Title of the article

MODELING OF THE STRESS-STRAIN STATE OF THE TIBIA-FIXATOR

Authors

Sitnik A.A., Candidate of Medical Sciences, Head of the Laboratory of Traumatology of Adulthood, Traumatologist and Orthopedic Doctor of the Highest Category of the Republican Scientific and Practical Center of Traumatology and Orthopedics, Minsk, Republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.
Kovenya A.S., Head of the Section of the National Computer Center of Machine Building, Joint Institute of Mechanical Engineering of the NAS of Belarus, Minsk, Republic of Belarus
Kovenya T.A., Mechanical Engineer of the National Computer Center of Machine Building, Joint Institute of Mechanical Engineering of the NAS of Belarus, Minsk, Republic of Belarus
Chernyshev D.A., Junior Researcher at the Department of Modeling and Virtual Testing,  Republican Computer Center for Machine Building, Joint Institute of Mechanical Engineering of the NAS of Belarus, Minsk, Building, Joint Institute of Mechanical Engineering of the NAS of Belarus, Minsk, Republic of Belarus

In the section BIOMECHANICS
Year 2012 Issue 1 Pages 90-95
Type of article RAR Index UDK 539.3+612.766 Index BBK  
Abstract

Article focuses on the method of three-dimensional geometric modeling of the tibia based on data of computed tomography, also techniques of determining the optimal geometrical and structural parameters of the proximal tibia fixator by taking into account function and form of the bone are discussed, some results of finite element modeling of the system "tibia - fixator" are described.

Keywords fixator, fracture, tibia, osteosynthesis, finite element method, three-dimensional modeling
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Bibliography
  • Dewilius P.J., Connolly J.F. Closed Reduction of Tibial Plateau Fractures: A Comparison of Functional and Roentenographic End Results. Clin Orthop., 1988.
  • Rasmussen P.S. Tibial condylar fractures: impairment of knee joint stability as an indication for surgical treatment. J Bone Joint Surg., 1973.
  • Watson J. T., Schatzker J. Fractures of the tibial plateau. Skeletal Trauma, 2003.
  • Lucas R., Espinoza O.A. Technique Development: reproducibility of three-dimensional distal femur solid models using the same threshold level (Mimics Materialise awards projects).
  • Fiksator vnutrennij proksimal'nogo otdela bol'shebercovoj kosti s blokirovaniem vintov s ustanovochnym instrumentariem. Mediko-tehnicheskie trebovanija na razrabotku i osvoenie [Lock of the inner proximal tibia with locking screws with the installation tools. Medical and technical requirements for design and development]. Minsk, 2010.
  • Walsh C.J., Mehndiratta A., Gupta R. Dose-dependent effect of FES-row training on bone architecture of the paralyzed lower extremity. MimicsMaterialiseawardsprojects.
  • Arzamasov B.N., Soloveva T.V. eds. Spravochnik po konstrukcionnym materialam [Guide to construction materials]. Moscow, MGTU im. Baumana, 2005. 649 p.
  • Begun P.I., Afonin P.N. Modelirovanie v biomehanike [Simulation in biomechanics]. Moscow, Vyssh. shk., 2004. 391 p.

Title of the article

FINITE ELEMENT ANALYSIS OF THE POROUS COATING IN HIP-JOINT PROSTHESIS

Authors

Nikitsin A.V., Graduate Student of the Department of Bio- and Nanomechanics, Belarusian State University, Minsk, Republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.
Mikhasev G.I., Doctor of Physical and Mathematal Sciences, Professor, Head of the Department of Bio- and Nanomechanics, Belarusian State University, Minsk, Republic of Belarus
Maslov A.P., Candidate of Medical Sciences, Head of the Orthopedic and Trauma Unit no. 1, Minsk Regional Clinical Hospital, Minsk, Republic of Belarus

In the section BIOMECHANICS
Year 2012 Issue 1 Pages 86-89
Type of article RAR Index UDK 616.728 Index BBK  
Abstract

The finite element model of the cementless femoral stem was used to calculate the main stresses of the bone-implant interface. Assuming the rigid contact between porous coating and bone tissue, three different implant designs were analyzed: smooth shape implant, implant with two porous inserts and when 2/3 of the implant was coated by the porous titanium. Results showed that enlargement of the porous coating increases the stresses within proximal femur and reduces the stresses in diaphysis.

Keywords finite element analysis, stress strain state, hip replacement
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Bibliography
  • Dopico-Gonzalez C., New A.M., Browne M. Probabilistic finite element analysis of the uncemented hip replacement - effect of femur characteristics and implant design geometry. Journal of biomechanics, 2010, vol. 43, no. 3, pр. 512-520.
  • Mohammed R.A. [et al.]. Finite element modelling of primary hip stem stability: The effect of interference fit. Journal of Biomechanics, 2008, vol. 41, no. 3, pр. 587-594.
  • Robertson A. [et al.]. The hydroxyapatite-coated JRI-Furlong hip. The joint of bone & joint surgery, 2005, vol. 87, no. 1, pр. 12-15.
  • Orlik J., Zhurov A., Middleton J. On the secondary stability of coated cementless hip replacement: parameters that affect interface strength. Medical Engineering & Physics, 2003, vol. 25, no. 10, pp. 825-831.
  • Jun Y., Kuiwoon C. Design of patient-specific hip implants based on the 3D geometry of the human femur. Advances in Engineering Software, 2010, vol. 41, no. 4, pр. 537-547.
  • Weller S. Fifteen years of experience with the BiCONTACT hip endoprosthesis system-the past, the present, the future. What has been achieved. International Orthopaedics, 2003, vol. 27, no. 1, pр. 2-6.
  • Bojescul J.A. [et al.]. Results of porous-coated anatomic total hip arthroplasty without cement at fifteen years: a concise follow-up of a previous report. The Journal of Bone and Joint Surgery, 2003, vol. 85-A, no. 6, pр. 1079-1083.
  • Mohammed R.A., Kamsah N. Interface micromotion of cementless hip stems in simulated hip arthroplasty. American Journal of Applied Sciences, 2009, vol. 6, no. 9, pр. 1682-1689.
  • Bergmann G. [et al.]. Hip contact forces and gait patterns from routine activities. Journal of biomechanics, 2001, vol. 34, no. 7, pр. 859-871.
  • Shultz T.R. [et al.]. Cortical bone viscoelasticity and fixation strength of press-fit femoral stems: finite element model. Journal of biomechanical Engineering, 2006, vol. 128, no. 1, pр. 7-12.
  • Schileo E. [et al.]. Subject-specific finite element models can accurately predict strain levels in long bones. Journal of Biomechanics, 2007, vol. 39, no. 13, pр. 2457-2467.
  • Taddei F., Pancanti A., Viceconti M. An improved method for the automatic mapping of computed tomography numbers onto finite element models. Medical Engineering and Physics, 2004, vol. 26, pр. 61-69.
  • Sanjay G., Prosenjit D. Bone geometry and mechanical properties of the human scapula using computed tomography data. Trends Biomaterial Artifitial Organs, 2004, vol. 17, no. 2, pр. 61-70.
  • Yosibash Z., Trabelsi N., Milgrom C. Reliable simulations of the human proximal femur by high-order finite element analysis validated by experimental observations. Journal of biomechanics, 2007, vol. 40, pр. 3688-699.
  • Taddei F. [et al.]. The material mapping strategy influences the accuracy of CT-based finite element models of bones: an evaluation against experimental measurements. Medical engineering and physics, 2007, vol. 29, no. 9, pр. 973-979.
  • Yosibash Z. [et al.]. A CT-based high-order finite element analysis of the human proximal femur compared to in-vitro experiments. J. Biomech., 2007, vol. 129, no. 3, pр. 297-309.
  • Liao S.H., Tong R.F., Dong J.X. Anisotropic finite element modeling for patient-specific mandible. Computer Methods and Programs in Biomedicine, 2007, vol. 88, no. 3, pр. 197-209.
  • Schileo E. [et al.]. An accurate estimation of bone density improves the accuracy of subject-specific finite element models. J. Biomechanics, 2008, vol. 41, pр. 2483-2491.
  • Duchemin L. [et al.]. Prediction of mechanical properties of cortical bone by quantitative computed tomography. Medical engineering and physics, 2008, vol. 30, pр. 321-328.
  • Peng L. [et al.]. Comparison of isotropic and orthotropic material property assignments on femoral finite element models under two loading conditions. Medical engineering and physics, 2006, vol. 28, pр. 227-233.
  • Baca V. [et al.]. Comparison of an inhomogeneous orthotropic and isotropic material models used for FE analyses. Medical engineering and physics, 2008, vol. 30, pр. 924-930.

Title of the article

EFFECT OF PROCESSING CONDITIONS ON POWER OF GRINDING BY POLYMERIC-ABRASIVE DISK BRUSHES

Authors

Ustinovich D.F., Candidate of Technical Sciences, Scientific Secretary of the Physico-Technical Institute of the NAS of Belarus, Minsk, Republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.
Pribylsky V.I., Candidate of Technical Sciences, Associate Professor, Leading Researcher, Joint Institute of Mechanical Engineering of the NAS of Belarus, Minsk, Republic of Belarus

In the section TECHNOLOGICAL MECHANICS
Year 2012 Issue 1 Pages 75-79
Type of article RAR Index UDK 621.923.9 Index BBK  
Abstract

The paper presents the results of investigating the power consumption required for carrying out the processing of parts made of constructional steels 45 and 12Х18Н10Т by polymeric-abrasive disk brushes. It is established that changing the effective power of processing is substantially affected by increase of cutting speed, powder graininess of abrasive fiber modifier and radial deformation as well as kind of processed material and LSS use. It is shown that increase of cutting speed, graininess and radial deformation of tool contribute to increasing effective processing power. The empirical dependences obtained enable analytical determination of values of processing power and its components depending on technological process parameters.

Keywords power, grinding, disk brush, polymer-abrasive fiber
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Bibliography
  • Ustinovich D.F. Finishnaja obrabotka polimerno-abrazivnymi volokonnymi kompozitami [Final machining with polymer-abrasive fiber composites]. Inzhener-mehanik [Mechanical engineer], 2002, no. 4(17), pp. 33-37.
  • Ustinovich D.F., Pribylskij V.I. Progressivnaja tehnologija udalenija zausencev jelastichnym instrumentom [Advanced technology of deburring with flexible tool]. Vestn. PGU [Journal PSU], 2005, no. 6, pp. 135-139.
  • Kashtaljan I.A. Kompensacija moshhnosti holostogo hoda privoda glavnogo dvizhenija pri postroenii adaptivnyh sistem upravlenija stankami s ChPU [Power compensation of drive noncutting of main motion in the construction of adaptive control systems for CNC machine]. Sb. nauch. tr. “Mashinostroenie” [Coll. of Sci. Papers “Mechanical engineering”]. Minsk, 2003, no. 19, pp. 186-190.
  • Poduraev V.N. Avtomaticheski reguliruemye i kombinirovannye processy rezanija [Automatically adjustable and combined cutting processes]. Moscow, Mashinostroenie, 1977. 304 p.
  • Ustinovich D.F. Jelastichnyj abrazivnyj instrument dlja otdelochno-zachistnoj obrabotki [Flexible grinding wheels for finishing and stripping processing]. Materialy II Mezhdunar. nauch.-tehn. konf. “Sovrem. metody i tehnologii sozdanija i obrabotki materialov” [Proc. II International Sci.-Techn. Conf. “Modern methods and technologies for creation and processing of materials”]. Minsk, 2007, pp. 142-146.
  • Filimonov L.N. Vysokoskorostnoe shlifovanie [High-speed grinding]. L., Mashinostroenie, 1979. 248 p.
  • Ustinovich D.F. Issledovanie moshhnosti shlifovanija polimerno-abrazivnymi diskovymi shhetkami [Research of grinding power capacity with polymer-abrasive disc brushes]. Tez. dokl. Mezhdunar. nauch.-tehn. konf. “Polikomtrib-2011” [Abstracts of Int. Sci/-Tehn. Conf. “Polikomtrib-2011”]. Gomel, 2011, pp. 215-216.
  • Bogdanovich S.P., Peseckij S.S. Frikcionnoe vzaimodejstvie smesej poliamid 6/PJeVP so stal'ju [Frictional engagement of polyamide blends 6/PEVP with steel]. Trenie i iznos [Friction and wear], 2001, vol. 22, no. 5, pp. 579-586.

Title of the article

MODELING STRESS-STRAIN STATE OF ROLLER/RING TRIBO-FATIGUE SYSTEM

Authors

Sherbakov S.S., Candidate of Physical and Mathematical Sciences, Associate Professor of the Department "Theoretical and Applied Mechanics", Belarusian State University, Minsk, Republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.
Borodako S.M., Employee of the Laboratory of Wear-Fatigue Tests, PO "Gomselmash", Gomel, Republic of Belarus

In the section MECHANICS OF TRIBO-FATIGUE SYSTEMS
Year 2012 Issue 1 Pages 80-85
Type of article RAR Index UDK 539.3 Index BBK  
Abstract

Roller/ring tribo-fatigue system which is used in wear-fatigue tests as the model of wheel/rail system is considered. In this system as well as in wheel/rail system stress-strain state is defined by interaction of contact and volume deformation of one of the system elements. These loads in the roller/ring system are defined by single compressive force. Results of finite element simulation of stress-strain state of roller/ring system are presented. Significant change of contact parameters and stresses distributions in this system due to the bending of the ring comparing to the contact pair is shown.

Keywords tribo-fatigue system, contact interaction, bending, roller/ring, wheel/rail, stress-deformed state, computer simulation
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Bibliography
  • Sosnovskij L.A., Shherbakov S.S. O klassifikacii kontaktnyh zadach primenitel'no k silovym sistemam mashin [On the classification of contact problems in relation to machines power systems]. Materialy II Mezhdunar. nauch.-tehn. konf. “Sovremennye metody proektirovanija mashin. Raschet, konstruirovanie, tehnologija” [Proc. II Intern. sci.-techn. conf. “Modern methods of cars designing. Calculation, design, technology”]. Minsk, 2004, vol. 4, pp. 44-55.
  • Bogdanovich A.V. [et al.]. Jeksperimental'noe issledovanie zakonomernostej obratnogo jeffekta silovoj sistemy stal' 45 - silumin pri frikcionno-mehanicheskoj ustalosti [Experimental investigation of laws of reverse effect of power system steel 45 - silumin when friction-mechanical fatigue]. Tr. VI Mezhdunar. simpoziuma po tribofatike (ISTF 2010) [Proc. VI Intern. symposium on tribo-fatigue]. Minsk, BGU, 2010, vol. 1, pp. 527-532.
  • Sosnovskij L.A. Mehanika iznosoustalostnogo povrezhdenija [Mechanics of wear-fatigue damage]. Gomel, BelGUT, 2007. 434 p.
  • Tjurin S.A. [et al.]. Novye sposoby ispytanij primenitel'no k sisteme koleso/rel's [New test methods are applied to the system wheel/rail]. Vest. BelGUTA [Journal of the BelSUT], 2005, no. 2, pp. 54-63.
  • Sosnovskij L.A., Matvecov V.I., Shherbakov S.S. K razrabotke metoda ispytanij rel'sov na modeljah v uslovijah, blizkih k jekspluatacionnym [To the development a method of testing rail on models under conditions close to operational]. Tr. Mezhdunar. nauch.-tehn. konf. “Sovremennye problemy putevogo kompleksa. Povyshenie kachestva podgotovki specialistov i urovnja nauchnyh issledovanij” [Proc. Int. Sci.-Techn. Conf. “Modern problems of track complex. Improving the quality of specialists training and the level of scientific research”]. Moscow, 2004, vol. IV. 37 p.
  • Zhuravkov M.A. [et al.]. Komp'juternoe modelirovanie opasnyh obemov dlja modeli zubchatyh zaceplenij [Computer simulation of dangerous amounts for model of gearings]. Tr. V Mezhdunar. simpoziuma po tribofatike (ISTF 2005) [Proc. VI Intern. symposium on tribo-fatigue (ISTF 2005)]. Irkutsk, IrGUPS, 2005, vol. 1, pp. 142-148.
  • Zhuravkov M.A. [et al.]. Komp'juternyj analiz naprjazhenno-deformirovannogo sostojanija v zone jellipticheskoj ploshhadki kontakta tel pri kachenii primenitel'no k modeli zubchatyh zaceplenij [Computer analysis of stress-strain state in the area of elliptical contact field of rolling bodies in relation to model of gearings]. Trenie i iznos [Friction and wear], 2006, no. 1, pp. 12-16.
  • Shherbakov S.S., Borodako S.M. Komp'juternoe modelirovanie naprjazhenno-deformirovannogo sostojanija modelej sistemy koleso/rels [Computer modeling of stress-strain state of the model wheel/rail]. Tr. VI Mezhdunar. simpoziuma po tribofatike (ISTF 2010) [Proc. VI Intern. symposium on tribo-fatigue (ISTF 2010)]. Minsk, BGU, 2010, vol. 2, pp. 227-232.

Title of the article

STRUCTURAL STRENGTH OF ALUMINUM-CONTAINING STEELS IN CONSTRUCTIONS OF LARGE-DIMENSION NITRIDED INTERNAL GEARS

Authors

Kharitonchik D.I., Deputy General Director of PO "BelAZ" - JSC "BelAZ" in quality, Zhodino, republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.

In the section TECHNOLOGICAL MECHANICS
Year 2012 Issue 1 Pages 71-74
Type of article RAR Index UDK 621.833:539.4 Index BBK  
Abstract

In the article it is considered the scientific and practical aspects of structural strength of modern large-dimension internal gears made of steel, containing aluminum up to 2 %. Calculated dependences required for production of gears for planetary gearbox are specified. The results of bench and operation tests of large-dimension gears made of generally known and new aluminum-containing steels are provided. Guidelines for application of steels, ensuring accident-free operation of gears at long-distance running of auto vehicles are given. The achieved solutions are grounded on the phenomenon of segregation (concentration), studied for the first time, and interaction of alloying and impurity elements on the boundary and near-border zone of grain volumes, forming grain boundary dislocation, as well as strength and technological properties of structural steels.

Keywords structural strength, large gears, nitriding, hardness, toughness, fatigue, resource
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Bibliography
  • Chernavskogo S.A. Spravochnik metallista [Metalist manual]. Moscow, Mashinostroenie, 1976, vol. 1. 768 p.
  • GOST 21354-87. Peredachi zubchatye cilindricheskie jevol'ventnye vneshnego zaceplenija. Raschetynaprochnost[State Standard 21354-87. Cylindrical gears involute of external engagement. Strength calculations]. Moscow, Mashinostroenie, 1988. 125 p.
  • Kejz S.L., Vangorn K.R. Aljuminij v chugune i stali [Aluminium in iron and steel]. Moscow, Metallurgizdat, 1959. 457 p.
  • Kudrjavcev V.M. ed. Povyshenie nesushhej sposobnosti mehanicheskogo privoda [Increasing of bearing capacity of a mechanical drive]. Moscow, Mashinostroenie, 1973. 223 p.
  • Terentev V.F., Kolmakov A.G., Michugina M.S. Ispol'zovanie azotirovanija dlja izmenenija mehanicheskih harakteristik metallicheskih materialov [Using of nitriding to change mechanical properties of metallic materials]. Sbornik naychnyh statej po materialam I Mezhdynarodnoj konferencii “Deformacija i razrushenie materialov” [Collection of scientific articles based on the I International Conference "Deformation and fracture of materials"]. Moscow, 2006, pp. 457-464.
  • Atroshonok I.A. [et al.]. Resurs krupnogabaritnyh azotirovannyh zubchatyh koles [Resource of large nitrided gears]. Sb. nauch. tr. Mehanika - mashinostroeniju Mezhdunar. nauch.-tehn. konf. “Innovacii v mashinostroenii” [Proc. I Int. Sci.-Techn. Conf. “Innovations in mechanical engineering”]. Minsk, 2010, pp. 189-195.
  • Starikov V.K. Dislokacionnye predstavlenija o rezanii metallov [Dislocation idea of metals cutting]. Moscow, Mashinostroenie, 1979, pp. 5-140.
  • Haritonchik D.I. [et al.]. Povyshenie obrabatyvaemosti uluchshennyh konstrukcionnyh stalej dlja krupnogabaritnyh azotirovannyh zubchatyh koles [Fundamentals of machinability increasing of improved constructional steels for large-dimensional nitrated cog-wheels]. Mehanika mashin, mehanizmov i materialov [Mechanics of machines, mechanisms and materials], 2010, no. 1, pp. 78-80.
  • Mak Liin D. Granicy zeren v metallah [Grain boundaries in metals]. Moscow, Metallurgizdat, 1960. 322 p.
  • Moiseenko V.I., Mariev P.L. Osnovy strukturnoj ravnoprochnosti stali i jelementov krupnogabaritnyh detalej mashin [Fundamentals of structural equal strength of steel and elements of machines large parts]. Minsk, 1999. 200 p.
  • Sposob izgotovlenija zubchatyh koles [Method of gear wheels manufacturing]. Patent BY9749S1 2007.10.30.
  • Egorov A.N. [et al.]. Zernogranichnye jeffekty, lokalizacija plasticheskoj deformacii i razrushenija v materiale krupnogabaritnyh zubchatyh koles [Grain boundary effects, localization of plastic deformation and fracture in  material of large gears]. Cb. nauch. statej po materialam I Mezhdunar. konf. IMET im. A.A. Bajkova RAN [Collection of Scientific. Articles on Materials of thr I Intern. Conf. IMET n.a. A.A. Baikov RAS]. Moscow, 2006, pp. 101-103.
  • Mounce W.S., Miller A.J. Nitriding Steel That Age Hardens. Metal Progress, 1960, vol. 77, no. 2, pр. 91-95.