DOI QR코드

DOI QR Code

A Study on the Cleaning Efficiency using the d-Limonene Oil Extracted in Wasted Mandarin Peels

폐감률피에서 추출한 limonene 오일의 세정성에 관한 연구

  • Song, Min-Kyung (Korea Environment Industry & Technology Institute) ;
  • Oh, Eun-Ha (Department of Public Health Graduate School of Hanyang University) ;
  • Im, Ho-Sub (Research Institute of Health Sciences, Korea University) ;
  • Kim, Yoon-Shin (Center for life & Environmental Science Neodin Medical Science Institute)
  • 송민경 (한국환경산업기술원) ;
  • 김윤신 (한양대학교 일반대학원 보건학과) ;
  • 임호섭 (고려대학교 부설 보건과학연구소) ;
  • 오은하 (네오딘의학연구소 생명환경과학센터)
  • Received : 2010.04.02
  • Accepted : 2010.06.15
  • Published : 2010.06.30

Abstract

The object of this research is to conform of practicable possibility and recycling of producing junk after citrus fruits is processed. With extracting d-limonene oil that have 70~90% a component of oil out of junk citrus peel, making certain the about 12000ppm concentration of it. Limonene derived from citrus in jeju using conventional synthetic detergents can be replaced with the development of environmentally friendly natural detergent investigated the possibility. Mostly due to ocean dumping, disposal and cause environmental problems by recycling natural citrus cleaner alternative to the research conducted on the possibility. Cleaning efficiency with temperature did not affect the largest concentrations were able to identify the difference between cleaning efficiency. At least 10% of the d-limonene oil could be from the cleaning performance, increasing the concentration of the cleaning efficiency was increased in size. Ultrasonic is very high removal efficiency under the conditions shown in the cause of pure self-generated ultrasonic cleaning power as co-effects of d-limonene oil appears to chemical cleaning effect of ultrasonic cavitation occurs in the physical cleaning effect due to a combination of synergistic stability is maximized by low concentrations of d-limonene oil in a short time showed an excellent cleaning ability. Having the ability of cleaning at the same time, considering the side recycling in the junk citrus peels reflects possibility of basic materials utility eco-friendly in the skin soap, bath soap, cosmetics etc, through ability of exclusion a contaminant in based cleaning effect(EC) it can prospect substitution effect environmentally in the pre existence synthetic detergents.

Keywords

References

  1. E. Y. Lee, Optimization of Separation Process of Bioflavonoids and Dietary Fibers from Tangerine Peels using Hollow Fiber Membrane, J. of Food Sci. Tech., 30(1), 151 (1998).
  2. C. M. Kim, Taxonomical and phytochemical Studies of Citrus Plants Native to Je Ju Island(1), J. of Kor. Nat. Prod. Sci., 10(1), 53 (2001).
  3. Y. S. Ha, Chracterization of Emulsion Properties for D-limonene, J. of Kor. Envir. Sci., 7(6), 875 (1998).
  4. S. K. Jung, S. H. Kim, Status of Citrus Fruit Production and View of Utilizationin Cheju, Kor. Soc. of Food Sci. and Nutri., 5(2), 42 (2000).
  5. J. S. Ko, S. H. Kim. Physicochemical Properties and Chemical Compositions of Citrus Fruits Produced in Cheju, J. of the Kor. Agr. Chem. Soc., 38(6), 541-545 (1995)
  6. S. Langer and D. L. Wise, Medical Applications of Controlled Release, CRC Press, Florida, U.S.A., 2, 2 (2004).
  7. H. B. Rosen, J Chang, G. E. Wnek, R. J. Linhardt and R. Langer, Bioerodible polyanhydrides for controlled drug delivery, Biomaterials., 4, 131 (2004).
  8. A. J. Corraz et. al., Dual-Action Penems and Carbapenems, J. Med. Chem., 35, 1828 (2002).
  9. A. C. Oyrton, Jr. Monteiro, Claudio Airoldi, Some studies of crosslinking chitosan-glutaraldehyde interaction in a homogeneous system, Inter. J. of Bio. Macro., 26, 119 (1999). https://doi.org/10.1016/S0141-8130(99)00068-9
  10. R.I., Sekiguchi, Miura, K., Yagi, R. and Oba, K., Individual removals of anionic surfactants in municipal sewage treatment plants. Yakagaku, 24(5), 311-313, 1995.
  11. E. W. Flick., Industrial Solvent Handbook, 4th ed., Noyes Data Corp. 255(2001).
  12. L. B. Rex, A Guide to Activated Carbon for Semi-Aqueous Processing, Precision Cleaning, 29, (2008).
  13. J. B., Dukee, Equiping for Cosolvent Cleaning, Rinsing and Drying-Part I , Precision Cleaning, October, 13(2004).
  14. A. C. Greene, R. D. Cormia, Evaluating Cleaning Efficiencies of CFC Replacement Systems in the Disk-Drive Industry Using Surface Analytical Techniques, Microcontamination, Canon Communications, 352, (2002).
  15. C. P. Wong, W. O. Gillum, Transactions on Components Packing and Manufacturing Technology, 19, 119, (2006).
  16. H. Tsuruta, Absorption of solvent mixture, Ind. Health, 34, 369(2006).