يعرض 1 - 20 نتائج من 37 نتيجة بحث عن '"полый цилиндр"', وقت الاستعلام: 0.57s تنقيح النتائج
  1. 1
    Academic Journal

    المساهمون: Работа выполнена при финансовой поддержке РНФ (грант № 23-21-00189, https://rscf.ru/project/23-21- 00189/).

    المصدر: Chebyshevskii Sbornik; Том 25, № 2 (2024); 296-317 ; Чебышевский сборник; Том 25, № 2 (2024); 296-317 ; 2226-8383 ; 10.22405/2226-8383-2024-25-2

    وصف الملف: application/pdf

    Relation: https://www.chebsbornik.ru/jour/article/view/1747/1200; Abbas A. I. Eigenvalue approach on fractional order theory of thermoelastic diffusion problem; for an infinite elastic medium with a spherical cavity // Applied Mathematical Modelling. 2015.; Vol. 39, No. 20. P. 6196–6206.; Abbas A. Ibrahim, Elmaboud Y. Abd. Analytical solutions of thermoelastic interactions in a; hollow cylinder with one relaxation time // Mathematics and Mechanics of Solids. 2017. Vol.; No 2. P. 210–223.; Abo-Dahab S.M. Generalized Thermoelasticity with Diffusion and Voids under Rotation; Gravity and Electromagnetic Field in the Context of Four Theories // Appl. Math. Inf. Sci.; Vol. 13, No 2. P. 317–337.; Aouadi M. A generalized thermoelastic diffusion problem for an infinitely long solid cylinder //; Intern. J. Mathem. and Mathem. Sci. 2006. Vol. 2006. P. 1-15.; Aouadi M. A problem for an infinite elastic body with a spherical cavity in the theory of; generalized thermoelastic diffusion // International Journal of Solids and Structures. 2007. Vol.; P. 5711-5722.; Bhattacharya D., Pal P., Kanoria M. Finite Element Method to Study Elasto-Thermodiffusive; Response inside a Hollow Cylinder with Three-Phase-Lag Effect // International Journal of; Computer Sciences and Engineering. 2019. Vol.7, Is. 1. P. 148–156.; Choudhary S., Deswal S. Mechanical loads on a generalized thermoelastic medium with diffusion // Meccanica. 2010. Vol. 45. P. 401–413.; Davydov S. A., Zemskov A. V. Thermoelastic Diffusion Phase-Lag Model for a Layer with; Internal Heat and Mass Sources // International Journal of Heat and Mass Transfer. 2022.; Vol. 183, Part C. 122213.; Deswal S., Kalkal K. A two-dimensional generalized electro-magneto-thermoviscoelastic problem for a half-space with diffusion // International Journal of Thermal Sciences. 2011. Vol. 50, No 5. P. 749–759.; Deswal S., Kalkal K. K., Sheoran S. S. Axi-symmetric generalized thermoelastic diffusion; problem with two-temperature and initial stress under fractional order heat conduction //; Physica B: Condensed Matter. 2016. Vol. 496. P. 57–68.; Elhagary M. A. Generalized thermoelastic diffusion problem for an infinitely long hollow; cylinder for short times // Acta Mech. 2011. Vol. 218. P. 205–215.; Elhagary M. A. Generalized thermoelastic diffusion problem for an infinite Medium with a; Spherical Cavity // Int. J. Thermophys. 2012. Vol. 33. P. 172-183.; Kaur I., Lata P. Rayleigh wave propagation in transversely isotropic magneto-thermoelastic; medium with three-phase-lag heat transfer and diffusion // International Journal of Mechanical; and Materials Engineering. 2019. Vol. 14, No 12. https://doi.org/10.1186/s40712-019-0108-3; Kumar R., Devi S. Deformation of modified couple stress thermoelastic diffusion in a thick; circular plate due to heat sources // CMST. 2019. Vol. 25, No 4. P. 167–176.; Kumar R., Devi S. Effects of Viscosity on a Thick Circular Plate in Thermoelastic Diffusion; Medium // Journal of Solid Mechanics. 2019. Vol. 11, No 3. P. 581–592.; Lata P. Time harmonic interactions in fractional thermoelastic diffusive thick circular plate //; Coupled Systems Mechanics. 2019. Vol. 8, No 1. P. 39–53.; Salama M. M., Kozae A. M., Elsafty M. A., Abelaziz S. S. A half-space problem in the theory of fractional order thermoelasticity with diffusion // International Journal of Scientific and; Engineering Research. 2015. Vol. 6, Is. 1. P. 358–371; Sharma N., Kumar R., Ram P. Plane strain deformation in generalized thermoelastic diffusion // Int. J. Thermophys. 2008. Vol. 29. P. 1503–1522.; Sharma J. N., Thakur N., Singh S. Propagation characteristics of elasto-thermodiffusive surface waves in semiconductor material half-space // Therm Stresses. 2007. Vol. 30. P. 357–380.; Tripathi J. J., Kedar G. D., Deshmukh K. C. Two-dimensional generalized thermoelastic; diffusion in a half-space under axisymmetric distributions // Acta Mech. 2015. Vol. 226. P.; –3274.; Xia R. H., Tian X. G., Shen Y.P. The influence of diffusion on generalized thermoelastic; problems of infinite body with a cylindrical cavity // International Journal of Engineering; Science. 2009. Vol. 47. P. 669–679.; Минов А. В. Исследование напряженно-деформированного состояния полого цилиндра, подверженного термодиффузионному воздействию углерода в осесимметричном тепловом поле, переменном по длине // Известия вузов. Машиностроение. 2008. № 10. C. 21–26.; Павлина В. С. О влиянии диффузии на температурные напряжения в окрестности цилиндрической полости // Физико-химическая механика материалов. 1965. №4. С. 390–394.; Hwang C. C., Huang I. B. Diffusion-induced stresses in hollow cylinders for transient state // IOSR Journal of Engineering (IOSRJEN). 2012. Vol. 2, Is. 8. P. 166–182.; Lee S., Wang W. L., Chen J. R. Diffusion-induced stresses in a hollow cylinder: Constant surface stresses // Materials Chemistry and Physics. 2000. Vol.64, No 2. P. 123–130.; Soares J. S. Diffusion of a fluid through a spherical elastic solid undergoing large deformations // International Journal of Engineering Science. 2009. V. 47. P. 50–63.; Tartibi M., Guccione J. M., Steigmann D. J. Diffusion and swelling in a bio-elastic cylinder //; Mechanics Research Communications. 2019. Vol. 97. P. 123–128.; Yang F. Effect of diffusion-induced bending on diffusion-induced stress near the end faces of an elastic hollow cylinder // Mechanics Research Communications. 2013. V. 51. P. 72–77.; Карташов Э. М., Кудинов В. А. Аналитические методы теории теплопроводности и ее приложений. Изд. 4, перераб. и сущ. доп. М.: URSS. 2018. 1080 с.; Зверев Н. А., Земсков А. В. Моделирование нестационарных механодиффузионных процессов в полом цилиндре с учетом релаксации диффузионных потоков // Математическое моделирование. 2022. Т. 35, № 1. C. 25-37.; Зверев Н. А., Земсков А. В., Тарлаковский Д. В. Нестационарная механодиффузия сплошного ортотропного цилиндра, находящегося под действием равномерного давления, с учетом релаксации диффузионных потоков // Механика композиционных материалов и конструкций. 2021. Т. 27, № 4. С. 570-586.; Zemskov A. V., Tarlakovskii D. V. Method of the equivalent boundary conditions in the; unsteady problem for elastic diffusion layer // Materials Physics and Mechanics. 2015. No; Vol 23. P. 36–41.; Зверев Н. А., Земсков А. В., Тарлаковский Д. В. Моделирование одномерных механодиффузионных процессов в ортотропном сплошном цилиндре, находящемся под действием нестационарных объемных возмущений, Вестник Самарского Государственного технического университета. Серия: Физико-математические Науки. 2022. Т.26, №1. с. 62–78.; Земсков А.В., Тарлаковский Д. В. Моделирование механодиффузионных процессов в многокомпонентных телах с плоскими границами. М.: ФИЗМАТЛИТ. 2021. 288 с.; Диткин В. А., Прудников А. П. Справочник по операционному исчислению. М.: Высшая школа. 1965. 568 с.; Бабичев А. П., Бабушкина Н. А., Братковский А. М., и др.; под общей редакцией Григорьева И. С., Мейлихова И. З. // Физические величины: Справочник. М.: Энергоатомиздат. 1991. 1232 с.; https://www.chebsbornik.ru/jour/article/view/1747

  2. 2
    Academic Journal

    المساهمون: The article was prepared with the financial support of the Government of the Russian Federation (Contract №02.А03.21.0006).

    المصدر: Alternative Energy and Ecology (ISJAEE); № 25-27 (2020); 12-20 ; Альтернативная энергетика и экология (ISJAEE); № 25-27 (2020); 12-20 ; 1608-8298

    وصف الملف: application/pdf

    Relation: https://www.isjaee.com/jour/article/view/1998/1675; M.T. Chaibi, An overview of solar desalination for domestic and agriculture water needs in remote arid areas, Desalination. 127 (2000) 119–133. https://doi.org/10.1016/S0011-9164(99)00197-6.; S. Senevirathna, S. Ramzan, J. Morgan, A sustainable and fully automated process to treat stored rainwater to meet drinking water quality guidelines, Process Saf. Environ. Prot. 130 (2019) 190–196. https://doi.org/10.1016/j.psep.2019.08.005.; Y. Sayato, WHO Guidelines for Drinking-Water Quality, Eisei Kagaku. 35 (1989) 307–312. https://doi.org/10.1248/jhs1956.35.307.; World Health Organization (WHO), "Guidelines for Drinking-water Quality", Third Edition Incorporating the First and Second Addenda, Vol. 1, Geneva, 2008.; E. Dupont, R. Koppelaar, and H. Jeanmart, “Global available solar energy under physical and energy return on investment constraints,” Applied Energy, vol. 257, no. May 2019, p.113968, 2020.; A. Agrawal, R. S. Rana, P. K. Shrivastava, and R. P. Singh, “a Short Review on Solar Water Distillation for,” no. 1, pp. 27–36, 2016.; L. Swatuk, M. McMorris, C. Leung, Y. Zu, Seeing “invisible water”: Challenging conceptions of water for agriculture, food and human security, Can. J. Dev. Stud. 36 (2015) 24–37. https://doi.org/10.1080/02255189.2015.1011609.; H.E.S. Fath, Solar distillation: a promising alternative for water provision with free energy, simple technology and a clean environment, Desalination. 116 (1998) 45–56. https://doi.org/10.1016/S0011-9164(98)00056-3.; A. Kaushal, Solar stills : A review, 14 (2010) 446– 453. https://doi.org/10.1016/j.rser.2009.05.011.; P. Patel, A.S. Solanki, U.R. Soni, A.R. Patel, A Review to Increase the Performance of Solar Still: Make It Multi Layer Absorber, Int. J. Recent Innov. Trends Comput. Commun. 2 (2014) 173–177.; S.W. Sharshir, Y.M. Ellakany, A.M. Algazzar, A.H. Elsheikh, M.R. Elkadeem, E.M.A. Edreis, A.S. Waly, R. Sathyamurthy, H. Panchal, M.S. Elashry, A mini review of techniques used to improve the tubular solar still performance for solar water desalination, Process Saf. Environ. Prot. 124 (2019) 204–212. https://doi.org/10.1016/j.psep.2019.02.020.; C. M. and A. Yadav, “Water desalination system using solar heat: A review,” Renewable and Sustainable Energy Reviews, vol. 67, pp. 1308– 1330, 2017.; S. W. Sharshir, N. Yang, G. Peng, and A. E. Kabeel, “Factors affecting solar stills productivity and improvement techniques: A detailed review,” Applied Thermal Engineering, vol. 100, pp. 267–284, 2016.; A. F. Muftah, M. A. Alghoul, A. Fudholi, M. M. Abdul-Majeed, and K. Sopian, “Factors affecting basin type solar still productivity: A detailed review,” Renewable and Sustainable Energy Reviews, vol. 32, pp. 430– 447, 2014.; K. Srithar, T. Rajaseenivasan, N. Karthik, M. Periyannan, and M. Gowtham, “Stand alone triple basin solar desalination system with cover cooling and parabolic dish concentrator,” Renewable Energy, vol. 90, pp. 157–165, 2016.; N.T. Alwan, S.E. Shcheklein, O.M. Ali, A practical study of a rectangular basin solar distillation with single slope using paraffin wax (PCM) cells, Int. J. Energy Convers. 7 (2019) 162–170. https://doi.org/10.15866/irecon.v7i4.17862.; Alwan N T, Shcheklein S E and Ali O M 2020 Productivity of enhanced solar still under various environmental conditions in Yekaterinburg city / Russia. IOP Conference Series: Materials Science and Engineering vol 791.; A.S. Abdullah, F.A. Essa, Z.M. Omara, Y. Rashid, L. Hadj-Taieb, G.B. Abdelaziz, A.E. Kabeel, Rotating-drum solar still with enhanced evaporation and condensation techniques: Comprehensive study, Energy Convers. Manag. 199 (2019). https://doi.org/10.1016/j.enconman.2019.112024.; L. Malaeb, K. Aboughali, G.M. Ayoub, Modeling of a modified solar still system with enhanced productivity, Sol. Energy. 125 (2016) 360–372. https://doi.org/10.1016/j.solener.2015.12.025.; A.E. Kabeel, Performance of solar still with a concave wick evaporation surface, Energy. 34 (2009) 1504–1509. https://doi.org/10.1016/j.energy.2009.06.050.; https://www.isjaee.com/jour/article/view/1998

  3. 3
    Academic Journal
  4. 4
    Academic Journal

    المصدر: Computer Science and Applied Mathematics; No. 2 (2019): Visnyk of Zaporizhzhia National University. Physical and Mathematical Sciences ; 158-165 ; Computer Science and Applied Mathematics; № 2 (2019): Вісник Запорізького національного університету. Фізико-математичні науки; 158-165 ; 2518-1785 ; 2413-6549

    وصف الملف: application/pdf

  5. 5
    Academic Journal

    المصدر: Advanced Information Systems; Vol. 1 No. 1 (2017): Advanced Information Systems; 5-10 ; Современные информационные системы - Sučasnì ìnformacìjnì sistemi; Том 1 № 1 (2017): Современные информационные системы; 5-10 ; Сучасні інформаційні системи; Том 1 № 1 (2017): Сучасні інформаційні системи; 5-10 ; 2522-9052

    وصف الملف: application/pdf

  6. 6
  7. 7
    Academic Journal
  8. 8
  9. 9
  10. 10
  11. 11
  12. 12
  13. 13
    Academic Journal
  14. 14
    Academic Journal
  15. 15
  16. 16
    Academic Journal
  17. 17
  18. 18
  19. 19
  20. 20