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Journal articles on the topic 'Oblique cutting'

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1

Shamoto, E., and Y. Altıntas. "Prediction of Shear Angle in Oblique Cutting with Maximum Shear Stress and Minimum Energy Principles." Journal of Manufacturing Science and Engineering 121, no. 3 (1999): 399–407. http://dx.doi.org/10.1115/1.2832695.

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A new shear angle prediction theory is proposed for oblique cutting operations. Oblique cutting mechanics are described by two components of shear angle, two angles defining direction of resultant cutting force, and chip flow angle. The five unknown parameters describe the geometry of chip deformation, velocities and forces in oblique cutting. When combined with the material dependent shear stress and average chip—rake face friction coefficient, cutting forces in three Cartesian directions can be predicted. In this paper, the mechanics of oblique cutting are described by five expressions. Thre
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2

Filippov, A. V., and E. O. Filippova. "Determination of Cutting Forces in Oblique Cutting." Applied Mechanics and Materials 756 (April 2015): 659–64. http://dx.doi.org/10.4028/www.scientific.net/amm.756.659.

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This study describes the method of determining cutting force components in oblique turning. The scheme of how the investigations were performed is presented. The characteristic curves of cutting force components vs. thickness of the material removed, tool clearance and tool rake angles are shown. The study presents the data, which have been obtained during the experimental investigations and analytically calculated, on how the cutting forces are subject to changes depending on a cutter angle, cutting depth and feed in oblique turning operations. The analysis of approximation of the experimenta
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3

Wang, Lei, Bin Lin, Yu Guo, and Ji Ming Yao. "Optimization of End Mill Geometry Parameters Based on Oblique Cutting Theory." Key Engineering Materials 693 (May 2016): 850–55. http://dx.doi.org/10.4028/www.scientific.net/kem.693.850.

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An optimization method of end mill geometry parameters is presented for minimizing cutting energy. The helical end mill geometry is established at first. Then, the helical flutes are decomposed a set of infinitesimal oblique cutting edges. At every oblique cutting element, the differential cutting energy, which consists of differential shear energy and differential friction energy, is calculated using oblique cutting theory. By integrating the differential cutting energy along each cutting edge in the end mill, the cutting energy can be predicted during end milling. The effects on cutting ener
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4

Mikolajczyk, Tadeusz, Hubert Latos, Tomasz Paczkowski, Danil Y. Pimenov, and Tomasz Szynka. "Innovative tools for oblique cutting." Procedia Manufacturing 22 (2018): 166–71. http://dx.doi.org/10.1016/j.promfg.2018.03.026.

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5

Awasare, A. "Comparative Analysis of Orthogonal and Oblique Cutting Operations in Machining: Performance, Efficiency, and Surface Quality." Journal of Advanced Research in Industrial Engineering 7, no. 1 (2025): 24–28. https://doi.org/10.5281/zenodo.15235693.

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<em>Machining operations involve various cutting techniques, among which orthogonal and oblique cutting play significant roles in material removal processes. Orthogonal cutting is characterized by a perpendicular cutting-edge orientation, leading to simplified force analysis and chip formation, whereas oblique cutting involves an inclined cutting edge, resulting in complex force dynamics and improved surface finish. This study explores the fundamental differences between these two cutting methods, analyzing their effects on tool wear, cutting forces, chip morphology, and thermal characteristic
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6

Yuliawan, Wendi. "Pertumbuhan Beberapa Bentuk Potongan Pangkal Setek Tanaman Mawar (Rosa sp.) Akibat Cara Aplikasi Zat Pengatur Tumbuh Root-Up." Paspalum: Jurnal Ilmiah Pertanian 7, no. 1 (2019): 42. http://dx.doi.org/10.35138/paspalum.v7i1.111.

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The research aims to study the growth of rose cuttings due to the shape of the base of cuttings and the way of Root-up application. The experiment was carried out in Screen House in Pasirbanteng, Hegarmanah Village, Jatinangor District. Sumedang Regency. The experiment was conducted from March to August 2015. The methode based on Randomized Block Design consisting of two factors. The first factor is the Root-up (W) application method which consists of 3 factor levels, namely without root up (w1), powder (w2), and paste (w3). The second factor is Form Cutting (S) consisting of 3 levels of treat
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7

Lee, Young Moon, Seung Han Yang, and Seung Il Chang. "Shear and Friction Processes in Intermittent Cutting." International Journal of Modern Physics B 17, no. 08n09 (2003): 1401–7. http://dx.doi.org/10.1142/s021797920301906x.

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In intermittent cutting processes, characterized by the use of rotating tools, the undeformed chip thickness varies periodically according to the phase change of tool. Although many studies have already concentrated on intermittent cutting processes, there has been no previous analysis of the shear and friction processes. In the current study, an up-end milling process is transformed into an equivalent oblique cutting process. The varying undeformed chip thicknesses and cutting forces in the up-end milling process are thus replaced with the equivalent average ones. As a result, the shear proce
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8

Atkins, A. G. "Toughness and Oblique Metalcutting." Journal of Manufacturing Science and Engineering 128, no. 3 (2005): 775–86. http://dx.doi.org/10.1115/1.2164506.

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The implications of whether new surfaces in cutting are formed just by plastic flow past the tool or by some fracturelike separation process involving significant surface work, are discussed. Oblique metalcutting is investigated using the ideas contained in a new algebraic model for the orthogonal machining of metals (Atkins, A. G., 2003, “Modeling Metalcutting Using Modern Ductile Fracture Mechanics: Quantitative Explanations for Some Longstanding Problems,” Int. J. Mech. Sci., 45, pp. 373–396) in which significant surface work (ductile fracture toughnesses) is incorporated. The model is able
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9

Zhang, Yanqing, Qingliang Cui, Hongbo Li, Zhiyong Zhang, Yongqiang He, and Deng Sun. "SIMULATION AND TEST OF CUTTING MECHANICAL CHARACTERISTICS OF MILLET STALK BASED ON ANSYS/LS-DYNA." INMATEH Vol.61 61, no. 2 (2020): 143–50. http://dx.doi.org/10.35633/inmateh-61-16.

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In order to find the variations of mechanical properties of millet stalk during dynamic cutting, a three-dimensional model of cutting parts and a double-layer flexible model of millet stalk were established in this study. The mechanical cutting properties of millet stalk at different cutting speeds and blade oblique angles were investigated based on ANSYS/LS-DYNA, while the verification tests were carried out based on the self-made cutting test bench. Simulation results showed that the maximum Von Mises stress was concentrated on the contact point of the stalk and the moving blade. The maximum
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10

Fuchylo, Ya D., and O. O. Bordus. "Cultivation of one-year poplar plants rooted in autumn and spring with the use of different methods of cutting planting material." Scientific Papers of the Institute of Bioenergy Crops and Sugar Beet, no. 30 (December 26, 2022): 96–104. http://dx.doi.org/10.47414/np.30.2022.268969.

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Purpose. Study of the peculiarities of growing one-year cutting seedlings of four cultivars of the black poplar under the conditions of the Right Bank Forest Steppe using cuttings with a perpendicular and oblique section.&#x0D; Methods. Field, laboratory, statistical.&#x0D; Results. Cuttings of cultivars ‘Dorskamp’, ‘I-45/51’, ‘Robusta’ and Toropohrytskyi’s poplar 20 cm long were planted in November and early April for three years. The cuttings for rooting were cut from one-year-old shoots using secateurs, with cuts (i) perpendicular to the axis of the shoots and (ii) an angle of 45º. In an av
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11

Song, Ge, Shaochun Sui, and Limin Tang. "Precision prediction of cutting force in oblique cutting operation." International Journal of Advanced Manufacturing Technology 81, no. 1-4 (2015): 553–62. http://dx.doi.org/10.1007/s00170-015-7206-z.

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12

Zhang, Xiang Hua, and Guo Hong Dai. "Study on Numerical Modeling of Three Dimensional Oblique Cutting for Aluminum Alloy Cutting Process." Applied Mechanics and Materials 37-38 (November 2010): 1316–20. http://dx.doi.org/10.4028/www.scientific.net/amm.37-38.1316.

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To reveal the cutting process of aluminum alloy 7050, the oblique cutting finite element model was established to simulate the cutting process. The key techniques including material constitutive model and temperature finite element model were investigated. The chip of aluminum alloy 7050 formed in the simulation of cutting process, and the cutting force curve and cutting temperature distribution were analyzed. The chip obtained by simulation is spiral, and the chip shape of simulation agrees well with the chip of cutting experiment. The oblique cutting finite element model of aluminum alloy 70
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13

Wang, Wei, Shilin Wang, Jinqi Zhang, Xiaolan Lv, and Zhongyi Yi. "Experiment and Research on Cutting Mechanical Properties of Little Cabbage." Applied Sciences 12, no. 4 (2022): 2060. http://dx.doi.org/10.3390/app12042060.

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To reduce the cutting force and cutting power consumption during harvest, the cutting mechanical properties of the root of little cabbage were studied. The cutting experiment was carried out using a texture analyzer, and the influence of the individual factors, the cutting bevel angle, the sliding angle, and the cutting gap on the maximum cutting stress and specific cutting energy were studied, respectively. On the basis of single factor experiments, multi-factor experiments were carried out using the central composite design scheme of the response surface method (RSM), and finally, the cuttin
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14

Wang, Mu Lan, Jun Ming Hou, Bao Sheng Wang, and Wen Zheng Ding. "Modeling and Experiment of the Cutting Force for Aluminium Alloy Work-Piece." Applied Mechanics and Materials 268-270 (December 2012): 422–25. http://dx.doi.org/10.4028/www.scientific.net/amm.268-270.422.

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The application of Finite Element Method (FEM) in cutting force model for Aluminium alloy work-piece is useful to reduce the production costs and shorten the experimental period. Firstly, the theoretical model of the orthogonal cutting and the oblique cutting are analyzed in this paper. And then, the corresponding finite element models are theoretically constructed. By comparing the results, the following conclusions are drawn: with the increase of the cutting thickness, the cutting force increasing is in an enhancement tendency. The oblique cutting model of overall tool is more conductive to
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15

Wu, Wei Guo, Gui Cheng Wang, and Chun Gen Shen. "Analysis of Cutting Forces in Helical Ball-End Milling Based on Coordinate Conversion." Advanced Materials Research 139-141 (October 2010): 917–20. http://dx.doi.org/10.4028/www.scientific.net/amr.139-141.917.

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In this work, the prediction and analysis of cutting forces in helical ball-end milling operations is presented. The cutting forces model for helical end-mills is based on the oblique cutting theory and the geometric relations of the ball-end milling process. The helical flutes are divided into small differential oblique cutting edge segments. According to the transformation relationship between the local and global coordinate system of the cutter, the differential cutting force of cutting element is obtained by two coordinate conversions from the orthogonal cutting force. The total cutting fo
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16

Pi, Jun, Guang Yang, and Fei Ye. "Study on Impact Stress Characteristics in Ultrasonic Cutting and Brittle Material Removal Mechanism." Advanced Materials Research 753-755 (August 2013): 287–97. http://dx.doi.org/10.4028/www.scientific.net/amr.753-755.287.

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The impact of cutter against the materials can be regarded as the rigid ball with certain energy oblique impact against the semi infinite space in the ultrasonic vibration cutting process. The cutter and materials three-dimensional surface stress state was theoretically deduced from building the dynamic shock model in Hertz contact state. Ultrasonic vibration cutting in the tiny cutting depth can be regarded as the contact extrusion process of blunt pressure head oblique impact on materials, the material indentation and crack development trend was given based on the surface stress analysis and
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17

Lin, S.-Y., and C.-K. Chen. "Construction of a dynamic cutting force model for oblique cutting." Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture 224, no. 3 (2009): 361–72. http://dx.doi.org/10.1243/09544054jem1568.

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18

Lin, Zone-Ching, and Yeou-Yih Lin. "A study of oblique cutting for different low cutting speeds." Journal of Materials Processing Technology 115, no. 3 (2001): 313–25. http://dx.doi.org/10.1016/s0924-0136(01)00997-9.

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19

KATO, Daiki, Kiyoshi ISOGIMI, Yutaka SAWAKI, and Eitoku NAKANISHI. "305 New trial to dry cutting : Application of oblique cutting." Proceedings of Conference of Tokai Branch 2005.54 (2005): 61–62. http://dx.doi.org/10.1299/jsmetokai.2005.54.61.

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20

Storchak, Michael, and Maria A. Lekveishvili. "Improvement of Analytical Model for Oblique Cutting—Part I: Identification of Mechanical Characteristics of Machined Material." Metals 13, no. 10 (2023): 1750. http://dx.doi.org/10.3390/met13101750.

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Analytical cutting models have recently become quite widespread due to the simplicity and rapidity of calculations as well as the stability of the solutions. This paper considers a procedure for determining the mechanical properties of machined material based on parameters for the analytical model of oblique cutting for a certain range of changes in cutting modes and inclination angles of the tool cutting edge. The model is based on the energy method of determining the main cutting process characteristics using the extreme assumptions of continuum mechanics. It is proposed to determine the par
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21

Rashkivskiy, Volodymyr, and Bohdan Fedyshyn. "Analysis of character nature in the work of spatially oriented knifes of dynamic action." Gіrnichі, budіvelnі, dorozhnі ta melіorativnі mashini, no. 97 (July 29, 2021): 57–61. http://dx.doi.org/10.32347/gbdmm2021.97.0402.

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The results of the analysis of the nature of chip formation in frontal and oblique cutting of soils are presented. Experimental data of soil cutting with spatially oriented knives of Professor Smirnov V.M. Where a number of experiments were carried out using knives of oblique cutting, namely: planning knife 25 cm wide; sharp knives 3,5,7 and 10 cm wide with a cutting angle of 30, 50, 70 and 90 degrees and with a rotation angle of 0 °; 22 ° 30 '; 45 ° and 67 ° 30 '. The hypothesis of chip formation at work of the spatially oriented knife of dynamic action is made.
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22

Chandrasekharan, V., S. G. Kapoor, and R. E. DeVor. "A Mechanistic Model to Predict the Cutting Force System for Arbitrary Drill Point Geometry." Journal of Manufacturing Science and Engineering 120, no. 3 (1998): 563–70. http://dx.doi.org/10.1115/1.2830160.

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A mechanistic model is developed to predict the forces for arbitrary drill point geometry. The cutting lips are divided into elements and the elemental forces are determined from a fundamental oblique cutting model. A method is developed to parametrically define the cutting lip in three-dimensional space and to determine the oblique cutting parameters (cutting angles and chip thickness) at each element on the cutting lip. The model does not require calibration experiments for each point geometry. The conical drill is used to determine the model coefficients for a tool and workpiece material co
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23

Wang, Chun, Hao Cheng, and Bin Su. "Johnson Cook Material Model and Simulation Experiment of Aluminum Alloy 6005A." Advanced Materials Research 472-475 (February 2012): 510–14. http://dx.doi.org/10.4028/www.scientific.net/amr.472-475.510.

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The true stress-strain curve of aluminum alloy 6005A is attained by quasi-static compression experiments, and Johnson Cook material model parameters of aluminum alloy 6005A is determined by using least-squares fitting. The aluminum alloy 6005A finite element model of the oblique cutting process is established in ABAQUS software, and verified by the oblique cutting simulation and experiments. The finite element model of high-speed side milling process is also established and the influence of milling cutter spiral angle on cutting force is analyzed.
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24

Vyhovskyi, Heorhii, Nataliia Balytska, Mykola Plysak, and Valentyn Otamanskyi. "Influence of oblique geometry of cutting inserts of finishing face mills on cutting forces." Scientific journal of the Ternopil national technical university 108, no. 4 (2022): 54–63. http://dx.doi.org/10.33108/visnyk_tntu2022.04.054.

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The feasibility of using face milling for the final formation of the parts surface layer is confirmed by a large number of scientific works. At the same time, there are significant advantages of technological processes using face mills for oblique cutting, equipped with superhard materials, with a spiral-stepped arrangement of cutting inserts. This work is devoted to the study of the influence of the inclination angle of the oblique face mill cutting edge on the cutting forces when processing the workpiece flat surface made of gray cast iron and carbon tool steel using the Deform-3D program. T
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25

Chen, Xi, Dinghua Zhang, and Qi Wang. "Cutting Force Transition Model Considering the Influence of Tool System by Using Standard Test Table." Sensors 21, no. 4 (2021): 1340. http://dx.doi.org/10.3390/s21041340.

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The cutting force prediction model usually uses the classical oblique transformation method, which introduces the orthogonal cutting parameters into the oblique milling edge shape, and combines the geometric parameters of the tool to convert the orthogonal cutting force into the actual cutting force, thereby predicting the cutting force. However, this cutting force prediction method ignores the impact of tool vibration in actual machining, resulting in a large difference between the prediction model and the actual measurement. This paper proposes a cutting force conversion model considering th
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26

Mikolajczyk, Tadeusz, and Łukasz Romanowski. "Optimisation of Single Edge Tools Exploitation Process." Applied Mechanics and Materials 332 (July 2013): 431–36. http://dx.doi.org/10.4028/www.scientific.net/amm.332.431.

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Paper show possibilities to optimization of exploitation process of single edge tools. It decrease cost of machining using optimizing the use of the cutting edge. This possibility was presented for single edge tools in oblique and orthogonal cutting. In oblique cutting was presented optimizing the use of the cutting edge by partially exchange of active section of the cutting edge. It is shown for straight edges. Presents model of special tool and result of made experiments, which shows possibilities to increase tool life. Second presented possibilities is orthogonal cutting with round insert.
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27

Lin, Zone-Ching, and Yeou-Yih Lin. "A study of an oblique cutting model." Journal of Materials Processing Technology 86, no. 1-3 (1999): 119–30. http://dx.doi.org/10.1016/s0924-0136(98)00232-5.

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28

Ko, Sung-Lim, and David A. Dornfeld. "Burr formation and fracture in oblique cutting." Journal of Materials Processing Technology 62, no. 1-3 (1996): 24–36. http://dx.doi.org/10.1016/0924-0136(95)02125-6.

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29

Aksu, Burak, Ceren Çelebi, and Erhan Budak. "An experimental investigation of oblique cutting mechanics." Machining Science and Technology 20, no. 3 (2016): 495–521. http://dx.doi.org/10.1080/10910344.2016.1196458.

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30

Rubenstein, C. "The edge force components in oblique cutting." International Journal of Machine Tools and Manufacture 30, no. 1 (1990): 141–49. http://dx.doi.org/10.1016/0890-6955(90)90048-n.

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31

Weizhu, Jin, and Kong Degang. "Study and analysis of cutting forces on oblique cutting of wood." Journal of Northeast Forestry University 2, no. 1 (1991): 108–12. http://dx.doi.org/10.1007/bf02874799.

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32

Armarego, E. J. A., A. J. R. Smith, and V. Karri. "Mechanics of cutting model for simulated oblique rotary tool cutting processes." Journal of Materials Processing Technology 28, no. 1-2 (1991): 3–14. http://dx.doi.org/10.1016/0924-0136(91)90200-x.

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33

TANAKA, Kotaro, Eitoku NAKANISHI, and Kiyoshi ISOGIMI. "267 Investigation on ultra-precision cutting of metal by oblique cutting." Proceedings of Conference of Tokai Branch 2007.56 (2007): 113–14. http://dx.doi.org/10.1299/jsmetokai.2007.56.113.

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34

Jin, W., and L. Cai. "Study and analysis on cutting forces of oblique cutting of wood." Holz als Roh- und Werkstoff 54, no. 4 (1996): 283–86. http://dx.doi.org/10.1007/s001070050185.

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35

Tang, Zhi Tao, Tao Yu, and Li Qiang Xu. "Study on the Effect of Tool Geometrical Parameters on Cutting Forces Based on Finite Element Method." Advanced Materials Research 663 (February 2013): 580–85. http://dx.doi.org/10.4028/www.scientific.net/amr.663.580.

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Based on finite element software DEFORM-3D, a three-dimensional oblique cutting model for aerospace aluminum alloy was built. The material’s flow stress behavior was described with Johnson-Cook constitutive equation. The separation of the chips with the workpiece was realized by the combination of adaptive remeshing technique and separation criterion. The material’s failure was defined by adopting Cockcroft &amp; Latham fracture criterion. The tool-chip friction model was the combination of a Coulomb friction model and shear (sticking) friction model. To validate the finite element model, cutt
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36

Venuvinod, P. K., W. S. Lau, and C. Rubenstein. "Tool Life in Oblique Cutting as a Function of Computed Flank Contact Temperature." Journal of Engineering for Industry 112, no. 4 (1990): 307–12. http://dx.doi.org/10.1115/1.2899592.

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The steps by which a tool life analysis applicable to orthogonal cutting can be extended to accommodate tool obliquity are detailed. By following these, a relation between tool-life, T, tool obliquity, λ, and a representative tool flank wear land contact temperature, θfs, is obtained. A method is then described by which θfs in oblique cutting can be computed. This is based on a recently developed procedure for estimating temperatures of obliquely moving heat sources on the rake face combined with the influence of constriction resistance occurring at the discrete contact points within the flank
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37

Wang, Yu, Peng Wang, Hong Min Pen, Yu Fu Li, and Xian Li Liu. "Experimental Research on Orthogonal Cutting and Oblique Cutting of Hardened Steel GCr15." Key Engineering Materials 375-376 (March 2008): 192–96. http://dx.doi.org/10.4028/www.scientific.net/kem.375-376.192.

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Experiment of hard cutting GCr15 with PCBN cutting tools, the influence of tool’s inclination angle and cutting parameters (cutting speed and feed speed) on cutting forces and cutting temperature are studied. A three-dimensional finite elements model using the commercial software Deform 3D 5.03 is developed. The friction between the tool and the chip is assumed to follow a modified Coulomb friction law and the adaptive remeshing technique is using for the formation of chip. The workpiece material property is a function of temperature, strain, and strain rate in the primary and secondary shear
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38

Witt, Tilman, Yannic Holländer, Sven Tietze, and Jens-Peter Majschak. "Modelling of Oblique Wire Cutting and Experimental Application on Soft Solid Foods for the Investigation of Friction Behaviour." Journal of Food Quality 2019 (June 16, 2019): 1–9. http://dx.doi.org/10.1155/2019/5429093.

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The sales value of ready-made foods is determined to a large extent by the appearance of the individual pieces or slices. Breakouts or deformations are perceived negatively and should be avoided. The quality of the cut surface is derived as an evaluation criterion from the evaluation of the cutting force curve. This study examines the influence of friction during cutting. The method developed for this purpose deals with the problem of separating friction from breaking and deforming when cutting with wire. To test the theoretical approach, cutting experiments with thin wires are carried out on
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39

Liu, Meng, Guohe Li, Xueli Zhao, Xiaole Qi, and Shanshan Zhao. "3D Finite Element Simulation for Turning of Hardened 45 Steel." Recent Patents on Engineering 13, no. 2 (2019): 181–88. http://dx.doi.org/10.2174/1872212112666180522082717.

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Background: Finite element simulation has become an important method for the mechanism research of metal machining in recent years. Objective: To study the cutting mechanism of hardened 45 steel (45HRC), and improve the processing efficiency and quality. Methods: A 3D oblique finite element model of traditional turning of hardened 45 steel based on ABAQUS was established in this paper. The feasibility of the finite element model was verified by experiment, and the influence of cutting parameters on cutting force was predicted by single factor experiment and orthogonal experiment based on simul
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40

Zhou, Junlong, Chao Tang, Maolin Zhu, et al. "Numerical Simulation and Experimental Research on Cutting Force of Milling Deicing Robot Milling Cutter." Processes 13, no. 1 (2025): 140. https://doi.org/10.3390/pr13010140.

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During deicing operations on transmission lines, the cutting forces generated by the milling cutter of a deicing robot exert significant reaction forces on the robot body. Excessive cutting forces can compromise the robot’s locomotion stability and deicing performance. This study introduces an optimization of the traditional straight-plate milling cutter by designing two new types of deicing milling cutters: oblique-cut and straight-cut milling cutters. The effects of cutter geometry, milling speed, and feed rate on cutting forces were systematically investigated using finite element simulatio
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41

Wu, Wei Guo, Gui Cheng Wang, and Chun Gen Shen. "Analysis of Cutting Forces in Precision Turning Based on Oblique Cutting Model." Advanced Materials Research 97-101 (March 2010): 1961–64. http://dx.doi.org/10.4028/www.scientific.net/amr.97-101.1961.

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In this work, the prediction and analysis of cutting forces in precision turning operations is presented. The model of cutting forces is based on the oblique cutting force model which was rebuilt by two coordinate conversions from the orthogonal cutting model. Then the cutting field in precision turning was divided into two fields which are characterized as curve change and linear change on cutter edge and they were modeled respectively. Cutting field of cutter nose was modeled by differential method and its cutting force distribution is predicted by the proposed method. The predicted results
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42

Monka, Peter Pavol, Katarina Monkova, Martin Vasina, Milena Kubisova, Martin Korol, and Adriana Sekerakova. "Effect of Machining Conditions on Temperature and Vickers Microhardness of Chips during Planing." Metals 12, no. 10 (2022): 1605. http://dx.doi.org/10.3390/met12101605.

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For the machining of long and narrow surfaces and when processing multiple pieces, planing technology is used, the productivity of which can be higher than that of milling, although it is relatively slow machining. The article aims to study the degree of influence of the geometry of the tool (the angle of cutting-edge inclination and the angle of the tool-orthogonal rake), as well as the cutting conditions (cutting depth and cutting speed) on the chip characteristics (temperature and microhardness) in orthogonal and oblique slow-rate machining of steel 1.0503 (EN C45). The experiments were car
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43

Budak, E., Y. Altintas¸, and E. J. A. Armarego. "Prediction of Milling Force Coefficients From Orthogonal Cutting Data." Journal of Manufacturing Science and Engineering 118, no. 2 (1996): 216–24. http://dx.doi.org/10.1115/1.2831014.

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The mechanistic and unified mechanics of cutting approaches to the prediction of forces in milling operations are briefly described and compared. The mechanistic approach is shown to depend on milling force coefficients determined from milling tests for each cutter geometry. By contrast the unified mechanics of cutting approach relies on an experimentally determined orthogonal cutting data base (i.e., shear angle, friction coefficient and shear stress), incorporating the tool geometrical variables, and milling models based on a generic oblique cutting analysis. It is shown that the milling for
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44

Shin, Jae Sung, Seong Y. Oh, Seung-Kyu Park, Hyunmin Park, and Jonghwan Lee. "Improved underwater laser cutting of thick steel plates through initial oblique cutting." Optics & Laser Technology 141 (September 2021): 107120. http://dx.doi.org/10.1016/j.optlastec.2021.107120.

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45

HIROTA, Akihiko, and Yasushi MORI. "Prediction of Chip Formation and Cutting Forces in Oblique Cutting (1st Report)." Journal of the Japan Society for Precision Engineering 53, no. 9 (1987): 1420–26. http://dx.doi.org/10.2493/jjspe.53.1420.

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46

Lin, Bin, Lei Wang, Yu Guo, and Jiming Yao. "Modeling of cutting forces in end milling based on oblique cutting analysis." International Journal of Advanced Manufacturing Technology 84, no. 1-4 (2015): 727–36. http://dx.doi.org/10.1007/s00170-015-7724-8.

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47

Umer, Usama. "Simulation of Oblique Cutting in High Speed Turning Processes." International Journal of Materials Forming and Machining Processes 3, no. 1 (2016): 12–21. http://dx.doi.org/10.4018/ijmfmp.2016010102.

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A Finite Element Model is developed for Oblique cutting process in high speed turning of H-13 tool steel. The material model used for workpiece is elastic-thermoplastic including the strain rate sensitivity effect. In order to predict the tool performance, tool is considered as non-rigid and direct stresses are determined around the tool tip. Lagrangian approach is utilized along with adaptive meshing to minimize element distortion around the tool tip. The model predicts cutting forces in 3-directions at different inclination angles. The results are compared with experimental data and found to
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48

Ouyang, Ba Sheng, Guo Xiang Lin, and Yong Hui Tang. "Analysis of Cutting Forces and Machining Error in Ball End Milling of Cylindrical Surfaces." Advanced Materials Research 328-330 (September 2011): 560–64. http://dx.doi.org/10.4028/www.scientific.net/amr.328-330.560.

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Cutting forces and machining error in contouring of concave and convex surfaces using helical ball end mills are theoretically investigated. The cutting forces are evaluated based on the theory of oblique cutting. The machining errors resulting from the tool deflections due to these forces are evaluated at various points of the machined surface. The influence of various cutting conditions and cutting modes on machining error is investigated and discussed.
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Rubenstein, C., P. K. Venuvinod, and W. S. Lau. "Analysis of Oblique Cutting with Controlled Contact Tools." CIRP Annals 35, no. 1 (1986): 51–54. http://dx.doi.org/10.1016/s0007-8506(07)61836-8.

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Moufki, A., A. Devillez, D. Dudzinski, and A. Molinari. "Thermomechanical modelling of oblique cutting and experimental validation." International Journal of Machine Tools and Manufacture 44, no. 9 (2004): 971–89. http://dx.doi.org/10.1016/j.ijmachtools.2004.01.018.

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