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微生物燃料電池畢業(yè)設(shè)計論文(參考版)

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【正文】 en J, Scholz F. A generation of microbial fuel cell with current outputs boosted by more than one order of magnitude[J]. Angew Chem Int Ed., 2022, 115:2986?2989. [20] Harnisch F, Schro168。 2022:393–408.[11] Tanaka K, Tamamushi R, Ogawa T. Bioelectrochemical fuelcell operated by the cyanobacterium, Anabaena variabilis[J]. J Chem Technol Biotechnol., 1985, 35B:191–197.[12] Tanaka T, Kashiwagi N, Ogawa T. Effect of light on electrical output of bioelectrochemical fuelcells containing Anabaena variabilis M2: Mechanism of the postillumination burst[J]. 南京工業(yè)大學(xué)本科畢業(yè)論文24J Chem Technol Biotechnol., 1988, 42:235–240.[13] Yagishita T, Horigome T, Tanaka K. Effects of light, CO2, and inhibitors on the current output of biofuel cells containing the photosynthetic anism Synechococcus sp[J]. J Chem Technol Biotechnol., 1993, 56:393–399.[14] Yagishita T, Sawayama S, Tsukahara K I, Ogi T. Performance of photosynthetic electrochemical cells using immobilized Anabaena variabilis M3 in discharge/culture cycles[J]. J Ferment Bioeng., 1998, 85:546–549.[15] Gorby Y A, Yanina S, McLean J S, Rosso K M, Moyles D,Dohnalkova A, Beveridge T J, Chang I S, Kim B H, Kim K S et al. Electrically conductive bacterial nanowires produced by Shewanella oneidensis strain MR1 and other microanisms[J]. Proc Natl Acad Sci USA, 2022, 103:11358–11363.[16] Yongjin Zou, John Pisciotta, R. Blake Billmyre, Ilia V. Baskakov. Photosynthetic Microbial Fuel Cells With Positive Light Response[J]. Biotechnology and Bioengineering, 2022, 104:939–946.[17] Hui He(何輝), Yali Feng(馮雅麗), Haoran Li(李浩然), Dingjie Li(李頂杰). Construction of a Microbial Fuel Cell Using Chlorella vulgaris(利用小球藻構(gòu)建微生物燃料電池)[J]. The Chinese Journal of Process Engineering(過程工程學(xué)報 ), 2022, 9(1):133?137. [18] Gaffron H. Reduction of carbon dioxide with molecular hydrogen in green algae[J]. Nature, 1939, 143:204?205.[19] Schro168。參考文獻23參考文獻[1], ,et Production,Consumption,and environmental pollution for sustainable development:ACase study in and Sustainable Energy Reviews,2022,12(6):1529 一 1561P[2],21(4):9 一 11 頁[3] Rabaey K:Verstracte fuel cells:novel biotechnology for Energy .,:291 一 298P[4]Park D H. GREGORY Z J, Improved fuel cell and electrode designs for Producing electricity from mcrobial .,2022 ,81(3):348355P[5] , fuel cell using Enterobacter aerogenes Bioelectrochem Bioenerg 1989,21:25~32[6] Berk RS, Canfield JH. Bioelectrochemical energy conversion[J]. Appl Microbiol., 1964, 12:10–12.[7] Schenk P, ThomasHall S, Stephens E, Marx U, Mussgnug J, Posten C,Kruse O, Hankamer B. Second generation biofuels: Highefficiency microalgae for biodiesel production[J]. BioEnergy Res., 2022, 1(1):20–43.[8] Hui Chen(陳輝). Construction of sediment Microbial Fuel Cell and its power generation(沉積型微生物燃料電池的構(gòu)建及產(chǎn)電特性研究) [D].JiangSu: Jiangnan University( 江南大學(xué)), 2022 [9] Strik D P B T B, Terlouw H, Hamelers H V, Buisman C J. Renewable sustainable biocatalyzed electricity production in a photosynthetic algal microbial fuel cell (PAMFC)[J]. Appl Microbiol Biotechnol., 2022, 81:659–668.[10] Rosenbaum M, Agler M T, Fornero J J, Venkataraman A, Angenent LT. Integrating BES in the wastewater and sludge treatment line. In Bioelectrochemical Systems: From Extracellular Electron Transfer to Biotechnological Application[C]. Edited by Rabaey K, Angenent LT, Schro168。 展望近年來,光合微生物燃料電池的研究開始復(fù)興,其中尤以微藻型微生物燃料電池占為主導(dǎo),而其中的微藻生物陰極型MFC 因可以同時實現(xiàn)污水處理、零碳排放、 CO2捕捉、太陽能捕獲及電能、生物柴油、藻體殘渣等有價回收的多重效果,再度成為一大研究熱點。(3)MFC 陰極正常運行期時的內(nèi)阻最大(為 ),最大輸出功率密度最低( mW/㎡) ,陽極人工廢水的 COD 處理率最低(為 %) ;陰極投加小球藻后,電池內(nèi)阻得到大幅度的降低,最大輸出功率密度及陽極人工廢水的 COD 處理率均有了明顯的升高;陰極換載鉑電極后內(nèi)阻較陰極加藻期略有下降,但最大輸出功率密度有了大幅度的提高,為陰極加藻期的 9,1 倍,而陽極人工廢水的 COD 處理率相差不大;最終陰極持續(xù)光照期內(nèi)阻最低(為 ),是正常運行期的 倍,最大輸出功率密度達㎡, 是正常運行期的 倍,陽極人工廢水處理 10d 后的 COD 處理率為%。(mg/L)運 行 時 間 (d) 溶 氧圖 33 正常運行期陰極溶氧的變化情況Figure 33 Normal operation of the cathode changes in dissolved oxygen第三章 結(jié)果與討論190501015020250305101520 溶 氧電 壓運 行 時 間 (d)溶氧值(mg/L) 024068012022601820電壓(mV)圖 34 加藻期陰極溶氧與電壓的變化情況Figure 34 Plus algae and voltage of the cathode changes in dissolved oxygen05010150202503051015202530 溶 氧電 壓運 行 時 間 (h)溶氧值(mg/L) 50150250350450電壓(mV)圖 35 換載鉑電極期陰極溶氧與電壓的變化情況Figure 35 Pt electrode for dissolved oxygen and voltage of the cathode changes05010150202505101520 溶 氧電 壓運 行 時 間 (h)溶氧值(mg/L) 50150250350450電壓(mV)南京工業(yè)大學(xué)本科畢業(yè)論文20圖 36 持續(xù)光照期陰極溶氧與電壓的變化情況Figure 36 Constant illumination of the cathode voltage changes in dissolved oxygen 第四章 結(jié)論與展望21第四章 結(jié)論與展望 結(jié)論本文利用自行創(chuàng)新設(shè)計的陰極利于小球藻生長的 MFC 反應(yīng)器作為實驗?zāi)P停紫纫哉j帢O液對其進行啟動運行,待陽極產(chǎn)電菌富集
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