Modeling of Discrete Contacts for the Thermodynamic Element System of a Modular Wood-Milling Cutter

Authors

DOI:

https://doi.org/10.37482/0536-1036-2021-4-162-172

Keywords:

fastening unit, cutting element, thermodynamic processes, contact interaction, modular wood-milling cutter, discrete contact

Abstract

Operational capability of a modular wood-cutting tool depends, besides many factors, on the design features of cutting element fastening unit. There are no clear and precise methods that explain major factors influencing tool durability for selecting the design of the modular wood-cutting tool, which would meet production requirements. Thermodynamics modeling under contact interaction of elements enables to choose a design for effective application and increases the tool efficient life. The research purpose is modeling of thermodynamic processes in the cutter element fastening unit in the wood-cutting tool body in order to optimize the design, technological parameters and operating modes of the tool. The research subject is the contact interaction conditions and heat transfer processes between the device elements. The cutting element fastening unit is designed and the model of interaction between the parts of the mechanism of the modular wood-milling tool is developed. Further tasks, namely, development of a model of thermodynamic processes in the cutting element fastening unit, discussion of the results and identifying the recommendations for choosing the design of the modular wood-cutting tool at the design stage were realized in a work that continues the ongoing research. The finite-element model of rough wavy surfaces contact interaction of design elements was developed on the basis of standard design of a shell-type plain woodmilling cutter. The analysis concluded that further analytical modeling of contact conditions with existing parameters is possible. The contacting surfaces approach and the radii of single contact areas were determined taking into account the data of design and calculation of wood cutting forces. These results will be used next in modeling of thermodynamic processes. Methodology and research methods comprise theoretical study and mathematical modeling, including finite-element analysis. The models developed are possible to be used in the creation of a complex durability model of the wood-cutting tool with regard to other factors. The main result of this research stage is obtaining the model of contact conditions and initial data for further modeling of thermodynamic processes in the knife fastening unit in the milling body to predict its thermal condition.

For citation: Kapustina N.A., Malygin V.I., Melekhov V.I., Slutskov V.A. Modeling of Discrete Contacts for the Thermodynamic Element System of a Modular Wood-Milling Cutter. Lesnoy Zhurnal [Russian Forestry Journal], 2021, no. 4, pp. 162–172. DOI: 10.37482/0536-1036-2021-4-162-172.

Downloads

Download data is not yet available.

Author Biographies

Н. А. Капустина, Design Bureau “Sevmash”

Design Engineer; ResearcherID: AAK-7733-2021

В. И. Малыгин, Northern (Arctic) Federal University named after M.V. Lomonosov

Doctor of Engineering, Prof.; ResearcherID: E-6054-2014

В. И. Мелехов, Northern (Arctic) Federal University named after M.V. Lomonosov

Doctor of Engineering, Prof.; ResearcherID: Q-1051-2019

В. А. Слуцков, Northern (Arctic) Federal University named after M.V. Lomonosov

Postgraduate Student; ResearcherID: P-7597-2019

References

Анурьев В.И. Справочник конструктора-машиностроителя: в 3 т. Т. 1. 8-е изд., перераб. и доп. / под ред. И.Н. Жестковой. М.: Машиностроение, 2001. 920 с.

Anur’yev V.I. Handbook for Mechanical Design Engineer. In 3 vol. Vol. 1. Ed. by I.N. Zhestkova. Moscow, Mashinostroyeniye Publ., 2001. 920 p.

Бершадский A.Л., Цветкова Н.И. Резание древесины. Минск: Вышейш. шк., 1975. 302 с.

Bershadskiy A.L., Tsvetkova N.I. Wood-Cutting Process. Minsk, Vysheyshaya shkola Publ., 1975. 302 p.

Глебов И.Т., Неустроев Д.В. Справочник по дереворежущему инструменту. Екатеринбург: Урал. гос. лесотехн. акад., 2000. 253 с.

Glebov I.T., Neustroyev D.V. Handbook of Wood-Cutting Tool. Yekaterinburg, UGLTA Publ., 2000. 253 p.

Демкин Н.Б., Рыжов Э.В. Качество поверхности и контакт деталей машин. М.: Машиностроение, 1981. 244 с.

Demkin N.B., Ryzhov E.V. Surface Quality and Contact of Machine Parts. Moscow, Mashinostroyeniye Publ., 1981. 244 p.

Демкин Н.Б., Удалов С.В., Алексеев В.А., Измайлов В.В., Болотов А.Н. Контакт шероховатых волнистых поверхностей с учетом взаимного влияния неровностей // Трение и износ. 2008. Т. 29, № 3. C. 231–237.

Demkin N.B., Udalov S.V., Alekseev V.A., Izmaylov V.V., Bolotov A.N. Contact of Rough Wavy Surfaces with Consideration of Mutual Effect of Asperities. Treniye i iznos [Friction and Wear], 2008, vol. 29, no. 3, pp. 231–237. DOI: https://doi.org/10.3103/S1068366608030045

Измайлов В.В., Чаплыгин С.А. Числовое и аналитическое моделирование дискретного контакта деталей машин // Интернет-журн. «Науковедение». 2014. № 6(25).

Izmailov V.V., Chaplygin S.A. Numerical and Analytical Simulation of Machine Parts Discrete Contact. Naukovedenie, 2014, no. 6(25). DOI: https://doi.org/10.15862/10TVN614

Капустина Н.А. Определение контактных условий для моделирования термодинамических процессов в узле крепления ножа в корпусе фрезы // XLVII Ломоносовские чтения: сб. материалов региональной науч.-практ. конф. Архангельск: ИД САФУ, 2019. C. 128–133.

Kapustina N.A. Determination of Contact Conditions for Modeling of Thermodynamic Processes in the Knife Fastening Unit in the Milling Body. XLVII Lomonosov Readings: Proceedings of the Regional Scientific and Practical Conference. Arkhangelsk, NArFU Publ., 2019, pp. 128–133.

Малыгин В.И. Повышение эффективности режущих инструментов методами сложного неоднородного моделирования и неразрушающей активной экспресс-диагностики: дис. … д-ра техн. наук. М., 1995. 346 с.

Malygin V.I. Improving the Efficiency of Cutting Tools by the Methods of Complex Heterogeneous Modeling and Non-Destructive Active Express Diagnostics: Dr. Eng. Sci. Diss. Moscow, 1995. 346 p.

Малыгин В.И., Ануфриева А.Р. Исследование влияния характеристик стыка на термосопротивление сборного инструмента // Научно-техн. сб. Архангельск, 1990. С. 64–70.

Malygin V.I., Anufriyeva A.R. Research of the Influence of Joint Characteristics on the Thermal Resistance of a Modular Cutting Tool. Research and Technical Source Book. Arkhangelsk, 1990, pp. 64–70.

Малыгин В.И., Лобанов Н.В., Кремлева Л.В. Методы оптимизации и оценка качества дереворежущих фрез при стендовом и математическом моделировании. 1. Алгоритм решения задачи оптимизации конструкции сборного инструмента при физическом и математическом моделировании // Изв. вузов. Лесн. журн. 2008. № 2. С. 61–71.

Malygin V.I., Lobanov N.V., Kremleva L.V. Methods of Optimization and Quality Rating of Wood Cutters under Bench and Mathematical Simulation. 1. Algorithm of Problem Solution on Optimization of Assembled Tool Structure under Physical and Mathematical Modeling. Lesnoy Zhurnal [Russian Forestry Journal], 2008, no. 2, pp. 61–71. URL: http://lesnoizhurnal. ru/upload/iblock/810/81025e18e6677908380022096514573c.pdf

Малыгин В.И., Кремлева Л.В., Лобанов Н.В., Мелехов В.И. Эволюция топологии сборных дереворежущих фрез // Изв. вузов. Лесн. журн. 2013. № 6. C. 73–85.

Malygin V.I., Kremleva L.V., Lobanov N.V., Melekhov V.I. Evolution of the Topological Structure of Wood-Milling Cutters. Lesnoy Zhurnal [Russian Forestry Journal], 2013, no. 6, pp. 73–85. URL: http://lesnoizhurnal.ru/upload/iblock/b29/mod_8_6_2013.pdf

Малышев В.И., Резников Л.А. Теплофизические аспекты процесса резания в трудах отечественных и американских ученых // Сб. науч. тр. SWorld. 2012. Т. 12, № 3. С. 73–80.

Malyshev V.I., Reznikov L.A. Thermophysical Aspects of Metal Cutting Process in Works of Russian and American Scientists. Sbornik nauchnykh trudov SWorld, 2012, vol. 12, no. 3, pp. 73–80.

Морозов В.Г. Дереворежущий инструмент: справочник. М.: Лесн. пром-сть, 1988. 339 с.

Morozov V.G. Wood-Cutting Tool: Handbook. Moscow, Lesnaya promyshlennost’ Publ., 1988. 339 p.

Резников А.Н. Теплофизика процессов механической обработки материалов. М.: Машиностроение, 1981. 279 с.

Reznikov A.N. Thermophysics of Mechanical Processing. Moscow, Mashinostroyeniye Publ., 1981. 279 p.

Шлыков Ю.П., Ганин Е.А., Царевский С.Н. Контактное термическое сопротивление. М.: Энергия, 1977. 328 с.

Shlykov Yu.P., Ganin E.A., Tsarevskiy S.N. Contact Thermal Resistance. Moscow, Energiya Publ., 1977. 328 p.

Barrett P.R. ANSYS Nonlinear Convergence Best Practices. CAE Associates, 2012. 75 p.

Gao Y.-F., Bower A.F. Rough Surface Plasticity and Adhesion across Length Scales. Nanomechanics of Materials and Structures, 2006, pp. 277–287. DOI: https://doi.org/10.1007/1-4020-3951-4_27

Jackson R.L., Green I. On the Modeling of Elastic Contact between Rough Surfaces. Tribology Transactions, 2011, vol. 54, iss. 2, pp. 300–314. DOI:

https://doi.org/10.1080/10402004.2010.542277

Marohnić T., Basan R., Franulović M. Evaluation of Methods for Estimation of Cyclic Stress-Strain Parameters from Monotonic Properties of Steels. Metals, 2017, vol. 7, iss. 1, art. 17. DOI: https://doi.org/10.1016/j.proeng.2015.02.029

McKenzie W.M. Fundamental Analysis of the Wood-Cutting Process. Doctoral Thesis. Ann Arbor, University of Michigan, 1961. 151 p.

Rachid Ch., Lebon Fr., Rosu I., Mohammed M. Numerical Study of the Surface Roughness, Thermal Conductivity of the Contact Materials and Interstitial Fluid Convection Coefficient Effect on the Thermal Contact Conductance. Annales de Chimie - Science des Matériaux, 2019, vol. 43, no. 4, pp. 265–271. DOI: https://doi.org/10.18280/acsm.430410

Published

2021-07-19

How to Cite

Капустина, Н. А., В. И. Малыгин, В. И. Мелехов, and В. А. Слуцков. “Modeling of Discrete Contacts for the Thermodynamic Element System of a Modular Wood-Milling Cutter”. Lesnoy Zhurnal (Forestry Journal), no. 4, July 2021, pp. 162-7, doi:10.37482/0536-1036-2021-4-162-172.

Issue

Section

MECHANICAL TECHNOLOGY OF WOOD AND WOOD SCIENCE

Most read articles by the same author(s)