Electronic Science and Technology ›› 2022, Vol. 35 ›› Issue (11): 98-103.doi: 10.16180/j.cnki.issn1007-7820.2022.11.014
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YANG Yunhui,XU Lianjiang
Received:
2021-03-29
Online:
2022-11-15
Published:
2022-11-11
Supported by:
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YANG Yunhui,XU Lianjiang. Summary of Finite Element Analysis Technology for High Precision Machining[J].Electronic Science and Technology, 2022, 35(11): 98-103.
[1] | Henriksen E K. Residual stresses in machined surfaces[J]. Transactions ASME Journal of Engineering for Industry, 1951, 73(1):69-76. |
[2] | Bailey J A, Jeelani S, Becker S E. Surface integrity in machining AISI 4340 Steel[J]. Journal of Engineering for Industry, 1976, 1(8):999-1007. |
[3] | Liu C R, Barash M M. The mechanical state of the sub-layer of a surfce generated by chip-removal process patr1:Cutting with a sharp tool[J]. Transactions of the ASME, 1976, 2(11):1192-1201. |
[4] |
Strebjiwsjum H S, Canoll III J T. A finite element model of orthogonal metal cutting.Transactions of the ASME[J]. Journal of Engineering for Industry, 1985, 107(2):349-354.
doi: 10.1115/1.3186008 |
[5] |
Komvopoulos K, Erpenbeck S A. Finite element modeling of orthogonal metal cutting[J]. Transactions of the ASME, Journal of Engineering for Industry, 1991, 113(1):253-267.
doi: 10.1115/1.2899695 |
[6] |
Wiesner C. Residual stresses after orthogonal machining of AlSl 304:Numerical calculation of the thermal component and comparison with experimental results[J]. Metallurgical Transactions A, 1992, 23(3):989-996.
doi: 10.1007/BF02675573 |
[7] |
Tay A, Lee K H. Calculation of temperature distributions in machining using a hybrid finite-element-boundary-element method[J]. Journal of Materials Processing Technology, 1992, 29(1-3):47-62.
doi: 10.1016/0924-0136(92)90424-Q |
[8] |
Chandra U. Validation of finite-element codes for prediction of machining distortions in forgings[J]. Communications in Numerical Methods in Engineering, 1993, 9(6):463-473.
doi: 10.1002/cnm.1640090603 |
[9] |
Hardisty H, Mileham A R, Shirvani H. A finite element simulation of the electrochemical machining process[J]. CIRP Annals Manufacturing Technology, 1993, 42(1):201-204.
doi: 10.1016/S0007-8506(07)62425-1 |
[10] | Yang Y, Mukoyama Y, Kato H, et al. Analysis of crack generative region in crater machined by impulsive electrical discharge[J]. Journal of the Japan Society of Precision Engineering, 1994, 60(3):388-392. |
[11] |
Lin Z C, Lee B Y. An investigation of the residual stress of a machined workpiece considering tool flank wear[J]. Journal of Materials Processing Technology, 1995, 51(1-4):1-24.
doi: 10.1016/0924-0136(94)01322-R |
[12] |
Fett T. Determination of residual stresses in components using the fracture mechanics weight function[J]. Engineering Fracture Mechanics, 1996, 55(4):571-576.
doi: 10.1016/S0013-7944(96)00034-3 |
[13] |
Lin Z C, Lai W L, Lin H Y, et al. Residual stresses with different tool flank wear lengths in the ultra-precision machining of NiP alloys[J]. Journal of Materials Processing Technology, 1997, 65(1-3):116-126.
doi: 10.1016/0924-0136(95)02251-1 |
[14] |
Mackerle J. Finite-element analysis and simulation of machining:A bibliography(1976-1996)[J]. Journal of Materials Processing Technology,1999, 86(1-3):17-44.
doi: 10.1016/S0924-0136(98)00227-1 |
[15] | El-Wardany T I, Kishawy H A, Elbestawi M A. Surface integrity of die material in high speed hard machining, Part 2:Microhardness variations and residual stresses[J]. Journal of Manufacturing Science & Engineering, 2000, 122(4):632-641. |
[16] |
Marcelin J L. Genetic search applied to selecting support positions in machining of mechanical parts[J]. International Journal of Advanced Manufacturing Technology, 2001, 17(5):344-347.
doi: 10.1007/s001700170169 |
[17] |
Yang X, Liu C R. A new stress based model of friction behaviour in machining and its significant impact on residual stresses[J]. International Journal of Mechanical Sciences, 2002, 44(4):703-723.
doi: 10.1016/S0020-7403(02)00008-5 |
[18] |
Guo Y B, Barkey M E. FE-simulation of the effects of machining-induced residual stress profile on rolling contact of hard machined components[J]. International Journal of Mechanical Sciences, 2004, 46(3):371-388.
doi: 10.1016/j.ijmecsci.2004.03.014 |
[19] |
Murali M S, Yeo S H. Process simulation and residual stress estimation of micro-electrodischarge machining using finite element method[J]. Japanese Journal of Applied Physics, 2005, 44(7):5254-5263.
doi: 10.1143/JJAP.44.5254 |
[20] |
Dattoma V, M D Giorgi, Nobile R. On the evolution of welding residual stress after milling and cutting machining[J]. Computers & Structures, 2006, 84(29):1965-1976.
doi: 10.1016/j.compstruc.2006.08.008 |
[21] |
Yu W, Wang X W. Computer simulation and experimental study of machining deflection due to original residual stress of aerospace thin-walled parts[J]. International Journal of Advanced Manufacturing Technology, 2007, 33(3-4):260-265.
doi: 10.1007/s00170-006-0470-1 |
[22] | Liu W Y. Numerical simulation of the machining distortion of aircraft aluminum part caused by redistribution of residual stress[J]. Advanced Materials Research, 2010, 14(2):122-125. |
[23] |
Robinson J S, Tanner D A, Truman C E, et al. Measurement and prediction of machining induced redistribution of residual stress in the aluminium alloy 7449[J]. Experimental Mechanics, 2011, 51(6):981-993.
doi: 10.1007/s11340-010-9389-4 |
[24] | Meng L, He N, Liang L. Calculation of residual stress induced by machining in internal surface of TC4 Tubular parts and its FEA[J]. Zhongguo Jixie Gongcheng/China Mechanical Engineering, 2014, 25(19):2583-2587. |
[25] |
Dong P, Peng H, Cheng X, et al. Semi-empirical prediction of residual stress profiles in machining IN718 alloy using bimodal gaussian curve[J]. Materials, 2019, 12(23):11-26.
doi: 10.3390/ma12010011 |
[26] |
Rahman M U. An iterative procedure for finite-element stress analysis of frictional contact problems[J]. Computers & Structures, 1984, 18(6):947-954.
doi: 10.1016/0045-7949(84)90138-X |
[27] |
Navon I M. FEUDX:A two-stage,high-accuracy,finite-element FORTRAN program for solving shallow-water equations[J]. Computers & Geosciences, 1987, 13(3):255-285.
doi: 10.1016/0098-3004(87)90045-8 |
[28] |
Kakuda K, Tosaka N. The generalized boundary element approach to Burgers' equation[J]. International Journal for Numerical Methods in Engineering, 1990, 29(2):245-261.
doi: 10.1002/nme.1620290203 |
[29] |
Whitcomb J D. Iterative global/local finite element analysis[J]. Computers & Structures, 1991, 40(4):1027-1031.
doi: 10.1016/0045-7949(91)90334-I |
[30] |
Arif A, Zabaras N. On the performance of two tangent operators for finite element analysis of large deformation inelastic problems[J]. International Journal for Numerical Methods in Engineering, 1992, 35(2):369-389.
doi: 10.1002/nme.1620350209 |
[31] |
Davis M B, Carey G F. Iterative solution of the stream function-vorticity equations using a multigrid solver with finite elements[J]. Communications in Numerical Methods in Engineering, 1993, 9(7):587-594.
doi: 10.1002/cnm.1640090706 |
[32] |
Seferlis P, Hrymak A N. Adaptive collocation on finite elements models for the optimization of multistage distillation units[J]. Chemical Engineering Science, 1994, 49(9):1369-1382.
doi: 10.1016/0009-2509(93)E0015-5 |
[33] | Olhoff N, Lund E. Finite element based engineering design sensitivity analysis and optimization[J]. Advances in Structural Optimization, 1995, 2(25):1-45. |
[34] |
Hutchinson S A, Ng K T, Shadid J N, et al. Electrical defibrillation optimization:an automated,iterative parallel finite-element approach[J]. IEEE Transactions on Bio-Medical Engineering, 1997, 44(4):278-289.
doi: 10.1109/10.563297 |
[35] |
Matallah H, Townsend P, Webster M F. Recovery and stress-splitting schemes for viscoelastic flows[J]. Journal of Non-Newtonian Fluid Mechanics, 1998, 75(2-3):139-166.
doi: 10.1016/S0377-0257(97)00085-2 |
[36] |
Xu J C, Zhou A H. Local and parallel finite element algorithms based on two-grid discretizations[J]. Mathematics of Computation, 1999, 69(2):881-909.
doi: 10.1090/S0025-5718-99-01149-7 |
[37] | Turco E, Caracciolo P. Elasto-plastic analysis of Kirchhoff plates by high simplicity finite elements[J]. Computer Methods in Applied Mechanics & Engineering, 2000, 190(5/7):691-706. |
[38] | Axelsson O, Barker V A. Finite element solution of boundary value problems:theory and computation[J]. Applied Mechanics Reviews, 2001, 55(3):463-488. |
[39] | Zhang H W, Xu W L, Di S L, et al. Quadratic programming method in numerical simulation of metal forming process[J]. Computer Methods in Applied Mechanics & Engineering, 2002, 191(49-50):5555-5578. |
[40] |
Nakajima K. Three-level hybrid vs. flat MPI on the earth simulator:Parallel iterative solvers for finite-element method[J]. Applied Numerical Mathematics, 2003, 54(2):237-255.
doi: 10.1016/j.apnum.2004.09.025 |
[41] |
Discacciati M, Quarteroni A. Convergence analysis of a subdomain iterative method for the finite element approximation of the coupling of stokes and darcy equations[J]. Computing and Visualization in Science, 2004, 6(2-3):93-103.
doi: 10.1007/s00791-003-0113-0 |
[42] | Elman H C, Ernst O G, O'Leary D P, et al. Efficient iterative algorithms for the stochastic finite element method with application to acoustic scattering[J]. Computer Methods in Applied Mechanics & Engineering, 2005, 194(9/11):1037-1055. |
[43] |
Elejabarrieta F. Computational methods for complex eigenproblems in finite element analysis of structural systems with viscoelastic damping treatments[J]. Computer Methods in Applied Mechanics and Engineering, 2006, 195(44-47):6448-6462.
doi: 10.1016/j.cma.2006.01.006 |
[44] | Catherine E P, Howard C E. Block-diagonal preconditioning for spectral stochastic finite-element systems[J]. IMA Journal of Numerical Analysis, 2009, 29(2):350-375. |
[45] |
Tezduyar T E, Sathe S. Modelling of fluid-structure interactions with the space-time finite elements:solution techniques[J]. International Journal for Numerical Methods in Fluids, 2010, 54(6-8):855-900.
doi: 10.1002/fld.1430 |
[46] |
Lang C, Makhija D, Doostan A, et al. A simple and efficient preconditioning scheme for heaviside enriched XFEM[J]. Computational Mechanics, 2014, 54(7):1357-1374.
doi: 10.1007/s00466-014-1063-8 |
[47] | Zhao C B, Muhlhaus H B, Hobbs B E. Finite element analysis of steady-state natural convection problems in fluid-saturated porous media heated from below[J]. International Journal for Numerical & Analytical Methods in Geomechanics, 2015, 21(12):863-881. |
[48] | Ern A, Guermond J L. Finite element quasi-interpolation and best-approximation[J]. Mathematics, 2016, 51(4):1367-1385. |
[49] |
Ji D, Lei W, Liu Z. Finite element method and boundary element method iterative coupling algorithm for 2-D elastodynamic analysis[J]. Computational and Applied Mathematics, 2020, 39(3):1-21.
doi: 10.1007/s40314-019-0964-8 |
[50] | Diwan G, Mohamed M S. Iterative solution with shifted Laplace preconditioner for plane wave enriched isogeometric analysis and finite element discretization for high-frequency acoustics[J]. Computer Methods in Applied Mechanics and Engineering, 2021, 38(4):1-20. |
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