| 1 |
FAVA F, GARDOSSI L, BRIGIDI P, et al. The bioeconomy in Italy and the new national strategy for a more competitive and sustainable country[J]. New Biotechnology, 2021, 61: 124-136.
|
| 2 |
BUDZIANOWSKI W M, NANTONGO I, BAMUTURA C, et al. Business models and innovativeness of potential renewable energy projects in Africa[J]. Renewable Energy, 2018, 123: 162-190.
|
| 3 |
LAINEZ M, GONZÁLEZ J M, AGUILAR A, et al. Spanish strategy on bioeconomy: towards a knowledge based sustainable innovation[J]. New Biotechnology, 2018, 40: 87-95.
|
| 4 |
CHAN C, TANG S W, MOHD N K, et al. Tribological behavior of biolubricant base stocks and additives[J]. Renewable and Sustainable Energy Reviews, 2018, 93: 145-157.
|
| 5 |
PANCHAL T M, PATEL A, CHAUHAN D D, et al. A methodological review on bio-lubricants from vegetable oil based resources[J]. Renewable and Sustainable Energy Reviews, 2017, 70: 65-70.
|
| 6 |
MCNUTT J, HE Q S. Development of biolubricants from vegetable oils via chemical modification[J]. Journal of Industrial and Engineering Chemistry, 2016, 36: 1-12.
|
| 7 |
FERNANDES K V, CAVALCANTI E D C, CIPOLATTI E P, et al. Enzymatic synthesis of biolubricants from by-product of soybean oil processing catalyzed by different biocatalysts of Candida rugosa lipase[J]. Catalysis Today, 2021, 362: 122-129.
|
| 8 |
HUSSEIN R Z K, ATTIA N K, FOUAD M K, et al. Experimental investigation and process simulation of biolubricant production from waste cooking oil[J]. Biomass and Bioenergy, 2021, 144: 105850.
|
| 9 |
徐慧智, 仝秋红, 王毓民. 可生物降解润滑油基础油低温性能研究[J]. 润滑油, 2003(5): 59-62.
|
|
XU H Z, TONG Q H, WANG Y M. Study on low temperature property of biodegradable lubricating base oils[J]. Lubricating Oil, 2003(5): 59-62.
|
| 10 |
SHOMCHOAM B, YOOSUK B. Eco-friendly lubricant by partial hydrogenation of palm oil over Pd/γ-Al2O3 catalyst[J]. Industrial Crops and Products, 2014, 62: 395-399.
|
| 11 |
FERNÁNDEZ M B, SÁNCHEZ M J F, TONETTO G M, et al. Hydrogenation of sunflower oil over different palladium supported catalysts: activity and selectivity[J]. Chemical Engineering Journal, 2009, 155(3): 941-949.
|
| 12 |
NOHAIR B, ESPECEL C, LAFAYE G, et al. Palladium supported catalysts for the selective hydrogenation of sunflower oil[J]. Journal of Molecular Catalysis A: Chemical, 2005, 229(1-2): 117-126.
|
| 13 |
NGO H, LATONA R, SARKER M I, et al. A process to convert sunflower oil into a value added branched chain oil with unique properties[J]. Industrial Crops and Products, 2019, 139: 111457.
|
| 14 |
NGO H L, YEE W C, MCALOON A J, et al. Process and cost modeling of saturated branched-chain fatty acid isomer production[J]. Industrial & Engineering Chemistry Research, 2012, 51(37): 12041-12045.
|
| 15 |
NGO H L, HOH E, FOGLIA T A. Improved synthesis and characterization of saturated branched-chain fatty acid isomers[J]. European Journal of Lipid Science and Technology, 2012, 114(2): 213-221.
|
| 16 |
PARENTE E J, MARQUES J P C, RIOS I C, et al. Production of biolubricants from soybean oil: studies for an integrated process with the current biodiesel industry[J]. Chemical Engineering Research and Design, 2021, 165: 456-466.
|
| 17 |
AFIFAH A N, SYAHRULLAIL S, WAN AZLEE N I, et al. Synthesis and tribological studies of epoxidized palm stearin methyl ester as a green lubricant[J]. Journal of Cleaner Production, 2021, 280: 124320.
|
| 18 |
NEGI P, SINGH Y, TIWARI K. A review on the production and characterization methods of bio-based lubricants[J]. Materials Today: Proceedings, 2021, 40: 10513-10517.
|
| 19 |
HAIDER A, SHAFIQUE A, NADEEM H U, et al. Nonedible oil[M]//Inamuddin. Green Sustainable Process for Chemical and Environmental Engineering and Science. New York: Elserier, 2021: 127-155.
|
| 20 |
RAMAN J K, ALVES C M, GNANSOUNOU E. A review on moringa tree and vetiver grass—potential biorefinery feedstocks[J]. Bioresource Technology, 2018, 249: 1044-1051.
|
| 21 |
SINGH Y, FAROOQ A, RAZA A, et al. Sustainability of a non-edible vegetable oil based bio-lubricant for automotive applications: a review[J]. Process Safety and Environmental Protection, 2017, 111: 701-713.
|
| 22 |
陆交, 张耀, 段庆华, 等. 生物基润滑油基础油的结构创新与产业化进展[J]. 石油学报(石油加工), 2018, 34(2): 203-216.
|
|
LU Jiao, ZHANG Yao, DUAN Qinghua, et al. Structure innovation and commercialization progress of bio-based lube base oil[J]. Acta Petrolei Sinica(Petroleum Processing Section), 2018, 34(2):203-216.
|
| 23 |
王普照, 段庆华. 植物油制备可生物降解基础油的工艺现状及展望[J]. 石油商技, 2016, 34(6): 10-19.
|
|
WANG Puzhao, DUAN Qinghua. Present situation and prospect of preparing biodegradable base oil from vegetable oil[J]. Petroleum Products Application Research, 2016, 34(6): 10-19.
|
| 24 |
SILVA M S, FOLETTO E L, ALVES S M, et al. New hydraulic biolubricants based on passion fruit and moringa oils and their epoxy[J]. Industrial Crops and Products, 2015, 69: 362-370.
|
| 25 |
ZAINAL N A, ZULKIFLI N W M, GULZAR M, et al. A review on the chemistry, production, and technological potential of bio-based lubricants[J]. Renewable and Sustainable Energy Reviews, 2018, 82: 80-102.
|
| 26 |
MANNEKOTE J K, KAILAS S V, VENKATESH K, et al. Environmentally friendly functional fluids from renewable and sustainable sources—a review[J]. Renewable and Sustainable Energy Reviews, 2018, 81: 1787-1801.
|
| 27 |
MUJTABA M A, CHO H MUK, MASJUKI H H, et al. Critical review on sesame seed oil and its methyl ester on cold flow and oxidation stability[J]. Energy Reports, 2020, 6: 40-54.
|
| 28 |
ATABANI A E, SILITONGA A S, ONG H C, et al. Non-edible vegetable oils: a critical evaluation of oil extraction, fatty acid compositions, biodiesel production, characteristics, engine performance and emissions production[J]. Renewable and Sustainable Energy Reviews, 2013, 18: 211-245.
|
| 29 |
BOBADE S N, KHYADE V B. Detail study on the properties of pongamia pinnata (Karanja) for the production of biofuel[J]. Research Journal of Chemical Sciences, 2012, 7(2): 16-20.
|
| 30 |
KUMAR A, SHARMA S. Potential non-edible oil resources as biodiesel feedstock: an Indian perspective[J]. Renewable and Sustainable Energy Reviews, 2011, 15(4): 1791-1800.
|
| 31 |
BALAT M. Potential alternatives to edible oils for biodiesel production—A review of current work[J]. Energy Conversion and Management, 2011, 52(2): 1479-1492.
|
| 32 |
KRŽAN B, VIŽINTIN J. Tribological properties of an environmentally adopted universal tractor transmission oil based on vegetable oil[J]. Tribology International, 2003,36(11): 827-833.
|
| 33 |
RAVASIO N, ZACCHERIA F, GARGANO M, et al. Environmental friendly lubricants through selective hydrogenation of rapeseed oil over supported copper catalysts[J]. Applied Catalysis-A General, 2002, 233(1): 1-6.
|
| 34 |
VLČEK T, PETROVIĆ Z S. Optimization of the chemoenzymatic epoxidation of soybean oil[J]. Journal of the American Oil Chemists’ Society, 2006, 83(3): 247-252.
|
| 35 |
ORELLANA-COCA C, TÖRNVALL U, ADLERCREUTZ D, et al. Chemo-enzymatic epoxidation of oleic acid and methyl oleate in solvent-free medium[J]. Biocatalysis and Biotransformation, 2009, 23(6): 431-437.
|
| 36 |
TÖRNVALL U, ORELLANA-COCA C, HATTI-KAUL R, et al. Stability of immobilized Candida antarctica lipase B during chemo-enzymatic epoxidation of fatty acids[J]. Enzyme and Microbial Technology, 2007, 40(3): 447-451.
|
| 37 |
MESHRAM P D, PURI R G, PATIL H V. Epoxidation of wild safflower (Carthamus oxyacantha) oil with peroxy acid in presence of strongly a |