Using Sago Pith Waste (SPW) for Hydroxymethylfurfural (HMF) Production: Process and Life-Cycle Analysis (LCA)

被引:0
|
作者
Derosya, Vioni [1 ]
Kawashima, Ayato [1 ]
机构
[1] Ehime Univ, United Grad Sch Agr Sci, Dept Life Environm Conservat Sci, Matsuyama, Japan
关键词
HMF; Life-cycle assessment; One pot production; Sago pith waste; Valorization; BIPHASIC SOLVENT; BIOMASS; DEHYDRATION; ACID; TRANSFORMATION; CONVERSION; SUGARS;
D O I
10.1007/s12649-023-02369-0
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Sago pith waste (SPW), a biomass processing waste, still contains starch after the starch extraction process and consequently can add value to the starch industry's byproducts. In this study, SPW was placed in a biphasic tetrahydrofuran (THF) system. THF was used as the primary solvent during one-pot production for the in situ extraction of hydroxymethylfurfural (HMF). We aimed to obtain a higher yield of HMF from SPW using a THF-water biphasic system and to compare the life-cycle assessment (LCA) of SPW-based HMF production in the THF-water and dimethyl sulfoxide (DMSO)-water systems. Increased HMF production was seen at 160 celcius for 45 min with aluminum sulfate as a catalyst and the addition of sodium chloride. We obtained 32.6% HMF from SPW using a THF-water biphasic system. Additionally, approximately 30% of HMF can be found in the crude extraction solutions. We then analyzed the LCA to consider the development of HMF in the industry by comparing the HMF system from our previous research on DMSO-water. The THF-water system had less environmental impact than the DMSO-water system owing to its higher HMF concentration in the crude extract. These findings can further help to develop environmentally friendly HMF production processes.
引用
收藏
页码:3441 / 3455
页数:15
相关论文
共 50 条
  • [1] Quantification of Carbon Emission and Solid Waste from Pottery Production by Using Life-Cycle Assessment (LCA) Method in Yunnan, China
    Li, Yang
    Sharaai, Amir Hamzah
    Ma, Sining
    Wafa, Wafaurahman
    He, Zhijian
    Ghani, Latifah Abdul
    PROCESSES, 2022, 10 (05)
  • [2] LIFE-CYCLE ASSESSMENT (LCA) OF FOOD-PRODUCTS AND PRODUCTION SYSTEMS
    ANDERSSON, K
    OHLSSON, T
    OLSSON, P
    TRENDS IN FOOD SCIENCE & TECHNOLOGY, 1994, 5 (05) : 134 - 138
  • [3] Model uncertainty analysis using data analytics for life-cycle assessment (LCA) applications
    Mojtaba Ziyadi
    Imad L. Al-Qadi
    The International Journal of Life Cycle Assessment, 2019, 24 : 945 - 959
  • [4] Model uncertainty analysis using data analytics for life-cycle assessment (LCA) applications
    Ziyadi, Mojtaba
    Al-Qadi, Imad L.
    INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2019, 24 (05): : 945 - 959
  • [5] Exergy, waste accounting, and life-cycle analysis
    Ayres, RU
    Ayres, LW
    Martinas, K
    ENERGY, 1998, 23 (05) : 355 - 363
  • [6] An Environmental Impact Analysis of Semi-Mechanical Extraction Process of Sago Starch: Life Cycle Assessment (LCA) Perspective
    Yusuf, M. A.
    Romli, M.
    Suprihatin
    Wiloso, E., I
    2ND INTERNATIONAL CONFERENCE ON AGRICULTURAL ENGINEERING FOR SUSTAINABLE AGRICULTURAL PRODUCTION (AESAP 2017), 2018, 147
  • [7] Selecting a waste management option using a life-cycle analysis approach
    Kirkpatrick, Neil
    Packaging Technology and Science, 1993, 6 (03) : 159 - 172
  • [8] Use of the life-cycle assessment (LCA) toolbox for an environmental evaluation of production processes
    Herrchen, M
    Klein, W
    PURE AND APPLIED CHEMISTRY, 2000, 72 (07) : 1247 - 1252
  • [9] Integrating life cycle analysis (LCA) with process modelling
    Chen, Y
    McRae, GJ
    Electronics Goes Green 2004 (Plus): Driving Forces for Future Electronics, Proceedings, 2004, : 475 - 479
  • [10] Bioethanol production from sago pith waste using microwave hydrothermal hydrolysis accelerated by carbon dioxide
    Thangavelu, Saravana Kannan
    Ahmed, Abu Saleh
    Ani, Farid Nasir
    APPLIED ENERGY, 2014, 128 : 277 - 283