Academic literature on the topic 'Compressibility factor'

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Journal articles on the topic "Compressibility factor"

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Elsharkawy, Adel M., Yousef S. Kh S. Hashem, and Abbas A. Alikhan. "Compressibility Factor for Gas Condensates." Energy & Fuels 15, no. 4 (2001): 807–16. http://dx.doi.org/10.1021/ef000216m.

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Bahadori, Alireza, Saeid Mokhatab, and Brian F. Towler. "Rapidly Estimating Natural Gas Compressibility Factor." Journal of Natural Gas Chemistry 16, no. 4 (2007): 349–53. http://dx.doi.org/10.1016/s1003-9953(08)60003-1.

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Ali, I., S. M. Osman, and R. N. Singh. "Compressibility factor for double Yukawa fluid." Journal of Non-Crystalline Solids 250-252 (August 1999): 364–67. http://dx.doi.org/10.1016/s0022-3093(99)00265-3.

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Saleh, A. A., and E. T. Hashim. "Generalized Formula for Compressibility Factor Z." Petroleum Science and Technology 27, no. 13 (2009): 1503–9. http://dx.doi.org/10.1080/10916460802455509.

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Azizi, Navid, and Reza Mosayebi Behbahani. "Predicting the compressibility factor of natural gas." Petroleum Science and Technology 35, no. 7 (2017): 696–702. http://dx.doi.org/10.1080/10916466.2016.1270305.

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Blumberg, L. M. "Properties of James-Martin compressibility correction factor." Chromatographia 44, no. 5-6 (1997): 326–29. http://dx.doi.org/10.1007/bf02466403.

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Yang, Xiaohong, and Weiling Zhu. "Approaching averaged binary potential field from compressibility factor." Journal of Molecular Liquids 280 (April 2019): 367–73. http://dx.doi.org/10.1016/j.molliq.2019.02.032.

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Mohamadi-Baghmolaei, Mohamad, Reza Azin, Shahriar Osfouri, Rezvan Mohamadi-Baghmolaei, and Zeinab Zarei. "Prediction of gas compressibility factor using intelligent models." Natural Gas Industry B 2, no. 4 (2015): 283–94. http://dx.doi.org/10.1016/j.ngib.2015.09.001.

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Abe, R. "Critical Compressibility Factor of Two-Dimensional Lattice Gas." Progress of Theoretical Physics 81, no. 5 (1989): 990–96. http://dx.doi.org/10.1143/ptp.81.990.

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Minina, Elena S., Ronald Blaak, and Sofia S. Kantorovich. "Pressure and compressibility factor of bidisperse magnetic fluids." Journal of Physics: Condensed Matter 30, no. 14 (2018): 145101. http://dx.doi.org/10.1088/1361-648x/aab137.

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Dissertations / Theses on the topic "Compressibility factor"

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Gargouri, Yosra. "Nouveau récepteur radio numérique pour les observations astrophysiques spatiales dans la bande de fréquence 1 kHz à 50 MHz." Thesis, Paris, ENST, 2017. http://www.theses.fr/2017ENST0057/document.

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Plusieurs phénomènes astronomiques émettent des ondes radios basses fréquences tels que les éruptions solaires, les magnétosphères, les pulsars . . . Certains de ces ondes sont mal captées par les observatoires terrestres à cause, principalement, de la coupure ionosphérique. Il devient indispensable d’envoyer des récepteurs radio dans l’espace pour les acquérir. Cependant, ces récepteurs sont consommation d’énergie et le taux de transmission. Un paradigme récent pour l’acquisition et la reconstruction des signaux, appelé l’échantillonnage comprimé (Compressive sampling, Compressed Sensing, CS)
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John, Yakubu M. "Kinetic modelling simulation and optimal operation of fluid catalytic cracking of crude oil: Hydrodynamic investigation of riser gas phase compressibility factor, kinetic parameter estimation strategy and optimal yields of propylene, diesel and gasoline in fluid catalytic cracking unit." Thesis, University of Bradford, 2018. http://hdl.handle.net/10454/17323.

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The Fluidized Catalytic Cracking (FCC) is known for its ability to convert refinery wastes into useful fuels such as gasoline, diesel and some lighter products such as ethylene and propylene, which are major building blocks for the polyethylene and polypropylene production. It is the most important unit of the refinery. However, changes in quality, nature of crude oil blends feedstock, environmental changes and the desire to obtain higher profitability, lead to many alternative operating conditions of the FCC riser. There are two major reactors in the FCC unit: the riser and the regenerator.
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Borges, Edilso Macedo Lopes. "Avaliação de Correlações e Equações de Estado para Determinação de Fatores de Compressibilidade de Gás Natural." Universidade do Estado do Rio de Janeiro, 2009. http://www.bdtd.uerj.br/tde_busca/arquivo.php?codArquivo=2574.

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O fator de compressibilidade (Z) de gás natural é utilizado em vários cálculos na engenharia de petróleo (avaliação de formações, perda de carga em tubulações, gradiente de pressão em poços de gás, cálculos de balanço de massa, medição de gás, compressão e processamento de gás). As fontes mais comuns de valores de Z são medições experimentais, caras e demoradas. Essa propriedade também é estimada por correlações empíricas, modelos baseados no princípio dos estados correspondentes ou equações de estado (EOS). Foram avaliadas as capacidades das EOS de Soave-Redlich-Kwong (SRK), Peng-Robinson (PR
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Holloway-Strong, Maria U. "A study of the factors which govern the compressibility of chalk." Thesis, University of Surrey, 1998. http://epubs.surrey.ac.uk/842733/.

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Chalk is a weak rock that occurs extensively in the UK. The mechanisms which control the mass compressibility of chalk are not fully understood and hence current foundation design practice favours a conservative, and therefore costly, approach. This research aimed to investigate the factors which control mass compressibility in order to improve our understanding and hence improve foundation design methods. This was achieved by the development of a hypothesis which described aspects of the deformation behaviour of both intact and discontinuous chalk. The hypothesis was then validated by a labor
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Okambawa, Richard. "Mesure du facteur de compressibilité de divers gaz par la méthode diélectrique." Thèse, Université du Québec à Trois-Rivières, 1994. http://depot-e.uqtr.ca/5286/1/000611350.pdf.

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John, Yakubu M., Rajnikant Patel, and Iqbal M. Mujtaba. "Effects of compressibility factor on fluid catalytic cracking unit riser hydrodynamics." 2018. http://hdl.handle.net/10454/15280.

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Yes<br>A detailed steady state FCC riser process model is simulated for the first time with different compressibility (Z) factor correlations using gPROMS software. A 4-lump kinetic model is used where gas oil cracks to form gasoline, coke and gases. The usual practice has been the assumption that the FCC riser gas phase is an ideal gas at every point under any condition (varying C/O ratio, riser diameter, operating temperature and pressure, etc.). This work found that the Z factor varies at every point across the riser height depending on riser operating pressure and temperature, diameter and
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Woo, Jeng Won. "Analysis of Compressible and Incompressible Flows Through See-through Labyrinth Seals." Thesis, 2011. http://hdl.handle.net/1969.1/ETD-TAMU-2011-05-9264.

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The labyrinth seal is a non-contact annular type sealing device used to reduce the internal leakage of the working fluid which is caused by the pressure difference between each stage in a turbomachine. Reducing the leakage mass flow rate of the working fluid through the labyrinth seal is desirable because it improves the efficiency of the turbomachine. The carry-over coefficient, based on the divergence angle of the jet, changed with flow parameters with fixed seal geometry while earlier models expressed the carry-over coefficient solely as a function of seal geometry. For both compressible
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Risius, Steffen. "Development of a time-resolved quantitative surface-temperature measurement technique and its application in short-duration wind tunnel testing." Thesis, 2018. http://hdl.handle.net/11858/00-1735-0000-002E-E44D-A.

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Rogério, Flávio Pedro de Sousa. "Capacidade de carga de fundações diretas com rotura localizada do terreno." Master's thesis, 2020. http://hdl.handle.net/10316/93888.

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Dissertação de Mestrado em Mecânica dos Solos e Engenharia Geotécnica apresentada à Faculdade de Ciências e Tecnologia<br>A expressão geral da capacidade de carga, para fundações superficiais, foi deduzida baseando-se no pressuposto de que o solo sofre rotura generalizada. Teoricamente, quando o solo apresenta compressibilidade relativa elevada, ou elevada deformabilidade, a rotura dá-se por um mecanismo diferente, tal como a rotura localizada ou por punçoamento. Alguns autores têm vindo a estudar os efeitos de escala e da compressibilidade do solo na capacidade de carga, de modo a definir cla
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Books on the topic "Compressibility factor"

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Encyclopedia of Chemical Processing and Design: Volume 68 - Z-Factor (Gas Compressibility) Errors to Zone Refining (Encyclopedia of Chemical Processing and Design). CRC, 1999.

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Sherwood, Dennis, and Paul Dalby. Mathematical round up. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198782957.003.0021.

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This chapter draws together all the main mathematical equations into a single, structured, sequence, so providing a source of reference, as well as enabling the student to appreciate how superficially different equations are, in fact, component parts of a ‘bigger picture’. The chapter also introduces some new material, such as the Maxwell relations, the chain rule, the thermodynamic equations-of-state, isenthalpic throttling processes, the Joule-Thomson coefficient and the compressibility factor – so setting the scene for the discussion of real systems in the following chapter.
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Book chapters on the topic "Compressibility factor"

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Hafsi, Zahreddine, Sami Elaoud, Mohsen Akrout, and Ezzeddine Hadj Taïeb. "New Correlation for Hydrogen-Natural Gas Mixture Compressibility Factor." In Design and Modeling of Mechanical Systems - II. Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-17527-0_79.

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Bian, Xiaoqiang, Zhimin Du, Yong Tang, and Jianfen Du. "Compressibility Factor of High CO2-Content Natural Gases: Measurement and Correlation." In Carbon Dioxide Sequestration and Related Technologies. John Wiley & Sons, Inc., 2011. http://dx.doi.org/10.1002/9781118175552.ch6.

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"Appendix D: Compressibility Factor Equations." In Pipe Flow. John Wiley & Sons, Inc., 2012. http://dx.doi.org/10.1002/9781118275276.app4.

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ABE, Ryuzo. "CRITICAL COMPRESSIBILITY FACTOR OF LATTICE GAS." In Strongly Coupled Plasma Physics. Elsevier, 1990. http://dx.doi.org/10.1016/b978-1-4832-2908-9.50085-8.

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ABE, Ryuzo. "CRITICAL COMPRESSIBILITY FACTOR OF LATTICE GAS." In Strongly Coupled Plasma Physics. Elsevier, 1990. http://dx.doi.org/10.1016/b978-0-444-88363-6.50086-8.

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"Evaluation of Constants for Approximate Compressibility Factor Equation." In Underground Gas Storage Facilities. Elsevier, 1995. http://dx.doi.org/10.1016/b978-088415204-0/50015-7.

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Matiko, Fedir, Halyna Matiko, and Hanna Krykh. "ANALYSIS OF METHODS FOR DETERMINING DENSITY AND COMPRESSIBILITY FACTOR OF GASEOUS ENERGY CARRIERS." In Scientific foundations of solving engineering tasks and problems. International Science Group, 2021. http://dx.doi.org/10.46299/isg.2021.mono.tech.ii-610-621.

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PITZER, KENNETH S., DAVID Z. LIPPMANN, R. F. CURL, CHARLES M. HUGGINS, and DONALD E. PETERSEN. "The Volumetric and Thermodynamic Properties of Fluids.: II. Compressibility Factor, Vapor Pressure and Entropy of Vaporization." In World Scientific Series in 20th Century Chemistry. WORLD SCIENTIFIC, 1993. http://dx.doi.org/10.1142/9789812795960_0044.

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"Compressibility Factors for Nitrogen." In Thermodynamics. CRC Press, 1999. http://dx.doi.org/10.1201/9780203909829.axc.

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Conference papers on the topic "Compressibility factor"

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Elsharkawy, Adel M., Yousef S. Kh S. Hashem, and Abbas A. Alikhan. "Compressibility Factor for Gas Condensates." In SPE Permian Basin Oil and Gas Recovery Conference. Society of Petroleum Engineers, 2000. http://dx.doi.org/10.2118/59702-ms.

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Elsharkawy, Adel M., and Ali Elkamel. "Compressibility Factor for Sour Gas Reservoirs." In SPE Asia Pacific Oil and Gas Conference and Exhibition. Society of Petroleum Engineers, 2000. http://dx.doi.org/10.2118/64284-ms.

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Muonagor, C. M., S. S. Ikiensikimama, and C. I. C. Anyadiegwu. "Compressibility Factor Correlation for the Niger Delta Gas." In SPE Nigeria Annual International Conference and Exhibition. Society of Petroleum Engineers, 2016. http://dx.doi.org/10.2118/184287-ms.

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Baumgärtner, David, John J. Otter, and Andrew P. S. Wheeler. "The Effect of Compressibility Factor on Turbine Performance." In ASME Turbo Expo 2021: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2021. http://dx.doi.org/10.1115/gt2021-60241.

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Abstract The compressibility factor Z is one of the most common properties that describes a fluid diversion from an ideal gas. Still, its effect on turbine performance is not well known. We determine a set of non-dimensional parameters that fix the gas dynamic behaviour, independent of Z, and thus isolate the effect that Z has on turbine performance. The results indicate that, contrary to the common perception, low values of Z and hence a strong diversion from an ideal gas lead to a reduction in loss for supersonic operating conditions, if all other non-dimensionals are accounted for. The aero
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Kareem, Lateef A. "Z Factor: Implicit Correlation, Convergence Problem and Pseudo-Reduced Compressibility." In SPE Nigeria Annual International Conference and Exhibition. Society of Petroleum Engineers, 2014. http://dx.doi.org/10.2118/172373-ms.

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Festus, Olajide Olateju, and Sunday Sunday Ikiensikimama. "Evaluation of Compressibility Factor Correlations for Niger Delta Gas Reservoirs." In Nigeria Annual International Conference and Exhibition. Society of Petroleum Engineers, 2010. http://dx.doi.org/10.2118/136967-ms.

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Maalouf, Maher, Naji Khoury, Dirar Homouz, and Kyriaki Polychronopoulou. "Accurate Prediction of Gas Compressibility Factor using Kernel Ridge Regression." In 2019 Fourth International Conference on Advances in Computational Tools for Engineering Applications (ACTEA). IEEE, 2019. http://dx.doi.org/10.1109/actea.2019.8851106.

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Tian, Xiaocui, Xiaokai Xing, Rui Chen, Shubao Pang, and Liu Yang. "Calculation Method of Natural Gas Compressibility Factor and its Application in Pipeline Trade." In 2014 10th International Pipeline Conference. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/ipc2014-33258.

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In the custody transfer metering of natural gas, it’s necessary to transform gas volume from metering state into standard state. Natural gas is non-ideal gas, and its compressibility factor varies with different components, temperature and pressure. So the accuracy of its calculation has direct impact on that of natural gas metering, and then affects the economic benefits of the enterprise [1]. According to related standard of China, in the custody transfer metering of natural gas, the formula stipulated by AGA NO.8 should be adopted to calculate compressibility factor. But the components of n
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Obeida, T. A., Z. E. Heinemann, and M. Kriebernegg. "Accurate Calculations of Compressibility Factor for Pure Gases and Gas Mixtures." In SPE Production Operations Symposium. Society of Petroleum Engineers, 1997. http://dx.doi.org/10.2118/37440-ms.

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A. Obeida, T., Z. E. Heinemann, and M. Kriebernegg. "Accurate Calculations of Compressibility Factor for Pure Gases and Gas Mixtures." In ECMOR V - 5th European Conference on the Mathematics of Oil Recovery. European Association of Geoscientists & Engineers, 1996. http://dx.doi.org/10.3997/2214-4609.201406909.

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