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Applied Chemistry for Engineering, Vol.29, No.1, 1-9, February, 2018
바이오디젤 생산원료로써 미세조류의 배양을 위한 대체 영양원 사용 기술
Recent Trends of Using Alternative Nutrient Sources for Microalgae Cultivation as a Feedstock of Biodiesel Production
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초록
미세조류는 바이오연료 생산을 위한 가장 지속가능하고 장래성이 좋은 생산 원료로 여겨지고 있다. 하지만 최근의 몇몇 전과정평가 연구에 의하면 미세조류 바이오디젤 생산, 특히 배양 단계에 많은 에너지가 소요된다는 단점이 있다. 유기탄소, 질소 및 인과 같은 영양분, 그리고 배양에 필요한 용수 비용이 전체 배양 단계의 80%까지 이를 수 있다. 본 총설에서는 최근 미세조류 배양에 필요한 인공배지의 대체용으로 사용 가능성이 높은 하폐수, 유기비료 연소배가스, 유기성 폐기물 등에 대한 최근의 활용 경향과 사용 전략에 대하여 문한 조사를 통해 요약 및 고찰하였다.
Microalgae is considered as one of environmentally sustainable and potential feedstocks to produce biodiesels. However, recent studies on life cycle assessments (LCA) of microalgal buidiesels have shown that energy requirement is not small to produce biodiesel from microalgae, especially during cultivation stage. The costs for carbon sources, nutrients like nitrogen or phosphorous, and water for cultivation can contribute up to 80% of the total medium costs. In the present article, recent trends on the utilization of several promising nutrient sources such as municipal wastewaters, organic fertilizers, combustion exhaust emissions and organic solid wastes were reviewed, and the potential strategies to be used as substitutes of artificial culture media, especially for the biodiesel production, were discussed.
- Chisti Y, Biotechnol. Adv., 25, 294 (2007)
- Subramaniam R, Dufreche S, Zappi M, Bajpai R, Ind. Microbiol. Biotechnol., 37, 1271 (2010)
- Chen CY, Zhao XQ, Yen HW, Ho SH, Cheng CL, Lee DJ, Bai FW, Chang JS, Biochem. Eng. J., 78, 1 (2013)
- Marchetti JM, Miguel VU, Errazu AF, Fuel Process. Technol., 89(8), 740 (2008)
- Scott SA, Davey MP, Dennis JS, Horst I, Howe CJ, Lea-Smith DL, Smith AG, Curr. Opin. Biotechnol., 21, 277 (2010)
- Zhao BS, Ma JW, Zhao QB, Laurens L, Jarvis E, Chen SL, Frear C, Bioresour. Technol., 161, 423 (2014)
- Li XF, Xu H, Wu QY, Biotechnol. Bioeng., 98(4), 764 (2007)
- Lam MK, Tan IS, Lee KT, Chem. Eng. J., 235, 224 (2014)
- Dickinson S, Mientus M, Frey D, Aminihajibashi A, Ozturk S, Shaikh F, Sengupta D, El Halwagi MM, Clean Technol. Environ. Policy, 19, 637 (2017)
- Takisawa K, Kanemoto K, Kartikawati M, Kitamura Y, J. Dev. Sustain. Agric., 9, 120 (2014)
- Chojnacka K, Noworyta A, Enzyme Microb. Technol., 34(5), 461 (2004)
- Greenwell HC, Laurens LML, Shields RJ, Lovitt RW, Flynn KJ, J. R. Soc. Interface, 7, 703 (2010)
- Chen F, Trends Biotechnol., 14, 421 (1996)
- Doucha J, Livansky K, J. Appl. Phycol., 24, 35 (2012)
- Wu ZY, Shi XM, Lett. Appl. Microbiol., 44, 13 (2006)
- Heredia-Arroyo T, Wei W, Ruan R, Hu B, Biomass Bioenerg., 35(5), 2245 (2011)
- Folch J, Lees M, Stanley GHS, J. Biol. Chem., 226, 497 (1957)
- Bligh EG, Dy WJ, Can. J. Biochem. Physiol., 37, 911 (1959)
- Ebrahimian A, Kariminia HR, Vosoughi M, Renew. Energy, 71, 502 (2014)
- Batista AP, Ambrosano L, Graca S, Sousa C, Marques PA, Ribeiro B, Botrel EP, Neto PC, Gouveia L, Bioresour. Technol., 184, 230 (2014)
- Brennan L, Owende P, Renew. Sust. Energ. Rev., 14, 557 (2010)
- Brown N, Shilton A, Rev. Environ. Sci. Bio/Technol., 13, 321 (2014)
- Pittman JK, Dean AP, Osundeko O, Bioresour. Technol., 102(1), 17 (2011)
- Rawat I, Kumar RR, Mutanda T, Bux F, Appl. Energy, 88(10), 3411 (2011)
- Ruiz J, Alvarez-Diaz PD, Arbib Z, Garrido-Perez C, Barragan J, Perales JA, Bioresour. Technol., 127, 456 (2013)
- Zhu L, Biofuels Bioprod. Bioref., 9(6), 801 (2015)
- Larsdotter K, Royal Institute of Technology (KTH), Stockholm, Sweden (2006).
- Henze M, Comeau Y, Biological Wastewater Treatment: Principles Modelling and Design, pp. 33-52, IWA Publishing, London, UK (2008).
- Mobin S, Alam F, Australasian Fluid Mechanics Society (AFMS), December 8-11, Melbourne, Australia (2014).
- Li YC, Chen YF, Chen P, Min M, Zhou WG, Martinez B, Zhu J, Ruan R, Bioresour. Technol., 102(8), 5138 (2011)
- Aslan S, Kapdan IK, Ecol. Eng., 28(1), 64 (2006)
- Zhou W, Chen P, Min M, Ma X, Wang J, Griffith R, Hussain F, Peng P, Xie Q, Li Y, Renew. Sust. Energ. Rev., 36, 256 (2014)
- Mennaa FZ, Arbib Z, Perales JA, Water Res., 83, 42 (2015)
- Caporgno MP, Taleb A, Olkiewicz M, Font J, Pruvost J, Legrand J, Bengoa C, Algal Res., 10, 232 (2015)
- Lam MK, Yusoff MI, Uemura Y, Lim JW, Khoo CG, Lee KT, Ong HC, Renew. Energy, 103, 197 (2017)
- Chang HX, Fu Q, Huang Y, Xia A, Liao Q, Zhu X, Zheng YP, Sun CH, Bioresour. Technol., 219, 668 (2016)
- Kuo CM, Chen TY, Lin TH, Kao CY, Lai JT, Chang JS, Lin CS, Bioresour. Technol., 194, 326 (2015)
- Mujtaba G, Rizwan M, Lee K, J. Ind. Eng. Chem., 49, 145 (2017)
- Misra R, Roy R, Hiraoka H, On-Farm Composting Methods, UN-FAO, Rome, Italy (2016).
- Zhu L, Hiltunen E, Li Z, J. Environ. Sci., 4(1), 1 (2015)
- Fenton O, Uallachain DO, Algal Res., 1, 49 (2012)
- Mulbry W, Kondrad S, Pizarro C, Kebede-Westhead E, Bioresour. Technol., 99(17), 8137 (2008)
- Zhu LD, Hiltunen E, Renew. Sust. Energ. Rev., 54, 1285 (2016)
- Kumaran K, Lam MK, Tan XB, Uemura Y, Lim JW, Khoo CG, Lee KT, Procedia Eng., 148, 679 (2016)
- Lam MK, Lee KT, Appl. Energy, 94, 303 (2012)
- Dang NM, Lee K, J. Ind. Eng. Chem., https://doi.org/10.1016/j.jiec.2017.10.035 (2018).
- Banerjee A, Guria C, Maiti SK, Energy, 115, 1272 (2016)
- Zhu LD, Li ZH, Guo DB, Huang F, Nugroho Y, Xia K, Bioresour. Technol., 223, 296 (2017)
- Brandjes PJ, de Wit J, van der Meer HG, van Keulen H, International Agriculture Centre, Wageningen, The Netherlands (1996).
- Ledda C, Schievano A, Scaglia B, Rossoni M, Fernandez FGA, Adani F, J. Clean Prod., 13(1), 103 (2016)
- Negoro M, Hamasaki A, Ikuta Y, Makita T, Hirayama K, Suzuki S, Appl. Biochem. Biotechnol., 39(1), 643 (1993)
- Zeiler KG, Heacox DA, Toon ST, Kadam KL, Brown LM, Energy Conv. Manag., 36, 707 (1995)
- Ho SH, Chen CY, Lee DJ, Chang JS, Biotechnol. Adv., 29(2), 189 (2010)
- de Morais MG, Costa JAV, J. Biotechnol., 129(3), 439 (2007)
- Hughes E, Benemann JR, Energy Conv. Manag., 38, 467 (1997)
- BP, BP Statistical Review of World Energy, BP p.l.c., London, UK (2016).
- Cheah WY, Show PL, Chang JS, Ling TC, Juan JC, Bioresour. Technol., 184, 190 (2015)
- Duarte JH, de Morais EG, Radmann EM, Costa JAV, Bioresour. Technol., 234, 472 (2017)
- Duarte JH, Fanka LS, Costa JAV, Bioresour. Technol., 214, 159 (2016)
- Hosseini NS, Shang HL, Ross GM, Scott JA, Bioresour. Technol., 192, 432 (2015)
- Kao CY, Chen TY, Chang YB, Chiu TW, Lin HY, Chen CD, Chang JS, Lin CS, Bioresour. Technol., 166, 485 (2014)
- Jiang YL, Zhang W, Wang JF, Chen Y, Shen SH, Liu TZ, Bioresour. Technol., 128, 359 (2013)
- Canales A, Pareilleux A, Rols JL, Goma G, Huyard A, Water Sci. Technol., 30, 97 (1994)
- Wang M, Sahu AK, Rusten B, Park C, Bioresour. Technol., 142, 585 (2013)
- Krustok I, Nehrenheim E, Odlare M, Liu X, Li S, July 1-4, Preotria, South Africa (2013).
- Ramsunda P, Gldhe A, Singh P, Pillay K, Bux F, Algal Res., 28, 108 (2017)
- Wang L, Liu JL, Zhao QY, Wei W, Sun YH, Bioresour. Technol., 211, 1 (2016)
- Mujtaba G, Lee K, Appl. Chem. Eng., 27(1), 1 (2016)
- Kim G, Mujtaba G, Rizwan M, Lee K, Appl. Chem. Eng., 25(6), 553 (2014)
- Mujtaba G, Lee K, Water Res., 120, 174 (2017)