油料作物——生物柴油的潜在资源

闫振辉, 李国卫, 万书波

工程(英文) ›› 2023, Vol. 29 ›› Issue (10) : 39-41.

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工程(英文) ›› 2023, Vol. 29 ›› Issue (10) : 39-41. DOI: 10.1016/j.eng.2023.07.011
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油料作物——生物柴油的潜在资源

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Oil Crops: A Potential Source of Biodiesel

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闫振辉, 李国卫, 万书波. 油料作物——生物柴油的潜在资源. Engineering. 2023, 29(10): 39-41 https://doi.org/10.1016/j.eng.2023.07.011

参考文献

[1]
G. Li, J. Sun, Z. Chen, Z. Rui. Editorial for the special issue on unconventional and intelligent oil and gas engineering. Engineering, 18 ( 2022), pp. 1-2. DOI: 10.1109/irmmw-thz50927.2022.9896098
[2]
M. Tasić. Disadvantages of herbaceous oil-bearing plants as feedstock in the biodiesel production. Adv Technol, 9 (2) ( 2020), pp. 88-97. DOI: 10.5937/savteh2002088t
[3]
Renewables 2022 global status report [Internet]. Nairobi: UNEP; 2022 Jun 15 [cited 2023 Jun 14]. Available from: https://www.unep.org/resources/report/renewables-2022-global-status-report.
[4]
Renewables 2022 global status report-record growth in renewables, but world missed historic chance for a clean energy recovery. Report. Paris:Ren21; 2022.
[5]
M. Rouhany, H. Montgomery. Global biodiesel production: the state of the art and impact on climate change. M. Tabatabaei, M. Aghbashlo (Eds.), Biodiesel-fromproduction to combustion, Springer, Berlin ( 2019), pp. 1-14. DOI: 10.1007/978-3-030-00985-4_1
[6]
R. Chen, Z. Qin, J. Han, M. Wang, F. Taheripour, W. Tyner, et al.. Life cycle energy and greenhouse gas emission effects of biodiesel in the United States with induced land use change impacts. Bioresource Technol, 251 ( 2018), pp. 249-258
[7]
H.M. Mahmudul, F.Y. Hagos, R. Mamat, A.A. Adam, W.F.W. Ishak, R. Alenezi. Production, characterization and performance of biodiesel as an alternative fuel in diesel engines a review. Renew Sustain Energy Rev, 72 ( 2017), pp. 497-509
[8]
G. Marland, M. Obersteiner, B. Schlamadinger. The carbon benefits of fuels and forests. Science, 318 (5853) ( 2007), pp. 1066-1068. DOI: 10.1126/science.318.5853.1066b
[9]
S. Tang, H. Zhao, S. Lu, L. Yu, G. Zhang, Y. Zhang, et al.. Genome- and transcriptome-wide association studies provide insights into the genetic basis of natural variation of seed oil content in Brassica napus. Molecular Plant, 14 (3) ( 2021), pp. 470-487
[10]
R. Ortiz, M. Geleta, C. Gustafsson, I. Lager, P. Hofvander, C. Löfstedt, et al.. Oil crops for the future. Curr Opin Plant Biol, 56 ( 2020), pp. 181-189
[11]
A.N. Dauphinee, C. Cardoso, K. Dalman, J.A. Ohlsson, S.B. Fick, S. Robert, et al.. Chemical screening pipeline for identification of specific plant autophagy modulators. Plant Physiol, 181 (3) ( 2019), pp. 855-866. DOI: 10.1104/pp.19.00647
[12]
X.Y. Xu, H.K. Yang, S.P. Singh, P.J. Sharp, Q. Liu. Genetic manipulation of non-classic oilseed plants for enhancement of their potential as a biofactory for triacylglycerol production. Engineering, 4 (4) ( 2018), pp. 523-533

This research was supported by the Key Research and Development Program of Shandong Province (2021LZGC026).

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