Academic literature on the topic 'Simulation of bending process'

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Journal articles on the topic "Simulation of bending process"

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Liu, Xue Jiang, Hai Sheng Liu, Jing Liu, and Hui Gang Wang. "Numerical Simulation of Plate Bender Bending Process." Advanced Materials Research 189-193 (February 2011): 2228–32. http://dx.doi.org/10.4028/www.scientific.net/amr.189-193.2228.

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The plate’s mechanical behavior of three-roller plate bending machine had been analyzed in case of upper roller feeding based on ANSYS. Strain and stress distribution of the plate and its changes are gained. The influence of upper roller’s feeding location and bending velocity to bending process are researched. The results are valuable to bending process optimization and practical technique of plate bending.
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Ridane, N., D. Jaksic, Matthias Kleiner, and B. Heller. "Enhanced Semi-Analytical Process Simulation of Air Bending." Advanced Materials Research 6-8 (May 2005): 729–36. http://dx.doi.org/10.4028/www.scientific.net/amr.6-8.729.

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The air bending process is one of the most widely used process for the manufacturing of sheet metal bending parts made of thin as well as of thick sheet metal. Although the air bending process offers a very high production potential due to its great flexibility, it is associated with certain problems which can negatively influence the shape and dimensional accuracy of the bending parts. Examples for such negative influences are the springback of the material, the batch variations, or the deflections of the bending machine and tools. These differences have to be considered either in the determi
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Zhang, Jian, Tong Mei Xiao, Liang Chu, and Da Sen Bi. "Velocity Optimization on Squashing and Bending Process of Large Diameter Elbow." Advanced Materials Research 194-196 (February 2011): 2204–8. http://dx.doi.org/10.4028/www.scientific.net/amr.194-196.2204.

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FEM simulations of squashing and bending process of large diameter elbow was applied to analyze the influence of squashing velocities, one of the key process parameters, on the deformation of the tube. In this study the squashing distance of first step is 300mm after several simulation attempts, corresponding to different squashing speeds and different bending velocities of second step. The simulation results of different velocities are compared and discussed. In the end the final velocities of the two steps are given.
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Lamanna, Giuseppe, Francesco Caputo, Luigi Grassia, Alberto D'Amore, and Alessandro Soprano. "Numerical Simulation of a Stretch Bending Process." Key Engineering Materials 417-418 (October 2009): 637–40. http://dx.doi.org/10.4028/www.scientific.net/kem.417-418.637.

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There are several difficulties associated with the numerical simulation of the stretch bending process of extruded components; the main ones are non-linear material behavior, geometrical non-linearities, modeling of boundary conditions, contact between die and specimen, springback during the unloading phase. Another very complex aspect is the calibration of the numerical model, as rather few experimental results are generally available. This paper deals with a numerical simulation of a complete stretch bending process with the aim to select the most suitable numerical procedure oriented to the
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Zhang, Xinju, Deshun Su, Jianwei Jin, et al. "Numerical Simulation on Optimization of Process Parameters for Free Bending of Metal Tubes." Mathematical Problems in Engineering 2022 (November 3, 2022): 1–15. http://dx.doi.org/10.1155/2022/4173457.

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Three-dimensional free bending is a new tube forming technology with continuous variable curvature. In order to improve the forming quality of tube, this paper studies the principle of three-dimensional free forming system and the numerical calculation of bending moment in detail, and it uses the finite element simulation to model the mechanism in the bending process. The simulation model is used to simulate the forming process of copper tube, and the influence of key process parameters on the forming process is analyzed,the shape of the inner cavity of the bending die and the gap between the
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Yang, Tung Sheng, Jen Chuan Yeh, and Sheng Yi Chang. "Application of FEM Simulation and Abductive Network to Predict the Springback of U-Shaped Bending Process with Counter Force." Advanced Materials Research 579 (October 2012): 32–41. http://dx.doi.org/10.4028/www.scientific.net/amr.579.32.

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This study applies the finite element method (FEM) in con-junction with an abductive network to predict springback’s angle during the U-shaped bending process with counter force. To verify the prediction of FEM simulation for springback, the experimental data are compared with the results of current simulation. Bending force, effective stress distribution and springback are investigated for different process parameters, such as profile radius of die, blank holder force and counter force of U-shaped bending process, by finite element analysis. The abductive network is then utilized to synthesiz
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Sun, Zhen Zhong, Sheng Gui Chen, and Ye Jing. "Numerical Simulation of Push-Bending Process of Aluminum Section Profile." Advanced Materials Research 97-101 (March 2010): 90–95. http://dx.doi.org/10.4028/www.scientific.net/amr.97-101.90.

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The aluminum profile can be formed into a complicated part such as 360º abnormity section circle parts that is difficult to be manufactured by other techniques. A new bending method was proposed for bending process. The push-bending principle, deformation procedure, curvature spring-back, section distortion and wrinkling are studied numerically. All cross-sections for the profile are provided a rather homogenous deformation degree. The curvature value of component and the distortion of section keep high consistence in push-bending process. The wrinkling tendency is reduced with increasing rela
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Ren, Sheng Le, Yi Nan Lai, Guang Fei Wu, Jun Tao Gu, and Zeng Lou Li. "Intelligent Prediction of Process Parameters for Cold Bending." Advanced Materials Research 154-155 (October 2010): 74–78. http://dx.doi.org/10.4028/www.scientific.net/amr.154-155.74.

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The choice of the process parameters in the conventional tube bending forming is often based on experience. The method of constantly testing to adjust has seriously affected the production efficiency and increased production costs. In this paper, an intelligent prediction model of the tube bending forming process parameters for utility boiler was set up based on neural network, which has been used to predict the main process parameters including the bending moment and boost power. In the intelligent prediction model, the analytical calculations, numerical simulation and experimental data are s
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Yang, Ming, and Susumu Shima. "Simulation of pyramid type three-roll bending process." International Journal of Mechanical Sciences 30, no. 12 (1988): 877–86. http://dx.doi.org/10.1016/0020-7403(88)90071-9.

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Leacock, Alan G., David McCracken, Desmond Brown, and Robert McMurray. "Numerical Simulation of the Four Roll Bending Process." Materials and Manufacturing Processes 27, no. 4 (2012): 370–76. http://dx.doi.org/10.1080/10426914.2011.560228.

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Dissertations / Theses on the topic "Simulation of bending process"

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Zeng, Jun. "Finite element modeling and simulation of roll bending process for forming a thick conical hollow shape." Thèse, Montréal : École de technologie supérieure, 2007. http://proquest.umi.com/pqdweb?did=1472130781&sid=12&Fmt=2&clientId=46962&RQT=309&VName=PQD.

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Thèse (M. Ing.)--École de technologie supérieure, Montréal, 2007.<br>"Master's thesis submitted to École de technologie supérieure in partial fulfillment of the requirements for the master's degree in mechanical engineering". CaQMUQET Bibliogr. : f. [107]-108. Également disponible en version électronique. CaQMUQET
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Zaikovska, Liene. "Simulation of a sheet metal leading edge for a three piece vane using bending and deep-drawing." Thesis, Högskolan Väst, Avd för maskinteknik, 2013. http://urn.kb.se/resolve?urn=urn:nbn:se:hv:diva-5802.

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Fu, Yao-Tsung. "Molecular Simulation of Dipsersion and Mechanical Stability of Organically Modified Layered Silicates in Polymer Matrices." University of Akron / OhioLINK, 2011. http://rave.ohiolink.edu/etdc/view?acc_num=akron1296182515.

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Кухар, В. В., та М. М. Нагнібеда. "Моделювання пружинення заготовки при одноперехідному та багатоперехідному гнутті". Thesis, Сумський державний університет, 2017. http://essuir.sumdu.edu.ua/handle/123456789/66593.

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Schneider, Toma, Antje Harling, and Frank Miletzky. "Generieren lastgerechter Materialparameter für FEM-gestützte Umformprognosen: am Beispiel von Karton-Verbundmaterialien." Thelem Universitätsverlag & Buchhandlung GmbH & Co. KG, 2021. https://tud.qucosa.de/id/qucosa%3A75880.

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Zwei wesentliche Vorrausetzungen zum Aufbau mechanischer Verhaltensprognosen auf Basis der finiten-Element-Methode (FEM) sind die Verfügbarkeit von Materialmodellen sowie zugehörige Messverfahren zur Parameterbestimmung. Gegenstand dieser Abhandlung ist die Vorstellung einer neuartigen Messmethodik zur Erhebung des plastischen Biege- und Faltverhaltens von faserbasierten Verbundmaterialien und dessen Anwendung zum vereinfachten Aufbau von numerischen Struktursimulationen. Als besonderes Merkmal sei dabei der Ansatz einer äußeren, integralen Verhaltensbeschreibung der vielfältigen Vorgänge auf
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Folle, Luís Fernando. "Estudo do coeficiente de atrito para processos de estampagem." reponame:Biblioteca Digital de Teses e Dissertações da UFRGS, 2012. http://hdl.handle.net/10183/76155.

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O atrito na interface entre a peça e a ferramenta tem considerável importância em operações de estampagem de chapas, são necessários conhecimentos precisos sobre processos de conformação de chapas para a análise e projeto de novas peças e ferramentas, assim como para validação de uma simulação numérica. Este trabalho usa o método de determinação do coeficiente de atrito em estampagem através do ensaio de dobramento sob tensão e avalia sua precisão com o uso do software de elementos finitos LS-DYNAFORM, específico para esse processo de fabricação. Como existem seis equações que calculam o coefi
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Barták, Jan. "Analýza procesu kování háku čelisťového výměnového závěru." Master's thesis, Vysoké učení technické v Brně. Fakulta strojního inženýrství, 2020. http://www.nusl.cz/ntk/nusl-416429.

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The thesis is focused on optimalization of jaw turnout lock hook forging process which is used in rail transport and is forged from steel of 13 240 grade. Production process of the hook, that is being used in Královopolská kovárna s.r.o. company now, leads to fold defect in the inner side of curved part formation. Conditions of the folds formation were defined using the numeric simulation of this process in Simufact Forming software. After that improvements such as change of semi-finished product size, change of geometry of ancestor shape, bending tools and forging die were made according to l
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Nguyen, Vinhson Ba. "Finite-element simulation of ram pipe bending." Thesis, University of Ottawa (Canada), 1988. http://hdl.handle.net/10393/5265.

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Raheem, Hassan Hassan [Verfasser]. "Plasto-Mechanical Model of Tube Bending in Rotary Draw Bending Process / Hassan Raheem Hassan." Aachen : Shaker, 2017. http://d-nb.info/1138178209/34.

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Ščerba, Bořek. "Vliv nastavení a konfigurace rovnačky na výsledky simulace kosoúhlého rovnání." Master's thesis, Vysoké učení technické v Brně. Fakulta strojního inženýrství, 2020. http://www.nusl.cz/ntk/nusl-418209.

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Analytical methods or implicit finite element method (FEM) with beam elements to model straightened bar were used to analyze straightening process in multi-staggered cross-roll straighteners up to now. These are effective but require certain simplifications. Aim of this thesis is to create an explicit FEM model allowing usage of solid elements for circular bar without disproportional increase of computational time. This may lead to deeper understanding of the straightening process. The model is to be verified using straightening tables and then used to quantify influence of rollers configurati
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Books on the topic "Simulation of bending process"

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Husain, Asghar. Chemical process simulation. Wiley Eastern, 1986.

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Furrer, D. U. Metals process simulation. Edited by ASM International. Handbook Committee. ASM International, 2010.

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Lorenz, J. 3-Dimensional Process Simulation. Springer Vienna, 1995.

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International, Conference on the Simulation of Electrochemical Processes (3rd 2009 Bologna Italy). Electrochemical process simulation III. WIT, 2009.

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Fagg, David. A process science simulation. typescript, 1990.

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Lorenz, J., ed. 3-Dimensional Process Simulation. Springer Vienna, 1995. http://dx.doi.org/10.1007/978-3-7091-6905-6.

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1945-, McConnell Robert R., and Technical Association of the Pulp and Paper Industry. Process Simulation Committee., eds. Introduction to process simulation. TAPPI Press, 1985.

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Jürgen, Lorenz, ed. 3-dimensional process simulation. Springer-Verlag, 1995.

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Sulis, Emilio, and Kuldar Taveter. Agent-Based Business Process Simulation. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-98816-6.

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Nurse, Owen Augustus. Material logistics and process simulation. Portsmouth Business School, 1988.

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Book chapters on the topic "Simulation of bending process"

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Kumar, Vikash, and Uday S. Dixit. "Optimization of Process Parameters in a Laser Bending Process Considering Microhardness." In Advances in Simulation, Product Design and Development. Springer Nature Singapore, 2022. http://dx.doi.org/10.1007/978-981-19-4556-4_12.

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Leacock, A. G., D. McCracken, D. Brown, and R. McMurray. "Numerical Simulation of the Four Roll Bending Process." In Proceedings of the 36th International MATADOR Conference. Springer London, 2010. http://dx.doi.org/10.1007/978-1-84996-432-6_4.

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Ridane, N., D. Jaksic, Matthias Kleiner, and B. Heller. "Enhanced Semi-Analytical Process Simulation of Air Bending." In Sheet Metal 2005. Trans Tech Publications Ltd., 2005. http://dx.doi.org/10.4028/0-87849-972-5.729.

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Ding, Shuhui, Xueyi Li, Peisi Zhong, and BinBing Huang. "Springback Analysis and Bending Process Numerical Simulation of Inserted Slice." In Advances in Mechanical and Electronic Engineering. Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-31516-9_21.

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Sun, Ming Yue, Shan Ping Lu, Dian Zhong Li, and Yi Yi Li. "Optimization of Bending Process of Large Marine Crankthrow by Computer Simulation." In Materials Science Forum. Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/0-87849-462-6.1949.

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Huang, Xia, Yuan Song Zeng, Zhi Qiang Li, and Xin Hua Zhang. "Numerical Simulation of Tube-Bending Process with Internal Pressure for Titanium Alloy Tube." In Materials Science Forum. Trans Tech Publications Ltd., 2005. http://dx.doi.org/10.4028/0-87849-960-1.3279.

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Chen, M. H., L. Gao, H. H. Mao, Dun Wen Zuo, and Min Wang. "Numerical Simulation of Stretch Bending Process and Springback for T Section Aluminum Extrusions." In Advances in Machining & Manufacturing Technology VIII. Trans Tech Publications Ltd., 2006. http://dx.doi.org/10.4028/0-87849-999-7.416.

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Zhang, Qian, Zuoqin Qian, Qiang Wang, and Xinyu Wang. "Research on the Design and Verification Process of Mechanical Penetrations in Reactor Compartment." In Lecture Notes in Mechanical Engineering. Springer Nature Singapore, 2024. http://dx.doi.org/10.1007/978-981-97-1876-4_29.

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AbstractMechanical penetrations, as important pressure pipelines penetrating the reactor compartment, withstand high temperatures and pressures. The current complete design and verification process for mechanical penetrations. This article focuses on the problem of stress concentration and easy damage of the penetration components in the reactor compartment under high temperature and high pressure environment. Combining with the existing regulations of nuclear power plants and ships, finite element analysis method is used to analyze the stress of the penetration components under specific high
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Mulay, Amrut, and Vadher Sameer. "Evaluation of Forming Factors for Titanium Gr. 2 Alloy Sheets with Multistage SPIF Process." In Lecture Notes in Mechanical Engineering. Springer International Publishing, 2024. http://dx.doi.org/10.1007/978-3-031-58006-2_4.

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AbstractIn the vast prospects for automation, incremental sheet forming (ISF) is a reliable sector on which the industry may focus in the future. Due to spring back, poor surface finish, and production time, ISF has yet to apply in broad prospects in mainstream high-value manufacturing sectors. ISF performance is affected by process factors such as vertical step depth, feed rate, spindle speed, forming angle, tool path, intermetallic friction, and bending forces. One of the variants of ISF processes is Single Point Incremental Forming (SPIF). The formability of the SPIF process increases by in
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Werner, Matthias Konrad, Daniel Maier, Simon Vitzthum, Carsten Intra, and Wolfram Volk. "Validation of numerical simulations for the reduced freeform bending process using a test bench." In Production at the leading edge of technology. Springer Berlin Heidelberg, 2019. http://dx.doi.org/10.1007/978-3-662-60417-5_15.

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Conference papers on the topic "Simulation of bending process"

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Le, Anh Chuong, Khai Le, Triet Hung Ho, Tran Anh Son, Quoc Nguyen Banh, and Minh Tuan Ho. "Effects of Groove Depth and Sheet Thickness on V-Bending Process Predicted by Finite Element Analysis." In 2024 International Conference on Machining, Materials and Mechanical Technologies. Trans Tech Publications Ltd, 2025. https://doi.org/10.4028/p-jlr02j.

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Springback is a significant challenge that affects forming accuracy in the sheet metal industry. This phenomenon occurs because elastic materials tend to revert to their original shape after the removal of deforming forces, leading to differences between the desired and final shapes of the metal. Currently, two primary methods are employed to investigate springback: physical experiments and numerical simulations. Physical experiments involve actual deformation of sheet metals to observe and measure springback. While these experiments can provide useful data and insights, they are often time-co
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Gao, Z. D., C. T. Tang, and A. M. Chen. "Simulation technology for NC tube bending process." In 2009 IEEE International Conference on Industrial Engineering and Engineering Management (IEEM). IEEE, 2009. http://dx.doi.org/10.1109/ieem.2009.5373169.

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Xu, Hongzhi. "THE SIMULATION OF THE Π-TYPE CONSTRAINT BENDING PROCESS". У Proceedings of the International Conference on Scientific and Engineering Computation (IC-SEC) 2002. PUBLISHED BY IMPERIAL COLLEGE PRESS AND DISTRIBUTED BY WORLD SCIENTIFIC PUBLISHING CO., 2002. http://dx.doi.org/10.1142/9781860949524_0108.

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Liu, Bing-Qian, Yong-Chen, Chao Xie, and Lei Shi. "Inventor-based simulation analysis for NC tube bending process." In The 2015 International Conference on Mechanics and Mechanical Engineering (MME 2015). WORLD SCIENTIFIC, 2016. http://dx.doi.org/10.1142/9789813145603_0045.

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Lieh, Junghsen, and Wei Jie Li. "Tube Bending Process: Part I — Theory." In ASME 2001 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2001. http://dx.doi.org/10.1115/imece2001/dsc-24588.

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Abstract This paper contains two parts, Part-I is focused on simulation of nonlinear springback problems. In part II, a fuzzy control law is implemented in order to compensate the nonlinearity and uncertainty in tube bending. By combining elasticity and plasticity theories, a mathematical model for predicting springback is established and Simpson’s integration rule is adopted. The discrepancy between theoretical and experimental results is used to examine the accuracy of established model.
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Fang, Yuanbin, Can Wang, and Liping Zhang. "Finite Element Simulation on Process Chain in Welding and Bending." In 2017 7th International Conference on Advanced Design and Manufacturing Engineering (ICADME 2017). Atlantis Press, 2017. http://dx.doi.org/10.2991/icadme-17.2017.87.

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Wang, Chuan-Tao, Gary L. Kinzel, and Taylan Altan. "Process Simulation and Springback Control in Plane Strain Sheet Bending." In International Congress & Exposition. SAE International, 1993. http://dx.doi.org/10.4271/930280.

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Feng, Zhengkun, and Henri Champliaud. "Modeling and Simulation of Mecano-Welding Process for Cylinders." In ASME 2012 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/detc2012-70337.

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Pyramidal three-roll bending is widely used in manufacture due to its simple configuration and advantage for thick plate roll bending. However, there remain two planar zones near the front and rear ends of the bent shape. A mecano-welding process which provides improved circularity of the bent shape is proposed in this paper. This process includes three sub-processes: the first sub-process is the roll bending from a plate with cylindrical rolls; the second sub-process is the gas metal arc-welding process used to join the gap of the bent tubular section; the third sub-process is the rerun roll
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Gandhi, A. H., H. V. Gajjar, and H. K. Raval. "Mathematical Modelling and Finite Element Simulation of Pre-Bending Stage of Three-Roller Plate Bending Process." In ASME 2008 International Manufacturing Science and Engineering Conference collocated with the 3rd JSME/ASME International Conference on Materials and Processing. ASMEDC, 2008. http://dx.doi.org/10.1115/msec_icmp2008-72454.

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Continuous three roller bending process is widely used in practice to bend the plates into cylinders. Bending load for plate material under bending is affected by plate thickness, width and shell diameter combinations. Maximum top roller load is encountered during the edge pre-bending stage as top roller is set at an offset distance from its mid position. Shell diameter, thickness and material for cylindrical structural element to be produced are fixed by design. Width of the plate for roller bending decides number of cylindrical segments required to achieve the designed shell length. Maximum
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Feng, Zhengkun, and Henri Champliaud. "Numerical Simulation of Mecano-Welding Process for Cylinder Manufacturing." In ASME 2012 Pressure Vessels and Piping Conference. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/pvp2012-78071.

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Pyramidal three-roll bending has the advantage of simple configuration and is widely used in manufacture. However, the bent shape has two planar zones near the front and rear ends. This paper proposes the modeling of the mecano-welding process which provides improved circularity of the bent shape. This process includes three sub-processes: the first sub-process is the roll bending from a plate with cylindrical rolls, the second sub-process which is the gas metal arc-welding process used to join the gap of the bent tubular section, and the third sub-process is the rerun roll bending of the weld
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Reports on the topic "Simulation of bending process"

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Panek, J., and S. Johnson. Cryogenic process simulation. Office of Scientific and Technical Information (OSTI), 1994. http://dx.doi.org/10.2172/10124508.

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Zeng, Liang, Qiang Zhou, and Liang-Shih Fan. Process/Equipment Co-Simulation on Syngas Chemical Looping Process. Office of Scientific and Technical Information (OSTI), 2012. http://dx.doi.org/10.2172/1132604.

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Jackson, Joseph W. Simulation master class - process reliability modeling. Office of Scientific and Technical Information (OSTI), 2011. http://dx.doi.org/10.2172/1098294.

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Allendorf, M. D., S. M. Ferko, and S. Griffiths. Process simulation for advanced composites production. Office of Scientific and Technical Information (OSTI), 1997. http://dx.doi.org/10.2172/494119.

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Ledjeff-Hey, K., J. Roes, V. Formanski, J. Gieshoff, and B. Vogel. Process simulation of a PEM fuel cell system. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/460303.

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Cuenca, Jay, Adam Bartley, Dieter Bachmann, et al. Cell and gene therapy aseptic process simulation reflections. BioPhorum, 2023. http://dx.doi.org/10.46220/2023cgt007.

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Spence, P. A., L. I. Weingarten, K. Schroder, D. M. Tung, and D. A. Sheaffer. Process control of large-scale finite element simulation software. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/205962.

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Taylor, Charles A., and Thomas J. Hughes. Process Design, Analysis and Simulation for Aluminum Extrusion Technology. Defense Technical Information Center, 1999. http://dx.doi.org/10.21236/ada367435.

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Mantock, James M., and Michael T. Gately. Casualty Handling Simulation Using the Scenario-based Engineering Process. Defense Technical Information Center, 2000. http://dx.doi.org/10.21236/ada375590.

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Morgan, Timothy D., and Roy A. Kesmodel. FOG-M Fiber Optics Winding Process Simulation and Validation. Defense Technical Information Center, 1988. http://dx.doi.org/10.21236/ada249034.

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