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Articles

Advanced progresses in nature gas pipelining applying different drag reduction/energy saving technologies: a review

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Pages 931-949 | Received 25 Sep 2014, Accepted 31 Oct 2014, Published online: 06 Dec 2014

References

  • Amir, S., & Soroush, Z. (2012). Application polyurethane as coating in oil and gas pipelines. International Journal of Science and Engineering Investigations, 1, 43–45.
  • Baker, R. W. (2002). Future directions of membrane gas separation technology. Industrial and Engineering Chemistry Research, 41, 1393–1411.10.1021/ie0108088
  • Bechert, D. W., & Bartenwerfer, M. (1989). The viscous flow on surfaces with longitudinal ribs. Journal of Fluid Mechanics, 206, 105–129.10.1017/S0022112089002247
  • Bechert, D. W., Bruse, M., Hage, W., Van der hoeven, J. G. T., & Hoppe, G. (1997). Experiments on drag-reducing surfaces and their optimization with an adjustable geometry. Journal of Fluid Mechanics, 338, 59–87.10.1017/S0022112096004673
  • Bechert, D. W., Bruse, M., & Hage, W. (2000). Experiments with three-dimensional riblets as an idealized model of shark skin. Experiments in Fluids, 28, 403–412.10.1007/s003480050400
  • Bechert, D. W., Bruse, M., Hage, W., & Meyer, R. (2000). Fluid mechanics of biological surfaces and their technological application. Naturwissenschaften, 87, 157–171.10.1007/s001140050696
  • Benhamza, M. E., & Belaid, F. (2009). Computation of turbulent channel flow with variable spacing riblets. Mechanika, 79, 36–41.
  • Bhushan, B. (2009). Biomimetics: Lessons from nature-an overview. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 367, 1445–1486.10.1098/rsta.2009.0011
  • Bhushan, B. (2012). Bioinspired Structured Surfaces. Langmuir, 28, 1698–1714.10.1021/la2043729
  • Choi, K. S., Gadd, G. E., Pearcey, H. H., Savill, A. M., & Svensson, S. (1989). Tests of drag-reducing polymer coated on a riblet surface. Applied Scientific Research, 46, 209–216.10.1007/BF00404818
  • Christodoulou, C., Liu, K. N., & Joseph, D. D. (1991). Combined effects of riblets and polymers on drag reduction in pipes. Physics of Fluids A: Fluid Dynamics, 3, 995–996.10.1063/1.857980
  • Deyuan, Z., Yuehao, L., & Huawei, C. (2011). Application and numerical simulation research on bio-inspired drag-reducing technology for gas pipelining. Oil Gas-European Magazine, 37, 85–90.
  • Dong, Z., & Zhan, J. (2009). Numerical modeling of wave evolution and runup in shallow water. Journal of Hydrodynamics, Ser. B, 21, 731–738.10.1016/S1001-6058(08)60207-3
  • Dongxiao, L., & Qin, Z. (2007). Brief introduction to second pipeline of West-to-East gas transmission project (in Chinese). Gas & Heat, 27, 61–63.
  • Fan, L., Li, F., & Shwetha, R. (2007). Utilization of chemical looping strategy in coal gasification processes. Particuology, 6, 131–142.
  • Gao, W., Liu, R., & Duan, Y. (2009). Numerical investigation on non-newtonian flows through double constrictions by an unstructured finite volume method. Journal of Hydrodynamics, Ser. B, 21, 622–632.10.1016/S1001-6058(08)60193-6
  • Gary, J. S., & Massood, R. (2006). Hydrogen from coal gasification: An economical pathway to a sustainable energy future. International Journal of Coal Geology, 65, 173–190.
  • Gong, K., Liu, H., & Wang, B. (2010). Water entry of a wedge based on SPH model with an improved boundary treatment. Journal of Hydrodynamics, Ser. B, 21, 750–757.
  • Harris, G. M., & Lorenz, A. (1993). New coatings for the corrosion protection of steel pipelines and pilings in severely aggressive environments. Corrosion Science, 35, 1417–1423.10.1016/0010-938X(93)90366-O
  • Hartmann, D., & Kaltschmitt, M. (1999). Electricity generation from solid biomass via co-combustion with coal. Biomass and Bioenergy, 16, 397–406.10.1016/S0961-9534(99)00017-3
  • Heberle, J. R., & Edwards, C. F. (2009). Coal energy conversion with carbon sequestration via combustion in supercritical saline aquifer water. International Journal of Greenhouse Gas Control, 3, 568–576.10.1016/j.ijggc.2009.05.001
  • Hossam, A. K., & Hossam, A. G. (2010). Review of pipeline integrity management practices. International Journal of Pressure Vessels and Piping, 87, 373–380.
  • Hu, S., Qu, S., & Lin, Z. (2004). Study and application of internal coating technique to drag reduction of the trunk pipeline for the west-east gas pipeline. Engineering Sciences, 2, 50–59.
  • Huang, J., Murai, Y., & Yamamoto, F. (2009). Quadrant analysis of bubble induced velocity fluctuations in a transitional boundary layer. Journal of Hydrodynamics, Ser. B, 21, 93–99.10.1016/S1001-6058(08)60123-7
  • Huawei, C., Xin, Z., Da, C., Deyuan, Z., Xiang, L., & Yuanyue, L. (2014). Synthetic effect of vivid shark skin and polymer additive on drag reduction reinforcement. Advances in Mechanical Engineering, 2014, 425701.
  • Huey, J. C., Gene, E. K., Michael, S. F., & Bob, F. (2000). DRA for gas pipelining successful in Gulf of Mexico trial. Oil & Gas Journal, 98, 54–58.
  • Koeltzsch, K., Dinkelacker, A., & Grundmann, R. (2002). Flow over convergent and divergent wall riblets. Experiments in Fluids, 33, 346–350.10.1007/s00348-002-0446-3
  • Kopyscinski, J., Schildhauer, T. J., & Serge, M. A. (2010). Production of synthetic natural gas (SNG) from coal and dry biomass – A technology review from 1950 to 2009. Fuel, 89, 1763–1783.10.1016/j.fuel.2010.01.027
  • Lawrence, A. R. (1998). Energy from municipal solid waste: A comparison with coal combustion technology. Progress in Energy and Combustion Science, 24, 545–564.
  • Lin, Z., Zhang, L., Yuan, Z., & Qin, Y. (2002). Application of resistance reducing coating material on gas pipeline (in Chinese). Welding Pipe and Tube, 25(2), 1–4.
  • Liu, Z., Dong, W., Xiong, Y., & Xia, F. (2007). Analysis on factors and mechanism of drag reduction by grooved surface. Journal of Ship Mechanics, 11, 820–830.
  • Liu, J., Lu, C., & Xue, L. (2010). Numerical investigation on the aeroelastic behavior of an airship with hull-fin configuration. Journal of Hydrodynamics, Ser. B, 22, 207–213.10.1016/S1001-6058(09)60046-9
  • Longwell, J. P., Rubin, E. S., & Wilson, J. (1995). Coal: Energy for the future. Progress in Energy and Combustion Science, 21, 269–360.10.1016/0360-1285(95)00007-0
  • Luo, Y., Liu, Y., Zhang, D., & Ng, E. Y. K. (2014). Influence of morphology for drag reduction effect of sharkskin surface. Journal of Mechanics in Medicine and Biology, 14(2), 1430029.
  • Luo, Y., Tian, X., Ma, G., Chen, X., & Liu, Y. (2014). Numerical simulation on improving cooling efficiency of avionics equipment cabinet by micro-grooved surface (in Chinese). Aviation Manufacturing Technology, 4, 94–95.
  • Luo, Y. (2015). Recent progress in exploring drag reduction mechanism of real sharkskin surface: A review. Journal of Mechanics in Medicine and Biology, 15(3), 1530002.
  • Luo, Y., & Zhang, D. (2011). Study on the micro-replication precision of shark skin. Applied Mechanics and Materials, 44–47, 1151–1157.
  • Luo, Y., & Zhang, D. (2012). Experimental research on bio-inspired drag-reducing surface application in nature gas pipelines. Oil Gas-European Magazine, 38, 213–214.
  • Luo, Y., Zhang, D., & Chen, H. (2012). Research on manufacturing vivid trans-scale shark skin surface and drag-reducing effect simulation. Advanced Science Letters, 5, 49–55.
  • Luo, Y., Zhang, D., & Liu, Y. (2014). Exploring a method to effectively avoid drop-out of internal coating of natural gas pipes. Oil Gas-European Magazine, 40, 96–97.
  • Maciej, C. (2009). Sensitivity of pipeline gas flow model to the selection of the equation of state. Chemical Engineering Research and Design, 87, 1596–1603.
  • Majid, Z. A., Mohsin, R., Yaacob, Z., & Hassan, Z. (2010). Failure analysis of natural gas pipes. Engineering Failure Analysis, 17, 818–837.10.1016/j.engfailanal.2009.10.016
  • Manfredi, C., & Otegui, J. L. (2002). Failures by SCC in buried pipelines. Engineering Failure Analysis, 9, 495–509.10.1016/S1350-6307(01)00032-2
  • Martin, J., Ooi, A., Dopazo, C., Chong, M. S., & Soria, J. (1997). The inverse diffusion time scale of velocity gradients in homogeneous isotropic turbulence. Physics of Fluids, 9, 814–816.10.1063/1.869179
  • Michael, J. W. (1983). Riblets as a viscous drag reduction technique. AIAA Journal, 21, 485–486.
  • Mizuno, Y., Atkinson, C., & Soria, J. (2011). Topology and dynamics of flow structures in wall-bounded turbulent flows. Journal of Physics: Conference Series, 318, 062018.
  • Nakao, S. (1991). Application of V shape riblets to pipe flows. Journal of Fluids Engineering, 113, 587–590.10.1115/1.2926519
  • Niu, L., & Cheng, Y. F. (2008). Development of innovative coating technology for pipeline operation crossing the permafrost terrain. Construction and Building Materials, 22, 417–422.10.1016/j.conbuildmat.2007.06.001
  • Ooi, A., Martin, J., Soria, J., & Chong, M. S. (1999). A study of the evolution and characteristics of the invariants of the velocity-gradient tensor in isotropic turbulence. Journal of Fluid Mechanics, 381, 141–174.10.1017/S0022112098003681
  • Pang, J. H. (1998). Development of gas transmission pipeline from judged by the development strategy of energy resource in China (in Chinese). Petroleum Storage and transportation, 11, 10–15.
  • Perry, A. E., & Chong, M. S. (1987). A description of eddying motions and flow patterns using critical-point concepts. Annual Review of Fluid Mechanics, 19, 125–155.10.1146/annurev.fl.19.010187.001013
  • Pirozzoli, S., & Grasso, F. (2004). Direct numerical simulations of isotropic compressible turbulence: Influence of compressibility on dynamics and structures. Physics of Fluids, 16, 4386–4407.10.1063/1.1804553
  • Pirozzoli, S., Bernardini, M., & Grasso, F. (2008). Characterization of coherent vertical structures in a supersonic turbulent boundary layer. Journal of Fluid Mechanics, 613, 205–231.
  • Qibin, Z., Yunpeng, F., Zhu, L., Li, Z., Cuizhu, X., & Wenli, H. (2008). Research on drag reduction agent for natural gas pipeline. Natural Gas Technology, 2, 48–50.
  • Qiu, X., Zhang, D., Lu, Z., & Liu, Y. (2009). Turbulent mixing and evolution in a stably stratified flow with a temperature step. Journal of Hydrodynamics, Ser. B, 21, 84–92.10.1016/S1001-6058(08)60122-5
  • Ramos, M. M. G., Franco, J. H. R., Pinto, C. A., Valenzuela, F. R., & Büchler, P. M. (2004). Sorption of oil pollution by organoclays and a coal/mineral complex. Brazilian Journal of Chemical Engineering, 21, 239–245.
  • Sadeghi Meresht, E. S., Shahrabi Farahani, T. S., & Neshati, J. (2011). Failure analysis of stress corrosion cracking occurred in a gas transmission steel pipeline. Engineering Failure Analysis, 18, 963–970.10.1016/j.engfailanal.2010.11.014
  • Saimra, S. S., & Kai, C. (2013). A review of drag reduction by riblets and micro-textured in the turbulent boundary layers. European Scientific Journal, 9, 62–81.
  • Sridhar, S., Smitha, B., & Aminabhavi, T. M. (2007). Separation of carbon dioxide from natural gas mixtures through polymeric membranes – A review. Separation and Purification Reviews, 36, 113–174.10.1080/15422110601165967
  • Stefan. J., Marko, D., Dominik, R., Arindam, D., Constantine, M. M. and Dimos, P. Are superhydrophobic surfaces best for icephobicity? Langmuir 2011, 27, 3059–3066.
  • Tarafdar, S., Nag, S., Dutta, T., & Sinha, S. (2009). Computer simulation of viscous fingering in a lifting Hele-Shaw cell with grooved plates. Pramana, 73, 743–754.10.1007/s12043-009-0142-4
  • Teixeira, T. P. F., Aquino, S. F., Pereira, S. I., & Dias, A. (2014). Use of calcined layered double hydroxides for the removal of color and organic matter from textile effluents: Kinetic, equilibrium and recycling studies. Brazilian Journal of Chemical Engineering, 31, 19–26.10.1590/S0104-66322014000100003
  • Thielemann, T., Schmidt, S., & Peter Gerling, J. (2007). Lignite and hard coal: Energy suppliers for world needs until the year 2100 – An outlook. International Journal of Coal Geology, 72(1), 1–14.10.1016/j.coal.2007.04.003
  • Tsatsaronis, G., & Winhold, M. (1985). Exergoeconomic analysis and evaluation of energy-conversion plants – II. Analysis of a coal-fired steam power plant. Energy, 10, 81–94.10.1016/0360-5442(85)90021-0
  • Watanabe, H., & Otaka, M. (2006). Numerical simulation of coal gasification in entrained flow coal gasifier. Fuel, 85, 1935–1943.10.1016/j.fuel.2006.02.002
  • Woldeyohannes, A. D., & Majid, M. A. (2011). Simulation model for natural gas transmission pipeline network system. Simulation Modelling Practice and Theory, 19, 196–212.10.1016/j.simpat.2010.06.006
  • Yinghsiao, L., 1990. Drag reduction method for gas pipelines. U.S. Patent, No. US5020561 A.
  • Yuehao, L., & Yufei, L. (2014). Numerical simulation of micro flow field on bio-inspired sharkskin drag-reducing surface. Advanced Materials Research, 884–885, 378–381.
  • Yuehao, L., Deyuan, Z., & Huawei, C. (2011). Experimental research on improving wear resistance of coating surface by magnetron sputtering. Advanced Materials Research, 189–193, 9–12.
  • Zhang, D., Luo, Y., Jiang. X., & Chen, H. (2011a). Chinese Invention Patent: Rolling forming method and equipment of morphology on inner wall of nature gas pipeline (in Chinese).
  • Zhang, D., Luo, Y., Jiang, X., & Chen, H. (2011b). Chinese Invention Patent: A method of manufacturing enlarged vivid shark skin scale (in Chinese). Patent Number: CN102102300A.
  • Zhang, D., Luo, Y., Chen, H., & Jiang, X. (2011). Exploring drag-reducing grooved internal coating for gas pipelines. Pipeline & Gas Journal, 238, 58–60.
  • Zhang, D., Luo, Y., Li, X., & Chen, H. (2011). Numerical simulation and experimental study of drag-reducing surface of a real shark skin. Journal of Hydrodynamics, Ser. B, 23, 204–211.10.1016/S1001-6058(10)60105-9
  • Zhang, D., Luo, Y., Jiang, X., & Chen, H. (2012). A method and equipment for testing inner wall frictional coefficient of nature gas pipelines (in Chinese). Patent Number: CN102269690A.
  • Zou, L., & Lin, Y. (2009). Force reduction of flow around a sinusoidal wavy cylinder. Journal of Hydrodynamics, Ser. B, 21, 308–315.10.1016/S1001-6058(08)60151-1

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