An integrated biorefinery of Madhuca indica for co-production of biodiesel, bio-oil, and biochar: Towards a sustainable circular bioeconomy

被引:0
|
作者
Rahul, S. [1 ]
Dhanuprabha, D. [1 ]
Prabakaran, S. [2 ]
Arumugam, A. [1 ]
机构
[1] SASTRA Deemed Univ, Ctr Bioenergy, Sch Chem & Biotechnol, Adv Biorefinery & Catalysis ABC Lab, Thanjavur 613401, Tamil Nadu, India
[2] Indian Inst Technol, Dept Mech Engn, Internal Combust Engines & Combust Lab, Powai, Maharashtra, India
关键词
Madhuca indica oil; Enzymatic transesterification; Immobilization; Pyrolysis; Techno-economic analysis; EMISSION CHARACTERISTICS; PROCESS OPTIMIZATION; ENGINE PERFORMANCE; DIESEL BLENDS; METHYL-ESTER; LIPASE; COMBUSTION; JATROPHA;
D O I
10.1016/j.indcrop.2024.119409
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
The advancement of non-waste biorefinery technology has proved beneficial in effectively using waste biomass resources. The potential of various biorefinery designs to transform biomass into a range of commercially viable products and bioenergies has piqued attention worldwide among the several scenarios proposed to commercialize biofuels. This paper describes the biorefinery of Madhuca indica (M. indica) seeds to generate biochar, biooil, and biodiesel. Pyrolization was used on the de-oiled cake to produce charcoal and bio-oil. The M. indica seed's biochar was utilized as a useful supporting particle to immobilize the enzyme. Through transesterification, the immobilized enzyme transformed the oil extracted from the seed into biodiesel. Using an optimum methanolto-oil ratio of 7.5:1,3 % (w/w) of catalyst, and 16% (v/v) of water content, the method yielded a maximum fatty acid methyl ester (FAME) conversion of 93.4%. Diesel and 20% biodiesel have been assessed in terms of performance and emissions analysis. Comparing a 20 % blend of biodiesel to commercial diesel at full load, the emissions of carbon monoxide (CO) were reduced by 21.2%, hydrocarbon (HC) emissions by 18.02%, and nitric oxide (NO) emissions by 4.33 %. In addition, the capital flow of the suggested biorefinery was assessed using a techno-economic analysis. The biorefinery process payback period for the biodiesel, bio-oil, and charcoal made from M. indica was determined to be 3.1358 years using the Aspen Plus Economic Analyzer. Techno-economic studies reveal that the biorefinery process is highly lucrative and practical. The current study therefore shows methods to use the Madhuca indica seed biorefinery to produce sustainable energy and byproducts with no net emissions of carbon.
引用
收藏
页数:20
相关论文
共 46 条
  • [21] Deoxygenated pyrolysis-gasification of biomass for intensified bio-oil and syngas co-production with tar abatement
    Wang, Tingwei
    Liu, Hanpeng
    Toan, Sam
    Sun, Zhao
    Sun, Zhiqiang
    [J]. FUEL, 2024, 371
  • [22] Co-production of phenolic-rich bio-oil and magnetic biochar for phosphate removal via bauxite-residue-catalysed microwave pyrolysis of switchgrass
    Mohamed, Badr A.
    Liu, Zhengyang
    Bi, Xiaotao
    Li, Loretta Y.
    [J]. JOURNAL OF CLEANER PRODUCTION, 2022, 333
  • [23] Alternative valuation pathways for primary, secondary, and tertiary sewage sludge: biochar and bio-oil production for sustainable energy
    Menezes, Lyvia Nara Barroso
    Silveira, Edgar A.
    Mazzoni, Joao Vitor Sollero
    Evaristo, Rafael B. W.
    Rodrigues, Juliana Sabino
    Lamas, Giulia Cruz
    Suarez, Paulo Anselmo Ziani
    Ghesti, Grace Ferreira
    [J]. BIOMASS CONVERSION AND BIOREFINERY, 2022,
  • [24] Sustainable production of bio-based chemicals and polymers via integrated biomass refining and bioprocessing in a circular bioeconomy context
    Ioannidou, Sofia Maria
    Pateraki, Chrysanthi
    Ladakis, Dimitrios
    Papapostolou, Harris
    Tsakona, Maria
    Vlysidis, Anestis
    Kookos, Ioannis K.
    Koutinas, Apostolis
    [J]. BIORESOURCE TECHNOLOGY, 2020, 307
  • [25] Optimization of integrated anaerobic digestion and pyrolysis for biogas, biochar and bio-oil production from the perspective of energy flow
    Yang, Juntao
    Tang, Songbiao
    Song, Bing
    Jiang, Yujing
    Zhu, Wenlei
    Zhou, Weihong
    Yang, Gaixiu
    [J]. SCIENCE OF THE TOTAL ENVIRONMENT, 2023, 872
  • [26] Creating Values from Biomass Pyrolysis in Sweden: Co-Production of H2, Biocarbon and Bio-Oil
    Zaini, Ilman Nuran
    Sophonrat, Nanta
    Sjoblom, Kurt
    Yang, Weihong
    [J]. PROCESSES, 2021, 9 (03) : 1 - 21
  • [27] Reductions in greenhouse gas emissions through innovative co-production of bio-oil in combined heat and power plants
    Pettersson, Malin
    Olofsson, Johanna
    Borjesson, Pal
    Bjornsson, Lovisa
    [J]. APPLIED ENERGY, 2022, 324
  • [28] Optimized bio-oil emulsification for sustainable asphalt production: A step towards a low-carbon pavement
    Ma, Ziye
    Wang, Hainian
    Li, Yuanle
    Yang, Xu
    Leng, Zhen
    [J]. CONSTRUCTION AND BUILDING MATERIALS, 2024, 419
  • [29] Optimal synthesis of integrated process for co-production of biodiesel and hydrotreated vegetable oil (HVO) diesel from hybrid oil feedstocks
    Torres-Ortega, Carlo Edgar
    Gong, Jian
    You, Fengqi
    Rong, Ben-Guang
    [J]. 27TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, PT A, 2017, 40A : 673 - 678
  • [30] Musa acuminata peel: A bioresource for bio-oil and by-product utilization as a sustainable source of renewable green catalyst for biodiesel production
    Daimary, Niran
    Boruah, Pankaj
    Eldiehy, Khalifa S. H.
    Pegu, Tapan
    Bardhan, Pritam
    Bora, Utpal
    Mandal, Manabendra
    Deka, Dhanapati
    [J]. RENEWABLE ENERGY, 2022, 187 : 450 - 462