Response surface optimization of the thermal acid pretreatment of sugar beet pulp for bioethanol production using Trichoderma viride and Saccharomyces cerevisiae

被引:9
|
作者
El-Gendy, Nour Sh. [1 ]
Madian, Hekmat R. [1 ]
Nassar, Hussein N. [1 ]
Amr, Salem S. Abu [2 ]
机构
[1] Egyptian Petroleum Research Institute, PO Box 11727, Nasr City, Cairo, Egypt
[2] Malaysian Institute of Chemical and Bioengineering Technology, Universiti Kuala Lumpur, Melaka, Malaysia
关键词
Agricultural wastes - Batch data processing - Bioethanol - Chlorine compounds - Design of experiments - Ethanol - Feedstocks - Fermentation - Saccharification - Sugar beets - Sugars - Surface properties;
D O I
10.2174/1872208309666150916092450
中图分类号
学科分类号
摘要
Background: Worldwide nowadays, relying on the second generation bioethanol from the lignocellulosic feedstock is a mandatory aim. However, one of the major drawbacks for high ethanol yield is the physical and chemical pretreatment of this kind of feedstock. As the pretreatment is a crucial process operation that modifies the lignocellulosic structure and enhances its accessibility for the high cost hydrolytic enzymes in an attempt to maximize the yield of the fermentable sugars. The objective of this work was to optimize and integrate a physicochemical pretreatment of one of the major agricultural wastes in Egypt; the sugar beet pulp (SBP) and the enzymatic saccharification of the pretreated SBP using a whole fungal cells with a separate bioethanol fermentation batch processes to maximize the bioethanol yield. Methods and results: The response surface methodology was employed in this study to statistically evaluate and optimize the conditions for a thermal acid pretreatment of SBP. The significance and the interaction effects of the concentrations of HCl and SBP and the reaction temperature and time were studied using a three-level central composite design of experiments. A quadratic model equation was obtained to maximize the production of the total reducing sugars. The validity of the predicted model was confirmed. The thermally acid pretreated SBP was further subjected to a solid state fermentation batch process using Trichoderma viride F94. The thermal acid pretreatment and fungal hydrolyzes were integrated with two parallel batch fermentation processes of the produced hydrolyzates using Saccharomyces cerevisiae Y39, that yielded a total of ≈ 48 g/L bioethanol, at a conversion rate of ≈ 0.32 g bioethanol/ g SBP. Conclusion: Applying the proposed integrated process, approximately 97.5 gallon of ethanol would be produced from a ton (dry weight) of SBP. © 2015 Bentham Science Publishers.
引用
收藏
页码:50 / 62
相关论文
共 50 条
  • [41] Mercury Removal by Adsorption on Pectin Extracted from Sugar Beet Pulp: Optimization by Response Surface Methodology
    Ma, Xinfang
    Li, Deqiang
    Wu, Zhansheng
    Zhang, Haiyan
    Chen, Xiaoxuan
    Liu, Zhiyong
    CHEMICAL ENGINEERING & TECHNOLOGY, 2016, 39 (02) : 371 - 377
  • [42] Production of bioethanol from Opuntia ficus-indica using Saccharomyces cerevisiae and Water Kefir following an autohydrolysis pretreatment
    Nori, Insaf
    Khallaki, Kaoutar
    Touil, Salah
    BIOFUELS-UK, 2025, 16 (01): : 42 - 55
  • [43] DILUTED ACID PRETREATMENT OF PINUS RADIATA FOR BIOETHANOL PRODUCTION USING IMMOBILIZED SACCHAROMYCES CEREVISIAE IR2-9 IN A SIMULTANEOUS SACCHARIFICATION AND FERMENTATION PROCESS
    Franco, Heriberto
    Teixeira Mendonca, Regis
    Marcato, Priscyla D.
    Duran, Nelson
    Freer, Juanita
    Baeza, Jaime
    JOURNAL OF THE CHILEAN CHEMICAL SOCIETY, 2011, 56 (04): : 901 - 906
  • [44] Optimization of the Bioethanol Production on Sweet Cheese Whey by Saccharomyces cerevisiae DIV13-Z087C0VS using Response Surface Methodology (RSM)
    Boudjema, Khaled
    Fazouane-Naimi, Fethia
    Hellal, Amina
    ROMANIAN BIOTECHNOLOGICAL LETTERS, 2015, 20 (05): : 10814 - 10825
  • [45] Modelling of Ethanol Production from Red Beet Juice by Saccharomyces cerevisiae under Thermal and Acid Stress Conditions
    Jimenez-Islas, Donaji
    Paez-Lerma, Jesus
    Oscar Soto-Cruz, Nicolas
    Gracida, Jorge
    FOOD TECHNOLOGY AND BIOTECHNOLOGY, 2014, 52 (01) : 93 - 100
  • [46] Optimization of Yeast, Sugar and Nutrient Concentrations for High Ethanol Production Rate Using Industrial Sugar Beet Molasses and Response Surface Methodology
    Beigbeder, Jean-Baptiste
    de Medeiros Dantas, Julia Maria
    Lavoie, Jean-Michel
    FERMENTATION-BASEL, 2021, 7 (02):
  • [47] Optimization of sugar recovery from pineapple leaves by acid-catalyzed liquid hot water pretreatment for bioethanol production
    Imman, Saksit
    Kreetachat, Torpong
    Khongchamnan, Punjarat
    Laosiripojana, Navadol
    Champreda, Verawat
    Suwannahong, Kowit
    Sakulthaew, Chainarong
    Chokejaroenrat, Chanat
    Suriyachai, Nopparat
    ENERGY REPORTS, 2021, 7 : 6945 - 6954
  • [48] COMPARISON OF BIOETHANOL PRODUCTION FROM ACID HYDROLYZATES OF WASTE OFFICE PAPER USING SACCHAROMYCES CEREVISIAE AND SPATHASPORA PASSALIDARUM
    Lima, David Albuquerque
    Nogueira De Luna, Rafaela Lira
    Martin, Carlos
    Gouveia, Ester Rbeiro
    CELLULOSE CHEMISTRY AND TECHNOLOGY, 2015, 49 (5-6): : 463 - 469
  • [49] Response Surface Optimization of Ammonium Sulfite Pretreatment for Fermentable Sugar Production from Wheat Straw
    Chi, Shanshan
    Yu, Guang
    Zhang, Xihui
    Zhang, Yuedong
    Liu, Chao
    Li, Zhenqiu
    Li, Bin
    Cui, Qiu
    BIORESOURCES, 2019, 14 (02): : 4603 - 4622
  • [50] Optimization of combined (acid plus thermal) pretreatment for fermentative hydrogen production from Laminaria japonica using response surface methodology (RSM)
    Jung, Kyung-Won
    Kim, Dong-Hoon
    Kim, Hyun-Woo
    Shin, Hang-Sik
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (16) : 9626 - 9631