• Tidak ada hasil yang ditemukan

S2 2021 453234 bibliography

N/A
N/A
Rizky Angga Maulana

Academic year: 2023

Membagikan "S2 2021 453234 bibliography"

Copied!
3
0
0

Teks penuh

(1)

43 DAFTAR PUSTAKA

Badan Pusat Statistik (2019) ‘Statistik Produksi Kehutanan Indonesia 2019’, BPS.

Board, N. (2007) Modern Technology Of Paints, Varnishes & Lacquers (2nd Edition).

Delhi: Asian Pasific Business Press Inc.

Chowdhury, A., Sarkar, D. and Mitra, D. (2016) ‘Esterification of Free Fatty Acids Derived from Waste Cooking Oil with Octanol: Process Optimization and Kinetic Modeling’, Chemical Engineering and Technology, 39(4), pp. 730–740. doi:

10.1002/ceat.201400745.

Comyn, J. (1995) ‘Surface characterization of pentaerythritol rosin ester’, International Journal of Adhesion and Adhesives, 15(1), pp. 9–14. doi: 10.1016/0143- 7496(95)93637-Z.

Duncan, D. P., Cameron, T. B. and Charleston (1984) ‘Rosin pentaerythritol ester

preparation improvement’, (19). Available at:

https://patents.google.com/patent/US4548746A/en.

Hind, J. D. et al. (1970) ‘Esters of rosin acids and glycidyl ethers’, Journal of the American Oil Chemists’ Society. Elsevier B.V., 47(1), pp. 3–4. doi:

10.1007/BF02680155.

Huang, Y. et al. (2015) ‘A novel nickel catalyst derived from layered double hydroxides (LDHs) supported on fluid catalytic cracking catalyst residue (FC3R) for rosin hydrogenation’, Chemical Engineering Journal. Elsevier B.V., 269, pp. 434–443.

doi: 10.1016/j.cej.2015.01.098.

Keichem (2021) 03. Rosin Esters. Available at: http://keichem.co.id/our-product/rosin- esters/ (Accessed: 29 December 2021).

Kopyshev, M. V. et al. (2016) ‘Esterification of pentaerythritol by carboxylic acids’, Reaction Kinetics, Mechanisms and Catalysis. Springer Netherlands, 117(2), pp.

417–427. doi: 10.1007/s11144-015-0964-7.

Kugler, S. et al. (2019) ‘Advances in rosin-based chemicals: The latest recipes, applications and future trends’, Molecules, 24(9), p. 1651. doi:

doi:10.3390/molecules24091651.

Ladero, M. et al. (2011) ‘Kinetic modelling of the esterification of rosin and glycerol:

Application to industrial operation’, Chemical Engineering Journal, 169, pp. 319–

328.

Ladero, M. et al. (2012) ‘Phenomenological kinetic modelling of the esterification of rosin and polyols’, Chemical Engineering Journal, 197, pp. 387–397.

Li, J. (2017) ‘Assessing the accuracy of predictive models for numerical data: Not r nor r2, why not? Then what?’, PLoS ONE, 12(8), pp. 1–16. doi:

10.1371/journal.pone.0183250.

Li, Y. et al. (2018) ‘Characteristics and kinetics of rosin pentaerythritol ester via oxidation process under ultraviolet irradiation’, Molecules, 23(11). doi:

10.3390/molecules23112816.

Liu, S. et al. (2009) ‘A Brønsted-Lewis acidic ionic liquid: Its synthesis and use as the catalyst in rosin dimerization’, Cuihua Xuebao / Chinese Journal of Catalysis.

Dalian Institute of Chemical Physics, the Chinese Academy of Sciences, 30(5), pp.

401–406. doi: 10.1016/s1872-2067(08)60109-6.

Maiti, S., Ray, S. S. and Kundu, A. K. (1989) ‘Rosin: a renewable resource for polymers and polymer chemicals’, Progress in Polymer Science, 14, pp. 297–338.

Mirabedini, S. M., Zareanshahraki, F. and Mannari, V. (2020) ‘Enhancing thermoplastic road-marking paints performance using sustainable rosin ester’, Progress in

Pemodelan Kinetik Esterifikasi Gondorukem (Rosin) dan Pentaeritritol

MEIGA PUTRI WAHYU H, Prof. Ir. Rochmadi, S.U., Ph.D.; Muhammad Mufti Azis, S.T., M.Sc., Ph.D.

Universitas Gadjah Mada, 2021 | Diunduh dari http://etd.repository.ugm.ac.id/

(2)

44 Organic Coatings. Elsevier, 139(September 2019), p. 105454. doi:

10.1016/j.porgcoat.2019.105454.

Montaño Moreno, J. J. et al. (2013) ‘El índice R-MAPE como medida resistente del ajuste en la previsiońn’, Psicothema, 25(4), pp. 500–506. doi:

10.7334/psicothema2013.23.

Murad, P. C. et al. (2018) ‘Acid-catalyzed esterification of free fatty acids with ethanol:

an assessment of acid oil pretreatment, kinetic modeling and simulation’, Reaction Kinetics, Mechanisms and Catalysis. Springer Netherlands, 123(2), pp. 505–515.

doi: 10.1007/s11144-017-1335-3.

Nandiyanto, A. B. D., Oktiani, R. and Ragadhita, R. (2019) ‘How to read and interpret ftir spectroscope of organic material’, Indonesian Journal of Science and Technology, 4(1), pp. 97–118. doi: 10.17509/ijost.v4i1.15806.

Olagbende, O. H. et al. (2021) ‘Esterification of Khaya senegalensis seed oil with a solid heterogeneous acid catalyst: Modeling, optimization, kinetic and thermodynamic studies’, Cleaner Engineering and Technology. Elsevier Ltd, 4, p. 100200. doi:

10.1016/j.clet.2021.100200.

Oraegbunam, J. C. et al. (2020) ‘Clean sandbox (Hura crepitans) oil methyl esters synthesis: A kinetic and thermodynamic study through pH monitoring approach’, Renewable Energy. Elsevier Ltd, 160, pp. 526–537. doi:

10.1016/j.renene.2020.06.124.

Pathak, Y. V. and Dorle, A. K. (1987) ‘Study of rosin and rosin derivatives as coating materials for controlled release of drug’, Journal of Controlled Release, 5(1), pp.

63–68. doi: 10.1016/0168-3659(87)90038-1.

PubChem (2017) Pentaerythritol, National Center for Biotechnology Information.

Available at: https://pubchem.ncbi.nlm.nih.gov/compound/Pentaerythritol (Accessed: 13 June 2020).

Rani, K. N. P. et al. (2020) ‘The Kinetics of the Esterification of Free Fatty Acids in Jatropha Oil using Glycerol based Solid Acid Catalyst’, European Journal of Sustainable Development Research, 4(2), pp. 1–11. doi: 10.29333/ejosdr/7594.

Roy, R. and Touaibia, M. (2007) ‘Application of Multivalent Mannosylated Dendrimers in Glycobiology’, Comprehensive Glycoscience: From Chemistry to Systems Biology, 3–4, pp. 821–870.

Sarma, G. V. S. et al. (2021) ‘Kinetic studies of esterification of butanoic acid with cyclohexanol’, Materials Today: Proceedings. Elsevier Ltd., 46, pp. 737–739. doi:

10.1016/j.matpr.2020.12.373.

Senoymak Tarakcı, M. I. and Ilgen, O. (2018) ‘Esterification of Oleic Acid with Methanol Using Zr(SO4)2 as a Heterogeneous Catalyst’, Chemical Engineering and Technology, 41(4), pp. 845–852. doi: 10.1002/ceat.201700254.

Silvestre, A. J. D. and Gandini, A. (2008) ‘Rosin: Major sources, properties and applications’, in Monomers, Polymers and Composites from Renewable Resources.

Amsterdam: Elsevier, pp. 67–88. doi: 10.1016/B978-0-08-045316-3.00004-1.

Smith, T. L. and Elliott, J. H. (1958) ‘The kinetics of esterification of resin acids’, The Journal of the American Oil Chemists’ Society, 35, pp. 692–699.

Wang, L. et al. (2009) ‘Kinetics of the catalytic isomerization and disproportionation of rosin over carbon-supported palladium’, Chemical Engineering Journal, 152(1), pp. 242–250. doi: 10.1016/j.cej.2009.04.052.

Werle, P. et al. (2012) ‘Alcohols, Polyhydric’, in Ullmann’s Encyclopedia of Industrial Chemistry. Weinheim: Wiley‐VCH Verlag GmbH & Co. KGaA, pp. 1–22.

Xu, Z. et al. (2019) ‘Pentaerythritol rosin ester as an environmentally friendly multifunctional additive in vegetable oil-based lubricant’, Tribology International.

Pemodelan Kinetik Esterifikasi Gondorukem (Rosin) dan Pentaeritritol

MEIGA PUTRI WAHYU H, Prof. Ir. Rochmadi, S.U., Ph.D.; Muhammad Mufti Azis, S.T., M.Sc., Ph.D.

Universitas Gadjah Mada, 2021 | Diunduh dari http://etd.repository.ugm.ac.id/

(3)

45 Elsevier Ltd, 135(January), pp. 213–218. doi: 10.1016/j.triboint.2019.02.038.

Zhang, D. et al. (2017) ‘Green catalytic conversion of hydrogenated rosin to glycerol esters using subcritical CO2 in water and the associated kinetics’, The Journal of Supercritical Fluids, 125, pp. 12–21.

Pemodelan Kinetik Esterifikasi Gondorukem (Rosin) dan Pentaeritritol

MEIGA PUTRI WAHYU H, Prof. Ir. Rochmadi, S.U., Ph.D.; Muhammad Mufti Azis, S.T., M.Sc., Ph.D.

Universitas Gadjah Mada, 2021 | Diunduh dari http://etd.repository.ugm.ac.id/

Referensi

Dokumen terkait

Pembuatan darih rosin maleat secara langsung dari getah dengan penambahan asam maleat 0%-12% menghasilkan rendemen berkisar antara 88,45- 91,22% dan hasil uji kualitas darih

Asam dapat dibentuk dari oksida bukan logam (karenanya disebut oksida asam), sedangkan basa dapat dibentuk dari oksida logam (karenanya disebut oksida basa). Garam adalah senyawa

kandungan kimia dari daun kana merah adalah asam amino, asam... organik, asam sitrat, asam maleat, gliserin, suksinat, asam

NTC Dari Pasir Yarosit Yang Bersetruktur Hematit Dengan.. Penambahan Oksida

Asam fumarat yang dibuat dari butena dilakukan dengan tiga tahap reaksi yaitu adalah oksidasi butena menjadi maleat anhidrat dilanjutkan oleh hidrolisis maleat anhidrat

Titik leleh asam maleat lebih rendah dari pada asam fumarat karena pada asam maleat, hal ini menandakan adanya perbedaan sifat fisik antara senyawa berisomer cis

Pembuatan darih rosin maleat secara langsung dari getah dengan penambahan asam maleat 0%-12% menghasilkan rendemen berkisar antara 88,45- 91,22% dan hasil uji kualitas darih

Epoksidasi kariofilena dengan oksigen menghasilkan 84,1% kariofilena oksida; esterefikasi kariofilena oksida dengan asam format menghasilkan 67,8% klovanadil format;