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2017 | OriginalPaper | Chapter

6. Diffractive Effects in Yarns and Fabrics

Authors : Andrea Ehrmann, Tomasz Blachowicz

Published in: Examination of Textiles with Mathematical and Physical Methods

Publisher: Springer International Publishing

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Abstract

Diffraction and interference of light are two fundamental effects in wave optics with many practical consequences. Optics, in general, consists of geometrical, wave, and quantum parts, and light can be treated from these three perspectives. However, light as a wave and the related wave effects can be directly applied to test textile materials.

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Literature
go back to reference Angelow, A., Bednorz, H., Böttcher, S., Schrader, N., Ehrmann, A.: Optical differentiation between cashmere and other textile fibers by laser diffraction. Indian J. Fiber Text. Res. (accepted) (2015a) Angelow, A., Bednorz, H., Böttcher, S., Schrader, N., Ehrmann, A.: Optical differentiation between cashmere and other textile fibers by laser diffraction. Indian J. Fiber Text. Res. (accepted) (2015a)
go back to reference Angelow, A., Bednorz, H., Böttcher, S., Schrader, N., Ehrmann, A.: Verfahren zur Art-Bestimmung von Fasern, Patent application DE 10 2015 000 281A1 (2015b) Angelow, A., Bednorz, H., Böttcher, S., Schrader, N., Ehrmann, A.: Verfahren zur Art-Bestimmung von Fasern, Patent application DE 10 2015 000 281A1 (2015b)
go back to reference Augustin-Jean, L., Alpermann, B.: The Political Economy of Agro-Food Markets in China: The Social Construction of the Markets in an Era of Globalization. Palgrave Macmillan, Basingstoke (2013) Augustin-Jean, L., Alpermann, B.: The Political Economy of Agro-Food Markets in China: The Social Construction of the Markets in an Era of Globalization. Palgrave Macmillan, Basingstoke (2013)
go back to reference Born, W., Wolf, E.: Principles of Optics. Electromagnetic Theory of Propagation, Interference and Diffraction of Light. Cambridge University Press, Cambridge (1999)CrossRef Born, W., Wolf, E.: Principles of Optics. Electromagnetic Theory of Propagation, Interference and Diffraction of Light. Cambridge University Press, Cambridge (1999)CrossRef
go back to reference Brančíiak, J.V., Datyner, A.: The measurement of swelling of wool fibers in solvents by laser-beam diffraction. Text. Res. J. 47, 662–665 (1977) Brančíiak, J.V., Datyner, A.: The measurement of swelling of wool fibers in solvents by laser-beam diffraction. Text. Res. J. 47, 662–665 (1977)
go back to reference Demir, M.M., Yilgor, I., Yilgor, E., Erman, B.: Electrospinning of polyurethane fibers. Polymer 43, 3303–3309 (2002)CrossRef Demir, M.M., Yilgor, I., Yilgor, E., Erman, B.: Electrospinning of polyurethane fibers. Polymer 43, 3303–3309 (2002)CrossRef
go back to reference Ehrmann, A.: Optical fiber examination by confocal laser scanning microscopy. In: Mondal, M.I.H. (ed.) Textiles: History, Properties and Performance and Applications, pp. 531–546. Nova Science, New York (2014) Ehrmann, A.: Optical fiber examination by confocal laser scanning microscopy. In: Mondal, M.I.H. (ed.) Textiles: History, Properties and Performance and Applications, pp. 531–546. Nova Science, New York (2014)
go back to reference Gong, R.H., Newton, A.: Image-analysis techniques Part II: The measurement of fibre orientation in nonwoven fabrics. J. Text. Inst. 87, 371–388 (1996)CrossRef Gong, R.H., Newton, A.: Image-analysis techniques Part II: The measurement of fibre orientation in nonwoven fabrics. J. Text. Inst. 87, 371–388 (1996)CrossRef
go back to reference Grecka, M., Rizvi, A., Ehrmann, A., Blums, J.: Influence of abrasion and soaking on reflective properties of Cu and Al coated textiles. In: Proceedings of Aachen-Dresden International Textile Conference (2013) Grecka, M., Rizvi, A., Ehrmann, A., Blums, J.: Influence of abrasion and soaking on reflective properties of Cu and Al coated textiles. In: Proceedings of Aachen-Dresden International Textile Conference (2013)
go back to reference Gupta, S.D., Ghosh, N., Banerjee, A.: Wave Optics: Basic Concepts and Contemporary Trends. CRC Press, Boca Raton (2015)CrossRef Gupta, S.D., Ghosh, N., Banerjee, A.: Wave Optics: Basic Concepts and Contemporary Trends. CRC Press, Boca Raton (2015)CrossRef
go back to reference Kumar, S., Doshi, H., Srinivasarao, M., Park, J.O., Schiraldi, D.A.: Fibers from polypropylene/nano carbon fiber composites. Polymer 43, 1701–1703 (2002)CrossRef Kumar, S., Doshi, H., Srinivasarao, M., Park, J.O., Schiraldi, D.A.: Fibers from polypropylene/nano carbon fiber composites. Polymer 43, 1701–1703 (2002)CrossRef
go back to reference Lynch, L.J., Thomas, N.: Optical diffraction profiles of single fibers. Text. Res. J. 41, 568–572 (1971)CrossRef Lynch, L.J., Thomas, N.: Optical diffraction profiles of single fibers. Text. Res. J. 41, 568–572 (1971)CrossRef
go back to reference Ma, H., Zeng, J., Realff, M.L., Kumar, S., Schiraldi, D.A.: Processing, structure, and properties of fibers from polyester/carbon nanofiber composites. Compos. Sci. Technol. 63, 1617–1628 (2003)CrossRef Ma, H., Zeng, J., Realff, M.L., Kumar, S., Schiraldi, D.A.: Processing, structure, and properties of fibers from polyester/carbon nanofiber composites. Compos. Sci. Technol. 63, 1617–1628 (2003)CrossRef
go back to reference Mallik-Goswami, B., Datta, A.K.: Optical imaging technique for defect detection in fabric. Indian J. Fibre Text. Res. 23, 277–280 (1998a) Mallik-Goswami, B., Datta, A.K.: Optical imaging technique for defect detection in fabric. Indian J. Fibre Text. Res. 23, 277–280 (1998a)
go back to reference Mallik-Goswami, B., Datta, A.K.: Fast Fourier transform technique for identification of the structural properties and irregularities in fabric. J. Inst. Eng. India 7, 1–4 (1998b) Mallik-Goswami, B., Datta, A.K.: Fast Fourier transform technique for identification of the structural properties and irregularities in fabric. J. Inst. Eng. India 7, 1–4 (1998b)
go back to reference Mallik-Goswami, B., Datta, A.K.: Detecting defects in fabric with laser-based morphological image processing. Text. Res. J. 70, 758–762 (2000)CrossRef Mallik-Goswami, B., Datta, A.K.: Detecting defects in fabric with laser-based morphological image processing. Text. Res. J. 70, 758–762 (2000)CrossRef
go back to reference Munawar, S.S., Umemura, K., Kawai, S.: Characterization of the morphological, physical, and mechanical properties of seven nonwood plant fiber bundles. J. Wood Sci. 53, 108–113 (2007)CrossRef Munawar, S.S., Umemura, K., Kawai, S.: Characterization of the morphological, physical, and mechanical properties of seven nonwood plant fiber bundles. J. Wood Sci. 53, 108–113 (2007)CrossRef
go back to reference Nielson, K.J.: Window Treatments. Wiley, New York (1990) Nielson, K.J.: Window Treatments. Wiley, New York (1990)
go back to reference Phan, K.-H., Wortmann, F.J.: Quality assessment of goat hair for textile use. In: Franck, R.R. (ed.) Silk, Mohair, Cashmere and Other Luxury Fibres. Woodhead Publishing Series in Textiles, Cambridge (2001) Phan, K.-H., Wortmann, F.J.: Quality assessment of goat hair for textile use. In: Franck, R.R. (ed.) Silk, Mohair, Cashmere and Other Luxury Fibres. Woodhead Publishing Series in Textiles, Cambridge (2001)
go back to reference Phong, B.-T.: Illumination for computer generated images. Comm. ACM 18, 311–317 (1975)CrossRef Phong, B.-T.: Illumination for computer generated images. Comm. ACM 18, 311–317 (1975)CrossRef
go back to reference Ribolzi, S., Mercklé, J., Gresser, J., Exbrayat, P.E.: Real-time fault detection on textiles using opto-electronic processing. Text. Res. J. 63, 61–71 (1993)CrossRef Ribolzi, S., Mercklé, J., Gresser, J., Exbrayat, P.E.: Real-time fault detection on textiles using opto-electronic processing. Text. Res. J. 63, 61–71 (1993)CrossRef
go back to reference Shlyakhtenko, P.G.: Diffraction method of monitoring the bend of threads in textile webs. J. Opt. Technol. 67, 1038–1042 (2000)CrossRef Shlyakhtenko, P.G.: Diffraction method of monitoring the bend of threads in textile webs. J. Opt. Technol. 67, 1038–1042 (2000)CrossRef
go back to reference Shlyakhtenko, P.G., Vetrova, Y.N., Rudin, A.E., Sukharev, P.A., Nefedov, V.P.: A diffraction method of monitoring the angular distribution of the fibers in the structure of a flat fibrous material. J. Opt. Technol. 79, 599–602 (2012)CrossRef Shlyakhtenko, P.G., Vetrova, Y.N., Rudin, A.E., Sukharev, P.A., Nefedov, V.P.: A diffraction method of monitoring the angular distribution of the fibers in the structure of a flat fibrous material. J. Opt. Technol. 79, 599–602 (2012)CrossRef
go back to reference Siegel, M.W., Grundy, R.H.: Apparatus and methods for measuring the diameter of a moving elongated material. US patent 5015867 A (1989) Siegel, M.W., Grundy, R.H.: Apparatus and methods for measuring the diameter of a moving elongated material. US patent 5015867 A (1989)
go back to reference Sodomka, L., Komrska, J.: Laser diffraction measurements of the parameters of fine-mesh woven textiles. Text. Res. J. 61, 232–236 (1991)CrossRef Sodomka, L., Komrska, J.: Laser diffraction measurements of the parameters of fine-mesh woven textiles. Text. Res. J. 61, 232–236 (1991)CrossRef
go back to reference Toba, E.: Determination of the autocorrelation function of woven fabrics using laser speckle. Text. Res. J. 50, 238–244 (1980)CrossRef Toba, E.: Determination of the autocorrelation function of woven fabrics using laser speckle. Text. Res. J. 50, 238–244 (1980)CrossRef
go back to reference Whitted, T.: An improved illumination model for shaded display. ACM Siggraph 2005 Courses 4 (2005) Whitted, T.: An improved illumination model for shaded display. ACM Siggraph 2005 Courses 4 (2005)
go back to reference Wood, E.J.: Applying Fourier and associated transforms to pattern characterization in textiles. Text. Res. J. 60, 212 (1990)CrossRef Wood, E.J.: Applying Fourier and associated transforms to pattern characterization in textiles. Text. Res. J. 60, 212 (1990)CrossRef
go back to reference Xu, B.: Identifying fabric structures with fast Fourier transform techniques. Text. Res. J. 66, 496–506 (1996)CrossRef Xu, B.: Identifying fabric structures with fast Fourier transform techniques. Text. Res. J. 66, 496–506 (1996)CrossRef
go back to reference Zhang, Y.F., Bresse, R.R.: Fabric defect detection and classification using image analysis. Text. Res. J. 65, 1–9 (1995)CrossRef Zhang, Y.F., Bresse, R.R.: Fabric defect detection and classification using image analysis. Text. Res. J. 65, 1–9 (1995)CrossRef
Metadata
Title
Diffractive Effects in Yarns and Fabrics
Authors
Andrea Ehrmann
Tomasz Blachowicz
Copyright Year
2017
DOI
https://doi.org/10.1007/978-3-319-47408-3_6

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