Replacing process water and nitrogen sources with biogas slurry during cellulosic ethanol production

被引:6
|
作者
You, Yang [1 ]
Wu, Bo [1 ]
Yang, Yi-Wei [1 ]
Wang, Yan-Wei [1 ]
Liu, Song [1 ]
Zhu, Qi-Li [1 ]
Qin, Han [1 ]
Tan, Fu-Rong [1 ]
Ruan, Zhi-Yong [2 ]
Ma, Ke-Dong [3 ]
Dai, Li-Chun [1 ]
Zhang, Min [1 ]
Hu, Guo-Quan [1 ]
He, Ming-Xiong [1 ]
机构
[1] Minist Agr, Biomass Energy Technol Res Ctr, Key Lab Dev & Applicat Rural Renewable Energy, Biogas Inst, Sect 4-13, Chengdu 610041, Sichuan, Peoples R China
[2] CAAS, Key Lab Microbial Resources, Minist Agr, Inst Agr Resources & Reg Planning, Beijing 100081, Peoples R China
[3] Dalian Univ, Coll Environm & Chem Engn, Dalian 116622, Peoples R China
来源
基金
中国国家自然科学基金;
关键词
Biogas slurry; Cellulosic ethanol; NaOH pretreatment; Enzymatic hydrolysis; Zymomonas mobilis; CORN STOVER; BIOETHANOL PRODUCTION; BIOFUEL PRODUCTION; ZYMOMONAS-MOBILIS; FERMENTATION; MANURE; SACCHARIFICATION; CULTIVATION; EFFICIENCY; ENERGY;
D O I
10.1186/s13068-017-0921-y
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: Environmental issues, such as the fossil energy crisis, have resulted in increased public attention to use bioethanol as an alternative renewable energy. For ethanol production, water and nutrient consumption has become increasingly important factors being considered by the bioethanol industry as reducing the consumption of these resources would decrease the overall cost of ethanol production. Biogas slurry contains not only large amounts of wastewater, but also the nutrients required for microbial growth, e.g., nitrogen, ammonia, phosphate, and potassium. Therefore, biogas slurry is an attractive potential resource for bioethanol production that could serve as an alternative to process water and nitrogen sources. Results: In this study, we propose a method that replaces the process water and nitrogen sources needed for cellulosic ethanol production by Zymomonas mobilis with biogas slurry. To test the efficacy of these methods, corn straw degradation following pretreatment with diluted NaOH and enzymatic hydrolysis in the absence of fresh water was evaluated. Then, ethanol fermentation using the ethanologenic bacterial strain Z. mobilis ZMT2 was conducted without supplementing with additional nitrogen sources. After pretreatment with 1.34% NaOH (w/v) diluted in 100% biogas slurry and continuous enzymatic hydrolysis for 144 h, 29.19 g/L glucose and 12.76 g/L xylose were generated from 30 g dry corn straw. The maximum ethanol concentration acquired was 13.75 g/L, which was a yield of 72.63% ethanol from the hydrolysate medium. Nearly 94.87% of the ammonia nitrogen was depleted and no nitrate nitrogen remained after ethanol fermentation. The use of biogas slurry as an alternative to process water and nitrogen sources may decrease the cost of cellulosic ethanol production by 10.0-20.0%. By combining pretreatment with NaOH diluted in biogas slurry, enzymatic hydrolysis, and ethanol fermentation, 56.3 kg of ethanol was produced by Z. mobilis ZMT-2 through fermentation of 1000 kg of dried corn straw. Conclusions: In this study, biogas slurry replaced process water and nitrogen sources during cellulosic ethanol production. The results suggest that biogas slurry is a potential alternative to water when pretreating corn straw and, thus, has important potential applications in cellulosic ethanol production from corn straw. This study not only provides a novel method for utilizing biogas slurry, but also demonstrates a means of reducing the overall cost of cellulosic ethanol.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Replacing process water and nitrogen sources with biogas slurry during cellulosic ethanol production
    Yang You
    Bo Wu
    Yi-Wei Yang
    Yan-Wei Wang
    Song Liu
    Qi-Li Zhu
    Han Qin
    Fu-Rong Tan
    Zhi-Yong Ruan
    Ke-Dong Ma
    Li-Chun Dai
    Min Zhang
    Guo-Quan Hu
    Ming-Xiong He
    Biotechnology for Biofuels, 10
  • [2] Replacing water and nutrients for ethanol production by ARTP derived biogas slurry tolerant Zymomonas mobilis strain
    Guowei Duan
    Bo Wu
    Han Qin
    Weiting Wang
    Qiong Tan
    Yonghua Dai
    Yao Qin
    Furong Tan
    Guoquan Hu
    Mingxiong He
    Biotechnology for Biofuels, 12
  • [3] Replacing water and nutrients for ethanol production by ARTP derived biogas slurry tolerant Zymomonas mobilis strain
    Duan, Guowei
    Wu, Bo
    Qin, Han
    Wang, Weiting
    Tan, Qiong
    Dai, Yonghua
    Qin, Yao
    Tan, Furong
    Hu, Guoquan
    He, Mingxiong
    BIOTECHNOLOGY FOR BIOFUELS, 2019, 12 (1)
  • [4] Treatment of dairy cattle slurry for biogas production and nitrogen recovery
    di Perta, Ester Scotto
    Grieco, Raffaele
    Papirio, Stefano
    Esposito, Giovanni
    Cervelli, Elena
    Pindozzi, Stefania
    2022 IEEE INTERNATIONAL WORKSHOP ON METROLOGY FOR AGRICULTURE AND FORESTRY (METROAGRIFOR), 2022, : 38 - 42
  • [5] Effect of biogas slurry on water footprint in cauliflower production
    Zhao Zhichao
    Zhao Shifeng
    Wang Yanqin
    Fu Longyun
    Yao Li
    6TH INTERNATIONAL CONFERENCE ON ADVANCES IN ENERGY RESOURCES AND ENVIRONMENT ENGINEERING, 2021, 647
  • [6] Process and utility water requirements for cellulosic ethanol production processes via fermentation pathway
    Lingaraju, Bala P.
    Lee, Joo-Youp
    Yang, Y. Jeffrey
    ENVIRONMENTAL PROGRESS & SUSTAINABLE ENERGY, 2013, 32 (02) : 396 - 405
  • [7] Evaluation of electricity generation from lignin residue and biogas in cellulosic ethanol production
    Liu, Gang
    Bao, Jie
    BIORESOURCE TECHNOLOGY, 2017, 243 : 1232 - 1236
  • [8] Structural Changes of Sugar Cane Bagasse Lignin during Cellulosic Ethanol Production Process
    Tana, Tana
    Zhang, Zhanying
    Moghaddam, Lalehvash
    Rackemann, Darryn W.
    Rencoret, Jorge
    Gutierrez, Ana
    del Rio, Jose C.
    Doherty, William O. S.
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2016, 4 (10): : 5483 - 5494
  • [9] Process intensification of cellulosic ethanol production by waste heat integration
    Song, Chunfeng
    Qiu, Yiting
    Liu, Qingling
    Ji, Na
    Zhao, Yingxin
    Kitamura, Yutaka
    Hou, Xifeng
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2018, 132 : 115 - 122
  • [10] The hydrolysis and biogas production of complex cellulosic substrates using three anaerobic biomass sources
    Keating, C.
    Cysneiros, D.
    Mahony, T.
    O'Flaherty, V.
    WATER SCIENCE AND TECHNOLOGY, 2013, 67 (02) : 293 - 298