Laser Light Transmission Through Thermoplastics as a Function of Thickness and Laser Incidence Angle: Experimental and Modeling

Author:

Azhikannickal Elizabeth1,Bates Philip J.2,Zak Gene3

Affiliation:

1. e-mail:

2. e-mail:  Department of Chemistry and Chemical Engineering, Royal Military College of Canada, P.O. Box 17000, Station Forces, Kingston, ON, K7K 7B4, Canada

3. Department of Mechanical and Materials Engineering, Queen's University, McLaughlin Hall, Kingston, ON, K7L 3N6, Canada e-mail:

Abstract

It is important to accurately measure and predict the laser light transmission through unreinforced and reinforced thermoplastics if candidate materials are to be assessed for laser transmission welding (LTW) applications. This paper presents the results of laser transmission measurements through unreinforced polyamide 6 (PA6) and 10% glass fiber reinforced polycarbonate of various thicknesses and corresponding to various laser incidence angles (angle between the incident laser beam and the normal to the transparent part). A novel transmission measurement method, developed by the authors, was employed. A model, utilizing the Fresnel specular surface reflection conditions as well as accounting for refraction, absorption and reflection of the laser light through the bulk material, was used to predict transmission as a function of thickness and laser incidence angle. Results of transmission tests on both materials showed that, for a given thickness, the transmission decreases as the laser angle of incidence increases. In addition, at any given laser incidence angle, the transmission decreases as the thickness increases. The advantage of the model is that it requires only one experimentally determined constant for a given material. Good agreement existed between the experimentally measured transmission and the model prediction for the range of thicknesses and laser incidence angles studied.

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Mechanical Engineering,Control and Systems Engineering

Reference14 articles.

1. Laser Transmission Welding of Semi-Crystalline Thermoplastics—Part I: Optical Characterization of Nylon Based Plastics;J. Reinf. Plast. Compos.,2002

2. Schulz, J., and Haberstroh, E., 2000, “Welding of Polymers Using a Diode Laser,” Proceedings of the 58th Annual Technical Conference (ANTEC 2000), Society of Plastics Engineers, Orlando, FL, pp. 1196–1201.

3. Rhew, M., Mokhtarzadeh, A., and Benatar, A., 2003, “Diode Laser Characterization and Measurement of Optical Properties of Polycarbonate and High-Density Polyethylene,” Proceedings of the 61st Annual Technical Conference (ANTEC 2003), Society of Plastics Engineers, Nashville, TN, pp. 1056–1060.

4. Wang, C. Y., Bates, P. J., and Zak, G., 2009, “Optical Properties Characterization of Thermoplastics Used in Laser Transmission Welding: Transmittance and Reflectance,” Proceedings of the 67th Annual Technical Conference (ANTEC 2009), Society of Plastics Engineers, pp. 1278–1282.

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