Page 148 - เชื้อเพลิงชีวภาพและชีวเคมีภัณฑ์โดยจุลินทรีย์
P. 148
110
Cao G., Ren N., Wang A., Lee D.J., Guo W., Liu B., Feng Y., Zhao, Q. Acid hydrolysis of corn stover for biohydrogen production using Thermoanaerobacterium thermosaccharolyticum W16. Int J Hydrogen Energy 2009; 34: 7182–7188.
Cappai G., De Gioannis G., Friargiu M., Massi E., Muntoni A., Polettini A., Pomi R., Spiga D. An experimental study on fermentative H2 production from food waste as affected by pH. Waste Manag 2014; 34: 1510–1519.
Chan K. W., Lim K. C., Yee C. B., Ong E. C. Some preliminary bunch analysis studies on weevil pollinated bunch and their implication in palm oil production in mills. Proc of the Eighth Oil Palm Seminar. Guthrie Research Chemara: Seremban; 1982. p. 4–9.
Chang F.Y., Lin C.Y. Biohydrogen production using an up-flow anaerobic sludge blanket reactor. Int J Hydrogen Energy 2004; 29: 33–39.
Chang F.Y., Lin C.Y. Calcium effect on fermentative hydrogen production in an anaerobic up-flow sludge blanket system. Water Sci Technol 2006; 54: 105-112.
Chen C.C., Lin C.Y., Lin M.C. Acid-base enrichment enhances anaerobic hydrogen production process. Appl Microbiol Biotechnol 2002; 58: 224–228.
Chen G., Zheng Z., Yang S., Fang C., Zou X., Luo Y. Experimental co-digestion of corn stalk and vermicompost to improve biogas production. Waste Manag 2010; 30: 1834–1840.
Chen S. Der., Lee K.S., Lo Y.C., Chen W.M., Wu J.F., Lin C.Y., Chang J.S. Batch and continuous biohydrogen production from starch hydrolysate by Clostridium species. Int J Hydrogen Energy 2008; 33: 1803–1812.
Cheng C.H., Hung C.H., Lee K.S., Liau P.Y., Liang C.M., Yang L.H., Lin P.J., Lin C.Y. Microbial community structure of a starch-feeding fermentative hydrogen production reactor operated under different incubation conditions. Int J Hydrogen Energy 2008; 33: 5242–5249.
Cheong D.Y., Hansen C.L. Bacterial stress enrichment enhances anaerobic hydrogen production in cattle manure sludge. Appl Microbiol Biotechnol 2006; 72: 635–643.