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Influence of the initial cooling temperature on the gelation and yield stress of waxy crude oils

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Abstract

One of the major problems in waxy crude oil production and transportation is oil gelation that takes place within pipelines as a result of wax crystallization at low temperatures. In such cases, the pressure needed to restart the oil flow in subsea pipelines can be much larger than the usual steady-state pressure, as the temperature in such environment can be as low as 4 °C. The literature has shown that not only the temperature itself but also the fluid shear and thermal histories have significant influence on the yield stress of waxy crude oils. This paper investigates the effect of the initial cooling temperature on the waxy crude oil viscosity, gelation temperature, and yield stress. In order to accomplish that, rheological tests were carried out under static and dynamic cooling conditions. The results show that there is a critical range for the initial cooling temperature that provides maximum values for viscosity, gelation temperature, and yield stress. In other words, the highest values of those properties are observed when the cooling started within this temperature range. The effect of a thermal pretreatment usually used to remove light ends was also investigated. In spite of not changing the initial temperature critical range, the yield stress was slightly affected by the thermal treatment. It is worth noting that the yield stress varies from approximately zero to hundreds after dynamic cooling or to thousands after static cooling within the tested range of the initial cooling temperatures.

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References

  • Chang C, Boger DV, Nguyen QD (1998) The yielding of waxy crude oils. Ind Eng Chem Res 37:1551–1559

    Article  Google Scholar 

  • Chang C, Boger DV, Nguyen QD (2000) Influence of thermal history on the wax structure of statically cooled waxy crude oil. SPE J 5(2):148–157

    Article  Google Scholar 

  • Chen S, Øye G, Sjöblom J (2006) Characterization and rheological properties of waxy oils. Ann. Trans. Nord. Rheo. Soc. 14:159–164

  • Davenport TC, Somper RSH (1971) Yield value and breakdown of crude oil gels. J Inst Pet 57:86–105

    Google Scholar 

  • Dimitriou C, McKinley GH, Venkatesan R (2011) Rheo-PIV analysis of the yielding and flow of model waxy crude oils. Energy Fuels 25:3040–3052

    Article  Google Scholar 

  • El-Gamal IM (1998) Combined effects of shear and flow improvers: the optimum solution for handling waxy crudes below pour point. Colloids Surf A 135:283–291

    Article  Google Scholar 

  • El-Gamal IM, Gad EAM (1998) Low temperature rheological behavior of Umbarka waxy crude and influence of flow improver. Colloids Surf A 131:181–191

    Article  Google Scholar 

  • Ghannam M, Hasan SW, Abu-Jdayil B, Esmail N (2012) Rheological properties of heavy & light crude oil mixtures for improving flowability. J Pet Sci Eng 81:122–128

    Article  Google Scholar 

  • Hasan SW, Ghannam MT, Esmail N (2010) Heavy crude oil viscosity reduction and rheology for pipeline transportation. Fuel 59:1095–1100

    Article  Google Scholar 

  • Hou L, Zhang JJ (2007) New method for rapid thixotropic measurement of waxy crude. J Cent South Un Tech 14:471–473

    Article  Google Scholar 

  • Hou L, Zhang JJ (2010) A study on creep behaviour of gelled Daqing crude oil. Pet Sci Technol 28:690–699

    Article  Google Scholar 

  • Jemmett MR, Magda JJ, Deo MD (2013) Heterogeneous organic gels: rheology and restart. Energy Fuel 27:1762–1771

    Article  Google Scholar 

  • Kané M, Djabourov M, Volle JL, Lechaire JP, Frebourg G (2003) Morphology of paraffin crystals in waxy crude oils cooled in quiescent conditions and under flow. Fuel 82:127–135

    Article  Google Scholar 

  • Kané M, Djabourov M, Volle JL (2004) Rheology and structure of waxy crude oils in quiescent and under shearing conditions. Fuel 83:1591–1605

    Article  Google Scholar 

  • Lee HS, Singh P, Thomason WH, Fogler HS (2008) Waxy oil gel breaking mechanisms: adhesive versus cohesive failure. Energy Fuel 22:480–487

    Article  Google Scholar 

  • Li C, Yang Q, Lin M (2009) Effects of stress and oscillatory frequency on the structural properties of Daqing gelled crude oil at different temperatures. J Pet Sci Eng 65:167–170

    Article  Google Scholar 

  • Lin M, Li C, Yang F, Ma Y (2011) Isothermal structure development of Qinghai waxy crude oil after static and dynamic cooling. J Pet Sci Eng 77:351–358

    Article  Google Scholar 

  • Lopes-da-Silva JA, Coutinho JAP (2004) Dynamic rheological analysis of the gelation behaviour of waxy crude oils. Rheol Acta 43:433–441

    Article  Google Scholar 

  • Lopes-da-Silva JA, Coutinho JAP (2007) Analysis of the isothermal structure development in waxy crude oils under quiescent conditions. Energy Fuels 21:3612–3617

    Article  Google Scholar 

  • Magda JJ, Gendy HE, Oh K, Deo MD, Montesi A, Venkatesan R (2009) Time-dependent rheology of a model waxy crude oil with relevance to gelled pipeline restart. Energy Fuel 22:480–487

    Google Scholar 

  • Marchesini FH, Alicke AA, Mendes PRS, Ziglio CM (2012) Rheological characterization of waxy crude oils: sample preparation. Energy Fuel 26:2566–2577

    Article  Google Scholar 

  • Oh K, Jemmett M, Deo M (2009) Yield behavior of gelled waxy oil: effect of stress application in creep ranges. Ind Eng Chem Res 48:8950–8953

    Article  Google Scholar 

  • Phillips DA, Forsdyke IV, MacCracken IR, Paul RD (2011) Novel approaches to waxy crude restart: part 2: an investigation of flow events following shut down. J Pet Sci Eng 77:286–304

    Article  Google Scholar 

  • Remizov SV, Kirsanov EA, Matveenko VN (2000) Structural and rheological properties of microheterogeneous systems ‘solid hydrocarbons–liquid hydrocarbons’. Colloids Surf A 175:271–275

    Article  Google Scholar 

  • Rønningsen HP (1992) Rheological behaviour of gelled, waxy North Sea crude oils. J Pet Sci Eng 7:177–213

    Article  Google Scholar 

  • Rønningsen HP (2012) Rheology of petroleum fluids, Ann. Trans. Nord. Rheo. Soc. 20

  • Rønningsen HP, Bjorndal B, Hansen AB, Pedersen WB (1991) Wax precipitation from North Sea Crude oils. 1. Crystallization and dissolution temperatures, and Newtonian and non-Newtonian flow properties. Energy Fuels 5:895–908

    Article  Google Scholar 

  • Singh P, Fogler HS, Nagarajan N (1999) Prediction of the wax content of the incipient wax-oil gel in a pipeline: an application of the controlled-stress rheometer. J Rheol 43:1437–1549

    Article  Google Scholar 

  • Smith PB, Ramsden, RMJ (1978) The prediction of oil gelation in submarine pipelines and the pressure required for restarting flow. Eur. Offshore Pet. Conf. doi:http://dx.doi.org/10.2118/8071-MS

  • Soares EJ, Thompson RL, Machado A (2013) Measuring the yielding of waxy crude oils considering its time-dependency and apparent-yield-stress nature. Appl Rheol 23:62798–62809

    Google Scholar 

  • Tinsley JF, Jahnke JP, Dettman HD, Prud’home RK (2009) Wax gels with asphaltenes 1: characterization of precipitation, gelation, yield stress and morphology. Energy Fuels 23:2056–2064

    Article  Google Scholar 

  • Venkatesan R (2004) The deposition and rheology of organic gels. Ph.D Thesis, University of Michigan

  • Venkatesan R, Östlund JA, Chawla H, Wattana P, Nydén M, Fogler HS (2003) The effect of asphaltenes on the gelation of waxy oils. Energy Fuel 17:1630–1640

    Article  Google Scholar 

  • Venkatesan R, Nagarajan NR, Paso K, Sastry AM, Fogler HS (2005) The strength of paraffin gels formed under static and flow conditions. Chem Eng Sci 60:3587–3598

    Article  Google Scholar 

  • Visintin RFG, Lapasin R, Vignati E, D’Antona P, Lockhart TP (2005) Rheological behavior and structural interpretation of waxy crude oil gels. Langmuir 21:6240–3249

    Article  Google Scholar 

  • Wardhaugh LT, Boger DV (1987) Measurement of the unique flow properties of waxy crude oils. Chem Eng Res Des 65:74–83

    Google Scholar 

  • Wardhaugh LT, Boger DV (1991a) Flow characteristics of waxy crude oils: application to pipeline design. AIChe J 37:871–885

    Article  Google Scholar 

  • Wardhaugh LT, Boger DV (1991b) The measurement and description of the yielding behavior of waxy crude oil. J Rheol 35:1121–1156

    Article  Google Scholar 

  • Webber RM (1999) Low temperature rheology of lubricating mineral oils: effects of cooling rate and wax crystallization on flow properties of base oils. J Rheol 43:911–931

    Article  Google Scholar 

  • Webber RM (2001) Yield properties of wax crystal structures formed in lubricant mineral oils. Ind Eng Chem Res 40:195–203

    Article  Google Scholar 

  • Winter HH (2002) The critical gel—the universal material state between liquid and solid, Borsali R, Pecora R (eds), Structure and dynamic of polymer and colloidal systems, ASI 439–470

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Acknowledgments

The authors acknowledge the financial support of PETROBRAS S/A, PRH-ANP/MCT, and PFRH/PETROBRAS (PRH10-UTFPR) and CNPq and FINEP. We also thank Bruna Aimi Takii, an undergraduate student at the Federal University of Technology-Paraná, for her valuable support with the rheometric tests.

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Correspondence to Diogo E. V. Andrade.

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Andrade, D.E.V., da Cruz, A.C.B., Franco, A.T. et al. Influence of the initial cooling temperature on the gelation and yield stress of waxy crude oils. Rheol Acta 54, 149–157 (2015). https://doi.org/10.1007/s00397-014-0812-0

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  • DOI: https://doi.org/10.1007/s00397-014-0812-0

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