Optimization of water-energy-food nexus via an integrated system of solar-assisted desalination and farming

被引:8
|
作者
Alhajeri, Nawaf S. [1 ]
Al-Fadhli, Fahad M. [2 ]
Deshpande, Aovi A. [3 ]
El-Halwagi, Mahmoud M. [3 ,4 ]
机构
[1] Kuwait Univ, Coll Life Sci, Dept Environm Technol Management, Kuwait, Kuwait
[2] Kuwait Univ, Coll Engn & Petr, Chem Engn Dept, Kuwait, Kuwait
[3] Texas A&M Univ, Chem Engn Dept, College Stn, TX 77843 USA
[4] Texas A&M Engn Expt Stn, Gas & Fuels Res Ctr, College Stn, TX 77843 USA
关键词
Process systems engineering; Multi-objective optimization; Multi -period modeling; Agrivoltaics; Greenhouse farming; Sustainability; Kuwait; YIELD RESPONSE; POWER; NETWORKS; DESIGN; GENERATION; CLIMATE;
D O I
10.1016/j.jclepro.2023.140362
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This paper introduces a systematic framework for water-energy-food (WEF) nexus with focus on integrating water desalination (via reverse osmosis and thermal desalination), energy generation (from fossil-based power plants and solar panels), and crop production. Specifically, the paper provides generally applicable and new contributions in formulating WEF nexus problems as multi-objective, multi-period optimization problems with data-driven models based on field work. The paper also established a systematic method for integrating and reconciling farming methods, water technologies, energy-resource selection and operation, carbon footprint, and economic factors. A superstructure representation is used to embed the candidate options and configurations. An optimization formulation is developed to determine the optimal system configuration, water and energy uses and sources, and crop mix selection. A multi-period model is developed to account for the seasonal variability. The optimization model is solved under different carbon-footprint cuts to establish a tradeoff curve between the economic and environmental objectives. To generate the necessary experimental data for a meaningful case study, a year-long field study was carried out to generate experimental data for three fields were constructed in Kuwait using open-field, agrivoltaic, and greenhouse farming methods. The field data were extracted and coupled with the optimization formulation to apply the proposed approach to a case study. First, the optimization formulation was solved to maximize the net profit with no limits on the carbon footprint. The solution of this relaxed formulation gives a maximum profit of 2.127 MM USD/y and an annual emission of 2242 tonne CO2eq. Next, the optimization formulation was solved with the objective of minimizing the total annual emissions. The result was a minimum annual emission of 363 tonne CO2eq that corresponded to 1.366 MM USD/y of profit. The epsilon-constraint method was employed to establish tradeoffs between the economic and environmental objectives. The solutions also provided valuable information on the percentage contribution of solar energy and water sources.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Optimization of biofuels production via a water-energy-food nexus framework
    Celeste Lopez-Diaz, Dulce
    Fernando Lira-Barragan, Luis
    Rubio-Castro, Eusiel
    Serna-Gonzalez, Medardo
    El-Halwagi, Mahmoud M.
    Maria Ponce-Ortega, Jose
    CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY, 2018, 20 (07) : 1443 - 1466
  • [2] Optimization of Water Grid at Macroscopic Level Analyzing Water-Energy-Food Nexus
    Gonzalez-Bravo, Ramon
    Sauceda-Valenzuela, Mayra
    Mahlknecht, Jurgen
    Rubio-Castro, Eusiel
    Maria Ponce-Ortega, Jose
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (09): : 12140 - 12152
  • [3] Optimizing resilience at water-energy-food nexus
    Manuel Nunez-Lopez, Jesus
    Rubio-Castro, Eusiel
    Maria Ponce-Ortega, Jose
    COMPUTERS & CHEMICAL ENGINEERING, 2022, 160
  • [4] Managing the water-energy-food nexus on an integrated geographical scale
    Abulibdeh, Ammar
    Zaidan, Esmat
    ENVIRONMENTAL DEVELOPMENT, 2020, 33
  • [5] Livestock Farming at the Expense of Water Resources? The Water-Energy-Food Nexus in Regions with Intensive Livestock Farming
    Vogeler, Colette S.
    Moeck, Malte
    Bandelow, Nils C.
    Schroeder, Boris
    WATER, 2019, 11 (11)
  • [6] An integrated model to evaluate water-energy-food nexus at a household scale
    Hussien, Wa'el A.
    Memon, Fayyaz A.
    Savic, Dragan A.
    ENVIRONMENTAL MODELLING & SOFTWARE, 2017, 93 : 366 - 380
  • [7] Optimization approaches to design water-energy-food nexus: A litterature review
    Pena-Torres, Daniel
    Boix, Marianne
    Montastruc, Ludovic
    COMPUTERS & CHEMICAL ENGINEERING, 2022, 167
  • [8] Water-Energy-Food nexus status in Brazil
    Caixeta, Fernando
    JOURNAL OF BIOENERGY AND FOOD SCIENCE, 2019, 6 (02): : 29 - 40
  • [9] Challenges in operationalizing the water-energy-food nexus
    Liu, J.
    Yang, H.
    Cudennec, C.
    Gain, A. K.
    Hoff, H.
    Lawford, R.
    Qi, J.
    de Strasser, L.
    Yillia, P. T.
    Zheng, C.
    HYDROLOGICAL SCIENCES JOURNAL, 2017, 62 (11) : 1714 - 1720
  • [10] A critical review of quantifying water-energy-food nexus interactions
    Li, Wei
    Ward, Philip J.
    van Wesenbeeck, Lia
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2025, 211