The Research and Application of Clothing Dynamic Mannequin

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Abstract:

This paper, according to the movement principle of clothing dynamic mannequin, discusses the research and development of the clothing dynamic mannequin. This paper, particularly, does the research on spherical joints technology application in clothing mannequin, in order to give clothing industry relevant dynamic mannequin technology as reference.

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Periodical:

Advanced Materials Research (Volumes 341-342)

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261-264

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September 2011

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] ASTM D 4108-87, Standard Test Method for Thermal Protective Performance of Materials for Clothing by Open Flame Method, American Society for Testing and Materials, Philadelphia, PA, (1987).

Google Scholar

[2] ASTM E 457-96, Standard Test Method for Measuring Heat Transfer Rate Using a Thermal Capacitance (Slug) Calorimeter, American Society for Testing and Materials, Philadelphia, PA, (1996).

DOI: 10.1520/e0457-96

Google Scholar

[3] ASTM E 459-97, Standard Test Method for Measuring Heat Transfer Rate Using a This Skin Calorimeter, American Society for Testing and Materials, Philadelphia, PA, (1997).

Google Scholar

[4] ASTM E1354, Test Method for Heat and Visible Smoke Release Rates for Materials and Products Using an Oxygen Consumption Calorimeter, American Society for Testing and Materials, Philadelphia, PA, (1999).

DOI: 10.1520/e1354-14e01

Google Scholar

[5] ASTM F 1930-00, Standard Test Method for Evaluation of Flame Resistant Clothing for Protection Against Flash Fire Simulations Using an Instrumented Manikin, American Society for Testing and Materials, Philadelphia, PA, (2000).

DOI: 10.1520/f1930-18

Google Scholar

[6] Baker, D., A Dynamic Method for Determining the Thermal Conductivity of Charring Materials, 8th Conference on Thermal Conductivity, Purdue University, (1969).

Google Scholar

[7] Barker, Roger L., Modeling of Thermal Protection Outfits for Fire, National Textile Center Annual Report, (2002).

Google Scholar

[8] Barker, Roger L., Hamouda, Hechmi, Shalev, Itzhak, and Johnson, Jason, Review and Evaluation of Thermal Sensors for Use in Testing Firefighters Protective Clothing, NIST GCR 99-772, March, (1999).

Google Scholar

[9] Behnke, W. P., Predicting Flash Fire Protection of Clothing from Laboratory Tests Using Second-degree Burn to Rate Performance, Fire and Materials, Vol. 8, No. 2, pgs 57-63, (1984).

DOI: 10.1002/fam.810080202

Google Scholar

[10] Behnke, W. P., Geshury, A. J., and Barker, R. L., Thermo-Man® and Thermo- Leg: Large Scale Test Methods for Evaluating Thermal Protective Performance, Performance of Protective Clothing: Fourth Volume, ASTM STP 1133, American Society for Testing and Materials, West Conshohocken, PA, pgs 266-280, (1992).

DOI: 10.1520/stp19167s

Google Scholar