166
References
Kazarian S.G. 2000. Polymer processing with supercritical fluids. Polymer Science, Series
C 42(1):78–101.
Kerin, M., and D.T. Pham. 2019. A review of emerging industry 4.0 technologies in remanufacturing. Journal of Cleaner Production 237:117805. https://doi .org /10 .1016 /j .jclepro .
2019 .117805
Kim, B.N., K., Hiraga, K. Morita, and Y. Sakka. 2001. A high-strain-rate superplastic
ceramic. Nature 413:288–291. https://doi .org /10 .1038 /35095025
Kim, H.S., B.R. Kang, and S.M. 2020. Choi microstructure and mechanical properties of
vacuum plasma sprayed HfC, TiC, and HfC/TiC ultra-high-temperature ceramic coatings. Materials 13(1):124. https://doi .org /10 .3390 /ma13010124
Kim, K.W., G.-S. Ham, G.-S. Cho, Ch.P. Kim, S.-Ch. Park, and K.-A. Lee. 2021.
Microstructures and corrosion properties of novel Fe46.8-Mo30.6-Cr16.6-C4.3-B1.7
metallic glass coatings manufactured by vacuum plasma spray process. Intermetallics
130:107061. https://doi .org /10 .1016 /j .intermet .2020 .107061
Kmetty, Á., K. Litauszki, and D. Réti. 2018. Characterization of different chemical blowing
agents and their applicability to produce poly(lactic acid) foams by extrusion. Applied
Sciences 8(10):1960. https://doi .org /10 .3390 /app8101960
Koch, S.W., and M.R. Hofmann. 2018. Semiconductor lasers. In: B.D. Guenther, and D.G. Steel
(Eds.), Encyclopedia of Modern Optics (Second Edition), pp. 462–468. Amsterdam:
Elsevier. https://doi .org /10 .1016 /B978 -0 -12 -803581 -8 .10103-1
König, W., L. Cronjäger, G. Spur, H.K. Tönshoff, M. Vigneau, and W.J. Zdeblick. 1990.
Machining of new materials. CIRP Annals 39(2):673–681. https://doi .org /10 .1016 /
S0007 -8506(07)63004-2
Koryagin, S.I., I.V. Pimenov, and V.K. Khudyakov. 2000. Materials Processing Methods.
Kaliningrad: University of Kaliningrad (in Russian).
Korzhov, E.G. 2006. Some peculiarities of the waterjet machinning of the materials. Mining
Informational and Analytical Bulletin 3:273–287 (in Russian).
Kumar, K., D. Zindani, and J.P. Davim. 2018. Advanced Machining and Manufacturing
Processes. Cham: Springer. https://doi .org /10 .1007 /978 -3 -319 -76075-9
Kumar, M.Bh., and P. Sathiya. 2021. Methods and materials for additive manufacturing: A
critical review on advancements and challenges. Thin-Walled Structures 159:107228.
https://doi .org /10 .1016 /j .tws .2020 .107228
Kundas, S., and A. Ilyuschenko. 2002. Computer simulation and control of plasma spraying
processes. Materials and Manufacturing Processes 17(1):85–96. https://doi .org /10 .1081 /
AMP -120002799
Lahrour, Y., and D. Brissaud. 2018. A technical assessment of product/component re-manufacturability for additive remanufacturing. Procedia CIRP 69:142–147. https://doi .org /
10 .1016 /j .procir .2017 .11 .105
Langdon, T.G. 1982. The mechanical properties of superplastic materials. Metallurgical and
Materials Transactions 13:689–701. https://doi .org /10 .1007 /BF02642383
Laser Marking Market. 2021. https://www .marketsandmarkets .com /Market -Reports /laser -
marking -market -167085735 .html (accessed on February, 24, 2021).
Łatka, L., L. Pawłowski, M. Winnicki, P. Sokołowski, A. Małachowska, and S. Kozerski.
2020. Review of functionally graded thermal sprayed coatings. Applied Sciences
10(15):5153. https://doi .org /10 .3390 /app10155153
Lauwers, B., J. Vleugels, O. Malek, K. Brans, and K. Liu. 2012. Electrical discharge machining of composites. In: H. Hocheng (Ed.), Machining Technology for Composite
Materials, pp. 202–241. Cambridge, UK: Woodhead Publishing. https://doi .org /10 .1533 /
9780857095145 .2 .202
Lavrentiev, A.Yu., and М.А. Lavrentiev. 2015. Protection of the welded constructions from
oxidation during heat treatment. Science, Technology and Education 11(17):28–31 (in
Russian).
Précédent

- 185/205

Suivant