heating requirements amplifies the influence of the local grid mix on environmental impacts, with mixed results depending on grid composition and whether thermal recovery offsets natural gas or electricity consumption. Additional environmental benefits are realized when NPR systems are implemented in water scarce regions with diverse topography and regions relying on groundwater sources, which increases the benefits of reducing reliance on centralized drinking water services. In terms of cost, WWMBRs were found to have the lowest cost under the largest range of building characteristics and locations, achieving cost parity with local drinking water rates when those rates were more than $7 per 10 0 0 gallons, which occurred in 19% of surveyed cities. Published by Elsevier Ltd.
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页数:10
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  • [1] Human Health, Economic and Environmental Assessment of Onsite Non-Potable Water Reuse Systems for a Large, Mixed-Use Urban Building
    Arden, Sam
    Morelli, Ben
    Schoen, Mary
    Cashman, Sarah
    Jahne, Michael
    Ma, Xin
    Garland, Jay
    [J]. SUSTAINABILITY, 2020, 12 (13)
  • [2] Review of pathogen treatment reductions for onsite non-potable reuse of alternative source waters
    Schoen, Mary E.
    Garland, Jay
    [J]. MICROBIAL RISK ANALYSIS, 2017, 5 : 25 - 31
  • [3] Evaluating endogenous viral targets as potential treatment monitoring surrogates for onsite non-potable water reuse
    Nagarkar, Maitreyi
    Keely, Scott P.
    Wheaton, Emily A.
    Rao, Varun
    Jahne, Michael A.
    Garland, Jay L.
    Brinkman, Nichole E.
    [J]. Environmental Science: Water Research and Technology, 2024, 10 (04): : 971 - 981
  • [4] Evaluating endogenous viral targets as potential treatment monitoring surrogates for onsite non-potable water reuse
    Nagarkar, Maitreyi
    Keely, Scott P.
    Wheaton, Emily A.
    Rao, Varun
    Jahne, Michael A.
    Garland, Jay L.
    Brinkman, Nichole E.
    [J]. ENVIRONMENTAL SCIENCE-WATER RESEARCH & TECHNOLOGY, 2024, 10 (04) : 971 - 981
  • [5] Identifying and overcoming barriers to onsite non-potable water reuse in California from local stakeholder perspectives
    Rupiper, Amanda M.
    Loge, Frank J.
    [J]. Resources, Conservation and Recycling: X, 2019, 4
  • [6] A GHG Metric Methodology to Assess Onsite Buildings Non-Potable Water System for Outdoor Landscape Use
    Seguela, Geraldine
    Littlewood, John R.
    Karani, George
    [J]. APPLIED SCIENCES-BASEL, 2020, 10 (04):
  • [7] Treated domestic effluents for non-potable reuse: microbial risk assessment and economic viability
    da Silva Santos, Luciene
    de Simone Souza, Hugo Henrique
    Amoah, Isaac Dennis
    Magri, Maria Elisa
    Nobuyoshi Ide, Carlos
    Loureiro Paulo, Paula
    [J]. URBAN WATER JOURNAL, 2024, 21 (03) : 349 - 363
  • [8] Urine collection in a multi-story building and opportunities for onsite recovery of nutrients and non-potable water
    Jagtap, Neha S.
    Boyer, Treavor H.
    [J]. JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2020, 8 (04):
  • [9] A risk-based evaluation of onsite, non-potable reuse systems developed in compliance with conventional water quality measures
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    Garland, Jay
    [J]. JOURNAL OF WATER AND HEALTH, 2020, 18 (03) : 331 - 344
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