1.Net energy analysis for annual 200 000 ton cassava ethanol production at Guangxi COFCO.
Guojun YUE ; Zhenjiang SUN ; Naidong SHEN
Chinese Journal of Biotechnology 2015;31(2):242-250
Guangxi COFCO innovates its annual 200 000 ton cassava ethanol production in recent years. To evaluate the energy input/output of the production process, we used the domestic life cycle model. The calculation results show that the net energy value was 9.56 MJ/L ethanol. Energy input for ethanol production was 51.3% of the total. 61.5% of energy input for ethanol production was used for steam input in ethanol distillation. Energy produced from by-product was 5.03 MJ/L ethanol. Hence, efficient use of raw materials is an important measure to improve the energy efficiency in Guangxi COFCO and energy compensation from byproducts has key impact on the net energy saving.
Biofuels
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China
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Ethanol
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Manihot
2.Fuel ethanol production from cassava feedstock.
Ribo HUANG ; Dong CHEN ; Qingyan WANG ; Naikun SHEN ; Yutuo WEI ; Liqin DU
Chinese Journal of Biotechnology 2010;26(7):888-891
The regions suitable for growing cassava include five provinces in Southern China, with Guangxi alone accounting for over 65% of the total cassava production in the country. In this article, the state-of-the-art development of fuel ethanol production from cassava in China is illustrated by the construction of the cassava fuel ethanol plant with its annual production capacity of 200 000 metric tons. And in the meantime, problems and challenges encountered in the development of China's cassava fuel ethanol are highlighted and the strategies to address them are proposed.
Biofuels
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China
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Conservation of Energy Resources
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Ethanol
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metabolism
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Manihot
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metabolism
3.Trend of "zero energy consumption and wastewater" in fuel ethanol production.
Chinese Journal of Biotechnology 2008;24(6):946-949
The energy consumption in a Chinese ethanol manufacturer with cassava as the feedstock, has been reduced to a zero-closed level. If the R & D on technical integration of high ethanol concentration fermentation, methane fermentation technique, steam and electricity co-generation system, new distillation technology, and the wastewater reutilization, is carried out continuously, the proposed "zero energy consumption and wastewater" technique could be realized in fuel ethanol production process.
Bioelectric Energy Sources
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Ethanol
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metabolism
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Fermentation
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Manihot
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metabolism
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Methane
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metabolism
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Waste Disposal, Fluid
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methods
4.Very high gravity ethanol fermentation with cassava flour and sugarcane juice.
Naikun SHEN ; Hongyan ZHANG ; Qingyan WANG ; Yan QIN ; Siming LIAO ; Chenghua WANG ; Ribo HUANG
Chinese Journal of Biotechnology 2010;26(9):1269-1275
We optimized the conditions of mixed fermentation of very high gravity ethanol with cassava flour and sugarcane juice. Based on the single factor experiment, we screened the important parameters for very high gravity ethanol fermentation with cassava flour and sugarcane juice by the Plackeet-burman design. Then, we obtained the optimum values of the important parameters by the orthogonal experiments: the mixing ratio of cassava flour to sugarcane juice, 1:5; initial pH of fermentation, 4.0-4.5; the concentrations of urea and MgSO4, 0.25% and 0.04% (W/W), respectively. Finally, we used a gradient temperature control strategy with the optimized conditions, and ethanol concentration of 17.84% (V/V) and fermentation efficiency of 91.82% were achieved, correspondingly.
Biofuels
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analysis
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Ethanol
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analysis
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metabolism
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Fermentation
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Hydrogen-Ion Concentration
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Manihot
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metabolism
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Powders
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Saccharum
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metabolism
5.Improved production of microbial lipids in the two-liquid phase fermentation system.
Riming YAN ; Zuozuo AI ; Ya WANG ; Zhibin ZHANG ; Qinggui ZENG ; Zhu DU
Chinese Journal of Biotechnology 2013;29(4):536-539
In the present study, we developed a two-liquid phase fermentation system by adding 1% n-dodecane as oxygen-vector to enhance the microbial lipids productivity of Trichosporon fermentans using cassava starch hydrolysate. Results suggest that the oxygen-vector could alleviate the oxygen shortage in flask fermentation. The cell mass and lipids concentration were 101.2 g/L and 50.28 respectively in 2 L fermenter with the presence of 1% n-dodecane. Additionally, gas chromatography analysis also reveals that the microbial lipids produced by T. fermentans contained a higher percentage of saturated fatty acid in the oxygen-vector case.
Alkanes
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chemistry
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Biofuels
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Fermentation
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Industrial Microbiology
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methods
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Lipids
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biosynthesis
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Manihot
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metabolism
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Starch
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metabolism
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Trichosporon
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genetics
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metabolism
6.Trends in polymer-grade L-lactic acid fermentation by non-food biomass.
Bo YU ; Yan ZENG ; Xu JIANG ; Limin WANG ; Yanhe MA
Chinese Journal of Biotechnology 2013;29(4):411-421
Lactic acid has a wide range of uses in the chemical, pharmaceutical and food industry. With rapid development of poly (lactic acid) industry, the demand for polymer-grade L-lactic acid is continuously increasing. Developing low-cost, non-food-biomass-lactic-acid fermentation process and the fermentation-separation coupled technology are trends to reduce polymer-grade L-lactic acid production cost. This review summarized the most recent advances in low-cost L-lactic acid fermentation based on the use of non-food biomass, followed by addressing the key issue that might be strategically important for future development of polymer-grade L-lactic acid production in industry.
Biomass
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Biotechnology
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trends
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Cellulose
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metabolism
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Fermentation
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Insulin
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metabolism
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Lactic Acid
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metabolism
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Manihot
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metabolism
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Polymers
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metabolism
7.Enhancing ethanol production using thermophilic yeast by response surface methodology.
Naikun SHEN ; Qingyan WANG ; Yan LU ; Yan QIN ; Ribo HUANG
Chinese Journal of Biotechnology 2010;26(1):42-47
We optimized the conditions of simultaneous saccharification and fermentation (SSF) from cassava flour into high-concentration ethanol by thermophilic yeast GXASY-10. Based on the single factor experiment, we screened the important parameters by Plackeet-burman design. We used the path of steepest ascent to approach to the biggest region of ethanol production subsequently. Then, we obtained the optimum values of the parameters by Box-Behnken design. The results showed that the important parameters were the liquefaction time, glucosidase dosages and initial concentration of cassava flour (substrate). The optimum technical conditions were as follows: liquefaction time 35 min, glucosidase dosages 1.21 AGU/g substrate and initial substrate concentration 37.62%. Under such optimum conditions, the ethanol yield of 20 L fermentor reached 16.07% (V/W) after 48 h fermentation at 37 degrees C and 100 r/min. The ethanol content increased 33% than that under the original condition.
Ethanol
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analysis
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metabolism
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Fermentation
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Glucosidases
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pharmacology
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Hot Temperature
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Manihot
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metabolism
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Substrate Specificity
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Yeasts
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physiology
8.In silico cloning and bioinformatics analysis of HSP21 in Manihot esculenta.
Chinese Journal of Biotechnology 2020;36(7):1422-1430
HSP21 gene is a key gene to respond high temperature stress in plant and plays an important role in preventing protein denaturation, protecting cell structure and maintaining normal growth and development. Therefore, cloning HSP21 gene is the basis for revealing the molecular mechanism of resistance to high temperature stress in cassava. To obtain cassava HSP21 homologous gene and analyze the properties of predicted protein, electronic cloning technology was used to assemble and derivate new gene in this study, and bioinformatics analysis method was used to analyze the primary to highest structure, hydrophilicity/hydrophobicity, signal peptide, protein homology and phylogenetic evolution of expressed protein. HSP21 gene was 969 bp, its open reading frame was 705 bp, and the predicted protein contains 234 amino acids. The predicted protein is a non-transmembrane protein that is alkaline and hydrophilic, and is mainly localized in the chloroplast. Through multiple sequence alignment and phylogenetic analysis, it was found that the cassava HSP21 protein has high homology with other plants such as Hevea brasiliensis, Ricinus communis, and Jatropha curcas. The results could provide reference for the study of cloning and transformation of this gene.
Chloroplasts
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Cloning, Molecular
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Computational Biology
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Computer Simulation
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Evolution, Molecular
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Heat-Shock Proteins
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genetics
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Manihot
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genetics
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Phylogeny
9.Determination of Cyanogenic Compounds in Edible Plants by Ion Chromatography.
Hye Jeon CHO ; Byung Kyung DO ; Soon Mi SHIM ; Hoonjeong KWON ; Dong Ha LEE ; Ahn Hee NAH ; Youn Ju CHOI ; Sook Yeon LEE
Toxicological Research 2013;29(2):143-147
Cyanogenic glycosides are HCN-producing phytotoxins; HCN is a powerful and a rapidly acting poison. It is not difficult to find plants containing these compounds in the food supply and/or in medicinal herb collections. The objective of this study was to investigate the distribution of total cyanide in nine genera (Dolichos, Ginkgo, Hordeum, Linum, Phaseolus, Prunus, Phyllostachys, Phytolacca, and Portulaca) of edible plants and the effect of the processing on cyanide concentration. Total cyanide content was measured by ion chromatography following acid hydrolysis and distillation. Kernels of Prunus genus are used medicinally, but they possess the highest level of total cyanide of up to 2259.81 CN-/g dry weight. Trace amounts of cyanogenic compounds were detected in foodstuffs such as mungbeans and bamboo shoots. Currently, except for the WHO guideline for cassava, there is no global standard for the allowed amount of cyanogenic compounds in foodstuffs. However, our data emphasize the need for the guidelines if plants containing cyanogenic glycosidesare to be developed as dietary supplements.
Chromatography
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Dietary Supplements
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Distillation
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Flax
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Food Supply
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Ginkgo biloba
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Glycosides
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Hordeum
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Hydrolysis
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Manihot
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Phaseolus
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Phytolacca
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Plants, Edible
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Plants, Medicinal
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Prunus
10.Microbial oil production by Trichosporon cutaneum B3 using cassava starch.
Jinyun YUAN ; Zuozuo AI ; Zhibin ZHANG ; Riming YAN ; Qinggui ZENG ; Du ZHU
Chinese Journal of Biotechnology 2011;27(3):453-460
Microbial oil, as raw material for biodiesel, can be produced by Trichosporon cutaneum B3 using cassava starch hydrolysate. Batch cultures demonstrated that there was little inhibitory effect with the concentration of cassava starch hydrolysate up to 90 g/L. The favorable initial pH, C/N molar ratio, nitrogen source and its concentration were 6.0, 116, yeast extract and 3.0 g/L, respectively. Under the optimized conditions, dry biomass reached 15.2 g/L and lipid content reached 40.9% after culture for 144 h in flask. Batch cultures in a 2 L stirred-tank fermenter were run for 44 h and resulted in dry biomass, lipid content and lipid yield of 28.7 g/L, 42.8% and 12.27 g/L, respectively. The chemical compositions of biodiesel prepared from lipids of T cutaneum B3 mainly included palmitic acid methyl ester, stearic acid methyl ester, oleic acid methyl ester and linoleic acid methyl ester etc., and its main physicochemical properties were in compliance with relevant national diesel standards. Therefore, the biodiesel prepared from lipids of T cutaneum B3 can serve as a potential fossil fuel alternatives.
Biofuels
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Culture Techniques
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methods
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Fermentation
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Industrial Microbiology
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methods
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Lipids
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biosynthesis
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Manihot
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metabolism
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Starch
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metabolism
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Trichosporon
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growth & development
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metabolism