• 沒有找到結果。

第五章 結論與建議

第二節 建議

透過研究結果與討論,本研究提出以下幾點建議,以作為後續研究之參考:

一、 本研究操作條件係依據相關文獻及實廠操作情形進行調整,研究結果皆於模 型廠進行實驗獲得,未來倘若能進行實廠之驗證,可提高其實用價值。

二、 本研究建立完整有機酸推導公式,可作為未來研究人員繼續使用,並能創造 出快速且有效的計算流程

三、 未來進行相關研究時可比較與其他研究者之變項差異,並推算出各分解菌在 不同條件下之平均濃度。

參考文獻

朱校興(2004)。「以攝氧率量測 AO 程序異營/硝化族群質量及動力參數之研究」,私 立朝陽科技大學環境工程與管理系,碩士論文,台中。

二、英文部分

Allen, R. M., & Bennetto, H. P. (1993). Microbial fuel cell. Applied Biochemistry and Biotechnology, 39, 27-40.

A. Gali, T. Benabdallah, S. Astals, J. Mata-Alvarez. (2009). Modified version of ADM1 model for agro-waste application. Bioresource Technology, 2783–2790.

Batstone D. J., Keller J., Angelidaki I., Kalyuzhnyi S. V., Pavlostathis S. G.., Rozzi A., Sanders W. T. M., Siegrist H. and Vavilin V. A. (2002a). Anaerobic Digestion Model No. 1. International Water Association, London, UK.

Batstone D. J., Keller J., Angelidaki I., Kalyuzhnyi S. V., Pavlostathis S. G.., Rozzi A., Sanders W. T. M., Siegrist H. and Vavilin V. A. (2002b). The IWA Anaerobic Digestion Model No 1 (ADM1). Water Science and Technology, 45 (10), 65-73.

Batstone D. J. and Keller J. (2003). Industrial applications of the IWA anaerobic digestion model No.1 (ADM1). Water Science and Technology, 47 (12), 199-206.

Bell, G. I., Burant, C. F., Takeda, J., & Gould, G. W. (1993). Structure and function of mammalian facilitative sugar transporters. Journal of Biological Chemistry, 268 (26), 19161-19164.

Biffinger, J. C., Fitzgerald, L. A., Ray, R., Little, B. J., Lizewski, S. E., Petersen, E. R., Ringeisen, B. R., Sanders, W. C., Sheehan, P. E., Pietron, J. J. Baldwin, J. W.

Nadeau, L. J., Johnson, G. R., Ribbens, M., Finkel, S. E., & Nealson, K. H., (2011).

The utility of Shewanella japonica for microbial fuel cells. Bioresource Technology, 102(1), 290-297.

Choi,Y., Kim, N., Kim, S., & Jung, S. (2003) Dynamic behaviors of redox mediators within the hydrophobic layers as an important factor for effective microbial fuel cell operation, Bulletin of the Korean Chemical Society, 24(4), 437-440.

Confer, R. D., & Logan, E. B. (1997). Molecular weight distribution of hydrolysis products during the biodegradation of model macromolecules in suspended and

biofilm cultures. I. Bovine serum albumin. Water Research, 31(9), 2127-2136.

Du, Z., Li, H., & Gu, T. (2007). A state of the art review on microbial fuel cells: A promising technology for wastewater treatment and bioenergy.

BiotechnologyAdvances, 25(5), 464-482.

Elmitwalli T. A., Sayed S., Groendijk L., van Lier J., Zeeman G. and Lettinga G.

(2003). Decentralised treatment of concentrated sewage at low temperature in a two-step anaerobic system: two upflow-hybrid septic tank. Water Science and Technology, 48 (6), 219-226.

Feng, Y., Wang, X., Logan, B. E., & Lee, H. (2008). Brewery wastewater treatment using air-cathode microbial fuel cells. Applied Microbiology and Biotechnology, 78(5), 873-880.

Fu, C. C., Hung, T. C., Wu, W. T., Wen, T. C., & Su, C. H. (2010). Current and voltage responses in instant photosynthetic microbial cells with Spirulina platensis.

Biochemical Engineering Journal, 52(2-3), 175-180.

Ghangrekar, M. M., Shinde, V. B., & Duteanu, N. M. (2010). Effect of Wastewater Characteristics and Biomass Growth in Cathode Compartment on Performance of Membrane-less Microbial Fuel Cell. Revista de Chimie, 61(3), 272-280.

Gil, G. C., Chang, I. S., Kim, B. H., Kim, M., Jang, J. K., Park, H. S., & Kim, H. J.

(2003). Operational parameters affecting the performance of a mediator-less microbial fuel cell. Biosensors and Bioelectronics, 18, 327-334.

He, Z., Minteer, S. D., & Angenent, L. T. (2005). Electricity Generation from Artificial Wastewater Using an Upflow Microbial Fuel Cell. Environmental Science &

Technology, 39(14), 5262–5267.

Henze, M., Gujer, W., Mino, T., & Loosedrecht Van, M. (2000). Activated sludge models: ASM1, ASM2, ASM2d and ASM3. International Water Association, London, UK.

Ishii, S., Logan, B. E., & Sekiguchi, Y. (2012). Enhanced electrode-reducing rate during the enrichment process in an air-cathode microbial fuel cell. Applied Microbiology and Biotechnology, 94(4), 1087-1094.

Jang, J. K., Pham, T. H.., Chang. I. S., Kang. K. H., Moon H., Cho, K. S., & Kim, B. H.

(2004). Construction and operation of a novel mediator- and membrane-less microbial fuel cell. Process Biochemistry, 39, 1007-1012.

Kiely, P. D., Cusick, R., Call, D. F., Selembo, P. A., Regan, J. M., & Logan, B. E. (2011) Anode microbial communities produced by changing from microbial fuel cell to microbial electrolysis cell operation using two different wastewaters. Bioresource Technology. 102(1), 388-394.

Kim, B. H., Park, H. S., Kim, H. J., Kim, G. T., Chang, I.S., Lee, J., & Phung, N. T.

(2004) Enrichment of microbial community generating electricity using a fuel- cell-type electrochemical cell. Applied Microbiology and Biotechnology, 63(6), 672–681.

Kim, H. J., Hyun, M. S., Chang, I. S., & Kim, B. H. (1999) A fuel cell type lactate biosensor using a metal reducing bacterium, Journal of Microbiology and Biotechnology. 9(3), 365-367.

Kjaergaard, L. (1977) The redox potential : Its use and control in biotechnology, Advances in Biochemical Engineering, 7, 131-150.

Liu, H., & Logan, B. E. (2004a). Electricity generation usingair-cathode single chamber microbial fuel cell in the presence andabsence of a proton exchange membrane.

Environmental Science & Technology, 38, 4040-4046.

Liu, H., Ramnarauamam, R., & Logan, B. E. (2004b). Production of electricity during wastewater treatment using a single chamber microbial fuel cell. Environmental Science & Technology, 38, 2281-2285.

Liu, M., Shao, J., Zhou, B., S. Zhou, S., & Ni, J. (2010). Progress in research of microbial electricigenic respiration, Chinese Journal of Applied & Environmental Biology, 16(3), 445-452.

Liu, Z. D., & Li, H. R. (2007). Effects of bio- and abio-factors on electricity production in a mediatorless microbial fuel cell. Biochemical Engineering Journal, 36(3), 209-214.

Logan, B. E. (2008). Microbial Fuel Cells. New York: John Wiley & Sons.

Logan, B. E. (2009). Exoelectrogenic bacteria that power microbial fuel cells. Nature Reviews Microbiology, 7(5), 375-381.

Logan, B. E., & Regan, J. M. (2006). Electricity-producing bacterial communities in

microbial fuel cells. Trends in Microbiology, 14(2), 512-518.

Lovley, D. R. (2006). Bug juice: harvesting electricity with microorganisms, Nature Reviews Microbiology, 4, 497-508.

Lovley, D. R. (2008). The microbe electric: conversion of organic matter to electricity.

Current Opinion in Biotechnology, 19(6), 564-571.

Madigan, M. T., & Martinko, J. M. (2006). Brock Biology of Microorganisms. Prentice Hall College Div.

Manohar, A. K., & Mansfeld, F. (2009). The internal resistance of a microbial fuel cell and its dependence on cell design and operating conditions. Electrochimica Acta,54(6), 1664-1670.

McGarty, P. L. (1964). Anaerobic Waste Treatment Fundamentals Part One Chemistry and Microbiology. Public Works, 95, 107-112.

McKinlay, J. B., & Zeikus, J. G. (2004). Extracellulariron reduction is mediated in part by neutral red and hydrogenase inEscherichia coli, Appliedand Environmental Microbiololgy, 70(6), 3467-3474.

Mohammad, M., Abu-Orf., & Dentel, S. K. (1997). Polymer dose assessment using the streaming current detector. Water Environment Research, 69(6), 1075-1085.

Mohan, S. V., Raghavulu, S. V., Peri, D., & Sarma, P. N. (2009). Integrated function of microbial fuel cell (UASB) as bio-electrochemical treatment system associated with bioelectricity generation under higher substrate load. Biosensors and Bioelectronics, 24(7), 2021-2027.

Mohan, Y., Kumar, S. M. M., & Das, D. (2008). Electricity generation using microbial fuel cells. International Journal of Hydrogen Energy, 33(1), 423-426.

Moon, H., Chang, I. S., & Kim, B. H. (2006) Continuous electricity production from artificial wastewater using a mediator-less microbial fuel cell. Bioresource Technology, 97, 621-627.

Moon, H., Chang, I. S., Jang, J. K., & Kim, B. H. (2005). Residence time distribution in microbial fuel cell and its influence on COD removal with electricity generation.

Biochemical Engineering Journal, 27(1), 59-65.

Niessen, J., Schrder, U., & Scholz, F. (2004) Exploiting complex carbohydrates for microbial electricity generation – a bacterial fuel cell operating on starch.

Electrochemistry Communications, 6, 955-958.

Oh, S., & Logan, B. E. (2005). Hydrogen and electricity production from a food processing wastewater using fermentation and microbial fuel cell technologies.

Water Research, 39(19), 4673-4682.

Pai, T. Y. (2007a). Modeling nitrite and nitrate variations in A2O process under different return oxic mixed liquid using an extended model. Process Biochemistry, 42(6), 978-987.

Pai, T. Y. (2008a). Gray and neural network prediction of effluent from the wastewater treatment plant of industrial park using influent quality. Environmental Engineering Science, 25(5), 757-766.

Pai, T. Y., Chang, H. Y., Wan, T. J., Chuang, S. H., & Tsai, Y. P. (2009a). Using an extended activated sludge model to simulate nitrite and nitrate variations in TNCU2 process. Applied Mathematical Modelling, 33(11), 4259-4268.

Pai, T. Y., Chang, T. C., Chen, H. H., & Ouyang, C. F. (2010a). Using grey relation analysis to evaluate the reuse potential of municipal wastewater treatment plant effluent based on quality and quantity. Journal of Environmental Engineering and Management, 20(2), 85-90.

Pai, T. Y., Chang, T. C., Lin, W. S., Chen, H. H., & Ouyang, C. F. (2009b). Evaluation of reuse potential of industrial wastewater treatment plant effluent based on quality and quantity using grey relation analysis. The Journal of Chaoyang University of Technology, 14, 125-136.

Pai, T. Y., Chen, C. L., Chung, H., Ho, H. H., & Shiu, T. W. (2010b). Monitoring and assessing variation of sewage quality and microbial functional groups in a trunk sewer line. Environmental Monitoring and Assessment, 171(1-4), 551-560.

Pai, T. Y., Chiang, C. F., Tsai, C. H., Tsai, Y. S., Chu, H. H., & Liao, W. C. (2003a).

Using artificial neural network to predict the effluent qualities of tree types of wastewater treatment plants. The Journal of Chaoyang University of Technology, 8(2), 253 - 268.

Pai, T. Y., Chiou, R. J., Tzeng, C. J., Lin, T. S., Yeh, S. C., Sung, P. J., Tseng, C. H., Tsai, C. H., Tsai, Y. S., Hsu, W. J., & Wei, Y. L. (2010c). Variation of biomass and kinetic parameter for nitrifying species in TNCU3 process at different aerobic

hydraulic retention time. World Journal of Microbiology & Biotechnology, 26(4), 589-597.

Pai, T. Y., Chuang, S. H., Ho, H. H., Yu, L. F., Su, H. C., & Hu, H. C. (2008b).

Predicting performance of grey and neural network in industrial effluent using online monitoring parameters. Process Biochemistry, 43(2), 199-205.

Pai, T. Y., Chuang, S. H., Wan, T. J., Lo, H. M., Tsai, Y. P., Su, H. C., Yu, L. F., Hu, H. C., & Sung, P. J. (2008c). Comparisons of grey and neural network prediction of industrial park wastewater effluent using influent quality and online monitoring parameters. Environmental Monitoring and Assessment, 146(1-3), 51-66.

Pai, T. Y., Leu, H. G., Chiang, C. F., Tzeng, C. J., & Wang, S. C. (2008d). Simulating transformation of nitrogen components in sewer system when oxygen and flow velocity changed. International Journal of Applied Science and Engineering, 6(1), 1-9.

Pai, T. Y., Ouyang, C. F., Liao, Y. C., & Leu, H. G. (2000a). Oxygen transfer in gravity flow sewer. Water Science and Technology, 42(3-4), 417-422.

Pai, T. Y., Ouyang, C. F., Su, J. L., & Leu, H. G. (2000b). Modelling the steady-state effluent characteristics of the TNCU process with ASM2d under varied SRT conditions. Journal of the Chinese Institute of Environmental Engineering, 10(1), 35-42.

Pai, T. Y., Ouyang, C. F., Su, J. L., & Leu, H. G. (2001a). Modeling the stable effluent qualities of the A2O process with Activated Sludge Model 2d under different return supernatant. Journal of the Chinese Institute of Engineers, 24(1), 75-84.

Pai, T. Y., Ouyang, C. F., Su, J. L., & Leu, H. G. (2001b). Modelling the steady-state effluent characteristics of the TNCU process under different return mixed liquid.

Applied Mathematical Modelling, 25(12), 1025-1038.

Pai, T. Y., Shyu, G. S., Chen, L., Lo, H. M., Chang, D. H., Lai, W. J., Yang, P. Y., Chen, C. Y., Liao, Y. C., & Tseng, S.C. (2013). Modelling transportation and transformation of nitrogen compounds at different influent concentrations in sewer pipe. Applied Mathematical Modelling, 37(3), 1553-1563.

Pai, T. Y., Tsai, Y. P., Leu, H. G., Tsai, C. H., & Ouyang, C. F. (2003b). The effects of sludge retention time on the operation efficiency of three biological nutrient

removal activated sludge processes. Proceediing of 2nd IWA Asian-Pacific Regional Conference (CD-ROM), Bangkok, Thailand.

Pai, T. Y., Tsai, Y. P., Lo, H. M., Tsai, C. H., & Lin, C. Y. (2007b). Grey and neural network prediction of suspended solids and chemical oxygen demand in hospital wastewater treatment plant effluent. Computers & Chemical Engineering, 31(10), 1272-1281.

Pai, T. Y., Tzeng, C. J., Hsu, C. L., Tsai, Y. S., & Hsu, W. J. (2007c). Effect of water depth and aeration on a contact media channel purification process for wastewater reclamation. Journal of Environmental Engineering and Management, 17(5), 339- 343.

Pai, T. Y., Wan, T. J., Hsu, S. T., Chang, T. C., Tsai, Y. P., Lin, C. Y., Su, H. C., & Yu, L.F. (2009c). Using fuzzy inference system to improve neural network for predicting hospital wastewater treatment plant effluent. Computers & Chemical Engineering, 33(7), 1272-1278.

Pai, T. Y., Wan, T. J., Tsai, Y. P., Tzeng, C. J., Chu, H. H., Tsai, Y. S., & Lin, C. Y.

(2010d). Effect of sludge retention time on nitrifiers’ biomass and kinetics in an anaerobic/oxic process. CLEAN-Soil Air Water, 38(2).

Pai, T. Y., Wang, S. C., Chiang, C. F., Su, H. C., Yu, L. F., Sung, P. J., Lin, C. Y., &

Hu, H. C. (2009d). Improving neural network prediction of effluent from biological wastewater treatment plant of industrial park using fuzzy learning approach. Bioprocess and Biosystems Engineering, 32(6), 781-790.

Pai, T. Y., Wang, S. C., Lo, H. M., Chiang, C. F., Liu, M. H., Chiou, R. J., Chen, W. Y., Hung, P. S., Liao, W. C., & Leu, H. G. (2009e). Novel modeling concept for evaluating the effects of cadmium and copper on heterotrophic growth and lysis rates in activated sludge process. Journal of Hazardous Materials, 166(1), 200- 206.

Pai, T. Y., Yang, P. Y., Wang, S. C., Lo, H. M., Chiang, C. F., Kuo, J. L., Chu, H. H., Su, H. C., Yu, L. F., Hu, H. C., & Chang, Y. H. (2011). Predicting effluent from the wastewater treatment plant of industrial park based on fuzzy network and influent quality. Applied Mathematical Modelling, 35(8), 3674-3684.

Pai, T. Y., Wu, R. S., Chen, C. H., Chen, L., Lin, C. Y., Lee, H. Y., Shih, L. H., Jiang,

Y. Z. & Shen, C. Y. (2014). Predicting hardness of four groundwater monitoring stations in Kaohsiung City of Taiwan using seven types of GM (1, 1) model. 2014 AMEE Workshop on Environmental Engineering and Materials Science, April 26-27, Hong Kong.(Accepted)

Pant, D., Bogaert, G. V., Diels, L., & Vanbroekhoven, K., (2010). A review of the substrates used in microbial fuel cells (UASBs) for sustainable energy production.

Bioresource Technology, 101(6), 1533-1543.

Park, D. H., & Zeikus, J. G. (2002). Impact of electrode composition on electricity generation in a single-compartment fuel cell using Shewanella putrefaciens. Appl Microbiol Biotechnol, 59(1), 58–61.

Patil, S. A., Surakasi, V. P., Koul, S., Ijmulwar, S., Vivek, A., Shouche, Y. S., &

Kapadnis, B. P. (2009). Electricity generation using chocolate industry wastewater and its treatment in activated sludge based microbial fuel cell and analysis of developed microbial community in the anode chamber. Bioresource Technology, 100(21), 5132-5139.

Potter, M. C. (1911). Electrical effects accompanying the decomposition of organic compounds. Royal Society Publishing, 48(571), 260-276.

Rabaey, K., & Verstraete, W. (2005a). Microbial fuel cells: novel biotechnology for energy generation. Trends in Biotechnology, 23(6), 291-298.

Rabaey, K., Clauwaert, P., Aelterman, P., & Verstraete, W., (2005b). Tubular microbial fuel cells for efficient electricity generation. Environ Science & Technology, 39(20), 8077-8082.

Ren, Z., Ramasamy, R. P., Cloud-Owen, S. R, Yan, H, Mench, M. M., & Regan, J. M.

(2011). Time-course correlation of biofilm properties and electrochemicall performance in single-chamber microbial fuel cells. Bioresource Technology, 102(1), 416-421.

Rittmann, B. E., & McCarty, P. L. (2001). Environmental Biotechnology: Principles and Applications. New York: McGraw-Hill Education.

Shukla, A. K., Suresh, P., Berchmans, S., & Rajendran, A. (2004). Biological fuel cells and their applications. Current Science, 87(4), 455-468

Slawomir J. Jabłon ski, Marcin Łukaszewicz. (2014). Mathematical modelling of

methanogenic reactor start-up: Importance of volatile fatty acids degrading population. Bioresource Technology, 174, 74-80

Tung Y.T. and Pai T.Y. (2014). Using neural network model to evaluate impact of economic growth rate and national income indices on crude birth rate in Taiwan.

In: Social Networks: A Framework of Computational Intelligence. Ed: Witold Pedrycz and Shyi-Ming Chen, 427-437, Springer-Verlag, Berlin Heidelberg.

Venkata, M. S., Veer, R. S., & Sarma, P. N. (2008). Biochemical evaluation of bioelectricity production process from anaerobic wastewater treatment in a single chambered microbial fuel cell (UASB) employing glass wool membrane.

Biosensors and Bioelectronics, 23(9), 1326–1332.

Vesilind, P. A. (1979). Treatment and Disposal of Wastewater Sludge. Ann Arbor Science, Ann Arbor, MI.

Wilkinson, S. (2000). “Gastrobots” benefits and challenges of microbial fuel cells in food powered robot applications. Autonomous Robots, 9(2), 99-111.

Yan, Y., Feng, L., Zhang, C., Wisniewski, C., & Zhou, Q. (2010). Ultrasonic enhancement of waste activated sludge hydrolysis and volatile fatty acids accumulation at pH 10.0. Water research, 44(11), 3329-3336.

Yuan, Y., Ahmed, J., & Kim, S. (2011). Polyaniline/carbon black composite-supported iron phthalocyanine as an oxygen reduction catalyst for microbial fuel cells.

Journal of Power Sources, 196(3), 1103-1106.

Zuo, Y., Maness, P. C., & Logan, B. E. (2006). Electricity production from steam- exploded corn stover biomass. Energy and Fuels, 20(4), 1716-1721.

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