Fed-Batch Simultaneous Saccharification and Fermentation of Waste Paper to Ethanol

폐지의 유가식 동시당화발효에 의한 에탄올 생산

  • 권정기 (고려대학교 공과대학 화학공학과) ;
  • 문현수 (고려대학교 생명공학원) ;
  • 김준석 (고려대학교 공과대학 화학공학과) ;
  • 김승욱 (고려대학교 공과대학 화학공학과) ;
  • 홍석인 (고려대학교 공과대학 화학공학과)
  • Published : 1999.02.01

Abstract

The fed-bach simultaneous saccharification and fermentation (SSF) of newspaper to ethanol with Brettanomyces custersii was studied. The initial substrate concentration for the effective fed-batch SSF was 8% (w/v). The initial optimum enzyme concentration was 30 FPU/g cellulose for cellulase and the optimum volumetric ratio of $\beta$-glucosidase to cellulase was 0.1. When 4% (w/v) of ball-milled newspaper was supplemented intermittently at time intervals, considering the mixing of newspaper slurry, the fed-batch SSF showed higher ethanol concentration (26.80 g/L) and two times higher ethanol production yield based on enzyme than the batch SSF.

Brettanomyces custersli를 이용하여 신문지의 유가식 동시 당화발효에 의한 에탄올 생산에 대한 연구를 수행하였다. 유가식 동시당화발효에 의한 에탄올 생산을 효과적으로 수행하기 위한 초기 기질 투입 농도는 8%(w/v)이었고 효소의 비용을 감안한 최적 효소 농도는 cellulase의 경우 30EPU/g cellulase, $\beta$-glucosidase와 cellulase의 부피가 0.1(활성비 1.05)이었다. 앞에서 결정된 초기 조건들을 가지고 교반식 반응기에서 수행된 유가식 동시당화발효는 26.8g/L의 에탄올을 생산성에서 회분식 동시당화발효보다 약 2배의 값을 나타내었다.

Keywords

References

  1. Appl. Biochem. Biotechnol. v.45;46 SSF comparison of selected woods from southern sawmills Vinzant, T. B.;L. Ponfick;N. J. Nagle;C. I. Ehrman;J. B. Reynolds;M. E. Himmel
  2. Bioresource Technol. v.58 NREL/DOE ethanol pilot-plant : current status and capabilities Nguyen, Q.A.;J. H. Dicmow;B. W. DufflJ. D. Farmer;D. A. Glassner;K.N. Ibsen;M. F. Ruth;D. J. Schell;I. B. Thompson;M. P. Tucker
  3. Appl. Biochem. Biotechnol. v.46;46 An advanced bioprocessing concept for the conversion of waste paper to ethanol Scott, C.D.;B. H. Davison;T. C. Scott;J. Woodward;C. Dees;D. S. Rothrock
  4. Biomass v.22 Economic evaluations for short rotation biomass production systems Lonther, D.C.
  5. Bioeng. v.45 Effect of surfactant and particle size reduction on hydrolysis of deinking sludge and nonrecyclable newsprint Duff, S. J. B.;J. W. Moritz;T. E. Casavant
  6. Appl. Biochem. Biotechnol. v.34;35 Preliminary estimate of the cost of ethanol production for SSF technology Hinman, N. D.;D. J. Schell;C. J. Riley;P. Bergerson;P. J. Walter
  7. Biotechnol. Bioeng. v.20 Proces design and economic studies of alternative fermentation methods for the production of ethanol Cysewski, G. R.;C. R. Wilke
  8. Proc. VI International Symp. Alcohol Fuels Technology v.2 Commercial revovery processes for ethyl alcohol Dzenis, A.;J. McNab
  9. Appl. Biochem. Biotechnol. v.57;58 Sorptive recovery of dilute ethanol from distillation column bottoms stream Gulati, M. G.;P. J. Wetgate;M. Brewer;R. Hendrickson;M. R. Ladish
  10. Process Biochem. v.27 Bioconversion of waste paper to ethanol Wayman, M.;S. Chen;K. Doan
  11. 석사학위논문 섬유소 물질의 동시당화발효를 위한 균주 개발 및 세포고정화에 의한 에탄올 수율의 향상 홍영기
  12. 석사학위 논문 고농도 페지 슬러리로부터 알콜 생산을 위한 동시당화발효공정의 동력학적 연구 권정기
  13. Biochemnical Engineering Lee, J.M.
  14. Enzyme Microb. Technol. v.18 Fermentation of lignocellulosic Hydrolysates for Ethanol Production Olsson, L;B. H. Hagerdal
  15. Science v.251 Fuel ethanol from biomass Lynd, L. R.;J. H. Cushman;R. J. Nichols;C. E. Wyman
  16. Chem. Eng. Prog. v.84 Ethanol from biomass by enzymatic hydrolysis Wright, J. D.
  17. Final Report 233283-8-6691 A technical and economic evaluation of wood conversion process, Energy, Mines and Res-ources Canada Douglas, L. J.