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Journal articles on the topic 'Drycleaning'

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1

Kadolph, Sara J., Grace I. Kunz, Shari A. Stout, and Lena Horne. "A Simulation of Drycleaning of Pigskin Apparel." International Journal of Clothing Science and Technology 4, no. 1 (January 1992): 19–27. http://dx.doi.org/10.1108/eb002986.

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2

Cammidge, E. M. "Benzene and Turpentine: The Pre-History of Drycleaning." Ambix 38, no. 2 (July 1991): 79–84. http://dx.doi.org/10.1179/amb.1991.38.2.79.

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3

Kim, Chunhee. "An Investigation of Surfactants for Drycleaning Detergents to Improve Detergency of Wool Fabric in Eco-friendly Silicone Drycleaning Solvent (Decamethylcyclopentasiloxane, D5)." Textile Coloration and Finishing 26, no. 3 (September 27, 2014): 209–17. http://dx.doi.org/10.5764/tcf.2014.26.3.209.

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4

National Institute for Occupational. "Control of Exposure to Perchloroethylene in Commercial Drycleaning (Substitution)." Applied Occupational and Environmental Hygiene 14, no. 7 (January 1999): 433–35. http://dx.doi.org/10.1080/104732299302611.

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5

Altham, William. "Benchmarking to trigger cleaner production in small businesses: drycleaning case study." Journal of Cleaner Production 15, no. 8-9 (January 2007): 798–813. http://dx.doi.org/10.1016/j.jclepro.2006.07.005.

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6

Kim, Chun-Hee. "Detergency and Soil Redeposition of Wool Fabric in Eco-friendly Drycleaning Solvent(Decamethylcyclopentasiloxane)." Textile Coloration and Finishing 24, no. 2 (June 27, 2012): 138–44. http://dx.doi.org/10.5764/tcf.2012.24.2.138.

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7

Williams, B. L., and P. Horridge. "Effects of Selected Laundering and Drycleaning Pretreatments on the Colors of Naturally Colored Cotton." Family and Consumer Sciences Research Journal 25, no. 2 (December 1, 1996): 137–58. http://dx.doi.org/10.1177/1077727x960252003.

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8

Hasenclever, K. D. "Schonwaschverfahren für Oberbekleidung als Alternative zur Chemischreinigung / Special Laundry Process as Alternative to Drycleaning." Tenside Surfactants Detergents 28, no. 6 (December 1, 1991): 516–20. http://dx.doi.org/10.1515/tsd-1991-280638.

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9

Uddin, Mohammad Gias. "Effects of Different Mordants on Silk Fabric Dyed with Onion Outer Skin Extracts." Journal of Textiles 2014 (December 10, 2014): 1–8. http://dx.doi.org/10.1155/2014/405626.

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At present, a higher demand is put towards the use of natural dyes due to increased awareness of the environmental and health hazards associated with the synthesis and use of synthetic dyes. This research was conducted using onion outer skins as a potential source of natural plant dyes. In this study, extraction of dye was carried out in aqueous boiling method. Premordanting technique was followed using different mordants, namely alum, ferrous sulphate, tin, tannic acid, tartaric acid, and their combinations on silk fabric. Fabric samples dyed without using any mordant were then compared with the dyed samples pretreated with the mordants. The range of colors developed on dyed materials was evaluated by measuring the color values with respect to K/S values and color coordinates. It was concluded that the color values were found to be influenced by the addition of mordants, and thus different fashion hues were obtained from the same amount of dye extract using different mordants. Ferrous sulphate was found as the most influential mordant. ΔEcmc values between unmordanted (Reference dyed) and metallic mordanted fabric samples were found higher than those between unmordanted and nonmetallic mordanted fabric samples. The dyed samples were evaluated for color fastness to washing, light, drycleaning, rubbing, and perspiration. The color fastness properties were found to be satisfactory and improved in many cases. From the fastness results, it was obvious that these dyes can also be applied on silk fabric without using any mordant if required.
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10

"4499743 Clothing drycleaning machine." Journal of Heat Recovery Systems 5, no. 6 (January 1985): iii—iv. http://dx.doi.org/10.1016/0198-7593(85)90233-4.

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11

"Control of Ergonomic Hazards in Commercial Drycleaning." Applied Occupational and Environmental Hygiene 15, no. 8 (January 2000): 596–97. http://dx.doi.org/10.1080/10473220050075581.

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12

"Control of Exposure to Perchloroethylene in Commercial Drycleaning." Applied Occupational and Environmental Hygiene 14, no. 6 (January 1999): 365–66. http://dx.doi.org/10.1080/104732299302747.

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13

"Control of Spotting Chemical Hazards in Commercial Drycleaning." Applied Occupational and Environmental Hygiene 15, no. 7 (January 2000): 535–36. http://dx.doi.org/10.1080/10473220050028330.

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14

"Control of Exposure to Perchloroethylene in Commercial Drycleaning (Ventilation)." Applied Occupational and Environmental Hygiene 15, no. 2 (January 2000): 187–88. http://dx.doi.org/10.1080/104732200301665.

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15

"Control of Exposure to Perchloroethylene in Commercial Drycleaning (Machine Design)." Applied Occupational and Environmental Hygiene 15, no. 1 (January 2000): 11–12. http://dx.doi.org/10.1080/104732200301782.

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16

"Control of Fire Hazards in Commercial Drycleaning Shops Using Petroleum-Based Solvents." Applied Occupational and Environmental Hygiene 15, no. 3 (January 2000): 249–50. http://dx.doi.org/10.1080/104732200301548.

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17

Rutkiewicz, Irena, Wojciech Kujawski, and Jacek Namieśnik. "A procedure for the determination of dichloromethane and tetrachloroethene in water using pervaporation and gas chromatography." Chemical Papers 65, no. 5 (January 1, 2011). http://dx.doi.org/10.2478/s11696-011-0065-7.

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AbstractIn the present study, pervaporation was applied to the determination of tetrachloroethene (PCE) and dichloromethane (DCM) in liquid samples. PCE is the most commonly used solvent in drycleaning processes. PCE belongs to group 2A of carcinogens (probably carcinogenic to humans) according to the classification of the International Agency for Research on Cancer (IARC). DCM is also widely used as an industrial solvent for the purification and isolation of intermediates or products. DCM is classified as a “possible” human carcinogen by the IARC. The aim of this study was to evaluate a new procedure for the determination of DCM and PCE in liquid samples based on the pervaporative removal of DCM and PCE from liquid samples as an analyte isolation/enrichment technique, followed by a direct aqueous injection of the extracts onto the column of a gas chromatograph equipped with an electron capture detector (DAI-GC-ECD). The basic parameters of the new PV-DAI-GC-ECD procedure were evaluated.
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