Food waste to hydrochar: A potential approach towards the Sustainable Development Goals, carbon neutrality, and circular economy

被引:14
作者
Dhull, Sanju Bala [1 ]
Rose, Pawan Kumar [2 ]
Rani, Jyoti [3 ]
Goksen, Gulden [4 ]
Bains, Aarti [5 ]
机构
[1] Chaudhary Devi Lal Univ, Dept Food Sci & Technol, Sirsa 125055, Haryana, India
[2] Chaudhary Devi Lal Univ, Dept Energy & Environm Sci, Sirsa 125055, Haryana, India
[3] Chaudhary Devi Lal Univ, Dept Bot, Sirsa 125055, Haryana, India
[4] Tarsus Univ, Vocat Sch Tech Sci Mersin Tarsus Organized Ind Zon, Dept Food Technol, TR-33100 Mersin, Turkiye
[5] Lovely Profess Univ, Dept Microbiol, Phagwara 144411, Punjab, India
关键词
Food waste; Hydrothermal carbonization; Hydrochar; Sustainable Development Goals; Carbon neutrality; Circular economy; EFFICIENT CO2 CAPTURE; HYDROTHERMAL CARBONIZATION; POROUS CARBON; GRAPE POMACE; ORANGE PEEL; STEAM GASIFICATION; ADSORPTIVE REMOVAL; SOLID-FUEL; BIOCHAR; BIOMASS;
D O I
10.1016/j.cej.2024.151609
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Food waste is a common organic solid waste generated worldwide in significant quantities, and its proper treatment and management practices are hindered by high moisture content. However, hydrothermal carbonization (HTC) technique uses food waste moisture as the reaction medium and converts it into an environmentally friendly coal -like product, i.e. hydrochar. Food waste conversion to hydrochar via HTC has many benefits but a complex mechanism because each component of food waste has its own structural and chemical properties and interacts with the other components/chemical species during the process involving heterogeneous reactions, which significantly impacts the physio-chemical properties of food waste hydrochar (FWH). Due to high surface area, stability, carbon content, and regeneration capability, FWH is an attractive choice for numerous environmental applications, helps to achieve various Sustainable Development Goals (SDGs), and supports carbon neutrality and a circular economy. Given the importance of this topic, this review provides a comprehensive analysis of the advancements in HTC technology for producing hydrochar from food waste, as well as the carbonization mechanism of each constituent of food waste. The study also highlights the significance of different modification and activation methods used to enhance the primary drawback of FWH. We primarily intend to assess the application of FWH in accomplishing several SDGs, i.e., SDG 6.3 (pollutant removal from wastewater), SDG 7 (generate clean energy), SDG 13 (combat climate change, i.e., CO 2 sequestration), SDG 15.3 (land and soil restoration). Our primary focus is to evaluate the future perspective of FWH via CO 2 emission assessment, life cycle assessment, and techno-economic assessment, along with challenges in commercializing FWH, and propose significant avenues for future research. These insights are essential for determining the economic viability and environmental advantages of FWH as a valuable resource to accomplish several SDGs, achieve carbon neutrality, and promote a circular economy.
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页数:15
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共 127 条
  • [1] Life cycle assessment of the present and proposed food waste management technologies from environmental and economic impact perspectives
    Ahamed, A.
    Yin, K.
    Ng, B. J. H.
    Ren, F.
    Chang, V. W. -C.
    Wang, J. -Y.
    [J]. JOURNAL OF CLEANER PRODUCTION, 2016, 131 : 607 - 614
  • [2] Microwave-assisted hydrothermal treatment of soybean residue and chitosan: Characterization of hydrochars and role of N and P transformation for Pb(II) removal
    Ahmad, Shakeel
    Zhu, Xiangdong
    Wang, Qi
    Wei, Xinchao
    Zhang, Shicheng
    [J]. JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2021, 160
  • [3] Global warming potential of food waste through the life cycle assessment: An analytical review
    Amicarelli, Vera
    Lagioia, Giovanni
    Bux, Christian
    [J]. ENVIRONMENTAL IMPACT ASSESSMENT REVIEW, 2021, 91
  • [4] Impact of pyrolysis and hydrothermal biochar on gas-emitting activity of soil microorganisms and bacterial and archaeal community composition
    Andert, Janet
    Mumme, Jan
    [J]. APPLIED SOIL ECOLOGY, 2015, 96 : 225 - 239
  • [5] [Anonymous], 2014, Food wastage footprint: full cost accounting
  • [6] Fuel properties and combustion performance of hydrochars prepared by hydrothermal carbonization of different recycling paper mill wastes
    Assis, Englatina I. N. C.
    Chirwa, Evans M. N.
    [J]. CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2023, 101 (03) : 1123 - 1137
  • [7] Hydrochars production, characterization and application for wastewater treatment: A review
    Azzaz, Ahmed Amine
    Khiari, Besma
    Jellali, Salah
    Ghimbeu, Cam Elia Matei
    Jeguirim, Mejdi
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 127
  • [8] In Deep Analysis on the Behavior of Grape Marc Constituents during Hydrothermal Carbonization
    Basso, Daniele
    Weiss-Hortala, Elsa
    Patuzzi, Francesco
    Baratieri, Marco
    Fiori, Luca
    [J]. ENERGIES, 2018, 11 (06):
  • [9] Life cycle analysis of hydrothermal carbonization of olive mill waste: Comparison with current management approaches
    Benavente, Veronica
    Fullana, Andres
    Berge, Nicole D.
    [J]. JOURNAL OF CLEANER PRODUCTION, 2017, 142 : 2637 - 2648
  • [10] Assessing the environmental impact of energy production from hydrochar generated via hydrothermal carbonization of food wastes
    Berge, Nicole D.
    Li, Liang
    Flora, Joseph R. V.
    Ro, Kyoung S.
    [J]. WASTE MANAGEMENT, 2015, 43 : 203 - 217