[go: up one dir, main page]
More Web Proxy on the site http://driver.im/ skip to main content
article

Lightweight optimization of the side structure of automobile body using combined grey relational and principal component analysis

Published: 01 January 2018 Publication History

Abstract

In this paper, the side structure of the automobile body, as the main assembly to withstand the impact force in side collision, is taken as the research object for multi-objective lightweight optimization. First, finite element analysis (FEA) models of the basic NVH (Noise, Vibration and Harshness) performance of the automobile body and the crashworthiness performance of the vehicle are respectively constructed and validated by actual experiments, through which lightweight controlling quotas are extracted. Second, contribution analysis is employed to determine the final parts for lightweight optimization considering both discrete material variables and continuous thickness variables. Third, design of experiment (DoE) based on Optimal Latin Hypercube Sampling (OLHS) method is performed, considering the total mass, the bending stiffness and the torsional stiffness of the automobile body, the maximum impact acceleration at lower end of the B-pillar and the total material cost of the selected optimization parts as five objective functions. On this basis, the combination of thickness-material parameters of the optimization parts is optimized based on Grey Relational Analysis (GRA), and the Principal Component Analysis (PCA) is applied to evaluate the weighting values corresponding to various objective functions. Meanwhile, a comparison between GRA and Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) is conducted to illustrate the unique merits of GRA in multi-objective lightweight optimization of the side structure of the automobile body. Finally, the effectiveness of the lightweight optimization is demonstrated by the comparison between the initial design and the optimal design. The results indicate that the total mass of the automobile body is reduced by 4.54 Kg while other mechanical performance of the automobile body are basically well guaranteed. Hence, the combined grey relational and principal component analysis is a very powerful method used for multi-objective lightweight optimization of the automobile body.

References

[1]
Akhtar T, Shoemaker CA (2016) Multi objective optimization of computationally expensive multi-modal functions with RBF surrogates and multi-rule selection. J Glob Optim 64(1):17-32.
[2]
Bai J, Li Y, Zuo W (2017) Cross-sectional shape optimisation for thin-walled beam crashworthiness with stamping constraints using genetic algorithm. Int J Veh Des 73(1-3):76-95.
[3]
Belingardi G, Koricho EG (2014) Design of a composite engine support sub-frame to achieve lightweight vehicles. International Journal of Automotive Composites 1(1):90-111.
[4]
Beri N, Kumar A, Maheshwari S, Sharma C (2011) Optimisation of electrical discharge machining process with Cu W powder metallurgy electrode using grey relation theory. Int J Mach Mach Mater 9(1-2): 103-115.
[5]
Chen SM, Wang DF (2011) Optimization of Vehicle Ride Comfort and Controllability Using Grey Relational Analysis. Journal of Grey System 23(4):369-380.
[6]
Chen W, Zuo W (2014) Component sensitivity analysis of conceptual vehicle body for lightweight design under static and dynamic stiffness demands. Int J Veh Des 66(2):107-123.
[7]
Corne DW, Deb K, Fleming PJ, Knowles JD (2003) The good of the many outweighs the good of the one: evolutionary multi-objective optimization. IEEE Connections Newsletter 1(1):9-13.
[8]
Cui X, Wang S, Hu SJ (2008) A method for optimal design of automotive body assembly using multi-material construction. Mater Des 29(2): 381-387.
[9]
Deb K, Pratap A, Agarwal S, Meyarivan TAMT (2002) A fast and elitist multiobjective genetic algorithm: NSGA-II. IEEE Trans Evol Comput 6(2):182-197.
[10]
Deng J (1982) Control problems of grey systems. Systems & Control Letters 1(5):288-294.
[11]
Deng J (1989) Introduction to grey system theory. The Journal of grey system 1(1):1-24.
[12]
Etghani MM, Shojaeefard MH, Khalkhali A, Akbari M (2013) A hybrid method of modified NSGA-II and TOPSIS to optimize performance and emissions of a diesel engine using biodiesel. Appl Therm Eng 59(1):309-315.
[13]
Evora J, Hernandez JJ, Hernandez M (2015) A MOPSO method for direct load control in smart grid. Expert Syst Appl 42(21):7456-7465.
[14]
Fan Z, Gui L, Su R (2014) Research and development of automotive lightweight technology. Journal of Automotive Safety and Energy 5(1):1-16.
[15]
Fang H, Solanki K, Horstemeyer MF (2005a) Numerical simulations of multiple vehicle crashes and multidisciplinary crashworthiness optimization. International Journal of Crashwor - thiness 10(2):161-172.
[16]
Fang H, Rais-Rohani M, Liu Z, Horstemeyer MF (2005b) A comparative study of metamodeling methods for multiobjective crashworthiness optimization. Comput Struct 83(25):2121-2136.
[17]
Fang J, Gao Y, Sun G, Xu C, Li Q (2015) Multiobjective robust design optimization of fatigue life for a truck cab. Reliability Engineering & System Safety 135:1-8.
[18]
Fang J, Gao Y, Sun G, Xu C, Li Q (2016) Multiobjective sequential optimization for a vehicle door using hybrid materials tailor-welded structure. Proc Inst Mech Eng C J Mech Eng Sci 230(17): 3092-3100.
[19]
Fang J, Sun G, Qiu N, et al (2017) On design optimization for structural crashworthiness and its state of the art. Struct Multidiscip Optim 55: 1091-1119.
[20]
Fonseca CM, Fleming PJ (1993, June) Genetic Algorithms for Multiobjective Optimization: Formulation Discussion and Generalization. In Icga 93:416-423.
[21]
Gu X, Sun G, Li G, Mao L, Li Q (2013) A comparative study on multiobjective reliable and robust optimization for crashworthiness design of vehicle structure. Struct Multidiscip Optim 48(3):669-684.
[22]
Haftka RT, Villanueva D, Chaudhuri A (2016) Parallel surrogate-assisted global optimization with expensive functions - a survey. Struct Multidiscip Optim 54(1):3-13.
[23]
Horn J, Nafpliotis N, Goldberg DE (1994, June) A niched Pareto genetic algorithm for multiobjective optimization. In: Evolutionary Computation, 1994. IEEE World Congress on Computational Intelligence., Proceedings of the First IEEE Conference on Ieee, pp. 82-87.
[24]
Hu Z, Cheng A, Chen S (2013) Applications of multi-objective optimization to new vehicle overall lightweight design. Zhongguo Jixie Gongcheng (China Mechanical Engineering) 24(3):404-409.
[25]
Knowles J, Corne D (1999) The pareto archived evolution strategy: A new baseline algorithm for pareto multiobjective optimisation. In Evolutionary Computation, 1999. CEC 99. Proceedings of the 1999 Congress on IEEE 1:98-105.
[26]
Lee KH, Kang DH (2007) Structural optimization of an automotive door using the kriging interpolation method. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 221(12):1525-1534.
[27]
Lee KH, Shin JK, Song SI, Yoo YM, Park GJ (2003) Automotive door design using structural optimization and design of experiments. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 217(10):855-865.
[28]
Li YP, Liu HJ, Tong RH (2011) Lightweight scheme selection for carbody based on multi-objective satisfaction. Comput Integr Manuf Syst 17(1):37-44.
[29]
Liu S, Forrest J, Yang Y (2012) A brief introduction to grey systems theory. Grey Systems: Theory and Application 2(2):89-104.
[30]
Mora AM, Merelo JJ, Laredo JLJ, Millán C, Torrecillas J (2009) CHAC, A MOACO algorithm for computation of bi-criteria military unit path in the battlefield: Presentation and first results. Int J Intell Syst 24(7):818-843.
[31]
Mendoza F, Bernal-Agustin JL, & Domínguez-Navarro JA (2006) NSGA and SPEA applied to multiobjective design of power distribution systems. IEEE Transactions on power systems 21(4):1938-1945.
[32]
Nguyen HT, Dawal SZM, Nukman Y, Aoyama H (2014) A hybrid approach for fuzzy multi-attribute decision making in machine tool selection with consideration of the interactions of attributes. Expert Syst Appl 41(6):3078-3090.
[33]
Pan F, Zhu P, Zhang Y (2010) Metamodel-based lightweight design of Bpillar with TWB structure via support vector regression. Comput Struct 88(1):36-44.
[34]
Pohekar SD, Ramachandran M (2004) Application of multi-criteria decision making to sustainable energy planning--a review. Renew Sust Energ Rev 8(4):365-381.
[35]
Pradhan MK (2013) Estimating the effect of process parameters on MRR, TWR and radial overcut of EDMed AISI D2 tool steel by RSM and GRA coupled with PCA. Int J Adv Manuf Technol 68(1-4):591-605.
[36]
Qiu N, Gao Y, Fang J, Feng Z, Sun G, Li Q (2015) Crashworthiness analysis and design of multi-cell hexagonal columns under multiple loading cases. Finite Elem Anal Des 104:89-101.
[37]
Redhe M, Nilsson L (2002) Using space mapping and surrogate models to optimize vehicle crashworthiness design. In: 9th AIAA/ISSMO Symposium on Multidisciplinary Analysis and Optimization, p 5536.
[38]
Saaty TL (2013) Analytic hierarchy process. In: Encyclopedia of operations research and management science. Springer US, pp 52-64.
[39]
Sankar BR, Umamaheswarrao P, Srinivasulu V, Chowdari GK (2015) Optimization of Milling Process on Jute Polyester Composite using Taguchi based Grey Relational Analysis Coupled with Principle Component Analysis. Materials Today: Proceedings 2(4-5):2522-2531.
[40]
Sathiya P, Aravindan S, Jeyapaul R, Ajith PM, Noorul Haq A (2010) Optimizing the weld bead characteristics of super austenitic stainless steel (904L) through grey-based Taguchi method. Multidiscip Model Mater Struct 6(2):206-213.
[41]
Shen VR, Chung YF, Chen TS (2009) A novel application of grey system theory to information security (Part I). Computer Standards & Interfaces 31(2):277-281.
[42]
Srinivas N, Deb K (1994) Muiltiobjective optimization using nondominated sorting in genetic algorithms. Evolutionary computation 2(3):221-248.
[43]
Stander N, Roux W, Giger M, Redhe M, Fedorova N, Haarhoff J (2004, August) A comparison of metamodeling techniques for crashworthiness optimization. In: 10th AIAA/ISSMO Multidisciplinary Analysis and Optimization Conference, p 4489.
[44]
Su R, Gui L, Fan Z (2011) Multi-objective optimization for bus body with strength and rollover safety constraints based on surrogate models. Struct Multidiscip Optim 44(3):431-441.
[45]
Sun G, Li G, Zhou S, Li H, Hou S, Li Q (2011) Crashworthiness design of vehicle by using multiobjective robust optimization. Structural and Multidisciplinary Optimization 44(1):99-110.
[46]
Tripathy S, Tripathy DK (2016) Multi-attribute optimization of machining process parameters in powder mixed electro-discharge machining using TOPSIS and grey relational analysis. Engineering Science and Technology, an International Journal 19(1):62-70.
[47]
Velea MN, Wennhage P, Zenkert D (2014) Multi-objective optimisation of vehicle bodies made of FRP sandwich structures. Compos Struct 111:75-84.
[48]
Viana FA, Venter G, Balabanov V (2010) An algorithm for fast optimal Latin hypercube design of experiments. Int J Numer Methods Eng 82(2):135-156.
[49]
Wang H, Li GY, Li E (2010) Time-based metamodeling technique for vehicle crashworthiness optimization. Comput Methods Appl Mech Eng 199(37):2497-2509.
[50]
Wang H, Li E, Li GY (2011) Probability-based least square support vector regression metamodeling technique for crashwo rthiness optimization problems. Comput Mech 47(3):251-263.
[51]
Wang P, Meng P, Zhai JY, Zhu ZQ (2013) A hybrid method using experiment design and grey relational analysis for multiple criteria decision making problems. Knowl-Based Syst 53:100-107.
[52]
Wang D, Jiang R, Lu W, Liu H (2016) Optimization of Cab Suspension Parameters of Self-dumping Trucks Using Grey Relational Analysis. Journal of Grey System 28(2).
[53]
Wang H, Ye F, Chen L, & Li E (2017) Sheet metal forming optimization by using surrogate modeling techniques. Chin J Mech Eng 30(1): 22-36.
[54]
Ye H, Hu P, Shen GZ (2010) Lightweight optimization design of car body based on sensitivity and side crash simulation. Transactions of the Chinese Society for Agricultrual Machinery 41(10):18-22.
[55]
Zhu P, Shi YL, Zhang KZ, Lin ZQ (2008) Optimum design of an automotive inner door panel with a tailor-welded blank structure. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 222(8):1337-1348.
[56]
Zhu P, Zhang Y, Chen GL (2009) Metamodel-based lightweight design of an automotive front-body structure using robust optimization. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 223(9):1133-1147.
[57]
Zuo W (2015) Bi-level optimization for the cross-sectional shape of a thin-walled car body frame with static stiffness and dynamic frequency stiffness constraints. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 229(8):1046-1059.
[58]
Zuo W, Saitou K (2017) Multi-material topology optimization using ordered SIMP interpolation. Struct Multidiscip Optim 55(2):477-491.
[59]
Zuo W, Xu T, Zhang H, Xu T (2011) Fast structural optimization with frequency constraints by genetic algorithm using adaptive eigenvalue reanalysis methods. Struct Multidiscip Optim 43(6):799-810.
[60]
Zuo W, Yu J, Saitou K (2016) Stress sensitivity analysis and optimization of automobile body frame consisting of rectangular tubes. Int J Automot Technol 17(5):843-851.

Cited By

View all
  • (2022)Adaptive multi-tracker optimization algorithm for global optimization problems: emphasis on applications in chemical engineeringEngineering with Computers10.1007/s00366-020-01101-z38:2(1309-1336)Online publication date: 1-Apr-2022
  • (2022)The anti-fatigue lightweight design of heavy tractor frame based on a modified decision methodStructural and Multidisciplinary Optimization10.1007/s00158-022-03385-965:10Online publication date: 1-Oct-2022
  • (2022)Multiobjective and multicollision scenario reliability-based design optimization of honeycomb-filled composite energy-absorbing structures for subwaysStructural and Multidisciplinary Optimization10.1007/s00158-022-03343-565:8Online publication date: 13-Aug-2022
  • Show More Cited By
  1. Lightweight optimization of the side structure of automobile body using combined grey relational and principal component analysis

      Recommendations

      Comments

      Please enable JavaScript to view thecomments powered by Disqus.

      Information & Contributors

      Information

      Published In

      cover image Structural and Multidisciplinary Optimization
      Structural and Multidisciplinary Optimization  Volume 57, Issue 1
      January 2018
      458 pages

      Publisher

      Springer-Verlag

      Berlin, Heidelberg

      Publication History

      Published: 01 January 2018

      Author Tags

      1. Contribution analysis
      2. Design of experiment
      3. Grey relational analysis
      4. Lightweight optimization
      5. Principal component analysis
      6. TOPSIS

      Qualifiers

      • Article

      Contributors

      Other Metrics

      Bibliometrics & Citations

      Bibliometrics

      Article Metrics

      • Downloads (Last 12 months)0
      • Downloads (Last 6 weeks)0
      Reflects downloads up to 06 Jan 2025

      Other Metrics

      Citations

      Cited By

      View all
      • (2022)Adaptive multi-tracker optimization algorithm for global optimization problems: emphasis on applications in chemical engineeringEngineering with Computers10.1007/s00366-020-01101-z38:2(1309-1336)Online publication date: 1-Apr-2022
      • (2022)The anti-fatigue lightweight design of heavy tractor frame based on a modified decision methodStructural and Multidisciplinary Optimization10.1007/s00158-022-03385-965:10Online publication date: 1-Oct-2022
      • (2022)Multiobjective and multicollision scenario reliability-based design optimization of honeycomb-filled composite energy-absorbing structures for subwaysStructural and Multidisciplinary Optimization10.1007/s00158-022-03343-565:8Online publication date: 13-Aug-2022
      • (2022)A hybrid MCDM-based optimization method for cutting-type energy-absorbing structures of subway vehiclesStructural and Multidisciplinary Optimization10.1007/s00158-022-03300-265:8Online publication date: 1-Aug-2022
      • (2021)Topology and modular size optimization of small electric vehicle frame based on cross-section contribution analysisStructural and Multidisciplinary Optimization10.1007/s00158-021-03075-y64:6(4287-4304)Online publication date: 1-Dec-2021
      • (2021)Multi-objective optimization study on the power cooling performance and the cooling drag of a full-scale vehicleStructural and Multidisciplinary Optimization10.1007/s00158-021-03035-664:6(4129-4145)Online publication date: 1-Dec-2021
      • (2021)Hierarchical optimization of a novel vehicle door system under side impact based on integrated weighting methodStructural and Multidisciplinary Optimization10.1007/s00158-020-02838-363:6(2969-2988)Online publication date: 1-Jun-2021
      • (2021)An adaptive RBF neural network–based multi-objective optimization method for lightweight and crashworthiness design of cab floor rails using fuzzy subtractive clustering algorithmStructural and Multidisciplinary Optimization10.1007/s00158-020-02797-963:2(915-928)Online publication date: 1-Feb-2021
      • (2021)An integrated multi-objective optimization method with application to train crashworthiness designStructural and Multidisciplinary Optimization10.1007/s00158-020-02758-263:3(1513-1532)Online publication date: 1-Mar-2021
      • (2020)Lightweight optimization of passenger car seat frame based on grey relational analysis and optimized coefficient of variationStructural and Multidisciplinary Optimization10.1007/s00158-020-02647-862:6(3429-3455)Online publication date: 1-Dec-2020
      • Show More Cited By

      View Options

      View options

      Media

      Figures

      Other

      Tables

      Share

      Share

      Share this Publication link

      Share on social media