Simulation Studies on Centrifugal MQL-CCA Method of Applying Coolant during Internal Cylindrical Grinding Process

This paper describes simulation studies regarding the application of the centrifugal minimum quantity lubrication (MQL) method simultaneously with the delivery of a compressed cooled air (CCA) stream in the internal cylindrical grinding process. The idea of a new hybrid cooling and lubrication metho...

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Main Authors: Seweryn Kieraś, Marek Jakubowski, Krzysztof Nadolny
Format: Article
Language:English
Published: MDPI AG 2020-05-01
Series:Materials
Subjects:
MQL
CAG
Online Access:https://www.mdpi.com/1996-1944/13/11/2506
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spelling doaj-0edbcdecd1154c8ab0e300b895d862cd2020-11-25T02:59:47ZengMDPI AGMaterials1996-19442020-05-01132506250610.3390/ma13112506Simulation Studies on Centrifugal MQL-CCA Method of Applying Coolant during Internal Cylindrical Grinding ProcessSeweryn Kieraś0Marek Jakubowski1Krzysztof Nadolny2Wartsila Poland Sp. z o.o., Łużycka 2, 81-537 Gdynia, PolandDepartment of Food Industry Processes and Facilities, Faculty of Mechanical Engineering, Koszalin University of Technology, Racławicka 15-17, 75-620 Koszalin, PolandDepartment of Production Engineering, Faculty of Mechanical Engineering, Koszalin University of Technology, Racławicka 15-17, 75-620 Koszalin, PolandThis paper describes simulation studies regarding the application of the centrifugal minimum quantity lubrication (MQL) method simultaneously with the delivery of a compressed cooled air (CCA) stream in the internal cylindrical grinding process. The idea of a new hybrid cooling and lubrication method connecting centrifugal (through a grinding wheel) lubrication by MQL with a CCA stream is described. The methodology of computational fluid dynamics (CFD) simulation studies, as well as the results of numerical simulations, are presented in detail. The aim of the simulations was to determine the most favourable geometrical and kinematic parameters of the system in the context of air-oil aerosol and CCA flow, as well as heat exchange. In the simulation, the variables were the grinding arbor geometrical parameters, the angle of CCA supply line outlets, and the grinding wheel and workpiece peripheral speed. As a result of the simulation studies, the most favourable geometrical parameters were designated, determining the orientation of the ends of the two CCA supply line outlets before and after the grinding zone, the number of openings in the drilled-out grinding arbor, and the influence of the grinding speed on the parameters of the coolant flow and temperature of objects in the grinding zone. In addition, the results of simulation tests made it possible to visualise the velocity vectors of the two-phase coolant flow in a complex system of air-oil aerosol delivery centrifugally through an open structure of a very fast rotating porous layer (grinding wheel), with an additional supply of CCA using an external cold air gun (CAG).https://www.mdpi.com/1996-1944/13/11/2506CFD simulationinternal cylindrical grindingMQLCAG
collection DOAJ
language English
format Article
sources DOAJ
author Seweryn Kieraś
Marek Jakubowski
Krzysztof Nadolny
spellingShingle Seweryn Kieraś
Marek Jakubowski
Krzysztof Nadolny
Simulation Studies on Centrifugal MQL-CCA Method of Applying Coolant during Internal Cylindrical Grinding Process
Materials
CFD simulation
internal cylindrical grinding
MQL
CAG
author_facet Seweryn Kieraś
Marek Jakubowski
Krzysztof Nadolny
author_sort Seweryn Kieraś
title Simulation Studies on Centrifugal MQL-CCA Method of Applying Coolant during Internal Cylindrical Grinding Process
title_short Simulation Studies on Centrifugal MQL-CCA Method of Applying Coolant during Internal Cylindrical Grinding Process
title_full Simulation Studies on Centrifugal MQL-CCA Method of Applying Coolant during Internal Cylindrical Grinding Process
title_fullStr Simulation Studies on Centrifugal MQL-CCA Method of Applying Coolant during Internal Cylindrical Grinding Process
title_full_unstemmed Simulation Studies on Centrifugal MQL-CCA Method of Applying Coolant during Internal Cylindrical Grinding Process
title_sort simulation studies on centrifugal mql-cca method of applying coolant during internal cylindrical grinding process
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-05-01
description This paper describes simulation studies regarding the application of the centrifugal minimum quantity lubrication (MQL) method simultaneously with the delivery of a compressed cooled air (CCA) stream in the internal cylindrical grinding process. The idea of a new hybrid cooling and lubrication method connecting centrifugal (through a grinding wheel) lubrication by MQL with a CCA stream is described. The methodology of computational fluid dynamics (CFD) simulation studies, as well as the results of numerical simulations, are presented in detail. The aim of the simulations was to determine the most favourable geometrical and kinematic parameters of the system in the context of air-oil aerosol and CCA flow, as well as heat exchange. In the simulation, the variables were the grinding arbor geometrical parameters, the angle of CCA supply line outlets, and the grinding wheel and workpiece peripheral speed. As a result of the simulation studies, the most favourable geometrical parameters were designated, determining the orientation of the ends of the two CCA supply line outlets before and after the grinding zone, the number of openings in the drilled-out grinding arbor, and the influence of the grinding speed on the parameters of the coolant flow and temperature of objects in the grinding zone. In addition, the results of simulation tests made it possible to visualise the velocity vectors of the two-phase coolant flow in a complex system of air-oil aerosol delivery centrifugally through an open structure of a very fast rotating porous layer (grinding wheel), with an additional supply of CCA using an external cold air gun (CAG).
topic CFD simulation
internal cylindrical grinding
MQL
CAG
url https://www.mdpi.com/1996-1944/13/11/2506
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AT krzysztofnadolny simulationstudiesoncentrifugalmqlccamethodofapplyingcoolantduringinternalcylindricalgrindingprocess
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