Academic literature on the topic 'Radius cutting edge'

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Journal articles on the topic "Radius cutting edge"

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Peter, Pokorný, Pätoprstý Boris, Vopát Tomáš, Peterka Jozef, Vozár Marek, and Šimna Vladimír. "Cutting edge radius preparation." Materials Today: Proceedings 22 (2020): 212–18. http://dx.doi.org/10.1016/j.matpr.2019.08.090.

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Zhang, Kai, Yindi Cai, Yuki Shimizu, Hiraku Matsukuma, and Wei Gao. "High-Precision Cutting Edge Radius Measurement of Single Point Diamond Tools Using an Atomic Force Microscope and a Reverse Cutting Edge Artifact." Applied Sciences 10, no. 14 (2020): 4799. http://dx.doi.org/10.3390/app10144799.

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This paper presents a measurement method for high-precision cutting edge radius of single point diamond tools using an atomic force microscope (AFM) and a reverse cutting edge artifact based on the edge reversal method. Reverse cutting edge artifact is fabricated by indenting a diamond tool into a soft metal workpiece with the bisector of the included angle between the tool’s rake face and clearance face perpendicular to the workpiece surface on a newly designed nanoindentation system. An AFM is applied to measure the topographies of the actual and the reverse diamond tool cutting edges. With
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Yang, Shu Cai, Min Li Zheng, Yi Hang Fan, and W. Xu. "Research on Cutting Performances of Tool Rounded Cutting Edge in High Speed Milling Hardened Steel." Advanced Materials Research 188 (March 2011): 139–44. http://dx.doi.org/10.4028/www.scientific.net/amr.188.139.

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Simulation models of both dynamic cutting forces and cutting temperatures considering effects of tool rounded cutting edge are established based on analysis of the influences of rounded cutting edge on high speed milling process. Influence law of tool rounded cutting edge radius on force and heat distribution in high speed milling hardened steel has been obtained according to the simulation results and also the simulation results have been verified by experiments. The results indicate that dynamic performances of high speed milling cutter in cutting hardened steel are directly influenced by ro
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Schimmel, Roy J., Jairam Manjunathaiah, and William J. Endres. "Edge Radius Variability and Force Measurement Considerations." Journal of Manufacturing Science and Engineering 122, no. 3 (1999): 590–93. http://dx.doi.org/10.1115/1.1286255.

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A new, noncontact instrument, based on white light interferometry, is used to measure the edge radii of cutting tools with measurement errors of less than 3 μm. Edges of several commercial cutting inserts are measured and compared. It is found that the radius of the hone varies along the length of the edge in a parabolic manner. The difference between the edge radius at the center of the edge and the radius at the start of the corner can be as large as 25 μm (0.001 in). The variation between the edges on an insert and across inserts in a batch of tools can be as high as 25 μm (0.001 in). Stati
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Wang, Hao, Ai Bing Yu, Liang Dong, and Lei Wu. "Wear Simulation for Edge Preparation Cutting Tools." Applied Mechanics and Materials 101-102 (September 2011): 1039–42. http://dx.doi.org/10.4028/www.scientific.net/amm.101-102.1039.

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Edge preparation is a process to modify edge geometry and surface integrity of cutting tools. Edge preparation experiments of tungsten carbide cutting tools were carried out through an abrasive nylon brushing method. Tools wear and cutting temperatures with different edge radius were simulated with FEM software. The experimental results show that cutting edge defects were eliminated through brushing edge preparation. The edge radius has influences on cutting tool performance. When the edge radius is 20μm, the least wear can be obtained. Then tool wear value increases with the edge radius. A su
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Chai, Guo Bing, Wei Wang, and Ai Bing Yu. "Influence of Edge Preparation on Cutting Tool Wear." Applied Mechanics and Materials 201-202 (October 2012): 1178–81. http://dx.doi.org/10.4028/www.scientific.net/amm.201-202.1178.

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Edge preparation is not only the process of grinding proper geometry of cutting edge or removing micro-cracks on cutting edge region, but also a way of improving cutting tool life. In this study, cutting models with different cutting edge radius were set up with FEM software. Medium carbon steel cutting tests were carried out using cutting tools with different edge radius. Cutting tool wear was simulated and measured for comparison. The simulation results show that edge radius has influences on tool wear. Tool cutting behavior is concerned with edge radius. A proper edge radius will improve th
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Tian, Xin Li, Hao Wang, Xiu Jian Tang, Zhao Li, and Ai Bing Yu. "Edge Design for Regrinding Cutting Tool." Applied Mechanics and Materials 101-102 (September 2011): 938–41. http://dx.doi.org/10.4028/www.scientific.net/amm.101-102.938.

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Regrinding of wasted cutting tools can recycle resources and decrease manufacturing costs. Influence of relative tool sharpness and tool cutting edge angle on tool edge radius were analyzed. Cutting force and cutting temperature were simulated with FEM on different edge radius. Edge preparation experiments were carried out though an abrasive nylon brushing method. The results show that RTS and cutting edge angle have influence on edge radius. Small edge radius might result in small cutting forces and lower average temperatures, could maintain the cutting state between tool and workpiece. The c
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Fan, Yi Hang, Min Li Zheng, Shu Cai Yang, Wei Zhang, and De Qiang Zhang. "Finite Element Analysis of the Influence of Cutting Edge Radius on Mechanical-Thermal Distribution in High-Speed Cutting TiAl6v4." Key Engineering Materials 458 (December 2010): 295–300. http://dx.doi.org/10.4028/www.scientific.net/kem.458.295.

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On the basis of analyzing the cutting edge structure and cutting edge radius measurement of high-speed insert, thermal - mechanical coupling finite element method (FEM) is used in this paper, to obtain the effect law of different cutting edge radius on the mechanical-thermal distribution of high-speed cutting TiAl6V4. At last, cutting experiments are carried out to verify FEM results. There is a clear exposition of the intrinsic reason why the cutting edge radius has influence on the mechanical -thermal distribution of high-speed cutting process. The results indicate that the experimental resu
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Tian, Xin Li, Zhao Li, Xiu Jian Tang, Fang Guo, and Ai Bing Yu. "Influence of Reground Tool Sharpness on Micro-Cutting Process." Applied Mechanics and Materials 37-38 (November 2010): 550–53. http://dx.doi.org/10.4028/www.scientific.net/amm.37-38.550.

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Tool edge radius has obvious influences on micro-cutting process. It considers the ratio of the cutting edge radius and the uncut chip thickness as the relative tool sharpness (RST). FEM simulations of orthogonal cutting processes were studied with dynamics explicit ALE method. AISI 1045 steel was chosen for workpiece, and cemented carbide was chosen for cutting tool. Sixteen cutting edges with different RTS values were chosen for analysis. Cutting forces and temperature distributions were calculated for carbide cutting tools with these RTS values. Cutting edge with a small RTS obtains large c
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Cao, Zi Yang, Ning He, and Liang Li. "A Finite Element Analysis of Micro/Meso-Scale Machining Considering the Cutting Edge Radius." Applied Mechanics and Materials 10-12 (December 2007): 631–36. http://dx.doi.org/10.4028/www.scientific.net/amm.10-12.631.

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In order to investigate the effects of cutting edge radius on micro/meso-scale cutting process, the current paper is concerned with a fundamental investigation of the contribution of cutting edge radius to cutting temperature, stress field and size effect by means of two-dimensional finite-element simulation for orthogonal cutting process. The results indicated that cutting edge radius has remarkable effects on cutting temperature and stress field, and the existence of cutting edge radius is one of the main reasons generating size effect. The cutting edge radius affects the micro/meso scale cu
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Dissertations / Theses on the topic "Radius cutting edge"

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Kandibanda, Rajesh. "TOPOLOGY-BASED MODELING AND ANALYSIS OF ORTHOGONAL CUTTING PROCESS." UKnowledge, 2008. http://uknowledge.uky.edu/gradschool_theses/512.

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This thesis presents the application of topology to machining at the micro and macro levels through an experimental study, modeling and analysis. Uncoated carbide tools of four different cutting edge radii and four different feed rates are used to perform orthogonal machining on AISI 1045 steel disks. The study analyzes the cutting forces, changing grain boundary parameters, micro-hardness, temperature and correlates them to the residual stresses that hold a key to the product life. This analysis helps to understand and evaluate the aspects of grain boundary engineering that influence the fati
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Голобородько, Л. В., Сергей Сергеевич Некрасов, Сергій Сергійович Некрасов та Serhii Serhiiovych Nekrasov. "Экспериментальное исследование кинетики радиуса округления режущей кромки концевой фрезы". Thesis, Видавництво СумДУ, 2010. http://essuir.sumdu.edu.ua/handle/123456789/3851.

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Guyout, Laurent. "Usinabilité d'aciers inoxydables type 316 L : application au micro-fraisage." Thesis, Besançon, 2014. http://www.theses.fr/2014BESA2002/document.

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Le micro-fraisage (diamètre fraise < 1 mm) permet l’usinage précis de structures en 3D, à des dimensions micrométriques, dans desmatériaux d’ingénierie, se plaçant aux frontières de deux mondes : d’une part, le fraisage traditionnel appelé « fraisage macro » et d’autre part,la micro-fabrication et ses techniques dites de « salle blanche ».L'étude innovante porte sur le micro-fraisage d’aciers inoxydables 316L avec des micro-fraises cylindriques en carbure de tungstèneavec un équipement industriel (machine outil commercialisée et non optimisée) permet d’accentuer les nombreuses difficultés t
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Іщик, Дмитро Володимирович. "Підвищення якості свердел із швидкорізальної сталі при магнітно-абразивному обробленні". Master's thesis, Київ, 2018. https://ela.kpi.ua/handle/123456789/26703.

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Дисертація на здобуття наукового ступеня магістра за спеціальністю 133 – Галузеве машинобудування. – Національний технічний університет України "Київський політехнічний інститут імені Ігоря Сікорського". – Київ, 2018. Проаналізувавши сучасні методи покращення якості та продуктивності різальної кромки металорізального інструменту, на прикладі свердел, було обрано метод магнітно-абразивного оброблення. Даний метод дозволив досягти значного покращення якості різальної кромки (шорсткості), збільшення значення твердості поверхневого шару і відповідно – періоду стійкості свердла. В дисертації пр
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Стецишин, Володимир Тарасович, та V. T. Stetsyshyn. "Дослідження особливостей розсвердлювання глибоких отворів інструментом з гідро адаптацією різальних елементів". Master's thesis, 2020. http://elartu.tntu.edu.ua/handle/lib/32103.

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У кваліфікаційній дипломній роботі магістра наведені результати досліджень особливостей розсвердлювання отворів значної глибини при застосуванні у якості інструменту спеціального свердла з гідро адаптацією лез. Метою роботи є підвищення ефективності процесу глибокого розсвердлювання із застосуванням радіально-свердлильного верстату<br>The Master Diploma Qualification Paper deals with the research results of the characteristic features determination of deep holes boring using drill with cutting tools hydro-adaptation. The goal of research is to increase the effectiveness of deep hole enlargi
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Books on the topic "Radius cutting edge"

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Lee, Osterman A., ed. Fractures and injuries of the distal radius and carpus: The cutting edge. Saunders/Elsevier, 2009.

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(Editor), Peter M. Lewis, and Susan Jones (Editor), eds. From the Margins to the Cutting Edge: Community Media And Empowerment (The Iamcr Book Series). Not Avail, 2006.

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Laird, Tracey. Country Music and Television. Edited by Travis D. Stimeling. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780190248178.013.28.

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The country music variety show Hee Haw simultaneously hearkened back to radio era precedents and embraced cutting edge production and editing techniques. This chapter situates Hee Haw’s 1969 debut among earliest examples of televised country music that merely added visual components to radio formats, followed by sitcoms like the Andy Griffith Show or Beverly Hillbillies that used country music for added color and bumpkin humor. Hee Haw embraced a rapid-fire, nonnarrative, “postmodern” aesthetic directly inspired by its predecessor, Laugh-In. Distinct from contemporary variety programs hosted b
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Book chapters on the topic "Radius cutting edge"

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Pérez-Salinas, Cristian, L. N. López de Lacalle, Pablo Fernández-Lucio, and Octavio Pereira-Neto. "Planetary Dragging Cutting Edge Treatment and Edge Rounding Prediction on Carbide Tools." In Proceedings of the XV Ibero-American Congress of Mechanical Engineering. Springer International Publishing, 2023. http://dx.doi.org/10.1007/978-3-031-38563-6_43.

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AbstractThis paper describes the use of the “Dragging” (DF) cutting edge preparation process with 2 grit sizes and three mixing ratios. Both the immersion depth of the tool in the abrasive medium and the dragging duration time were manipulated. A Repeatability and Reproducibility (R&amp;R) analysis and edge radius (ER) prediction were carried out using Machine Learning by Artificial Neural Network (ANN). The results achieved were that the influencing factors on the ER in order of importance were drag depth, drag time, mixing percentage and grain size respectively. Furthermore, the reproduction
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Saedon, Juri, Noor Aniza Norrdin, Mohd Azman Yahaya, Mohd Shahir Kasim, and NorHafiez Mohamad Nor. "Investigation of Cutting Edge Radius Effect in Macro-machining and Micro-machining." In Regional Conference on Science, Technology and Social Sciences (RCSTSS 2014). Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-0534-3_2.

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Deng, Wen Jun, Yong Tang, Wei Xia, and Zhen Ping Wan. "Effect of Rounded Cutting Edge Radius on Residual Stress within Machined Sublayer." In Materials Science Forum. Trans Tech Publications Ltd., 2006. http://dx.doi.org/10.4028/0-87849-421-9.536.

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Mane, Siddharam, Shyamprasad Karagadde, and Suhas S. Joshi. "Study of Cutting Edge Radius Effect on the Cutting Forces and Temperature During Machining of Ti6Al4V." In Lecture Notes on Multidisciplinary Industrial Engineering. Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-32-9072-3_26.

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Zong, Wen Jun, Dan Li, T. Sun, K. Cheng, and Ying Chun Liang. "The Factors Influencing on Cutting Edge Radius of Ultra-Precision Diamond Cutting Tools in Mechanical Lapping." In Advances in Grinding and Abrasive Technology XIII. Trans Tech Publications Ltd., 2006. http://dx.doi.org/10.4028/0-87849-986-5.345.

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Pätoprstý, Boris, Marek Vozár, Peter Pokorný, et al. "Development of Cutting Edge Radius Size of Solid Carbide Mills When Drag Finishing." In Vehicle and Automotive Engineering 3. Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-9529-5_8.

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Borys, Storch, and Żurawski Łukasz. "Unified Mathematic and Geometric Model of Cutting Edge Separation with Corner Radius in Turning." In Lecture Notes in Mechanical Engineering. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-49910-5_2.

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Gupta, Akhilesh, G. Ganesan, Sonal Sonal, A. S. Rao, Rakesh G. Mote, and R. Balasubramaniam. "Characterization of Cutting Edge Radius of a Single Crystal Diamond Tool by Atomic Force Microscopy." In Lecture Notes on Multidisciplinary Industrial Engineering. Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-32-9425-7_20.

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Tomadi, S. H., Nor Farah Huda Abd Halim, A. N. Dahnel, Amar Syazwan Rosman, G. Umma Sankar, and Lim Joo Eng. "Optimization Study on Width of Cut and Cutting-Edge Radius During Side Milling of DAC 55 Steel." In Lecture Notes in Mechanical Engineering. Springer Nature Singapore, 2022. http://dx.doi.org/10.1007/978-981-19-3179-6_38.

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Abd Halim, N. F. H., A. N. Dahnel, Umma Sankar Gunasegaran, Lim Joo Eng, M. S. Mohamad Amiruddin, and S. H. Tomadi. "Influence of Cutting Edge Radius (CER) and Width of Cut (WOC) on Tool Wear in Milling SUS 316 Stainless Steel." In Proceeding of 5th International Conference on Advances in Manufacturing and Materials Engineering. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-9509-5_3.

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Conference papers on the topic "Radius cutting edge"

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Murshed, Abu Hena, Karthik Kakaraparty, Russell C. Reid, and Ifana Mahbub. "A Novel Thermally-Activated Carbonyl Paint-Based Metasurface Absorber for Cutting-Edge RF Switch Applications." In 2025 IEEE Radio and Wireless Symposium (RWS). IEEE, 2025. https://doi.org/10.1109/rws62086.2025.10904840.

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Hu, Jianwen, Y. Kevin Chou, and Raymond G. Thompson. "Cutting Edge Radius Effects on Diamond Coated Cutting Tools: From Deposition to Machining." In ASME 2007 International Manufacturing Science and Engineering Conference. ASMEDC, 2007. http://dx.doi.org/10.1115/msec2007-31043.

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Diamond coatings have been increasingly extended to cutting tool applications for machining advanced materials such high-silicon aluminum alloys. Diamond coating tool behaviors are interrelatedly influenced by both the coating and subsequent machining, and yet the tool edge geometry strongly impacts the stress fields around the cutting edge during each process. To effectively use diamond coating tools, it is necessary to understand the stress modifications around the tool edge due to the deposition and during machining. In this study, finite element modeling was applied to simulate deposition
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Schimmel, Roy J., Jairam Manjunathaiah, and William J. Endres. "An Experimental Investigation of the Variability of Edge Hones and Their Effects on Machining Forces." In ASME 1997 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 1997. http://dx.doi.org/10.1115/imece1997-1161.

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Abstract A new, non-contact instrument is identified for measuring the edge radii of cutting tools to a very high degree of accuracy. The instrument uses white light interferometry combined with accurate axis movements and software algorithms to make the measurements. Using this technique, the edges of several commercial cutting inserts are measured and compared. It is found that the radius of the hone varies along the length of the edge in a parabolic manner. The difference between the edge radius at the center of the edge to the radius at the start of the nose can be as large as 25μm (0.001i
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Qin, Feng, and Y. Kevin Chou. "Case Studies of Diamond-Coated Tool Cutting Simulations: Coating Thickness and Cutting Speed Effects." In ASME 2010 International Manufacturing Science and Engineering Conference. ASMEDC, 2010. http://dx.doi.org/10.1115/msec2010-34306.

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Due to the interwoven effects in both diamond deposition and subsequent machining processes, the tool geometry and process parameters have compound effects on the thermal and mechanical states in diamond-coated cutting tools during machining. For example, increasing the coating thickness tends to increase deposition-induced residual stresses at the tool edge interface. Further, a thick coating will introduce a greater machining load due to an enlarged edge radius. However, it has not been investigated how the coating thickness affects the thermo-mechanical behaviors of diamond-coated tools dur
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Ma, J., Yaowei Yong, and Shuting Lei. "3D FEM Investigation of the Effects of Nose Radius and Edge Radius on Turning of AISI 4140." In ASME 2012 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/imece2012-88333.

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In this paper, FEM is employed to investigate the effects of nose radius and edge radius on the turning of AISI4140. The tool material used is Carbide and Johnson-Cook plastic model is employed to model the workpiece due to its capability of modeling large strains, high strain rates, and temperature dependent visco-plasticity. Different nose radii and edge radii are used to explore the effects of the nose radius and edge radius on the machining temperature, cutting forces, and power. This model provides a fundamental understanding of cutting mechanics of the turning operation of AISI 4140.
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Lu, Xiaohong, Hua Wang, Zhenyuan Jia, Likun Si, and Steven Y. Liang. "Effects of Tool Nose Corner Radius and Main Cutting-Edge Radius on Cutting Temperature in Micro-Milling Inconel 718 Process." In ASME 2017 12th International Manufacturing Science and Engineering Conference collocated with the JSME/ASME 2017 6th International Conference on Materials and Processing. American Society of Mechanical Engineers, 2017. http://dx.doi.org/10.1115/msec2017-2997.

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Cutting temperature plays an important role in micro-scale cutting process because the dimension of the micro-milling cutter is relatively small and the wear of micro-milling cutter is sensitive to temperature. Considering the sidewall of a groove is formed by main cutting edge of the tool, and the bottom of a groove is formed by tool tip and the edge on the end of the tool. Therefore, effects of tool nose corner radius and main cutting edge radius on cutting temperature in micro-milling process cannot be ignored. However, few studies have been conducted on this issue. The effects of tool nose
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Narita, Hirohisa. "Surface Roughness Analysis for Radius End Mill in Cross Feed Direction Both Contour and Scanning Line Machinings." In JSME 2020 Conference on Leading Edge Manufacturing/Materials and Processing. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/lemp2020-8575.

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Abstract An optimum experimental condition, which realize good surface roughness in cross direction both contour and scanning lines, for radius end mill against some inclined surfaces is obtained and some features is these cutting processes is discussed in this paper. The optimum experimental condition, which consists of cutting type (or feed direction), spindle speed, feed rate, depth of immersion, inclination angle, corner radius of end mill and cross feed, is obtained and the influence degree of these parameters is calculated by using Taguchi method. The experiment is carried out based on L
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Li, P. X., D. Stein, R. Ghosh, and I. S. Jawahir. "Engaged Cutting Edge Effects on Tool-Wear and Tool-Life in Turning Operations Using Grooved Cutting Tools." In ASME 1997 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 1997. http://dx.doi.org/10.1115/imece1997-1163.

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Abstract This paper presents a systematic approach to the assessment of tool-wear/tool-life and provides a new relationship between the effective engaged cutting edge and tool-wear in machining with grooved tools. It is found that the tool-wear patterns change with varying cutting edge angles and nose radii; both of which affect the engaged length of the cutting tool. Four different cutting edge angles and nose radii are tested. Tool-life is then validated by a new tool-life equation which includes the operational effects of the cutting edge angle and the tool nose radius.
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Ranganath, Santosh, Albert B. Campbell, and Jihong Hwang. "Experimental Investigation and Mechanistic Modeling of the Effects of Tool Edge Hone Effects in Turning Operations." In ASME 2005 International Mechanical Engineering Congress and Exposition. ASMEDC, 2005. http://dx.doi.org/10.1115/imece2005-82893.

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Cutting force predictions from machining process models are generally accurate to within 20% for a specific tool and work material combination over a wide range of cutting conditions when calibrations are accurately performed. The calibration implicitly assumes that the tool used in the cut has a sharp cutting edge (zero radius) or identical (and maybe unknown) cutting edge radius. Significantly higher errors (more than 20%) in force calculations are seen when the same calibration data is used for predictions across a wide range of edge radii, also referred to as an edge hone. This paper descr
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Rech, J. "Influence of Cutting Edge Radius of Coated Tool in Orthogonal Cutting of Alloy Steel." In MATERIALS PROCESSING AND DESIGN: Modeling, Simulation and Applications - NUMIFORM 2004 - Proceedings of the 8th International Conference on Numerical Methods in Industrial Forming Processes. AIP, 2004. http://dx.doi.org/10.1063/1.1766725.

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