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volume 13 issue 22 pages 3930

Tandem synthesis of ultra-high molecular weight drag reducing poly-α-olefins for low-temperature pipeline transportation

Publication typeJournal Article
Publication date2021-11-14
scimago Q1
wos Q1
SJR0.918
CiteScore9.7
Impact factor4.9
ISSN20734360
General Chemistry
Polymers and Plastics
Abstract

Ultra-high molecular weight poly-α-olefins are widely used as drag reducing agents (DRAs) for pipeline transportation of oil and refined petroleum products. The synthesis of polyolefin DRAs is based on low-temperature Ziegler–Natta (ZN) polymerization of higher α-olefins. 1-Hexene based DRAs, the most effective at room temperature, typically lose DR activity at low temperatures. The use of 1-hexene copolymers with C8–C12 linear α-olefins appears to offer a solution to the problem of low-temperature drag reducing. The present work aims to develop two-stage synthesis of polyolefin DRAs that is based on selective oligomerization of ethylene in the presence of efficient chromium/aminodiphosphine catalysts (Cr-PNP), followed by polymerization of the olefin mixtures, formed at oligomerization stage, using efficient titanium–magnesium ZN catalyst. We have shown that oligomerization of ethylene in α-olefin reaction media proceeds faster than in saturated hydrocarbons, providing the formation of 1-hexene, 1-octene, and branched C10 and C12 olefins; the composition and the ratio of the reaction products depended on the nature of PNP ligand. Oligomerizates were used in ZN polymerization ‘as is’, without additional treatment. Due to branched character of C10+ hydrocarbons, formed during oligomerization of ethylene, resulting polyolefins demonstrate higher low-temperature DR efficiency at low polymer concentrations (~1 ppm) in comparison with benchmark polymers prepared from the mixtures of linear α-olefins and from pure 1-hexene. We assume that faster solubility and more efficient solvation of the polyolefins, prepared using ‘tandem’ ethylene-based process, represent an advantage of these type polymers over conventional poly(1-hexene) and linear α-olefin-based polymers when used as ‘winter’ DRAs.

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Nifant'ev I. E. et al. Tandem synthesis of ultra-high molecular weight drag reducing poly-α-olefins for low-temperature pipeline transportation // Polymers. 2021. Vol. 13. No. 22. p. 3930.
GOST all authors (up to 50) Copy
Nifant'ev I. E., Tavtorkin A. N., Vinogradov A. A., Korchagina S. A., Chinova M. S., Borisov R. S., Artemev G. A., Artemiev G. A., Ivchenko P. V. Tandem synthesis of ultra-high molecular weight drag reducing poly-α-olefins for low-temperature pipeline transportation // Polymers. 2021. Vol. 13. No. 22. p. 3930.
RIS |
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RIS Copy
TY - JOUR
DO - 10.3390/polym13223930
UR - https://www.mdpi.com/2073-4360/13/22/3930
TI - Tandem synthesis of ultra-high molecular weight drag reducing poly-α-olefins for low-temperature pipeline transportation
T2 - Polymers
AU - Nifant'ev, Ilya E.
AU - Tavtorkin, Alexander N.
AU - Vinogradov, Alexey A.
AU - Korchagina, Sofia A
AU - Chinova, Maria S
AU - Borisov, Roman S
AU - Artemev, Grigory A
AU - Artemiev, G A
AU - Ivchenko, Pavel V
PY - 2021
DA - 2021/11/14
PB - MDPI
SP - 3930
IS - 22
VL - 13
PMID - 34833229
SN - 2073-4360
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2021_Nifant'ev,
author = {Ilya E. Nifant'ev and Alexander N. Tavtorkin and Alexey A. Vinogradov and Sofia A Korchagina and Maria S Chinova and Roman S Borisov and Grigory A Artemev and G A Artemiev and Pavel V Ivchenko},
title = {Tandem synthesis of ultra-high molecular weight drag reducing poly-α-olefins for low-temperature pipeline transportation},
journal = {Polymers},
year = {2021},
volume = {13},
publisher = {MDPI},
month = {nov},
url = {https://www.mdpi.com/2073-4360/13/22/3930},
number = {22},
pages = {3930},
doi = {10.3390/polym13223930}
}
MLA
Cite this
MLA Copy
Nifant'ev, Ilya E., et al. “Tandem synthesis of ultra-high molecular weight drag reducing poly-α-olefins for low-temperature pipeline transportation.” Polymers, vol. 13, no. 22, Nov. 2021, p. 3930. https://www.mdpi.com/2073-4360/13/22/3930.