簡易檢索 / 詳目顯示

研究生: 丁偉家
Wei-Jia Ting
論文名稱: 酵素/酸酯化混和式製程應用於生化柴油之生產
An Enzymatic/ Acid-catalyzed Hybrid Process for Biodiesel Production from Triglyceride
指導教授: 吳文騰
Wen-Teng Wu
朱一民
I-Ming Chu
口試委員:
學位類別: 博士
Doctor
系所名稱: 工學院 - 化學工程學系
Department of Chemical Engineering
論文出版年: 2008
畢業學年度: 96
語文別: 中文
論文頁數: 116
中文關鍵詞: 生化柴油酯化反應轉酯化反應
相關次數: 點閱:1下載:0
分享至:
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報
  • 由於近年來原油價格的飆漲,儲存量的持續遞減和溫室效應的日益嚴重,利用生質燃料來替代石化燃料已成為不可避免的趨勢。因此,新能源的開發無不受到世界各國的重視。生化柴油是一種可再生的生物資源,因其對環境的污染性低、生物可降解性以及柴油引擎可無須任何修改即可直接使用而受到世人的矚目。目前,生化柴油的生產方法主要可分為化學製程(鹼、酸觸媒)和酵素製程。
    本研究利用酵素水解-酸酯化複合製程來生產生化柴油。第一階段,Candida rugosa脂肪分解酶利用二元固定化法固定在幾丁聚醣擔體上應用於黃豆油水解。第二階段則是將酵素水解所得的脂肪酸進行酸觸媒酯化反應生產生化柴油。二元固定化酵素在40℃、pH8以及油脂/水/固定化酵素組成為10/5/3(w/w/w)的環境下,水解五小時,轉化率可達90 %。酸酯化反應則在50℃,2.5%硫酸和甲醇/脂肪酸的莫耳比為15/1的較適化條件下,反應半小時和12小時,生化柴油轉化率分別為83 %和99%。由油脂的性質分析實驗來看,利用黃豆油做為原料,經由酵素水解-酸酯化複合製程所得到的生化柴油,在所測試的性質中皆可符合美國ASTM所訂立的規範(ASTM D6751-02)。由實驗結果可知,酵素水解-酸酯化複合製程是一個適合生產生化柴油的方法。


    摘要 Ⅰ Abstract Ⅲ 謝誌 Ⅴ 目錄 Ⅶ 圖目錄 XI 表目錄 XⅢ 第一章 緒論 1 1.1 前言 1 1.2 研究動機 4 第二章 材料與方法 7 2.1 實驗設備 7 2.2 實驗材料 9 2.3酵素固定化和黃豆油水解 10 2.3.1 幾丁聚醣顆粒的製備 10 2.3.2脂肪分解酶之固定化 10 2.3.3脂肪分解酶活性分析 13 2.3.4蛋白質定量分析 14 2.3.5比活性、相對比活性之定義 14 2.3.6掃描式電子顯微鏡分析(SEM) 15 2.3.7固定化脂肪分解酶水解油脂之研究 15 2.4酸酯化製備生化柴油 17 2.4.1酸酯化反應 17 2.4.2生化柴油轉化率之分析 17 2.4.3 生化柴油性質之測試 18 第三章 二元固定化酵素進行油脂水解反應 21 3.1固定化技術之簡介 21 3.1.1固定化方法之分類 22 3.1.2固定化酵素之性質 24 3.1.3固定化酵素的應用 25 3.2幾丁質(Chitin)與幾丁聚醣(Chitosan) 28 3.2.1幾丁質和幾丁聚醣之結構 29 3.2.2幾丁質和幾丁聚醣之應用 31 3.3脂肪分解脢 (Lipase) 33 3.3.1前言 33 3.3.2脂肪分解酶的功能 34 3.3.3脂肪分解酶在工業上的應用 35 3.3.4固定化脂肪分解脢之現況 40 3.4 結果與討論 41 3.4.1酵素濃度對二元固定化酵素蛋白質固定量和比活性之影響 41 3.4.2油水基質比對二元固定化酵素進行黃豆油水解轉化率的影響 43 3.4.3反應pH與黃豆油水解活性的關係 47 3.4.4反應溫度與黃豆油水解活性的關係 49 3.4.5二元固定化酵素和市售固定化酵素其黃豆油水解轉化率的比較 53 3.4.6二元固定化酵素的pH安定性 53 3.4.7二元固定化酵素的熱安定性 58 3.4.8固定化酵素活化能研究 58 3.4.9二元固定化酵素重複使用次數對黃豆油水解的影響 62 3.5 結論 64 第四章 生化柴油的生產 65 4.1生化柴油 65 4.1.1生化柴油簡介 65 4.1.2生化柴油的製備 72 4.1.2.1轉酯化反應(Transesterification) 72 4.1.2.2酯化反應(Esterification) 77 4.1.3生化柴油的應用 78 4.2結果與討論 80 4.2.1篩選適當的催化劑 80 4.2.2 反應基質莫耳比 83 4.2.3 催化劑濃度 84 4.2.4 反應溫度 87 4.2.5 脂肪酸純度和含水量對生化柴油轉化率的影響 89 4.2.6 較適化條件下,生化柴油轉化率之time course 94 4.2.7生化柴油之性質 95 4.3 結論 99 第五章 結論與未來展望 102 5.1 結論 102 5.2未來展望 103 Reference 105

    Abigor R.D., Marmer W.N. Foglia T.A. Jones K.C. DiCiccio R.J., Ashby R. and Uadia P.O., (2003), Production of cocoa butter-like fats by the lipase-catalyzed interesterification of palm oil and hydrogenated soybean oil. Journal of the American Oil Chemists Society, 80, 1193-1196

    Akertek E. and Tarhan L., (1995), Characterization of immobilized catalases and their application in pasteurization of milk with H2O2. Applied Biochemistry and Biotechnology, 50, 291-303

    Al-Widyan M. I., and Al-Shyoukh A.O., (2002), Experimental evaluation of the transesterification of waste palm oil into biodiesel. Bioresource Technology, 85, 253-256

    Bagi K., Simon L.M. and Szajani B., (1997), Immobilization and characterization of Porcine pancreas lipase. Enzyme and Microbial Technology, 20, 531-535

    Balashev K., Jensen T.R., Kjaer K. and Bjornholm T., (2001), Novel method for studying lipids and lipases and their mutual interaction at interfaces: PartⅠAtomic force microscopy. Biochimie, 83, 387-397

    Berglund P. and Hutt K., (2000), Biocatalytic synthesis of enantiopure compounds using lipases. In Patel RN, editor. Stereoselective biocatalysis. New York: Marcel Dekker

    Bornscheuer U.T., editor, (2000), Enzyme in lipid modification. Weinheim: Wiley-VCH

    Bough W.A. and Landes D.R., (1977), Recovery and Nutritional evaluation of proteinaceous solids separation from whey by coagulation with chitosan. Journal of Dairy Science, 59, 1874-1880.

    Bradford M.M., (1976), A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical Biochemistry. 72, 248-254

    Bycroft N.L. and Byng G.S., (1992), Detergent formulations containing alkaline lipase derived from Pseudomonas plantarll. European patent 4,950,417

    Canakci M. and Van Gerpen J., (1999), Biodiesel production via acid catalysis. Transactions of the ASAE, 42, 1203-1210

    Canakci M. and Van Gerpen J., (2001), Biodiesel production from oils and fats with high free fatty acids. Transactions of the ASAE, 44, 1429-1436

    Canakci M. and Van Gerpen J., (2003), A pilot plant to produce biodiesel from high free fatty acid feedstocks. Transactions of the ASAE, 46, 945-954

    Carroad P.A. and Tom R.A., (1978), Bioconversion of shell fish chitin wastes: process conception and selection of microorganism. Journal of Food Science, 43, 1158-1161.

    Cetinus S.A. and Oztop H.N., (2000), Immobilization of catalase on chitosan film. Enzyme and Microbial Technology, 26, 497-501

    Chowdary G.V., Ramesh M.N., and Prapulla S.G., (2000), Enzymic synthesis of isoamyl isovalerate using immobilized lipase from Rhizomucor miehei: a multivariate analysis. Process Biochemistry, 36, 331-339

    Cosio I.G., Fisher R.A. and Carroad P.A., (1982), Bioconversion of shellfish chitin waste: waste pretreatment, enzyme production, process design, and economic analysis. Journal of Food Science, 47, 901-905.

    Crabbe E., Nolasco-Hipolito C, Kobayashi G, Sonomoto K, and Ishizaki A, (2001), Biodiesel production from crude palm oil and evaluation of butanol extraction and fuel properties, Process Biochemistry, 37, 65-71

    Dean A.J., (1985), Lange’s Handbook of Chemistry. 13th edn., McGraw-Hill, New York, pp5-14-5-39.

    Demirbas A., (2003), Biodiesel fuels from vegetable oils via catalytic and non-catalytic supercritical alcohol transesterifications and other methods: a survey. Energy Conversion & Management, 44, 2093-2109

    Desai P.D., Dave A.M. and Devi S., (2004). Entrapment of lipase into K-carrageenan beads and its use in hydrolysis of olive oil in biphasic system. Journal of Molecular Catalysis: B Enzymatic, 31, 143-150.

    Deshpande M.V., (1986), Enzymatic degradation of chitin & its biological applications. Journal of Scientific & Industrial Research, 45, 273-281.

    Du W., Xu Y., Liu D. and Zeng J., (2004), Comparative study on lipase-catalyzed transformation of soybean oil for biodiesel production with different acyl acceptors. Journal of Molecular Catalysis B: Enzymatic, 30, 125-129

    Ducret A., Trani M. and Lortie R., (1998), Lipase-catalyzed enantioselective esterification of ibuprofen in organic solvents under controlled water activity. Enzyme and Microbial Technology, 22, 212-216

    Fadiloglu S. and Soylemez Z., (1998), Olive oil hydrolysis by celite immobilized Candida rugosa lipase. Journal of Agriculture and Food Chemistry, 46, 3411-3414

    Fernando S., Karra P., Hernandez R. and Jha S.K., (2007), Effect of incompletely converted soybean oil on biodiesel quality. Energy, 32, 844-851

    Foglia T.A., Nelson L.A. and Marmer W.N., (1998), Production of biodiesel lubricant and fuel and lubricant additiver, US patent 5,713,965

    Formo M.W., (1954), Ester reactions of fatty materials. Journal of the American Oil Chemists’ Society 31: 548-559

    Freedman B. and Pryde E.H., (1982), Fatty esters from vegetable oils for use as a diesel fuel. In Vegetable Oil Fuels - proceedings international conference on Plant and Vegetable Oils as Fuels, 117-122, Fargo, N.D., 2-4 August, St. Joseph, Mich.: ASAE

    Freedman B., Pryde E.H., and Mounts T.L., (1984), Variables affecting the yields of fatty esters from transesterified vegetable oils. Journal of the American Oil Chemists’ Society 61: 1638-1643

    Freedman B., Butterfield R.O., and Pryde E.H., (1986), Transesterification kinetics of soybean oil. Journal of the American Oil Chemists’ Society 63: 1375-1380

    From M., Adlercreutz P. and Mattiasson B., (1997), Lipase catalyzed esterification of lactic acid. Biotechnology Letters, 19, 315-317

    Fukuda H., Kondo A. and Noda H., (2001), Biodiesel fuel production by transesterification of oils. Journal of Bioscience and Bioengineering, 92, 405-416

    Gabel D., and Hofsten B.V., (1970), Some properties of a bacterial proteinase chemically fixed to agarose. European journal of biochemistry, 15, 410-414

    Gauglitz Jr. E.J. and Lehman L.W., (1963), The preparation of alkyl esters from highly unsaturated triglycerides. Journal of the American Oil Chemists’ Society, 40, 197-198
    Godfery T. and West S., (1996), Introduction to industrial enzymology. In Godfery T. and West S. editors, Industrial Enzymology 2nd ed. New York, Stockton press, 1-8

    Goff M.J., Bauer N.S., Lopes S., Sutterlin W.R. and Suppes G.J., (2004), Acid-catalyzed alcoholysis of soybean oil. Journal of the American Oil Chemists’ Society, 81, 415-420

    Goldstein L., Levin Y. and Katchalski E., (1964), A water-insoluble polyanionic derivative of trypsin. II. effect of the polyelectrolyte carrier on the kinetic behavior of the bound trypsin. Biochemistry, 3, 1913-1919

    Goldstein L., (1973), A new polyamine carrier for the immobilization of proteins: water-insoluble derivatives of pepsin and trypsin. Biochimica et Biophysica Acta, 327, 132-137.

    Guil-Guerrero, J.L. and Belarbi, E.H., (2001), Purification process for cod liver oil polyunsaturated fatty acids. Journal of the American Oil Chemists’ Society, 78, 477-484

    Hamsaveni D.R., Prapulla S.G. and Divakar S., (2001), Response surface methodological approach for the synthesis of isobutyl isobutyrate. Process Biochemistry. 36, 1103-1109

    Holcapek M., Jandera P., Fischer J. and Prokes B., (1999), Analytical monitoring of the production of biodiesel by high-performance liquid chromatography with various detection methods. Journal of Chromatography A, 858, 13-31.

    Hsu A.F., Jones K., Foglia T.A. and Marmer W.N., (2002), Immobilized lipase-catalysed production of alkyl esters of restaurant grease as biodiesel. Biotechnology and Applied Biochemistry, 36, 181-186

    Hung T.C., Giridhar R., Chiou S.H. and Wu W.T., (2003), Binary immobilization of Candida rugosa lipase on chitosan. Journal of Molecular Catalysis B: Enzymatic, 26, 69-78

    Hutt A.J. and Caldwell J., (1984), The importance of stereochemistry in the clinical pharmacokinetics of the 2-arylpropionic acid non-steroidal anti-inflammatory drugs. Clinical Pharmacokinetics, 9, 371-373

    Issariyakul T., Kulkarni M.G., Dalai A.K. and Bakhshi N.N., (2007), Production of biodiesel from waste fryer grease using mixed methanol/ ethanol system. Fuel processing Technology, 88, 429-436

    Jaeger K.E. and Reetz M.T., (1998), Microbial lipases from versatile tools for biotechnology. Trends in Biotechnology, 16, 396-403

    Jeong G.T., Park D.H., Kang C.H., Lee W.T., Sunwoo C.S., Yoon C.H., Choi B.C., Kim H.S., Kim S.W. and Lee U.T., (2004), Production of biodiesel fuel by transesterification of rapeseed oil. Applied Biochemistry and Biotechnology, 113, 747-758

    Jeromin L., Peukert E. and Wollmann G., (1987), Process for the pre-esterification of free fatty acids in fats and oils. U.S. patent NO. 4,698,186

    Kazlauskas R.J. and Bornscheuer U.T., (1998), Biotransformations with lipases. In Rehm H.J., Pihler G. Stadler A., Kelly P.J.W. editors, Biotechnology, 8 New York: VCH, 37-192

    Kent J.A., (1974), Riegel’s handbook of industrial chemistry, 7th ed., Van Nostrand Reinhold, New York, 368-370

    Klibanov A.M., (1997), Why are enzymes less active in organic solvents than in water? Trends in Biotechnology, 15, 97-101

    Knezevic Z., Bobic S., Milutinovic A., Obradovic B., Mojovic L. and Bugarski B., (2002), Alginate-immobilized lipase by electrostatic extrusion for the purpose of palm oil hydrolysis in lecithin/isooctane system. Process Biochemistry, 38, 313-318

    Knezevic Z, Mojovic L. and Adnadjevic B., (1998), Palm oil hydrolysis by lipase from Candida cylindracea immobilized on zeolite type Y. Enzyme and Microbial Technology, 22, 275-280.

    Knorr D., (1984), Use of chitinous polymer in food – a challenge for food research and development, Food Technology, 38, 85-97.

    Knothe G. and Steidley K. R., (2005), Kinematic viscosity of biodiesel fuel components and related compounds. Influence of compound structure and comparison to petrodiesel fuel components. Fuel, 84, 1059-1065

    Kocsisova T., Cvengros J. and Lutisan J., (2005), High-temperature esterification of fatty acids with methanol at ambient pressure. European Journal of Lipid Science and Technology, 107, 87-92

    Kusdiana D. and Saka S., (2004), Effects of water on biodiesel fuel production by supercritical methanol treatment. Bioresource Technology, 91, 289-295

    Liese A., Seelbach K. and Wandery C. editors., (2000), Industrial biotransformations Weinheim: Wiley=VCH

    Liu X.Q., Guan Y.P., Shen R. and Liu H.Z., (2005), Immobilization of lipase onto micron-size magnetic beads. Journal of Chromatography B, 822, 91-97.

    Liu Y.J., Lotero E. and Goodwin Jr. J.G., (2006), Effect of water on sulfuric acid catalyzed esterification. Journal of Molecular Catalysis A: Chemical, 245, 132-140

    Liu K.S., (1994), Preparation of fatty acid methyl esters for gas-chromatographic analysis of lipids in biological materials. Journal of the American Oil Chemists Society, 71, 1179-1187

    Lotrakul P. and Dharmsthiti S., (1997), Lipase production by Aeromonas sobria LP004 in a medium containing whey and soybean meal. World Journal of Microbiology & Biotechnology. 13, 163-166.
    Lotero E. , Liu Y.J. , Lopez D.E. , Suwannakarn K., Bruce D.A. and Goodwin J.G., (2005), Synthesis of biodiesel via acid catalysis. Industrial & Engineering Chemistry Research, 44, 5353-5363

    Ma F., Clements L.D. and Hanna M.A., (1998), The effects of catalyst, free fatty acids and water on transesterification of beef tallow. Transactions of the ASAE, 41, 1261-1264

    Martinek K., Klibanov A.M., Goldmacher V.S. and Berezin I.V., (1977), The principles of enzyme stabilizationⅠ. Increase in thermostability of enzymes covalently bound to a complementary surface of a polymer support in a multipoint fashion. Biochimica et Biophyaica Acta, 485, 1-12.

    Martinelle M., Holmquist M. and Hult K., (1995), On the interfacial activation of Candida antarctica lipase A and B as compared with Humicola lanuginosa lipase. Biochimica et Biophysica Acta, 1258, 272-276

    Maury S., Buisson P., Perrard A. and Pierre A.C., (2005), Compared esterification kinetics of the lipase from Burkholderia cepacia either free or encapsulated in a silica aerogel. Journal of Molecular Catalysis B: Enzymatic, 32, 193-203.

    Moreno J.M., Hernaiz M.J., Sanchez-Montero J.M., Sinisterra J.V. Bustos M.T., Sanchez M.E. and Bello J.F., (1997), Covalent immobilization of pure lipases A and B from Candida rugosa. Journal of Molecular Catalysis B: Enzymatic, 2, 177-184

    Muniyappa P.R., Brammer S.C. and Noureddini H., (1996), Improved conversion of plant oilsand animal fats into biodiesel and co-product. Bioresource Technology, 56, 19-24

    Murray M., Rooney D., Van Neikerk M., Montenegro A. and Weatherley L.R., (1997), Immobilization of lipase onto lipophilic polymer particles and application to oil hydrolysis. Process Biochemistry, 32, 479-486
    Nimcevic D., Puntigam R., Worgetter M. and Gapes J.R., (2000), Preparation of rapeseed oil esters of lower aliphatic alcohols. Journal of the American Oil Chemists’ Society, 77, 275-280

    Noureddini H., Gao X. and Philkana R.S., (2005), Immobilized Pseudomomas cepacia lipase for biodiesel fuel production from soybean oil. Bioresource Technology, 96, 769-777

    Nye M.J., Williamson T.W., Deshpande S., Schrader J.H., Snively W.H., Yurkewich T.P. and French C.L., (1983), Conversion of used frying oil to diesel fuel by transesterification: preliminary tests. Journal of the American Oil Chemists Society, 60, 1598-1601

    Rai R. and Taneja V., (1998), Production of D-amino acids using immobilized D-hydantoinase from lenti, Lens esculenta, seeds. Applied Microbiology and Biotechnology, 50, 658-662

    Ramadhas A.S., Jayaraj S. and Muraleedharan C., (2005), Biodiesel production from high FFA rubber seed oil. Fuel, 84, 335-340

    Reetz M.T., Zonta A. and Simpelkamp J., (1996) Efficient immobilization of lipases by entrapment in hydrophobic sol-gel materials. Biotechnology and Bioengineering, 49, 527-534

    Rubin B. and Dennis E.A. editor, (1997), Lipase: Part A Biotechnology methods in enzymology. 284, New York: Academic Press, 1-408

    Samukawa T., Kaieda M., Matsumoto T., Ban K., Kondo A., Shimada Y., Noda H. and Fukuda H., (2000), Pretreatment of immobilized Candida antanctica lipase for biodiesel fuel production from plant oil. Journal of Bioscience and Bioengineering, 90, 180-183

    Savant V.D. and Torres J.A., (2000), Chitosan-based coagulating agents for treatment of cheddar cheese whey. Biotechnology Progress, 16, 1091-1097

    Schwab A.W., Bagby M.O. and Freedman B., (1987), Preparation and properties of diesel fuels from vegetable oils. Fuel, 66, 1372-1378

    Sharma R. Chisti Y. and Banerjee U.C., (2001), Production, purification, characterization, and applications of lipases. Biotechnology Advances, 19, 627-662

    Shaw J.F., Chang R.C. Wang F.F. and Wang Y.J., (1990). Lipolytic activities of a lipase immobilized on six selected supporting materials. Biotechnology and Bioengineering, 35, 132-137

    Shimada Y., Maruyama K., Sugihara A., Moriyama S. and Tominaga Y., (1997), Purification of docosahexaenoic acid from tuna oil by a two-step enzymatic method: hydrolysis and selective esterification. Journal of the American Oil Chemists Society, 74, 1441-1446

    Siler-Marinkovic S. and Tomasevic A., (1998), Transesterification of sunflower oil in situ. Fuel, 77, 1389-1391

    Soni K. and Madamwar D., (2001), Ester synthesis by lipase immobilized on silica and microemulsion based organogels (MBGs). Process Biochemistry, 36, 607-611

    Sridharan, R. and Mathai I.M., (1974), Transesterification reactions. Journal of Scienifict & Industrial research, 33: 178-187

    Srivastava A., and Prasad R., (2000), Triglycerides-based diesel fuels, Renewable & Sustainable Energy Reviews, 4, 111-133

    Undurraga D., Markovits A. and Erazo S., (2001), Cocoa butter equivalent through enzymic interesterification of palm oil midification. Process Biochemistry, 36, 933-939

    Valivety R.H., Halling P.J., Peilow A.D. and Macrae A.R., (1994), Relationship between water activity and catalytic activity of lipases in organic media-effects of supports, loading and enzyme preparation. European Journal of Biochemistry, 222, 461-466.

    Vulfson E.N., (1994), Industrial applications of lipases. In: Woolley P., Peterson S.B. editors. Lipase-their structure, biochemistry and application: Cambridge Univ. Press, Cambridge,UK, 271-288

    Wilke D., (1999), Chemicals from biotechnology: molecular plant genetics will challenge the chemical and fermentation industry. Applied Microbiology and Biotechnology, 52, 135-145

    Wright H. J., Segur J. B., Clark H. V., Coburn S. K., Langdon E. E. and DuPuis R. N., (1944), A report on ester interchange. Journal of the American Oil Chemists’ Society, 21, 145-148

    Xin Y.J., Li S.B., Xu Y., Chui J.R. and Xia C.G., (2001), Dynamic enzymatic resolution of naproxen methyl ester in a membrane bioreactor. Journal of Chemical Technology and Biotechnology, 76, 579-585

    Yan H. and Nagahama K., (2003), Activity of free Candida rugosa lipase in hydrolysis reaction of tuna oil under high pressure carbon dioxide. Journal of Chemical Engineering of Japan. 36, 557-562

    Yan H., Noritomi H. and Nagahama K., (2002), Concentration of docosahexaenoic acid in glyceride by hydrolysis of tuna oil with Candida rugosa lipase. Kagaku Kogaku Ronbunshu, 28, 31-35

    Yemul O. and Imae T., (2005), Covalent-bonded immobilization of lipase on poly(phenylene sulfide) dendrimers and their hydrolysis ability. Biomacromolecules, 6, 2809-2814.

    You L.L. and Baharin B.S., (2006), Effects of enzymatic hydrolysis on crude palm olein by lipase from Candida rugosa. Journal of Food Lipids, 13, 73-87

    Yusof N.L.B.M., Lim L.Y. and Khor E., (2001), Preparation and characterization of chitin beads as a wound dressing precursor, Journal of Biomedical Materials Research, 54, 59-68

    Zhang Y., Dube M.A., McLean D.D. and Kates M., (2003), Biodiesel production from waste cooking oil: 1. Process design and technological assessment. Bioresource Technology, 89, 1-16

    Zhu Q.Z., (2000), Study on chitosan-immobilized hemicellulase.
    Progress in Biochemistry and Biophysics, 27, 274-277.

    Zhu S.D., Wu Y. and Yu Z., (2005), Immobilization of Candida rugosa lipase on a pH-sensitive support for enantioselective hydrolysis of ketoprofen ester. Journal of Biotechnology, 116, 397-401

    Ziejewski M., Goettler H. and Pratt G.L., (1986), Paper No. 860301, International Congress and Exposition, Detroit, MI, 24-28

    Zullaikah S., Lai C.C., Vali S.R. and Ju Y.H., (2005), A two-step acid-catalyzed process for the production of biodiesel from rice bran oil. Bioresource Technology, 96, 1889-1896

    European Biodiesel Board, EBB, http://www.ebb-eu.org/
    王三郎,(1994),應用微生物學,高立圖書出版社
    台灣經濟部能源局,http://www.moeaboe.gov.tw
    呂鋒洲和林仁混,(1987),基礎酵素學,聯經出版社
    陳國誠主編,(2000),生物固定化技術與產業應用,茂昌圖書有限公司
    陳澄河,(2003),蝦蟹殼傳奇,科學發展,369期
    蘇遠志,(1999),應用微生物學,華香園出版社
    劉英俊,(1996),最新微生物應用工業,中央圖書出版社
    陳智偉,(2001)在多重網板氣舉式反應器中以饋料批次培養生產幾丁聚醣,國立清華大學化學工程研究所碩士論文。

    無法下載圖示 全文公開日期 本全文未授權公開 (校內網路)
    全文公開日期 本全文未授權公開 (校外網路)

    QR CODE