Design, simulation and experimental investigation of a novel reconfigurable assembly fixture for press brakes
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  • 作者:Olayinka Olabanji ; Khumbulani Mpofu…
  • 关键词:Design ; Reconfigurable assembly fixture ; Assembly systems ; Manufacturing ; Hydraulic system ; Stress analysis
  • 刊名:The International Journal of Advanced Manufacturing Technology
  • 出版年:2016
  • 出版时间:January 2016
  • 年:2016
  • 卷:82
  • 期:1-4
  • 页码:663-679
  • 全文大小:4,001 KB
  • 参考文献:1.Wang B, Guan Z, Chen Y, Shao X, Jin M, Zhang C (2013) An assemble-to-order production planning with the integration of order scheduling and mixed-model sequencing. Front Mech Eng 8:137–45CrossRef
    2.Ullah S, Zailin G, Baoxi W, Jahanzeb M, Shiyang H (2014) A survey on assembly lines and its types. Front Mech Eng 9:95–105CrossRef
    3.Kumar VV, Yadav SR, Liou FW, Balakrishnan S (2013) A digital interface for the part designers and the fixture designers for a reconfigurable assembly system. Math Problems Eng
    4.Goyal S, Grover S (2012) Advanced manufacturing technology effectiveness: a review of literature and some issues. Front Mech Eng 7:256–67CrossRef
    5.Cecil J (2001) Computer-aided fixture design—a review and future trends. Int J Adv Manuf Technol 18:790–3CrossRef
    6.Sequeira M, Basson A (2009) Case study of a fixture-based reconfigurable assembly system. Proc. Assembly and Manufacturing, 2009. ISAM 2009. IEEE International Symposium on: 387–92: IEEE
    7.Ertelt C, Gmeiner T, Shea K (2009) A flexible fixture and reconfiguration process for the cognitive machine shop. Proc. Proceedings of the 3rd International Conference on Changeable, Agile, Reconfigurable and Virtual Production (CARV 2009): 112–20
    8.Joshi PH (2003) Jigs and fixtures: design manual. McGraw-Hill Professional
    9.Goubet D, Fauroux J-C, Gogu G (2013) Gripping mechanisms in current wood harvesting machines. Front Mech Eng 8:42–61CrossRef
    10.Wang Y, Liu J (2013) Subassembly identification for assembly sequence planning. Int J Adv Manuf Technol 68:781–93CrossRef
    11.Prathap K, Srihari PV (2012) Design and development of an assembly fixture for mounting a circlip to the piston. Int J Eng Res Appl Vol 2:4
    12.Maropoulos P, Muelaner J, Summers M, Martin O (2014) A new paradigm in large-scale assembly—research priorities in measurement assisted assembly. Int J Adv Manuf Technol 70:621–33CrossRef
    13.Li S, Liu Y, Wang J, Zeng H (2014) An intelligent interactive approach for assembly process planning based on hierarchical classification of parts. Int J Adv Manuf Technol 70:1903–14CrossRef
    14.Yu S, Gil M (2012) Manipulator handling device for assembly of large-size panels. Assem Autom 32:361–72CrossRef
    15.Gao W, Shao X, Liu H (2014) Virtual assembly planning and assembly-oriented quantitative evaluation of product assemblability. Int J Adv Manuf Technol 71:483–96CrossRef
    16.Kršulja M, Barišić B, Kudlaček J (2009) Assembly setup for modular fixture machining process. Adv Eng. 3
    17.Camelio JA, Hu SJ, Ceglarek DJ (2002) Impact of fixture design sheet metal assembly variation. Proc. ASME 2002 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference. Am Soc Mech Eng. 133–40
    18.Matt D (2013) Design of a scalable assembly system for product variety: a case study. Assem Autom 33:117–26CrossRef
    19.Amini M, Bakhshi M, Fesharaki JJ (2014) Design, fabrication, and use of a new reconfigurable discrete die for forming tubular parts. Int J Adv Manuf Technol: 1–9
    20.Vasundara M, Padmanaban K (2014) Recent developments on machining fixture layout design, analysis, and optimization using finite element method and evolutionary techniques. Int J Adv Manuf Technol 70:79–96CrossRef
    21.Bogue R (2012) Design for manufacture and assembly: background, capabilities and applications. Assem Autom 32:112–8CrossRef
    22.Sivasankaran P, Shahabudeen P (2014) Literature review of assembly line balancing problems. Int J Adv Manuf Technol: 1–30
    23.Davis RJ, Semiatin SL (1998) ASM metals handbook, forming and forging. ASM Int. 2110 pp 1069–1110
    24.Zhang J, Chen Y, Xue D, Gu P (2014) Robust design of configurations and parameters of adaptable products. Front Mech Eng 9:1–14CrossRef
    25.Zhang X, Peng G, Hou X, Zhuang T (2014) A knowledge reuse-based computer-aided fixture design framework. Assem Autom 34:169–81CrossRef
    26.Tadic B, Bogdanovic B, Jeremic BM, Todorovic PM, Luzanin O et al (2013) Locating and clamping of complex geometry workpieces with skewed holes in multiple-constraint conditions. Assem Autom 33:386–400CrossRef
    27.Shailesh SP, Laukik PR (2014) A review on design of fixtures. Int J Eng Res General Sci 2:126–46
    28.Ahmad Z, Lu S, Zoppi M, Molfino R (2013) Conceptual design of flexible and reconfigurable gripper for automotive subassemblies. Int J Mech Eng 7:206–11
    29.Uday HF, Majid TR (2013) An integrated approach to assembly and automating modular fixtures design. Emirates J Eng Res 18:19–24
    30.Arzanpour S, Fung J, Mills J, Cleghorn W (2006) Flexible fixture design with applications to assembly of sheet metal automotive body parts. Assem Autom 26:143–53CrossRef
    31.Zhu S, Ding G, Ma S, Yan K, Qin S (2013) Workpiece locating error prediction and compensation in fixtures. Int J Adv Manuf Technol 67:1423–32CrossRef
    32.Zou H, Liang Q, Zhang Q (2010) Theory and method of mechanism system design. Frontiers Mech Eng China 5:399–411CrossRef
    33.Mudriková A, Velíšek K, Košťál P (2009) Clamping fixtures used for intelligent assembly systems. Proc. ISCCC 2009: Proc 2009 Int Sym Comput, Commun Control: 9–11
    34.Maniar NP, Vakharia DP (2013) Design & development of fixture for CNC—reviews, practices & future directions. Int J Sci Eng Res Vol 4:1–11
    35.Szynkiewicz W (2010) Planning system for multi-agent based reconfigurable fixtures. J Telecommun Inf Technol: 71–6
    36.Jonsson M, Ossbahr G (2010) Aspects of reconfigurable and flexible fixtures. Prod Eng 4:333–9CrossRef
    37.Izquierdo LE, Hu SJ, Du H, Jin R, Jee H, Shi J (2009) Robust fixture layout design for a product family assembled in a multistage reconfigurable line. J Manuf Sci Eng 131:041008CrossRef
    38.Helgosson P, Ossbahr G, Tomlinson D (2010) Modular and configurable steel structure for assembly fixtures, SAE Technical Paper
    39.Afzeri A, Sutjipto A, Nurul Amin RM (2005) Determination of pin configuration for clamping fixture by means of solid model contact analysis. Proc Proc Int Conf Mech Eng (ICME), Dhaka, Bangladesh
    40.Khurmi RS, Gupta JK (2005) A textbook of machine design. Ram Nagar New Delhi 110–055 Eurasia Publishing House (PVT) LTD
    41.Vijayaraghavan GK, Vishnupriyan S (2009) Design of machine elements. 11, Veerabathra Nagar, Part II 8th Street Mambakkan Road < Medavakkam Chennail 600–100 Tamil Nadu INDIA: Published by Lakshmi Publications. pp 1–10; 3–14
    42.Thomas HB (2005) Marks calculation for machine design. McGraw-Hll Companies Inc. pp 321–325
    43.Shigley JE (2011) Shigley’s mechanical engineering design. Tata McGraw-Hill Education
    44.Khechai A, Tati A, Guettala A (2014) Finite element analysis of stress concentrations and failure criteria in composite plates with circular holes. Front Mech Eng 9:281–94CrossRef
    45.Zong W, Li Z, Zhang L, Liang Y, Sun T et al (2013) Finite element simulation of diamond tool geometries affecting the 3D surface topography in fly cutting of KDP crystals. Int J Adv Manuf Technol 68:1927–36CrossRef
    46.Klebanov BM, Barlam DM, Nystrom FE (2007) Machine elements: life and design. CRC Press
    47.John HB (2008) Introduction to the design and behavior of bolted joints, non gasketed joints. 6000 Broken Sound Parkway NW, Suite 300 Boca Raton, FL 33487–2742 CRC press, Taylor and Francis Group. pp 1–59
    48.Childs PR (2013) Mechanical design engineering handbook. Butterworth-Heinemann
    49.Andrew P (2006) Hydraulics and pneumatics: a technician and engineers guide second edition. ELsevier limited Linacore House Jordan Hill Oxford, OX2 8DP UK 30 corporate Drive suite 400 Burlingoton MA 01803 USA. pp 2–175
    50.Barbara HA (2000) Practical hydraulics handbook, second edition. Lewis Publishers CRC Press Inc. Coorprate Blvd, N. W., Boca Raton Florida 33431. pp 53–159
    51.Mohieddine J, Andreas K (2004) Hydraulic servo systems: modelling, identification and control. Springer-Verlag London, Heidelberg, pp 9–19. doi:10.​1007/​978-1-4471-0099-7 , 29–48
    52.Bosserman BE (2004) Pump system hydraulic design. Digital Engineering Library, Mc Graw Hill. The Mc Graw Hill Company. pp 10.5–10.41
    53.Larock BE, Jeppson RW, Watters GZ (2000) Hydraulics of pipeline systems. CRC Press LLC 2000 N. W Corporate Blvd, Boca Raton, pp 15–28, 33431
    54.Merritt HE (1967) Hydraulic control systems. John Wiley & Sons Inc. 109876543; Printed in United States of America; Pg 54–72 76–170
    55.Liu Z, Xie H, Yang H (2009) Simulation analysis of pressure regulation of hydraulic thrust system on a shield tunneling machine. In Intelligent Robotics and Applications:493–503: Springer. Number of 493–503 pp
    56.Miller R, Miller MR, Stewart HL (2005) Audel pumps and hydraulics, 6th edn. Wiley Publishing Inc, Indianapolis, pp 65–109, 113–221
    57.Melvyn K (2008) Practical hydraulics second edition. Taylor and Francis 2 Park Square, Million Park, Abingdon, Oxon OX14 4RN USA and Cannada 270 Madison Ave. New York, NY10016; Pg 209–245
    58.Shashi PE, Pramila SM (2010) Working guide to pumps and pumping stations: calculations and simulations. Gulf Professional An Imprint of Elsevier, 30 Corporate Drive, Suite 400, Burlington, MA 01803, USA: ISBN: 978-1-856 17-828-0; Pg 23–47;145
    59.Ronald VG, Pollard DJ (1996) Schaums outline of theory and problems of fluid mechanics and hydraulics. Published by Mc Graw-Hill Companies, Inc, USA, pp 312–320
    60.Nedic N, Prsic D, Dubonjic L, Stojanovic V, Djordjevic V (2014) Optimal cascade hydraulic control for a parallel robot platform by PSO. Int J Adv Manuf Technol 72:1085–98CrossRef
    61.Bao J, Wu H, Yan Y (2014) A fault diagnosis system-PLC design for system reliability improvement. Int J Adv Manuf Technol: 1–12
    62.Renzi C, Leali F, Cavazzuti M, Andrisano A (2014) A review on artificial intelligence applications to the optimal design of dedicated and reconfigurable manufacturing systems. Int J Adv Manuf Technol 72:403–18CrossRef
  • 作者单位:Olayinka Olabanji (1)
    Khumbulani Mpofu (1)
    Olga Battaïa (2)

    1. Tshwane University of Technology, Pretoria, Gauteng, South Africa
    2. Henri Fayol Institute, Ecole des Mines de Saint-Etienne, France, Saint-Etienne, France
  • 刊物类别:Engineering
  • 刊物主题:Industrial and Production Engineering
    Production and Logistics
    Mechanical Engineering
    Computer-Aided Engineering and Design
  • 出版者:Springer London
  • ISSN:1433-3015
文摘
A reconfigurable assembly fixture is a major and important component of a reconfigurable assembly system. It is required for the assembly of a variety of press brake models in order to reduce the assembly time and overall production time. The stages and requirements for the design of an assembly fixture and understanding of the assembly process for press brake models were used to design a reconfigurable assembly fixture. A detailed design analysis of parts of the fixture and the hydraulic system is considered and presented in this article. The stress and displacement analysis of the parts is executed using Solidworks express simulation. The parameters of the hydraulic components were determined from force requirements, and the hydraulic system was modelled physically using Matlab Simscape hydraulics. The response of the hydraulic system was obtained for each actuator in the system in order to depict the output of the actuators from the spool displacement of the valves. Stress analysis conducted on parts of the fixture showed that it can withstand maximum stresses that are lesser than the yield strength of the material used for the part. It was also established that synchronization of hydraulic actuators can best be achieved by the use of a sine input to the electrohydraulic valve. An experimental investigation was done using FESTO hydraulic test bench in order to observe the synchronized extension and retraction of the hydraulic actuators. The simulation of the hydraulic system, electric system and the programmable logic controller was prepared using automation studio. The design is envisaged to provide the industries with relevant information on accurate location and gripping of press brake frames rather than turning and repositioning of the frame in order to fit other parts during assembly. The article provides relevant information on the design analysis of a reconfigurable assembly fixture for press brakes which is novel because articles on reconfigurable assembly fixtures have not considered its application to press brake assembly. Keywords Design Reconfigurable assembly fixture Assembly systems Manufacturing Hydraulic system Stress analysis

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