Influence of the Accuracy of Determining the Inner Diameter of Pressure Polyethylene Pipes by the Amount of Head Loss by Length

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The article presents the results of the analysis of the requirements of All Union State standard No18599-2001 to the thickness of the walls of pressure polyethylene pipes. An example of hydraulic calculation of a pipeline made of polyethylene PE 100 with a diameter d = 315 mm is considered. It is made in two versions - without taking into account and with allowance for dimensional tolerances stipulated by the requirements of the standard. The influence of the limitations on the thickness of the pipe walls on the values of their internal diameters and hydraulic characteristics is analyzed.

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Solid State Phenomena (Volume 284)

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1012-1017

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October 2018

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© 2018 Trans Tech Publications Ltd. All Rights Reserved

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[1] J.E. Olsen, P. Skjetne, S.T. Johansen, VLES turbulence model for an Eulerian-Lagrangian modeling concept for bubble plumes, Applied mathematical modelling. 44 (2017) 61-71.

DOI: 10.1016/j.apm.2017.01.031

Google Scholar

[2] Y. Jin, X. Li, M.Y. Zhao, X.H. Liu, H. Li, A mathematical model of fluid flow in tight porous media based on fractal assumptions, International journal of heat and mass transfer. 108 (2017) 1078-1088.

DOI: 10.1016/j.ijheatmasstransfer.2016.12.096

Google Scholar

[3] Information on: http://processes.open-mechanics.com.

Google Scholar

[4] L. Wang, Q.S. Han, D.Y. Chen, C.Z. Wu, X.Y. Wang, Non-linear modelling and stability analysis of the PTGS at pump mode, IET Renewable Power Generation. 11/6 (2017) 827-836.

DOI: 10.1049/iet-rpg.2016.0707

Google Scholar

[5] A. Ottosson, L. Nilsson, J. Berghel, A mathematical model of heat and mass transfer in Yankee drying of tissue, Drying Technology. 35/3 (2017) 323-334.

DOI: 10.1080/07373937.2016.1170697

Google Scholar

[6] P. Afrasiabikia, A.P. Rizi, M. Javan, Scenarios for improvement of water distribution in Doroodzan irrigation network based on hydraulic simulation, Computers and electronics in agriculture. 135 (2017). 312-320.

DOI: 10.1016/j.compag.2017.02.011

Google Scholar

[7] M. Fathi-Moghadam, S. Kiani, P. Asiaban, R. Behrozi-Rad, 2017 Modeling of Perforated Sill-Controlled Hydraulic Jump, International Journal of Civil Engineering. 15/4А (2017)689-695.

DOI: 10.1007/s40999-017-0185-8

Google Scholar

[8] S. Ates, Hydraulic modelling of control devices in loop equations of water distribution networks. Flow measurement and instrumentation. 35 (2017) 243-260.

DOI: 10.1016/j.flowmeasinst.2016.12.002

Google Scholar

[9] L. Zhang, S.M. Liu, W.J. Liu, Investigation of organic matter migrating from polymeric pipes into drinking water under different flow manners, Environmental science-processes & impacts, 16/2 (2014) 280-290.

DOI: 10.1039/c3em00432e

Google Scholar

[10] A.J. Whelton, T. Nguyen, Contaminant Migration From Polymeric Pipes Used in Buried Potable Water Distribution Systems: A Review, Critical reviews in environmental science and technology, 43/7 (2013) 679-751.

DOI: 10.1080/10643389.2011.627005

Google Scholar

[11] V.A. Chervatyuk, I.M. Kushnir, Anticorrosion Coatings based on a Water-Bitumen-Polymeric Composite with High Rates of Formation, Materials science, 49/3 (2013) 404-407.

DOI: 10.1007/s11003-013-9630-2

Google Scholar

[12] S. Venkataraman, R.S. Gorur, R. Bass, C. Rhodes, Are tracking resistance of polymeric materials in oxygen deficient conditions, 2003 annual report conference on electrical insulation and dielectric phenomena (2003), 104-107.

DOI: 10.1109/ceidp.2003.1254805

Google Scholar

[13] K.S. Nadirov, M.K. Zhantasov, B.A. Sakybayev, The study of the gossypol resin impact on adhesive properties of the intermediate layer of the pipeline three-layer rust protection coating, International journal of adhesion and adhesives, 78 (2017).

DOI: 10.1016/j.ijadhadh.2017.07.001

Google Scholar

[14] J.J. Feng, C.Y. Chen, Interfacial dynamics in complex fluids, Journal of fluid science and technology. 11/4(2016).

Google Scholar

[15] H. Yetistiren, A. Zeren, T. Sahin, Wear Properties of Glass Fiber Reinforced Polypropylene, Kgk-kautschuk gummi kunststoffe, 65/3 (2012) 43-48.

Google Scholar

[16] B. Lu, K. Lamnawar, A. Maazouz, Rheological and dynamic insights into an in situ reactive interphase with graft copolymers in multilayered polymer systems, Soft matter, 13/13 (2017) 2523-2535.

DOI: 10.1039/c6sm02658c

Google Scholar

[17] Information on: http://docs.cntd.ru/document/1200007490.

Google Scholar

[18] Information on: http://docs.cntd.ru/document/gost-18599-(2001).

Google Scholar

[19] O.A. Prodous, What accounts for the hydraulic potential of the water supply network. Journal of Pipelines and Ecology, 2 (2008) 58-62.

Google Scholar

[20] V.I. Aleksandrov, M.A. Vasilyeva, Determination of head loss during hydrotransport of condensed pulp tailings of ore dressing. Proceedings of the III International Scientific and Practical Conference Innovations in Transport and in Mechanical Engineering,, 2 (2015).

Google Scholar

[21] M.A. Vasilyeva, S. Voth, Investigation of polymer material of the working camera-channel of the magnetic pumps for heavy oil. Journal of Mining Institute 221 (2016) 651-654.

Google Scholar