The idea of measuring the real induction in the machining gap filled with magnetic material
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Abstrakt
The article presents the characteristics of the distribution of magnetic flux density inside the machining gap in the magnetic abrasive finishing (MAF). Based on the analysis of the magnetic field in the empty gap and the distribution of forces in the magnetic circuit, the concept of measuring the real value of magnetic induction in a flexible abrasive tool formed in an external magnetic field was proposed. An indirect way of determining the magnetic induction has been described, which has a significant influence on the force acting on abrasive grains in the process of magnetic abrasive finishing. The advantages and the problems of the applied approach as well as the measurement methodology based on the change in the attraction force of the magnetic field elements as a result of the change in the concentration of abrasive grains and the width of the machining gap are presented.
Pobrania
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Creative Commons CC BY 4.0 https://creativecommons.org/licenses/by/4.0/
Artykuły czasopisma Welding Technology Review (Przegląd Spawalnictwa) publikowane są w otwartym dostępie na licencji CC BY (licencja Creative Commons Uznanie autorstwa 4.0 Międzynarodowe). Licencja CC BY jest najbardziej otwartą dostępną licencją i uważaną za „złoty standard” w formule otwartego dostępu; jest również preferowany przez wielu fundatorów badań. Licencja ta umożliwia czytelnikom kopiowanie i redystrybucję materiału na dowolnym nośniku i w dowolnym formacie, a także zmienianie, przekształcanie lub budowanie na nim materiału, w tym do użytku komercyjnego, pod warunkiem wskazania oryginalnego autora.
Bibliografia
Marczak M., Magnetic polishing of butt welded pipes. Weldig Technology Review, 2016, Vol. 88(3), 38-40.
Naveen K., Shanbhag V.V., Balashanmugam N., Vinod P., Ultra-precision Finishing by Magnetic Abrasive Finishing Process. Material today: proceedings 2018, Vol. 5, 12426-12436. DOI: https://doi.org/10.1016/j.matpr.2018.02.222
Singh R.K., Singh D.K., Gangwar S., Advances in Magnetic Abrasive Finishing of Futuristic Reguirements A review. Materials today: proceedings, 2018, Vol. 5(9), 20455-20463. DOI: https://doi.org/10.1016/j.matpr.2018.06.422
He B., Wei C., Ding S., Shi Z., A survey of methods for detecting metallic grinding burn. Measurement, 2019, Vol. 134, 426-439. DOI: https://doi.org/10.1016/j.measurement.2018.10.093
Strivastava A., Kumar H., Singh S., Investigation into Internal Surface Finishing of Titanium (Grade 2) Pipe with Extended Magnetic Tool. Procedia Manufacturing, 2018, Vol. 26, 181-189. DOI: https://doi.org/10.1016/j.promfg.2018.07.025
Karakurt I., Ho K.Y., Ledford C., Gamzina D., Horn T., Luhmann N.C., Lin L., Development of a magnetically driven abrasive polishing process for additively manufactured copper structures. Procedia Manufacturing, 2018, Vol. 26, 798-805. DOI: https://doi.org/10.1016/j.promfg.2018.07.097
Alam Z., Jha S., Reprint of Modeling of surface roughness in ball end magnetorheological finishing (BEMRF) process. Wear, 2017, 376-377. DOI: https://doi.org/10.1016/j.wear.2017.04.007
Yuewu G., Yugang Z., Guiguan Z., Preparation of Al2O3 magnetic abrasives by gas-solid two-phase double-stage atomization and rapid solidification. Materials Letters, 2018, Vol. 215, 300-304. DOI: https://doi.org/10.1016/j.matlet.2017.12.124
Zimmerman J., Golański D., Chmielewski T., Włosiński W., Calculation model for analysis of residual stresses in the coating-substrate system during deposition by thermal spraying methods. Welding Technology Review, 2013, Vol. 85(1), 12-16. DOI: https://doi.org/10.26628/ps.v85i1.283
Zhang J., Hu J., Wang H., Kumar A.S., Chaudhari A., A novel magnetically driven polishing technique for internal surface finishing. Precision Engineering, 2018, Vol. 54, 222-232. DOI: https://doi.org/10.1016/j.precisioneng.2018.05.015
Roskosz M., Fryczowski K., Majcherczyk M., Kuśmider P., Studies of the impact of magnetic conditions during loading process on residual magnetic field in ferritic samples. Welding Technology Review, 2014, Vol. 86(10), 45-50.
Sun X., Huang J., Yang J., Chen S., Microstructure evolution and mechanical properties of in-situ bimodal TiC-Fe coatings prepared by reactive plasma spraying. Ceramics International, 2019, Vol. 45(5), 5848-5857. DOI: https://doi.org/10.1016/j.ceramint.2018.12.051
Jiang G., Hing A.K., Chen-Nan S., Hao G.M., Wai K.C., Kui L., Jun W., Suzuki H., Renke K., Novel rotating- vibrating magnetic abrasive polishing method for double-layered internal surface finishing. Journal of Materials Processing Technology, 2019, Vol. 264, 422-437. DOI: https://doi.org/10.1016/j.jmatprotec.2018.09.024
Pei-Ying W., Hitomi Y., Material removal mechanism of additively manufactured components finished using magnetic abrasive finishing. Procedia Manufacturing, 2018, Vol.26, 394-402. DOI: https://doi.org/10.1016/j.promfg.2018.07.047
Sidara A., Jain V.K., Analysis of force on the freeform surface in magnetorheological fluid based finishing process. International Journal of Machine Tools & Manufactured, 2013, Vol. 69, 1-10. DOI: https://doi.org/10.1016/j.ijmachtools.2013.02.004