• 沒有找到結果。

第五章 結論與建議

5.2 未來方向與建議

1. 鋁酸鋰已經確定能作為生質柴油之催化劑,因此之後可探討利用含鋁 之廢棄物作為鋁來源合成鋁酸鋰。

2. 生質柴油的原料目前還是以植物油為主,但若要種植這些產油作物則 會壓縮到其餘農作物的種植空間,因此未來的研究方向可以往藻油發 展。

3. 在催化劑的合成方法中有沉澱法、含浸法、水熱法等做法,之後可嘗 試這些方法,並探討使用不同方法合成之催化劑的轉酯效果。

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引用文獻

1. M. Ghiaci, B. Aghabarari, A. Gil, Production of biodiesel by esterification of natural fatty acids over modified organoclay catalysts. Fuel 90 (2011) 3382–3389.

2. M.A. Fazal, A.S.M.A. Haseeb, H.H. Masjuki, Biodiesel feasibility study:

An evaluation of material compatibility; performance; emission and engine durability. Renewable and Sustainable Energy Reviews 15 (2011) 1314–1324.

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

4. BP p.l.c, BP Statistical Review of World Energy June 2014

5. 經濟部能源局,國際油品價格月比較趨勢圖(美金/)(2015.4.1).

http://www.moeaboe.gov.tw/oil102/.

6. 政府間氣候變遷專門委員會第五次評估報告-第一工作小組報告 (WGI AR5)

7. 吳文騰, 台灣的能源概況. 科學發展月刊 457 (2011) 123-126.

8. S. Yusoff, Renewable energy from palm oil e innovation on effective utilization of waste. Journal of Cleaner Production 14 (2006) 87–93

180

9. F. Chen, S. M. Lu, E. Wang, K. T. Tseng, Renewable energy in Taiwan.

Renewable and Sustainable Energy Reviews 14 (2010) 2029–2038.

10. K. Krawczy, Biodiesel - Alternative fuel makes inroads but hurdles remain.

Inform 7 (1996) 801–829.

11. G. Madras, C. Kolluru, R. Kumar, Synthesis of biodiesel in supercritical fluids. Fuel 83 (2004) 2029–2033.

12. E. Lotero, Y. Liu, D. E. Lopez, K. Suwannakarn, D. A. Bruce, J. J. G.

Goodwin, Synthesis of Biodiesel via Acid Catalysis. Industrial and Engineering Chemistry Research 44 (2005) 5353–5363.

13. L. C. Meher, D. V. Sagar, S. N. Naik, Technical aspects of biodiesel production by transesterification—a review. Renewable and Sustainable Energy Reviews 10 (2006) 248–268.

14. C. G. Sancho, R. M. Tost, J. M. M. Robles, J. S. González, A. J. López, P.

M. Torres, Niobium-containing MCM-41 silica catalysts for biodiesel production. Applied Catalysis B: Environmental 108-189 (2011) 161–167.

15. G. Arzamendi, E. Arguinarena, I. Campo, S. Zabala, L. M. Gandı´a, Alkaline and alkaline-earth metals compounds as catalysts for the

methanolysis of sunflower oil. Catalysis Today 133–135 (2008) 305–313.

16. A. Casas, C. M. Fernández, M. J. Ramos, Á . Pérez, J. F. Rodríguez,

181

Optimization of the reaction parameters for fast pseudo single-phase transesterification of sunflower oil. Fuel 89 (2010) 650–658.

17. A. Demirbas, Importance of biodiesel as transportation fuel. Energy Policy 35 (2007) 4661–4670.

18. Y. Wang, P. L. S. Ou, Z. Zhang, Preparation of biodiesel from waste cooking oil via two-step catalyzed process. Energy Convers and Manage.

48 (2007) 184–188.

19. I. J. Stojković, O. S. Stamenković, D. S. Povrenović, V. B. Veljković, Purification technologies for crude biodiesel obtained by alkali-catalyzed transesterification. Renewable and Sustainable Energy Reviews 32 (2014) 1–15.

20. D. Bartholomew, Vegetable oil fuel. Journal of the American Oil Chemists' Society 58 (1981) 286–288.

21. A. Demirbas, Importance of biodiesel as transportation fuel. Energy Policy 35 (2007) 4661–4670.

22. C. L. Peterson, D. L. Auld, R. A. Korus, Winter rape oil fuel for diesel engines:Recovery and utilization. Journal of the American Oil Chemists' Society 60 (1983) 1579–1587.

23. H. Fukuda, A. Kondo, H. Noda, Biodiesel fuel production by

182

transesterification of oils. Journal of Bioscience and Bioengineering 92 (2001) 405–416.

24. F. Ma, M. A. Hanna, Biodiesel production:a review. Bioresource Technology 70 (1999) 1–15.

25. M. F. Demirbas, M. Balat, H. Balat, Potential contribution of biomass to the sustainable energy development. Energy Conversion and Management 50 (2009) 1746–1760.

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

27. D. Mohan, C. U. Pittman, Jr, P. H. Steele, Pyrolysis of wood/biomass for bio-oil: a critical review. Energy Fuel 20 (2006) 848–889.

28. K. D. Maher, D. C. Bressler, Pyrolysis of triglyceride materials for the production of renewable fuels and chemicals. Bioresource Technology 98 (2007) 2351–2368.

29. M. E. Borges, L. Diaz, Recent developments on heterogeneous catalysts for biodiesel production by oil esterification and transesterification

reactions: A review. Renewable and Sustainable Energy Reviews 16 (2012) 2839–2849.

30. 劉文宗, 生質柴油發展與工業化設計. 永續產業發展雙月刊 35 (2007)

183

32–39.

31. M. Tariq, S. Ali, N. Khalid, Activity of homogeneous and heterogeneous catalysts, spectroscopic and chromatographic characterization of biodiesel:

A review. Renewable and Sustainable Energy Reviews 16 (2012) 6303–6316.

32. K. Ramachandran, T. Suganya, N. N. Gandhi, S. Renganathan, Recent developments for biodiesel production by ultrasonic assist

transesterification using different heterogeneous catalyst:A review.

Renewable and Sustainable Energy Reviews 22 (2013) 410–418.

33. S. A. Basha, K. R. Gopal, S. Jebaraj, A review on biodiesel production, combustion, emissions and performance. Renewable and Sustainable Energy Reviews 13 (2009) 1628–1634.

34. H. J. Wright, J. B. Segur, H. V. Clark, S. K. Coburn, E. E. Langdon, R. N.

DuPuis, A report on ester interchange. Journal of the American Oil Chemists' Society 21 (1944) 145–148.

35. J. M. Marchetti, V. U. Miguel, A. F. Errazu, Possible methods for biodiesel production. Renewable and Sustainable Energy Reviews 11 (2007)

1300–1311.

36. S. Saka, D. Kusdiana, Biodiesel fuel from rapeseed oil as prepared in

184

supercritical methanol. Fuel 80 (2001) 225–231.

37. K. T. Tan, K. T. Lee, A. R. Mohamed, Production of FAME by palm oil transesterification via supercritical methanol technology. Biomass and Bioenergy 33 (2009) 1096–1099.

38. Food and Agricultural Organization (FAO) of the United Nations. Solar energy: power for rural development.

39. G. G. Mucino, R. Romero, A. Ramirez, S. L. Martinez, R. B. Jimenez, R.

Natividad, Biodiesel production from used cooking oil and sea sandBiodiesel production from used cooking oil and sea sand as heterogeneous catalyst. Fuel 138 (2014) 143–148.

40. M. Farooq, A. Ramli, Biodiesel production from low FFA waste cooking oil using heterogeneous catalyst derived from chicken bones. Renewable Energy 76 (2015) 362–368.

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

42. A. Abbaszaadeh, B. Ghobadian, M. R. Omidkhah, G. Najafi, Current biodiesel production technologies: A comparative review. Energy Conversion and Management 63 (2012) 138–148.

43. A. Kawashima, K. Matsubara, K. Honda, Acceleration of catalytic activity

185

of calcium oxide for biodiesel production. Bioresource Technology 100 (2009) 696–700.

44. E. Lotero, J. G. Goodwin, D. A. Bruce, K. Suwannakarn, Y. Liu, D. E.

Lopez, The catalysis of biodiesel synthesis. Catalysis 19 (2006) 41–83.

45. A. Sivasamy, K. Y. Cheah, P. Fornasiero, F. Kemausuor, S. Zinoviev, S.

Miertus, Catalytic Applications in the Production of Biodiesel from Vegetable Oils. ChemSusChem 2 (2009) 278-300.

46. L. C. Meher, M. G. Kulkarni, A. K. Dalai, S. N. Naik, Transesterification of karanja (Pongamia pinnata) oil by solid basic catalysts. European Journal of Lipid Science and Technology 108 (2006) 389–397.

47. M. K. Lam, K. T. Lee, A. R. Mohamed, Homogeneous, heterogeneous and enzymatic catalysis for transesterification of high free fatty acid oil (waste cooking oil) to biodiesel: A review. Biotechnology Advances 28 (2010) 500–518.

48. L. Talens, G. Villalba, X. Gabarrell, Exergy analysis applied to biodiesel production. Resources, Conservation and Recycling 51 (2007) 397–407.

49. J. M. Cervero, J. Coca, S. Luque, Production of biodiesel from vegetable oils. GRASAS Y ACEITES 59 (2008) 76–83.

50. A. K. Singh, S. D. Fernando, Reaction kinetics of soybean oil

186

transesterification using heterogeneous metal oxide catalysts. Chemical Engineering & Technology 30 (2007) 1–6.

51. I. Reyero, G. Arzamendi, L. M. Gandia, Heterogenization of the biodiesel synthesis catalysis CaO and novel calcium compounds as

transesterification catalysts. Chemical Engineering Research and Design 92 (2014) 1519–1530.

52. J. X. Wang, K. T. Chen, S. T. Huang, K. T. Chen, C. C. Chen, Biodiesel Production from Soybean Oil Catalyzed by Li2CO3. Journal of the American Oil Chemists' Society 89 (2012) 1619–1625.

53. C. Sun, F. Qiu, D. Yang B. Ye, Preparation of biodiesel from soybean oil catalyzed by Al-Ca hydrotalcite loaded with K2CO3 as heterogeneous solid base catalyst. Fuel Processing Technology 126 (2014) 383–391.

54. M. Kouzu, J. S. Hidaka, Transesterification of vegetable oil into biodiesel catalyzed by CaO: A review. Fuel 93 (2012) 1–12.

55. P. D. Patil, S. Deng, Optimization of biodiesel production from edible and non-edible vegetable oils. Fuel 88 (2009) 1302–1306.

56. L. T. Thanh, K. Okitsu, Y. Sadanaga, N. Takenaka, Y. Maeda, H. Bandow, Ultrasound-assisted production of biodiesel fuel from vegetable oils in a small scale circulation process. Bioresource Technology 101 (2010)

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