Flow Modellium software package for calculating high-speed compressible gas flow

 
PIIS004446690003544-9-1
DOI10.31857/S004446690003544-9
Publication type Article
Status Published
Authors
Affiliation: MFTI
Address: Russian Federation
Journal nameZhurnal vychislitelnoi matematiki i matematicheskoi fiziki
EditionVolume 58 Issue 11
Pages1932-1954
Abstract

  

Keywords
AcknowledgmentThis work was supported by the Russian Science Foundation (project 18-19-00098).
Received15.01.2019
Publication date15.01.2019
Cite   Download pdf To download PDF you should sign in
Размещенный ниже текст является ознакомительной версией и может не соответствовать печатной

views: 1096

Readers community rating: votes 0

1. A.S. Kozelkov, Yu.N. Deryugin, D.K. Zelenskij, V.A. Glazunov, A.A. Golubev, O.V. Denisova, S.V. Lashkin, R.N. Zhuchkov, N.V. Tarasova, M.A. Sizova Mnogofunktsional'nyj paket programm LOGOS dlya rascheta zadach gidrodinamiki i teplomassoperenosa na superEhVM. Bazovye tekhnologii i algoritmy // Sbornik trudov XII Mezhdunarodnogo seminara “Supervychisleniya i matematicheskoe modelirovanie”. 11-15 oktyabrya 2010. Sarov, Rossiya, pages 215–230, 2011.

2. I. V. Abalakin, P.A. Bakhvalov, A.V. Gorobets, A.P. Duben', T.K. Kozubskaya Parallel'nyj programmnyj kompleks NOISETTE dlya krupnomasshtabnykh raschetov zadach aehrodinamiki i aehroakustiki // Vych. met. programmirovanie. 2012. T. 13, 3. S. 110–125.

3. G.A. Faranosov, V.M. Goloviznin, S.A. Karabasov, V.G. Kondakov, V.F. Kopiev, M.A. Zaitsev Cabaret method on unstructured hexahedral grids for jet noise computation // Computers and Fluids. 2013. V. 88. P. 165–179.

4. A.V. Gorobets Parallel'naya tekhnologiya chislennogo modelirovaniya zadach gazovoj dinamiki algoritmami povyshennoj tochnosti // Zh. vychisl. matem. i matem. fiz.. 2015. T. 4, 55. S. 641–652.

5. A.B. Gorshkov Algoritm rasparallelivaniya pri raschete neyavnym metodom na osnove uravnenij Nav'e-Stoksa giperzvukovogo obtekaniya tel neravnovesnym gazom // Matem. modelirovanie. 2009. T. 21, 9. S. 43–53.

6. A. L. Zheleznyakova, S. T. Surzhikov Raschet giperzvukovogo obtekaniya tel slozhnoj formy na nestrukturirovannykh tetraehdral'nykh setkakh s ispol'zovaniem skhemy AUSM // Teplomassoobmen i fizicheskaya gazodinmika. 2012. T. 52, 2. S. 283–293. EQ.reference.UpdateGrindeqFields

7. A.V. Novikov, A.V. Fedorov, I.V.Egorov Numerical studies of 3D instabilities propagating in supersonic compression-corner flow // 8th European Symposium on Aerothermodynamics for Space Vehicles, Lisbon, Portugal, 20015.

8. V.A. Garanzha, L.N. Kudryavtseva, S.V. Utyuzhnikov Variational method for untangling and optimization of spatial meshes // J. Comp. and Appl. Math.. 2014. V. 269. P. 24–41.

9. V.A. Titarev, S.V. Utyuzhnikov Programmnyj kompleks dlya rascheta giperzvukovykh techenij vozdukha. Svidetel'stvo o gosudarstvennoj registratsii programm dlya EhVM 2013619670, 2013.

10. S.A. Vasil'evskij, L.G. Efimova, A.F. Kolesnikov, I.A. Sokolova, G.A. Tirskij Raschet koehffitsientov perenosa v mnogokomponentnoj plazme v vysshikh priblizheniyakh. Ehffekt razdeleniya ehlementov v khimicheski i ionizatsionno ravnovesnoj plazme // Otchet 2427 Instituta mekhaniki MGU, 1980.

11. V.I. Sakharov Chislennoe modelirovanie termicheski i khimicheski neravnovesnykh techenij i teploobmena v nedorasshirennykh struyakh induktsionnogo plazmotorona // Izv. RAN. MZhG. 2007. 6. C. 157–168.

12. V.I. Sakharov Modelirovanie neravnovesnykh techenij vyazkogo gaza v induktsionnykh plazmotronakh i pri obtekanii tel // Dissertatsiya d-ra fiz.-mat. nauk. MGU imeni M.V. Lomonosova, M., 2011.

13. L.V. Gurvich, I.V. Vejts, V.A. Medvedev, drugie. Termodinamicheskie svojstva individual'nykh veschestv. Moskva, Nauka, 1979. T.1. 495s; T.2. 327s.

14. R.C. Reid, J.M. Prausnitz, T.K. Sherwood The Properties of Gases and Liquids. N.Y.: McGraw-Hill, 1977.

15. P.R. Spalart, S.R. Allmaras A one-equation turbulence model for aerodynamic flows // AIAA Paper 92-0439, 1992.

16. J.E. Bardina, P.G. Huang, and T.J. Coakley Turbulence modeling validation, testing, and development // AIAA Paper 92-0439, 1997.

17. P. G. Huang J. E. Bardina, T. J. Coakley Turbulence modeling validation, testing, and development // NASA Technical report, 1997.

18. F. Menter Zonal two equation kw turbulence models for aerodynamic flows // 23rd fluid dynamics, plasmadynamics, and lasers conference, page 2906, 1993.

19. M.L. Shur, M.K. Strelets, A.K. Travin, P.R. Spalart Turbulence modeling in rotating and curved channels: assessing the Spalart-Shur correction // AIAA Journal. 2000. V. 38, 5. P. 784–792.

20. J.R. Edwards, S. Chandra Comparison of eddy viscosity-transport turbulence models for three-dimensional, shock-separated flowfields // AIAA Journal. 1996. V. 34, 4. P. 756–763.

21. T. Rung, U. Bunge, M. Schatz, F. Thiele Restatement of the spalart–allmaras eddy-viscosity model in strainadaptive formulation // AIAA Journal. 2003. V. 41, 7. P. 1396–1399.

22. P. R. Spalart Trends in turbulence treatments // AIAA 2000-2306, 2000.

23. M. Mani, D.A. Babcock, C.M. Winkler, P.R. Spalart Predictions of a supersonic turbulent flow in a square duct // AIAA Paper 2013-0860, 2013.

24. M. Dumbser, M. Kaser, V.A. Titarev, E.F. Toro Quadrature-free non-oscillatory finite volume schemes on unstructured meshes for nonlinear hyperbolic systems // J. Comput. Phys. 2007. V. 226. P. 204–243.

25. P. Tsoutsanis, V.A. Titarev, D. Drikakis WENO schemes on arbitrary mixed-element unstructured meshes in three space dimensions // J. Comput. Phys. 2010. V. 230. P. 1585 – 1601.

26. V.A. Titarev Efficient deterministic modelling of three-dimensional rarefied gas flows // Commun. Comput. Phys. 2012. V. 12, 1. P. 161–192.

27. V.A. Titarev, M. Dumbser, S.V. Utyuzhnikov Construction and comparison of parallel implicit kinetic solvers in three spatial dimensions // J. Comput. Phys. 2014. V. 256. P. 17–33.

28. A.G. Kulikovskij, N.V. Pogorelov, A.Yu. Semenov Matematicheskie voprosy chislennogo resheniya giperbolicheskikh sistem uravnenij. M. : Fizmatlit, 2001.

29. E.F. Toro Riemann solvers and numerical methods for fluid dynamics. Springer-Verlag, third edition, 2009.

30. A. Harten, P.D. Lax, B. van Leer On upstream differencing and Godunov-type schemes for hyperbolic conservation laws // SIAM Review. 1983. V 25, 1. P. 35–61.

31. E.F. Toro, M. Spruce, W. Speares Restoration of the contact surface in the Harten-Lax-van Leer Riemann solver // Journal of Shock Waves. 1994. V. 4. P. 25–34.

32. M. Dumbser, E.F. Toro On universal Osher-type schemes for general nonlinear hyperbolic conservation laws // Commun. Comput. Phys. 2011. V. 10, 3. P. 635–671.

33. P. Batten, M. A. Leschziner, U. C. Goldberg Average-state Jacobians and implicit methods for compressible viscous and turbulent Flows // J. Comput. Phys. 1997. V. 137. P. 38–78.

34. V.V.Vlasenko, E.V.Kazhan, E.S.Matyash, S.V.Mikhajlov, A.I.Troshin Chislennaya realizatsiya neyavnoj skhemy i razlichnykh modelej turbulentnosti v raschetnom module ZEUS // Trudy TsAGI. 2015. T. 2735. S. 5 – 49.

35. M. Dumbser, J.-M. Moschetta, J. Gressier A matrix stability analysis of the carbuncle phenomenon // J. Comput. Phys. 2004. V. 192, 2. P. 647–670.

36. I.Yu. Tagirova, A.V. Rodionov Primenenie iskusstvennoj vyazkosti dlya bor'by s “karbunkul”-neustojchivost'yu v skhemakh tipa Godunova // Matematicheskoe modelirovanie. 2015. V. 10. P. 47 – 64.

37. A.V. Rodionov Artificial viscosity in Godunov-type schemes to cure the carbuncle phenomenon // J. Comp. Phys.. 2017. V. 345. P. 308–329.

38. C. R. Mitchell Improved reconstruction schemes for the Navier-Stokes equations on unstructured meshes // AIAA-94-0642, 1994.

39. Neal T. Frink Assessment of an unstructured-grid method for predicting 3-D turbulent viscous flows // AIAA- 96-0292, 1996.

40. S. Yoon, A. Jameson Lower-Upper Symmetric-Gauss-Seidel method for the Euler and Navier – Stokes equations // AIAA Journal. 1998. V. 26, 9. P. 1025–1026.

41. I.S. Men’shov, Y. Nakamura An implicit advection upwind splitting scheme for hypersonic air flows in thermochemical nonequilibrium // A Collection of Technical Papers of 6th Int. Symp. on CFD, volume 2, page 815. Lake Tahoe, Nevada, 1995.

42. I.S. Men’shov, Y. Nakamura On implicit Godunov’s method with exactly linearized numerical flux // Computers and Fluids. 2000. V. 29, 6. P. 595–616.

43. D. Sharov, H. Luo, J.D. Baum, R. Lohner Implementation of unstructured grid GMRES+LU-SGS method on shared-memory, cache-based parallel computers // AIAA-2000-927 – Aerospace Sciences Meeting and Exhibit, 38th. -Reno: NV. -2000. Jan., pages 10–13, 2000.

44. M.J. Chorley, D.W. Walker Performance analysis of a hybrid MPI/OpenMP application on multi-core clusters // J. Comput. Sci. 2010. V. 47. P. 168–174.

45. A.V. Gorobets, A.O. Zheleznyakov S.A. Sukov, P.B. Bogdanov, B.N. Chetverushkin Rasshirenie dvukhurovnevogo rasparallelivaniya MPI+OpenMP posredstvom OpenCL dlya gazodinamicheskikh raschetov na geterogennykh sistemakh // Vestn. YuUrGU. Ser. Matem. modelirovanie i programmirovanie. 2011. 9. C. 76–86.

46. A.V. Gorobets Parallel Algorithm of the NOISEtte Code for CFD and CAA Simulations // Lobachevskii Journal of Mathematics. 2018. V. 39, 4. P. 524 – 532.

47. G. Karypis, V. Kumar. Multilevel k-way partitioning scheme for irregular graphs // J. Parallel Distrib. Comput. 1998. V. 48. P. 96–129.

48. I.E. Kaporin, O.Yu. Milyukova Massivno-parallel'nyj algoritm predobuslovlennogo metoda sopryazhennykh gradientov dlya chislennogo resheniya sistem linejnykh algebraicheskikh uravnenij // V.G. Zhadan, editor, Sb. trudov otdela problem prikladnoj optimizatsii VTs RAN, pages 132–157. M., izdvo VTs RAN, 2011.

49. A. M. Wissink, A. S. Lyrintzis, R. C. Strawn Parallelization of a three-dimensional flow solver for euler rotorcraft aerodynamics predictions // AIAA Journal. 1996. V. 34, 11. P. 2276–2283.

50. M.N. Petrov, V.A. Titarev, S.V. Utyuzhnikov, A.V. Chikitkin Mnogopotochnaya realizatsiya metoda LUSGS s ispol'zovaniem mnogourovnevoj dekompozitsii setki // Zh. vychisl. matem. i matem. fiz., 2017. T. 57, 11. C. 1895–1905.

51. Vl.V. Voevodin, S.A. Zhumatij, S.I. Sobolev, A.S. Antonov, P.A. Bryzgalov, D.A. Nikitenko, K.S. Stefanov, Vad.V. Voevodin Praktika superkomp'yutera “Lomonosov” // Otkrytye sistemy. 2012. 7. S. 36–39.

52. V. Sadovnichy, A. Tikhonravov, Vl. Voevodin, V. Opanasenko “Lomonosov”: Supercomputing at Moscow State University // Contemporary High Performance Computing: From Petascale toward Exascale, V. VIII/2. P. 283–307. Chapman & Hall/CRC Computational Science, Boca Raton, USA, CRC Press, 2013.

53. A. Semin, E. Druzhinin, V. Mironov, A. Shmelev, A. Moskovsky The Performance Characterization of the RSC PetaStream Module // Lecture Notes in Computer Science, volume 8488, pages 420–429. 29th International Conference, ISC 2014, Leipzig, Germany, 2014.

54. A.N. Lyubimov, V.V Rusanov Techeniya gaza okolo tupykh tel. V 2 ch. Ch. I: Metod rascheta i analiza techenij. Ch. II: Tablitsy gazodinamicheskikh funktsij. T.I-II. Nauka, M., 1970.

55. S. Swaminathan, M.D. Kim, C.H. Lewis Nonequilibrium viscous shock-layer flows over blunt sphere-cones at angle of attack // Journal of Spacecraft and Rockets. 1983. V. 20. P. 331–338.

56. Kelly R. Laflin, Steven M. Klausmeyer, Tom Zickuhr, John C. Vassberg, Richard A. Wahls, Joseph H. Morrison, Olaf P. Brodersen, Mark E. Rakowitz, Edward N. Tinoco, and Jean-Luc Godard Data Summary from Second AIAA Computational Fluid Dynamics Drag Prediction Workshop // Journal of Aircraft. 2005. V. 42, 5. P. 1165–1178.

57. S.M. Bosnyakov, V.V. Vlasenko, M.F. Engulatova, E.V. Kazhan, S.V. Matyash, A.I. Troshin Promyshlennye solvery paketa EWT-TsAGI i ikh verifikatsiya na serii standartnykh testov // Trudy TsAGI. 2014. T. 2735. S. 3–91.

58. B.R. Hollis, T.J. Horvath, K.T. Berger, R.P. Lillard, B.S. Kirk, J.J. Coblish, J.D. Norris Experimental investigation of project orion crew exploration vehicle aeroheating in aedc tunnel 9. page 158. NASA/TP- 2008-215547, 2008.

59. N.P. Adamov, A.M. Kharitonov, E.A. Chasovnikov, A.A. Dyad'kin, M.I. Kazakov, A.N. Krylov, A.Yu. Skorovarov Aehrodinamicheskie kharakteristiki vozvraschaemykh apparatov pri sverkhzvukovykh skorostyakh // Teplofizika i aehromekhanika. 2015. T. 22, 5. S. 557–565.

Система Orphus

Loading...
Up